WO2013158306A1 - Self-suspending proppants for hydraulic fracturing - Google Patents
Self-suspending proppants for hydraulic fracturing Download PDFInfo
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- WO2013158306A1 WO2013158306A1 PCT/US2013/032424 US2013032424W WO2013158306A1 WO 2013158306 A1 WO2013158306 A1 WO 2013158306A1 US 2013032424 W US2013032424 W US 2013032424W WO 2013158306 A1 WO2013158306 A1 WO 2013158306A1
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- proppant
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- polymer
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- sand
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K8/00—Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
- C09K8/60—Compositions for stimulating production by acting on the underground formation
- C09K8/62—Compositions for forming crevices or fractures
- C09K8/66—Compositions based on water or polar solvents
- C09K8/68—Compositions based on water or polar solvents containing organic compounds
- C09K8/685—Compositions based on water or polar solvents containing organic compounds containing cross-linking agents
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- E—FIXED CONSTRUCTIONS
- E21—EARTH DRILLING; MINING
- E21B—EARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/25—Methods for stimulating production
- E21B43/26—Methods for stimulating production by forming crevices or fractures
- E21B43/267—Methods for stimulating production by forming crevices or fractures reinforcing fractures by propping
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K8/00—Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
- C09K8/60—Compositions for stimulating production by acting on the underground formation
- C09K8/80—Compositions for reinforcing fractures, e.g. compositions of proppants used to keep the fractures open
- C09K8/805—Coated proppants
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S507/00—Earth boring, well treating, and oil field chemistry
- Y10S507/922—Fracture fluid
- Y10S507/924—Fracture fluid with specified propping feature
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T428/00—Stock material or miscellaneous articles
- Y10T428/25—Web or sheet containing structurally defined element or component and including a second component containing structurally defined particles
- Y10T428/252—Glass or ceramic [i.e., fired or glazed clay, cement, etc.] [porcelain, quartz, etc.]
Definitions
- This application relates generally to systems, formulations and methods for fracturing technologies.
- fracturing refers to the method of pumping a fluid into a well until the pressure increases to a level that is sufficient to fracture the subterranean geological formations containing the entrapped materials. This process results in cracks and breaks that disrupt the underlying layer to allow the hydrocarbon product to be carried to the well bore at a significantly higher rate. Unless the pressure is maintained, however, the newly formed openings close. In order to open a path and maintain it, a propping agent or "proppant" is injected along with the hydraulic fluid to create the support needed to preserve the opening. As the fissure is formed, the proppants are delivered in a slurry where, upon release of the hydraulic pressure, the proppants form a pack or a prop that serves to hold open the fractures.
- an anionic or cationic polyacrylamide is typically added as a friction reducer additive, allowing maximum fluid flow with a minimum of pumping energy. Since the pumping energy requirements of hydraulic fracturing are high, on the order of 10,000 - 100,000 horsepower, a friction reducer is added to slickwater fluids to enable high pumping rates while avoiding the need for even higher pumping energy. While these polymers are effective as friction reducers, they are not highly effective as viscosifiers and suspending agents. Slickwater polymer solutions typically contain 0.5- 2.0 gallons of friction reducer polymer per 1000 gallons of slickwater fluid, and the solutions have low viscosity, typically on the order of 3-15 cps.
- slickwater fluids are used in the fracturing stages that have either no proppant, proppant with small particle size, or low proppant loadings.
- Linear gel systems typically contain carbohydrate polymers such as guar, hydroxyethylcellulose, hydroxyethyl guar, hydroxypropyl guar, and
- linear gel polymers are commonly added at a use rate of 10-50 pounds of polymer per 1000 gallons of linear gel fluid. These concentrations of linear gel polymer result in a fluid with improved proppant suspending characteristics vs. the slickwater fluid.
- the linear gel fluids are used to transport proppants, at loading levels of about 0.1 to 1 pound of proppant per gallon of fluid. Above this proppant loading level, a more viscous solution is typically required to make a stable suspension.
- Crosslinked gel is the most viscous type of polymer-enhanced fluid used for transporting of proppant.
- the linear gel fluid as described above is crosslinked with added reagents such as borate, zirconate, and titanate in the presence of alkali.
- the viscosity is much higher and the proppants can be effectively suspended.
- the linear gel and crosslinked gel fluids have certain advantages but they require a high dose rate of expensive polymer.
- proppant particles could be used advantageously to improve their performance in hydraulic fracturing systems.
- Closure stresses can range from 1700 psi in certain shale gas wells, up to and exceeding 15,000 psi for deep, high temperature wells. Care must be taken that the proppants do not fail under this stress, lest they be crushed into fine particles that can migrate to undesirable locations within the well, thereby affecting production. Desirably, a proppant should resist diagenesis during fracture treatment.
- the high pressures and temperatures combine with the chemicals used in frac fluids can adversely affect the proppant particles, resulting in their diagenesis, which can eventually produce fine particulate matter that can scale out and decrease the productivity of the well over time.
- a resin-coated proppant can be either fully cured or partially cured.
- the fully cured resin can provide crush resistance to the proppant substrate by helping to distribute stresses among the grain particles.
- a fully cured resin can furthermore help reduce fine migration by encapsulating the proppant particle. If initially partially cured, the resin may become fully cured once it is placed inside the fracture.
- fine particulates such as crystalline silica dust
- these fines can be released as a respirable dust during the handling and processing of proppant sand.
- this dust can be harmful to workers, resulting in various inhalation-associated conditions such as silicosis, chronic obstructive pulmonary disease, lung cancers in the like.
- the fines can cause "nuisance dust" problems such as fouling of equipment and contamination of the environment.
- Another approach to preparing suitable proppants involves mixing additives with the proppant itself, such as fibers, elastomeric particles, and the like.
- the additives can affect the rheological properties of the transport slurry, making it more difficult to deliver the proppants to the desired locations within the fracture.
- the use of additives can interfere with uniform placement of the proppant mixture into the fracture site. While there are known methods in the art for addressing the limitations of proppant systems, certain problems remain. There is thus a need in the art for improved proppant systems that allow precise placement, preserve fracture conductivity after placement, protect well production efficiency and equipment life, simplify hydraulic fracturing operations, reduce environmental impact, and promote worker health and safety. It is further desirable that such improved systems be cost-effective.
- the invention relates to modified proppants, comprising a proppant particle and a hydrogel coating, wherein the hydrogel coating localizes on the surface of the proppant particle to produce the modified proppant.
- the proppant particles can be solids such as sand, bauxite, sintered bauxite, ceramic, or low density proppant.
- the proppant particle comprises a resin-coated substrate.
- the modified proppant further comprises an adhesion promoter, optionally affixing the hydrogel coating to the resin-coated substrate.
- the hydrogel coating preferably comprises a water-swellable polymer.
- the hydrogel coating can be manufactured form a water soluble polymer.
- the preferred weight average molecular weight of the polymer is > about 1 million g/mol, preferably > about 5 million g/mol.
- the proppant is dry, free-flowing when dry and/or free-flowing after being subjected to a relative humidity of between about 80%-90% for one hour at 25-35° C.
- the hydrogel coating is preferably durable and possesses a shearing ratio as determined by a Shear Analytical Test of > 0.6.
- the invention relates to methods of manufacturing the proppants and to the proppants produced by the methods.
- the hydrogel coating is applied to the proppant particle as a liquid coating formulation that dries to form a substantially continuous film on the surface of the proppant particle.
- the modified proppant can be made by an invert emulsion coating technique in which the proppant particle substrate is combined with an invert emulsion in which the oil phase forms the continuous phase of the emulsion and a solution or dispersion of the superabsorbent polymer in water forms the discontinuous, emulsified phase.
- the hydrogel coating preferably comprises a polymer selected from the group consisting of polyacrylamide, hydrolyzed polyacrylamide, copolymers of acrylamide with ethylenically unsaturated ionic comonomers, copolymers of acrylamide and acrylic acid salts, poly(acrylic acid) or salts thereof, carboxymethyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, guar gum, carboxymethyl guar, carboxymethyl hydroxypropyl guar gum, hydrophobically associating swellable emulsion polymers, and latex polymers.
- the amount of hydrogel coating can be less than about 5 wt% of the total dry weight.
- the modified proppant is preferably self-suspending. Preferred proppants of the invention can undergo a volumetric expansion of at least 100%, preferably at least 500%, upon hydration in an excess of water.
- the modified proppants can comprise additional excipients, such as a cationic/anionic polymer pair comprising a cationic polymer and a high molecular weight anionic polymer.
- the cationic polymer can be selected from the group consisting of poly-DADMAC, LPEI, BPEI, chitosan, and cationic polyacrylamide.
- the modified proppants are preferably used in conjunction with and/or further comprise an oxidative breaker or an enzymatic breaker.
- the oxidative breaker can be selected from the group consisting of peroxides, magnesium peroxide, calcium peroxide, persulfate salts, nitrate salts, bromate salts, ozone, and oxidizing chlorine species.
- the oxidative breaker can be a cationically modified oxidative breaker capable of associating with the hydrogel by ionic interaction.
- the enzymatic breaker can be a cationic enzymatic breaker capable of associating with the hydrogel by ionic interaction.
- the modified proppant can further comprise a hydrophobic outer layer.
- the hydrophobic outer layer can be selected from the group consisting of fatty acids, aliphatic amines, hydrophobic quaternary amines, aliphatic amides, hydrogenated oils, vegetable oils, castor oil, triacetin, waxes, polyethylene oxides, and polypropylene oxides.
- the modified proppant can further comprise a delayed hydration additive, such as a low hydrophilic-lipophilic balance surfactant, an exclusion agent capable of excluding a finishing surfactant, an ionic crosslinking agent, a covalent crosslinking agent and/or a monovalent salt charge shielder.
- the modified proppant can further comprise an alcohol selected from the group consisting of ethylene glycol, propylene glycol, glycerol, propanol, and ethanol.
- the modified proppant of claim 1 further comprises an anticaking agent, such as a hydrophobic layer material, a finely divided particulate material and/or a crosslinking agent.
- anticaking agent examples include calcium silicate, calcium carbonate, talc, kaolin, bentonite, diatomaceous earth, silica, colloidal silica, microcrystalline cellulose, and attapulgate. They can also include fumed silica, calcium silicate, calcium carbonate, kaolin, bentonite and attapulgate.
- the hydrogel coating can comprise an additive, such as a chemical additive or tracer.
- the modified proppant preferably contains less fines than a proppant particle that is not modified.
- the invention includes hydraulic fracturing formulations, comprising the modified proppants described herein and an oxidative breaker or an enzymatic breaker.
- the invention also includes methods of fracturing wells. Such methods preferably comprise the steps:
- the method of fracturing a well comprises:
- a breaker formulation comprising an oxidative breaker or an enzymatic breaker
- the breaker formulation can be added into the well before, during or after introducing the hydraulic fracturing formulation into the well.
- the breaker formulation can be added in one or more steps.
- the invention includes a method for reducing the amount of thickening agent that is added to the fracing fluid comprising selecting as the proppant the modified proppant of the invention.
- the modified proppants of the invention preferably hydrate essentially completely within 2 hours, such as within 10 minutes, of first being combined with the fracing fluid.
- the invention includes methods of manufacturing a modified proppant. Such methods can comprise the steps:
- the fluid polymeric coating composition comprises a hydrogel polymer, and wherein the hydrogel polymer localizes on the surface of the proppant substrate particle to produce the modified proppant.
- the step of drying can dry the fluid polymeric coating so as to form a substantially continuous film on the surface of the modified proppant.
- the method can preferably take place at or near a point of use for the modified proppant, such as a location which produces sand, ceramic, low density proppant, a resin coated substrate, and/or bauxite.
- the method can further comprise adding an alcohol selected from the group consisting of ethylene glycol, propylene glycol, glycerol, propanol, and ethanol during or before the step of mixing the proppant substrate particles and the fluid polymer coating composition.
- the method preferably comprises adding an inversion promoter during or following the step of mixing the proppant substrate particles and the fluid polymer coating composition and/or an anticaking agent.
- the methods of manufacturing a hydrogel-coated proppant can also comprise: providing a proppant substrate particle and a formulation comprising a coating precursor, wherein the coating precursor is capable of forming a hydrogel coating on a surface of the proppant substrate particle by in situ polymerization;
- the method preferably results in a substantially continuous coating film on the surface of the proppant substrate particle.
- FIG 1 shows vials of uncoated sand (L) and hydrogel coated sand (middle and R) in water.
- FIGS. 2A-2C shows microscope images of the time dependent hydration of the hydrogel layer on a proppant.
- FIG. 3 is a flow diagram of a manufacturing process for self-suspending proppants.
- FIG. 4 shows SEM images of proppant particles coated with hydrogel, without addition of glycerol (FIG. 4A) and with the addition of glycerol (FIG.4B).
- FIG. 5 shows a SEM image of dried hydrogel coating on the surface of proppant particle.
- FIG. 6 is a graph of bed height vs. shear time for three sets of self-suspending proppant samples.
- FIG. 7 is a graph of bed height vs. mixing time for two sets of self-suspending proppant samples.
- FIG. 8 is a graph of bed height vs. mixing time for two sets of self-suspending proppant samples.
- FIG. 9 is a graph of bed height vs. mixing time for a series of treated self- suspending proppant samples.
- FIG. 10 is a graph of bed height for varying amounts of calcium silicate added to self-suspending proppant samples.
- FIG. 11 is a graph of bed height vs. drying time for a series of preheated and non-preheated proppant samples.
- FIG. 12 shows a graph of bed height vs. drying time at various temperatures.
- FIG. 13 shows a graph of temperature vs. mixing time for a series of treated self- suspended proppant samples.
- FIG. 14 shows a graph of bed height and loss of ignition (LOI) vs. drying time.
- hydrogel -coated proppants as disclosed herein include lower tendency to erode equipment, lower friction coefficient in the wet state, good bonding adhesion with each other after placement in a fracture site, resistance to uncontrolled fines formation, and anti-fouling properties attributable to the hydrophilic surface.
- the disclosed systems for forming proppant particles can be applied to the types of proppant substrates most widely used, e.g., sand, resin coated sand, bauxites, low density proppants, and ceramics.
- the proppant particles can be formed from a variety of substrates, including fibrous materials, as would be available to those having ordinary skill in the art.
- the proppant particles can be fabricated so that they resist crush or deformation, so that they resist displacement, and so that they can be suspended in less viscous fluid carriers for transporting into the formation.
- the invention encompasses a modified proppant, comprising a proppant particle and a hydrogel coating, wherein the hydrogel coating localizes on the surface of the proppant particle to produce the modified proppant.
- these self- suspending proppants are formed by modification of a particulate substrate with a water swellable polymer coating such as a hydrogel.
- the particulate substrate can be modified with the polymer coating before the particulate substrate is introduced into the fracturing fluid.
- the amount of hydrogel polymer coating can be in the range of about 0.1 to about 10% based on the weight of the proppant.
- the hydrogel layer applied onto the surface of the proppant substrate can be a coating thickness of about 0.01% to about 20% of the average diameter of the proppant substrate.
- the hydrogel layer can become expanded with water, such that the expanded hydrogel layer thickness can become about 10% to about 1000% of the average diameter of the proppant substrate.
- FIG. 1 shows an image of three vials, each containing the same amount of proppant in water, where the vial on the left contains proppant with no hydrogel coating, the vial in the center contains proppant with 1% hydrogel coating, and the vial on the right contains proppant with 3% hydrogel coating.
- FIGS. 2A, 2B and 2C show, respectively, three light microscopy images of the same hydrogel-coated proppant grain, where each image was taken after a different amount of time hydrating the hydrogel-coated proppant in water.
- the hydrogel-coated proppant particle had been in water for 15 seconds
- the hydrogel-coated proppant particle had been in water for 45 seconds
- the hydrogel-coated proppant particle had been in water for 120 seconds.
- the hydrogel layer grows in volume quickly and expands significantly in size as the hydration time increases.
- hydrogel coatings on individual proppant particle substrates by coating them with superabsorbent polymers (see, for example, U.S.2008/0108524)
- the formulations and methods disclosed herein differ from such technologies in important, advantageous ways.
- hydrogel formulations that are used have certain salient properties.
- the formulations disclosed herein comprise hydrogels that are selected and applied to a proppant particle, forming a modified particle that, in a way so that: (a) when dry, is free flowing, and/or, (b) upon hydration with water, the hydrogel coating is durable and/or the hydrogel coating expands volumetrically so that the volume of the hydrated modified proppant is at least 20% greater than the volume of the dry modified proppant, or is between about 20% to about 50% greater than the volume of the dry modified proppant, or is between about 50% and about 100% greater than the volume of the dry modified proppant, or is between about 100% and about 200% greater than the volume of the dry modified proppant, or is between about 200% and about 400% greater than the volume of the dry modified proppant, or is greater than about 400% of the volume of the dry modified proppant.
- a modified proppant will be understood to be dry when its moisture content is 1 wt. % or less.
- the moisture content of the modified proppants of this disclosure when dry, is ⁇ 0.5 wt.%, or even ⁇ 0.1 wt.%.
- the thickness of the dried hydrogel coating on the modified proppant can be less than 10 microns, and often less than 2 microns.
- the hydration of the hydrogel polymers in an aqueous suspension is essentially complete within 2 hours, or within 1 hour, or within 30 minutes, or within 10 minutes, or within 2 minutes or even within 1 minute of being contacted with an excess of tap water at 20° C.
- hydrogel coated proppant As used herein, describing a hydrogel coated proppant as being "hydrated essentially completely” means that the amount of volume increase by the hydrogel coated proppant is at least 80% of the total amount of volume increase by the hydrogel coated proppant when hydrated completely in water.
- modified proppants formed in accordance with these formulations and methods will, when dry, be free flowing, with any clumping or agglomeration being readily dispersed by gentle agitation.
- the modified proppants shall still be considered to be free- flowing if they exhibit some degree of clumping or agglomeration, provided that these clumps and agglomerates can be broken up by gentle agitation.
- the volumetric expansion of the proppants can be determined using a Settled Bed Height Analytical Test. For example, in a 20 mL glass vial, 1 gm of the dry modified proppant to be tested is added to 10 gms of water (e.g., tap water) at approximately 20° C. The vial is then agitated for about 1 minute (e.g., by inverting the vial repeatedly) to wet the modified proppant coating. The vial is then allowed to sit, undisturbed, until the hydrogel polymer coating has become hydrated. The height of the bed formed by the hydrated modified proppant can be measured using a digital caliper. This bed height is then divided by the height of the bed formed by the dry proppant. The number obtained indicates the factor (multiple) of the volumetric expansion. Also, for convenience, the height of the bed formed by the hydrated modified proppant can be compared with the height of a bed formed by uncoated proppant, as shown in the following working Example 5.
- water e
- Coating durability can be measured following the Shear Analytical Test. For example, 1 L of water (e.g., tap water) is added to a square 1 L beaker (such a beaker having a total volume of approximately 1.25 L, with the fill line at the 1L mark). The beaker is then placed in an EC Engineering CLM4 paddle mixer. The mixer is set to mix at 300 rpm. Once mixing commences, 50 gm of the modified proppant to be tested, in dry form, is added to the beaker. After 30 seconds of mixing at 300 rpm, the mixing rate is reduced to 200 rpm and mixing is continued until the hydrogel polymer coating is hydrated.
- 1 L of water e.g., tap water
- the mixture is then poured into a graduated 1 L cylinder and allowed to settle, after which the settled bed height of the modified proppant is measured in the manner indicated above.
- This settled bed height (“settled bed height with shearing") is then compared with the settled bed height of an identical amount of hydrated modified proppant which has not been subjected to this shear treatment ("settled bed height without shearing").
- the amount by which this shear treatment reduces the settled bed height of the modified proppant is a measure of the durability of its hydrogel coating.
- a hydrogel coating is considered durable if the ratio of the settled bed height with shearing to the settled bed height without shearing (“shearing ratio”) is at least 0.2.
- Modified proppants exhibiting shearing ratios of greater than 0.2, greater than or equal to 0.3, greater than or equal to 0.4, greater than or equal to 0.5, greater than or equal to 0.6, greater than or equal to 0.7, greater than or equal to 0.8, or greater than or equal to 0.9 are desirable.
- the type and amount of hydrogel polymer used in the modified proppants disclosed herein can be selected so that the volumetric expansion of the modified proppant, as determined by the above Settled Bed Height Analytical Test, increases by a factor of at least 1.2. In particular embodiments, as shown in working Example 5, this factor can be greater than or equal to about 3, about 5, about 7, about 8 and even about 10.
- the modified proppants of this disclosure are free flowing when dry. In particular embodiments, these modified proppants are free flowing even after being subjected to high humidity conditions, such as would be found, for example, in a mid-summer's day in the southern United States.
- a modified proppant to be tested can be subjected to humidity test conditions of 80-90% relative humidity at 25-50° C for 1 hour.
- a modified proppant that is still free flowing after being subjected to these humidity test conditions is regarded as being free flowing even after being subjected to high humidity conditions.
- Methods for modification of proppant include spraying or saturation of a liquid polymer formulation onto a proppant substrate, followed by drying to remove water or other carrier fluids.
- the drying process can be accelerated by application of heat or vacuum, and by tumbling or agitation of the modified proppant during the drying process.
- the heating can be applied by forced hot air, convection, friction, conduction, combustion, exothermic reaction, microwave heating, or infrared radiation. Agitation during the proppant modification process has a further advantage of providing a more uniform coating on the proppant material.
- FIG. 3 illustrates schematically a manufacturing process 100 for preparing self- suspending proppant 130 in accordance with the present disclosure.
- sand 132 e.g., dry sand having less than 0.1% moisture
- a liquid polymer composition 120 is sprayed via pump and spray nozzle apparatus 134 onto the sand 132 along the conveyor belt 122.
- the sand 132 exposed to the liquid polymer 120 reports to a low shear mixing vessel 124, where the ingredients are further blended to form modified sand 128.
- the modified sand containing the liquid polymer is sent to a dryer 126 to remove water and/or organic carrier fluids associated with the liquid polymer 120.
- the dried modified sand 132 is passed through a finalizing step 134, which can include a shaker and/or other size classification equipment such as a sieve to remove over-sized agglomerates.
- the finalizing step 134 can also subject the dried modified sand 132 to mechanical mixers, shear devices, grinders, crushers or the like, to break up aggregates to allow the material to pass through the appropriate sized sieve.
- the finished material 130 is then stored for shipment or use.
- the sand or other substrate that is used to produce self- suspending proppant is pre-dried to a moisture content of ⁇ 1%, and preferably ⁇ 0.1% before being modified with a hydrogel polymer.
- the sand or other substrate temperature at the time of mixing with the liquid polymer is in the range of about 10 to about 200 degrees C, and preferably in the range of about 15 to about 80 degrees C or between 15 and 60 degrees C.
- the proppant substrate is contacted with the liquid polymer composition by means of spraying or injecting.
- the amount of liquid polymer composition added is in the range of about 1 to about 20%, and preferably about 2 to about 10% by weight of the sand.
- the proppant substrate and liquid polymer are blended for a period of 0.1 to 10 minutes.
- the mixing equipment is a relatively low shear type of mixer, such as a tumbler, vertical cone screw blender, v-cone blender, double cone blender, pug mill, paddle mixer, or ribbon blender.
- the mixing equipment can be equipped with forced air, forced hot air, vacuum, external heating, or other means to cause evaporation of the carrier fluids.
- the modified proppant substrate containing the liquid polymer is dried to remove water and/or organic carrier fluids associated with the liquid polymer.
- the dryer equipment can be a conveyor oven, microwave, or rotary kiln type.
- the drying step is carried out in such a way that the dried, modified sand contains less than 1% by weight of residual liquids, including water and any organic carrier fluids associated with the liquid polymer composition.
- the same equipment can be used to blend the proppant substrate with the liquid polymer and to dry the blended product in a single processing stage, or in a continuous production line.
- methods for modification of proppant include synthesis of a hydrogel coating in situ, or in the presence of the proppant particle, resulting in a hydrogel layer encapsulating the surface of the proppant particle.
- the in situ synthesis of the hydrogel can be accomplished by combining proppant particles with coating precursor monomers and/or macromonomers followed by a polymerization step.
- a water-soluble polymer can be dissolved in monomers, with or without solvent, followed by polymerization in the presence of the proppant particles, resulting in the formation of interpenetrating polymer networks as a coating on the proppants.
- the water-soluble polymer is dispersed in the monomers, with or without solvent, and the subsequent polymerization will result in proppants encapsulated by a hydrogel consisting of water-soluble polymer particles locked up by the newly formed polymer.
- the monomers or macromonomers used can be selected from monomers that result in water-soluble polymers.
- the particles can be encapsulated by non-water soluble polymer that will then be modified or hydrolyzed to yield the water-soluble hydrogel coating.
- the encapsulating layer can be formed by different polymerization techniques, with or without solvents.
- the in situ polymerization of polymer on the surface of proppant grains can have the advantage of reducing or eliminating drying steps.
- a water-soluble monomer(s) for the hydrogel coating or the in situ polymerization can be chosen from the following monomers or salts thereof:
- acrylic acid methacrylic acid, acrylamide, methacrylamide, and their derivatives, carboxy ethyl acrylate, hydroxy ethylmethacrylate (HEMA), hydroxyethylacrylate (HEA), polyethyleneglycol acrylates (PEG-acrylates), N-isopropylacrylamide (NiPA), 2- acrylamido-2-methyl-l-propanesulfonic acid (AMPS), sodium salt of styrene sulfonate, vinylsulphonic acid, (meth)allylsulphonic acid, vinylphosphonic acid, N-vinylacetamide, N-methyl-N-vinylacetamide, N-vinylformamide, N-methyl-N-vinylformamide, N- vinylpyrrolidone, N-butyrolactam or N-vinylcaprolactam, maleic anhydride, itaconic acid, vinyl acetate, dimethyldiallylammonium chloride; quaternized dimethylamino
- the ratio of ionic to nonionic monomers can be selected to yield hydrogels with different charge density. In some instances, for example, it is desirable to have hydrogels with higher charge in order to yield coatings with faster hydration or swelling properties.
- the ionic content or charge density of the hydrogel polymer is in the range of 10-70 % ionic, with the balance nonionic, on a molar percent basis of the monomers. In a preferred embodiment, the charge density of the hydrogel polymer is in the range of 25-55% on a molar percent basis. In other instances the ionizable monomers can be selected to have higher or lower ionization constants to yield hydrogels more or less stable in brine environments. Other advantageous properties can be imparted by selection of appropriate charge densities.
- coating precursors can include polyfunctional monomers that contain more than one polymerizable group and that will introduce the crosslinking or branching points in the hydrogel.
- these monomers are: pentaerythritol triallyl ether, PEG-diacrylates and metahcrylates, N,N'-methylenebisacrylamide,
- crosslinking monomer will be in the range 0.001 to 0.5 % of the total monomer content.
- adding crosslinkers can form hydrogels less likely to become detached from the surface particle under extreme conditions.
- the monomers/macromonomers used are selected from coating precursor monomers that that will form a non-water soluble coating. After the coating is applied, its further modification will result in the water swellable polymer.
- a polymeric coating containing hydrolysable groups can be formed, and subsequent hydrolysis will yield the hydrogel.
- monomers that fall in this category are esters, anhydrides, nitriles, and amides; for example the ester monomers methyl acrylate, t-butyl acrylate can be used.
- a monomer containing vinyl functionalities can form the hydrogel by different polymerization techniques with or without solvents. The polymerization techniques include bulk, suspension, admicellar, solution polymerization.
- coating monomers or precursors can be selected to form a self-suspending proppant with a hydrogel comprising a polyurethane or polyurea.
- suitable monomers to form polymers with polyurethane and/or polyurea functionalities are: polyols such as ethylene glycol, propylene glycol, glycerin, trimethylolpropane, 1,2,6-hexanetriol, pentaerythritol, sorbitol, sucrose, a-methylglycoside, polyoxyalkylenes such as PEG, copolymers of PEG-PPG, Pluronics, Tetronics, polyamines such as Jeffamines.
- isocyanates there may be mentioned toluene-diisocyanate, naphthalenediisocyanate, xylene-diisocyanate, tetramethylene diisocyanate,
- hexamethylene diisocyanate trimethylene diisocyanate, trimethyl hexamethylene diisocyanate, cyclohexyl-l,2-diisocyanate, cyclohexylene-l,4-diisocyanate and the like.
- polystyrene resins from Dow, DESMODUR® and MONDUR® resins from Bayer (2,4'- diphenylmethanediisocyanate, 4,4'-diphenylmethanediisocyanate, and their mixtures), and CONATHANE® (polyisocyanate functionalized prepolymers of toluene
- the coating of proppant particle with a polyurethane (PU) hydrogel can be carried out by conventional methods.
- the coating can be performed in bulk without the use of solvents.
- a typical formulation for a crosslinked PU hydrogel can be prepared in a one-step bulk polymerization process using a diisocyanate, polyoxyalkylene, and a multifunctional crosslinking agent.
- the formulation will contain 10 to 80% of a polyoxyalkylene having the polyoxyalkylene molecular weight between 200 and 25,000.
- Another method to form the hydrogel layer in situ can be carried out by dissolving or suspending a water-soluble polymer in a monomer formulation followed by polymerization of the monomer.
- the monomers can be selected form the previous list of water soluble monomers.
- the resulting coating will consist in interpenetrating hydrogel network of the initial water-soluble polymer and the polymer formed in situ.
- the resulting coating will consist of a hydrogel coating in which the water soluble particles are locked up or entrapped. For example, these particles can be trapped inside the newly formed hydrogel coating or they can be bonded to the newly formed polymer.
- the water-soluble polymer can be dissolved or suspended in the monomer formulation in the presence or absence of a solvent and the polymerization can be carried out by different techniques.
- Suitable water soluble polymers to be mixed with monomers can be selected from the group consisting of polyacrylamide, polyacrylic acid, copolymers of acrylamide with acrylic acid salts, polyethyleneglycol, polyvinylpyrrolidone, polyvinylalcohol, carboxymethyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, guar gum, carboxymethyl guar, carboxymethyl hydroxypropyl guar gum, hydrophobically associating swellable emulsion polymers, starches, latex polymers, and the like.
- Another method for modification of proppant particles includes chemically grafting hydrophilic polymers onto the particle.
- the grafting of polymer chains onto the surface of the particle can be done by reactions such as Huisgen cycloaddition and other coupling or addition reactions that can immobilize the polymers onto the particle surface.
- the proppant particle used for these purposes can be selected to have surface functional groups such as epoxy, vinyl, amine, hydroxyl, etc. Those groups can then react with polymers having groups capable of reacting with the functional groups on the particle surface.
- proppant particles comprising silica can be surface modified by silanes such as aminosilanes, vinylsilanes, epoxysilanes, etc.
- the polymers that will react with the functionalized particle are hydrophilic linear or branched polymers or copolymers.
- the polymer can have one or more grafting moiety.
- the polymers can have functional groups such as amino, carboxyl or salts thereof, hydroxyl, thiol, acid anhydride, acid chloride and/or isocyanate groups which enable covalent binding to the functional groups of the particle.
- Examples of polymers that can be used to react with the functionalized particle are: epoxide functionalized PEG, amine functionalized PEG, azide functionalized PEG, polyethyleneimine, polyacrylic acid, polyvinyl alcohol, etc.
- the resulting hydrogel in addition to having swellable properties, can have temperature responsive or pH-responsive properties.
- the resulting swellable properties of the proppant can thus be tuned. This is an added benefit for transporting proppant down the wellbore, since temperatures are lower at the early stages in which proppant is transported and full swelling behavior is desirable; higher temperatures are expected inside the fractures where lower swelling of the hydrogel layer is desirable for packing improvement.
- the monomers used to make the temperature responsive hydrogel coated proppants can be selected from N-isopropylacrylamide (NiPA), ethylene oxide, propylene oxide, or macromonomers/polymers that display a lower critical solution temperature (LCST).
- the process of converting a substrate such as sand into a self- suspending proppant can be conducted at or near the point of use, for example at an oil or gas well site in preparation for hydraulic fracturing.
- This method has the advantage of converting a commodity material with high material handling costs, such as sand, into a specialized material that has added features.
- the sand can be acquired from local sources or shipped directly from a sand mining site or warehouse, for modification at the point of use. This avoids having to ship sand first into a blending plant and then ship a second time from the blending plant to the point of use. In the case of sand, the shipping costs can be higher than the material costs, so avoidance of extra shipping is desirable for controlling costs.
- the sand and the modifying chemicals can be added to a continuous mixer. After mixing is complete, the mixture can either be (a) ready to use, or (b) sent to a drying step.
- the drying step can include a thermal or vacuum drying process, and it can include the addition of anticaking agents.
- the finished product can be stored in containers at the well site.
- An example of the mixing equipment is a continuous ribbon blender or a pug mill.
- the drying step can be a separate process from mixing, and the drying step can be designed to avoid overshearing of the finished product such as a conveyor or tunnel dryer.
- Other types of drying mechanisms include rotary kilns, microwave driers, paddle driers, and vacuum driers.
- Hydrogel polymers that can be used to modify proppants in accordance with the systems and methods disclosed herein can be introduced, in embodiments, as oil-based emulsions, suspensions, water-based emulsions, latexes, solutions, and dispersions.
- the hydrogel polymers can be introduced as a distilled emulsion, such as an oil based emulsion that has been partially evaporated to remove a portion of the carrier fluids. This can offer the advantage of reduced drying requirements compared with conventional emulsions.
- the hydrogel polymer can be an alkali- swellable emulsion, wherein the hydrogel properties of the polymer are not fully developed until the polymer is contacted with alkali.
- the alkali- swellable emulsion can be coated onto the proppant substrate to form a modified proppant, and this modified proppant can be suspended in a fracturing fluid in the presence of an alkaline material.
- an additive such as an alcohol selected from the group consisting of ethylene glycol, propylene glycol, glycerol, propanol, and ethanol can be added during or before the step of mixing the proppant substrate particles and the liquid polymer coating composition.
- inversion promoters useful as additives in the polymer coating formulations for self-suspending proppants can include high HLB surfactants, such as polyethylene oxide lauryl alcohol surfactant, (ETHAL LA- 12/80% from ETHOX), ethylene glycol, propylene glycol, water, sodium carbonate, sodium bicarbonate, ammonium chloride, urea, barium chloride, and mixtures thereof.
- inversion promoters can serve the function of facilitating the release of active polymer ingredients from the internal phase of an oil based emulsion polymer into the (typically aqueous) process fluid to be treated. Since this process converts an oil continuous polymer into a water continuous environment, can be characterized as a phase inversion.
- the proppant substrate can be modified with a polymer formulation, without the need for a drying step. This can be accomplished by the use of a solvent-free polymer formulation, or a curable formulation. In certain simplified methods, a dry or liquid polymer formulation can be applied onto the proppant substrate via inline mixing, and the modified material thus prepared can be used without further processing.
- the moisture content of the proppant substrate can be modified by addition or removal of water, or addition of other liquids, to allow the substrate to be effectively coated, handled, and delivered into the fracturing fluid.
- the modified proppants can be further modified with a wetting agent such as a surfactant or other hydrophilic material to allow for effective dispersion into a fracturing fluid. When the hydrogel-modified proppants are suspended into a fracturing fluid, they are considered to be self-suspending if they require a lower viscosity fluid to prevent the particles from settling out of suspension.
- the modified proppants can be further modified to improve flowability and handling properties during processing, transport and storage.
- the hygroscopic surface of the modified proppants can in some cases negatively impact the bulk solids flow of the modified proppants by causing the modified proppants to agglomerate, especially evident in moist and/or high humidity environments.
- Anticaking properties can be imparted to the modified proppants through further modification to reduce or eliminate agglomeration by reducing the hygroscopic tendency of the modified proppants during processing, transport, and storage or by reducing the interaction of surfaces between adjacent modified proppants during processing, transport and storage, or both.
- the anticaking agent does not impact the intended performance of the modified proppants once the modified proppants are added to an aqueous fluid in end use applications.
- the modified proppants can be treated with anticaking agents such as finely divided solids or a second outer layer or both.
- the second outer layer can be a low level of crosslinking of the modified proppant surface, or a solid non-hygroscopic layer, or a cationic salt layer, or an oily hydrophobic layer or a combination thereof.
- the modified proppants with the anticaking agent can have improved handling properties, such as free-flowing properties, resistance to clumping, ease of conveying, ease of metering, and ease of discharging from a storage or transport vessel.
- the modified proppants with the anticaking agents can have reduced drying requirements, so that the finished product can be produced with a reduced amount of energy, time, and equipment.
- the anticaking agent is a finely divided solid comprising clays, siliceous materials, organics, metal oxides or fatty acid salts.
- the anticaking agent is a finely divided solid such as calcium silicate, magnesium silicate, calcium carbonate, talc, kaolin, bentonite, attapulgite, diatomaceous earth, silica, colloidal silica, fumed silica, corn starch, carbon black, microcrystalline cellulose, iron oxide, aluminum oxide, calcium stearate, magnesium stearate, or combinations thereof.
- the anticaking agent is a second outer layer formed by crosslinking the surface of the modified proppant.
- the addition of a species capable of crosslinking the swellable polymer on the proppant surface can effectively reduce the ability of the polymer layer to swell prematurely. Decreased swelling of the polymer will reduce the tendency of the modified proppant to experience caking or agglomeration during transport and storage.
- the crosslinking species has the capability of forming a bond with either a hydroxyl functional group, a carboxyl functional group, an amine functional group, or an amide functional group.
- the crosslinking species can be chosen from organic compounds containing aldehyde, amine, anhydride, or epoxy functional groups.
- the crosslinking species can also be an organometallic compound.
- the crosslinking species forms a bond that can be broken or removed under mechanical shear.
- Organometallic compounds able to associate and/or bond with hydroxyl and carboxyl functional groups are an example of a crosslinking species that form shear-sensitive bonds.
- the anticaking agent is a thin second layer of a solid non- hygroscopic material such as fatty acids, hydrogenated fatty acids, hydrogenated oils, waxes, polyethylene, polyethylene oxides, polypropylene oxides, copolymers of polyethylene oxide and polypropylene oxide, or combinations thereof.
- fatty acids suitable for use as a second layer include stearic acid, palmitic acid, lauric acid or tallow fatty acids containing stearic acid, palmitic acid/or lauric acid.
- hydrogenated oils suitable for use as a second layer include hydrogenated castor oil.
- waxes suitable for use as a second layer include paraffin, petroleum jelly and slack wax.
- a thin, solid layer can be applied to the surface of the modified proppant to create a barrier preventing the swellable polymer layer on adjacent modified proppant particles from adhering to each other during storage.
- the solid outer layer utilized can be comprised of compounds that are either water soluble, water insoluble or both.
- the solid outer layer is non-hygroscopic.
- the solid outer layer is chosen such that it remains in the solid phase at temperatures below 38°C and has a melting point in the range of 40°C to 120°C.
- the outer layer is chosen such that the melting point is low enough that the outer layer will be in the liquid phase during the drying process in the manufacturing of the modified proppant yet high enough that the outer layer will exist in the solid phase during storage and transport of the modified proppant.
- the solid phase outer layer acts as a barrier to prevent/reduce caking of the modified proppant due to humid environments.
- the solid outer layer can be added to the modified proppant as a finely divided powder, a flake, a solution in an oil carrier or as a warm liquid.
- the solid outer layer can be added to the modified proppant immediately before the polymer, simultaneously with the polymer, as a blend with the polymer, or can be added at some time after addition of polymer but before the drying process.
- the solid outer layer anticaking agent is added after the polymer has been well mixed with the modified proppant but before the modified proppant is dried.
- the anticaking agent is a second layer of a salt possessing a monovalent cationic charge that can be added to the modified proppant as a liquid or solution in oil at temperatures below 100°C such as a cationic surfactant or a monovalent salt hydrate.
- Cationic surfactants comprising a quaternary amine with a hydrophobic tail such as commercially available Adogen 464 or Arquad 2HT-75 from Akzo Nobel can be used as a second coating to give the modified proppant a hydrophobic layer while also neutralizing the potential anionic charge of the polymer.
- salt hydrates such as sodium acetate trihydrate and sodium aluminum sulfate dodecahydrate, have melting points below 100°C and can be added to the modified proppant and melted on as a second layer during the drying process of the modified proppant.
- a concentrated layer of cationic charge on the modified proppant surface is achieved that can reduce the swelling potential of an anionically charged polymer.
- the monovalent salt Upon introduction of the modified proppant to an aqueous stream the monovalent salt would be sufficiently diluted so as to allow the modified proppant to perform as intended.
- the anticaking agent is a hydrophobic, lubricious oil second layer applied to the modified proppant, selected from the group consisting of silicone oils, mineral oils, petroleum jellies, triglycerides or a combination thereof.
- silicone oils suitable for use as a hydrophobic lubricious second layer include
- polydimethylsiloxane examples include corn oil, peanut oil, castor oil and other vegetable oils.
- the hydrophobic lubricious oil has a smoke point and a boiling point above the temperature used in the drying stage of manufacturing the modified proppant.
- the smoke point of the oil is above 200°C.
- the smoke point of the oil is at least 175°C.
- the hydrogel-modified proppants of the invention can advantageously use a localized polymer concentration on the proppant surface, in contrast to the traditional approach of making the entire fluid medium viscous.
- This localized hydrogel layer can permit a more efficient use of polymer, such that a lower total amount of polymer can be used to suspend proppant, as compared, for example, with conventional polymer- enhanced fracturing fluids such as slickwater, linear gel, and crosslinked gel.
- the hydrogel-modified proppants are considered to be self-suspending, they can be used in combination with friction reducers, linear gels, and crosslinked gels.
- the hydrogel-modified proppants as disclosed herein can have the advantage of delivering friction-reducing polymer into the fracturing fluid, so that other friction reducer polymers might not be required or might be required in lesser amounts when the hydrogel-modified proppants are used in hydraulic fracturing operations.
- some of the hydrogel polymer can desorb from the surface of the proppant to deliver friction reducing benefits or viscosity features to the fracturing fluid. While the exemplary embodiments herein focus on the use of hydrogel-modified proppants for hydraulic fracturing purposes, other uses for hydrogel-modified proppants can be envisioned, where their capabilities for water retention or friction reduction can be exploited. For example, hydrogel-modified proppants can be used for absorbing water from moist environments, forming water-retaining particles that can be removed from the environment, carrying with them undesirable moisture. As another example, hydrogel- modified proppants can be used in situations where adding water to an environment would be advantageous.
- a hydrogel-modified proppant can be saturated with water or an aqueous solution and then used, for example, as a soil remediation additive in a dry environment.
- the hydrogel-modified proppant can be formed from sand or other substrates that are compatible with the soil, and they can be transported to the area of interest in dry form; they then can be saturated with water and used as a soil amendment.
- hydrogel-modified proppants can be used as a soil amendment in dry form, where they can absorb and hold moisture from the environment, from irrigation, from rainfall and the like. In these embodiments, the moisture-holding properties of the hydrogel-modified proppant can be used advantageously.
- the hydrogel- modified proppant can be used to reduce erosion of topsoil, seedbeds, hydroseeding mixtures, and the like.
- the hydrogel-modified proppant can be used as a vehicle for introducing other compatible agents into the region, for example into the soil.
- Hydrogel-modified proppants can comprise additional formulations that leach out of or through the hydrogel layer into the environment, either as the hydrogel degrades, or as it absorbs moisture and expands. Examples of these formulations include fertilizers, seeds, plant growth regulators, herbicides, pesticides, fungicides, and the like. Other uses for hydrogel-modified proppants prepared in accordance with these formulations and methods can be envisioned that are consistent with their properties described herein.
- the hydrogel polymer used for preparation of hydrogel-modified proppants can, in embodiments, comprise polymers such as a polyacrylamide, copolymers of acrylamide with anionic and cationic comonomers, hydrolyzed polyacrylamide, copolymers of acrylamide with hydrophobic comonomers, poly(acrylic acid), poly(acrylic acid) salts, carboxymethyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, guar gum, alginate, carrageenan, locust bean gum, carboxymethyl guar, carboxymethyl
- the hydrogel polymer can have a molecular weight (g/mol) above 1 million, for example a range of 10 million to 40 million Daltons.
- the hydrogel polymer can be a high molecular weight vinyl addition polymer that is water soluble and has a linear structure.
- the hydrogel polymer can be crosslinked as described above to enhance the water absorbing and swelling properties of the polymer.
- the crosslinkers can be introduced as an element of the hydrogel base polymer, or they can be introduced as chemical modifiers for pre-formed polymers.
- the crosslinking species can be added directly into the polymer used to coat the proppant, simultaneously added to the proppant with the polymer while mixing, or added some time after addition of the polymer to the proppant but before drying.
- the polymer layer hydrates around the proppant effectively preventing proppant/proppant (interparticle) contact. This can prevent the proppant from forming a compact settled bed and can result in a proppant that is easier to resuspend in a fracturing fluid.
- the resuspension properties for the modified proppants can be important if the fluid flow is interrupted during hydraulic fracturing operations. In this event, when the flow is resumed it is important that the proppant can be resuspended to avoid the loss of proppant or the unintended blockage of a fluid path.
- the polymer surface modifications as described herein can cause an increase in the effective hydrodynamic radius of the proppant particle when the polymer swells. This can result in increased drag on the proppant as well as effectively changing the overall hydrogel/particle density. Both can result in a proppant particle with a slower settling rate and superior transport properties.
- the hydrogel-modified proppants of the invention can advantageously use a localized polymer concentration on the proppant surface. Preferably, after the hydrogel is hydrated in water and exposed to shear conditions such as pipeline transport, much of the hydrogel polymer remains associated with the proppant surface.
- the manufacturing process of coating the substrate particles with the hydrogel polymer causes a physical or chemical attachment of the polymer onto the proppant surface. This attachment can be caused by entanglement of the polymer chains upon drying of the hydrogel film, leading to a hydrogel coating that resists desorption upon exposure to shear in the hydrated state.
- the entanglement of the polymer chains is aided by chemical reaction or interaction of the polymer chains.
- a linear, non- crosslinked hydrogel polymer is used as a coating to enable the linear polymer chains to become entangled upon formation of the polymer coating.
- the polymer entanglement is aided by the drying process during manufacturing and by the use of coalescing aids.
- the coalescing aids are additives that cause the individual emulsion droplets of the coating formulation to become coalesced into a continuous film upon drying.
- the coalescing aid is an alcohol such as propanol, glycerol, propylene glycol, or ethylene glycol.
- FIGS. 4A and 4B show two scanning electron micrographs (SEM) that demonstrate the effect of glycerol in causing the coalescence of the coating polymer into a continuous film.
- SEM scanning electron micrographs
- FIG. 4A shows a complete coating of the proppant grain surface, but the individual emulsion droplets of approximately 1 micron diameter are still visible.
- the proppant was coated with the same anionic polyacrylamide emulsion but with 10 wt.% added glycerol as a coalescing agent; it was then dried at 100°C for 1 hour.
- the effect of the coalescing agent is evident in the appearance of the dried film: the SEM image in FIG. 4B shows a substantially complete coating of the proppant grain, and in this case the emulsion droplets have coalesced into a more continuous film.
- FIG. 5 shows a SEM image of a dried hydrogel film made in the same way as the sample in FIG. 4B.
- the hydrogel film in FIG. 5 shows good coalescence of the emulsion droplets into a film, and complete coverage of the proppant grain surface.
- polymer pairing can be used to improve the hydrogel polymer retention on the surface of the proppant particles.
- a cationic polymer can be deposited onto the proppant as a first layer to "lock in place" a second layer containing a hydrogel such as a high molecular weight anionic polymer by ionic coupling.
- the cationic polymer can be polydiallyldimethylammonium chloride (poly-(DADMAC)), linear polyethylenimine (LPEI), branched polyethylenimine (BPEI), chitosan, epichlorohydrin/dimethylamine polymer, ethylene dichloride dimethylamine polymer, or cationic polyacrylamide.
- the cationic polymer layer can be placed on the proppant either before or after proppant surface modification with the anionic hydrogel layer.
- the ionic coupling interaction can act as an anchoring mechanism to help prevent the anionic polymer from desorbing in high shear environments such as going through a pump or during pumping down the wellbore.
- the cationic polymer can also improve polymer retention by causing a delay in the hydration and extension of the anionic polymer chains. It is believed that less polymer chain extension during the pumping process will yield higher polymer retention on the proppant (i.e. less desorption).
- covalent crosslinking of the hydrogel polymer layer on proppant surface can improve the swelling properties of the polymer and the shear tolerance to prevent premature release of the hydrogel from the proppant.
- Covalent crosslinkers can include the following functional groups: epoxides, anhydrides, aldehydes, diisocyanates, carbodiamides, divinyl, or diallyl groups.
- covalent crosslinkers examples include: PEG diglycidyl ether, epichlorohydrin, maleic anhydride, formaldehyde, glyoxal, glutaraldehyde, toluene diisocyanate, methylene diphenyl diisocyanate, l-ethyl-3-(3-dimethylaminopropyl) carbodiamide, methylene bis acrylamide, and the like.
- Covalent crosslinking of the hydrogel polymer layer on the proppant surface can effectively create a swellable "polymer cage" around the proppant. The covalent bonds prevent the polymer from completely desorbing into solution. The slightly insoluble polymer layer is able to swell and produce a hydrated polymer layer.
- the proppant particle can be treated to impart functionalities that will also take part in the polymerization process.
- sand particles can be treated with silanes to yield particles with vinyl functionalities, hydroxyl, epoxy, etc.
- Delayed/controlled hydration of polymer layer may be desirable to delay the hydration of the polymer surface modification during handling of the proppant and initial pump-down through the wellbore.
- Environmental factors such as humidity and rain could cause premature hydration of the polymeric coating, which would make it difficult to effectively meter the proppant dose into the blender during a hydraulic fracturing operation.
- a fully hydrated polymer layer can be more prone to desorption under the high shear conditions associated with pumping of a fracturing fluid down the tubular. For these reasons, it may be advantageous to engineer a surface- modified proppant having slower or delayed hydration properties.
- delayed hydration can be achieved by addition of a low hydrophilic-lipophilic balance (HLB) surfactant, exclusion of a high HLB finishing surfactant, comonomers that reduce solubility, charge shielding using a monovalent salt, or by incorporation of a hydrophobic layer such as a fatty acid, or a fatty alcohol.
- HLB hydrophilic-lipophilic balance
- hydrophobic groups can be incorporated into the hydrogel polymer to allow for hydrophobic interactions. This method can improve the salt tolerance of the hydrogel layer, such that the hydrogel layer remains swellable even in an aqueous fluid that contains elevated salt concentrations.
- the hydrogel coating Since the goal of the hydrogel coating is to improve hydraulic transport of the proppant, it is important that the hydrated hydrogel layer remains attached or localized on the proppant surface when exposed to shear conditions during fluid transport. However, upon placement of the hydrogel coated proppant in a fractured well, the hydrogel polymer should degrade or disentangle to detach from the proppant grains and yield a proppant pack with sufficient hydraulic conductivity to enable the production of fluids. The removal of the hydrogel layer from the proppant is caused by environmental factors such as elevated temperatures, microbial action, and the presence of breakers, brine, and/or hydrocarbons.
- the hydrogel is degraded, disentangled, dissolved, or detached with the assistance a breaker such as an oxidizer or an enzyme.
- the oxidizer type of breakers can be peroxides, magnesium peroxide, calcium peroxide, a persulfate salt, sodium bromate, sodium hypochlorite, ozone, sodium nitrate, and the like.
- a blend of a first oxidant that activates at lower temperature, such as ammonium persulfate, with a second oxidant that activates at higher temperature, such as magnesium peroxide, can improve the breaking of the hydrogel after placement of the hydrogel coated proppant.
- Enzyme-based breakers are known in the art and are commonly used to break down the viscosity of fluids pumped into wells. The enzymes promote reactions to degrade or cleave polymer linkages. In some cases enzyme breakers can provide a more efficient break because they target and bind the hydrogel polymer(s). Enzyme breakers are typically more effective at lower to moderate temperatures and can be combined with oxidizers that activate at higher temperatures. Selection of the appropriate enzyme breaker based on the identity of the hydrogel polymer and bottom hole conditions can improve the breaking of the hydrogel.
- hydrogel- coated proppant in combination with non-hydrogel-coated proppant.
- the hydrogel- coated proppant can serve as a suspending agent for the non-hydrogel-coated proppant.
- the hydrogel polymer is selected so that its hydration is essentially complete at least by the time the modified proppant carrying this hydrogel polymer reaches its destination.
- the destination in a downhole application is the area in the well where the modified proppant enters the geological formation to be fractured, for example where the direction of travel for the hydraulic fracturing fluid changes from vertical to horizontal, or where the direction of the drill string begins to change from vertical to horizontal.
- the hydrogel polymer for the modified proppant is selected so that its hydration is essentially complete within 2 hours, within 1 hour, within 40 minutes, within 30 minutes, within 20 minutes or even within 10 minutes of being contacted with an excess of tap water at 20° C.
- Also disclosed herein is a method of improving well productivity by improved proppant placement using a hydrogel-coated proppant.
- the hydrogel-coated proppant can be more effectively transported into the far end of fractures to enable higher productivity of oil and gas from a well. Because the surface-modified proppants disclosed herein can be less inclined to settle out of the fluid and easier to resuspend and transport through the fracture, it is believed that proppant placement will be more effective.
- the ability to transport proppant further into fractures could significantly increase the effectiveness of a fracturing stimulation operation, resulting in a larger of volume of higher density fractures.
- These fracture channels can advantageously allow gas/condensate to more easily flow into the wellbore from the reservoir.
- Also disclosed herein is an improved method of proppant placement using a low viscosity fluid.
- the surface modified proppants as disclosed herein utilize polymers more effectively to suspend/transport proppant particles.
- the surface modification renders the proppant self-suspending, thereby reducing or eliminating the need for highly viscous fluids/gels to transport proppant.
- lower viscosity fluids can be used in combination with the surface-modified proppant to transport proppant into fractures. This would advantageously simplify the formulation of fracturing gels for use with proppants.
- Also disclosed herein is a more efficient method of fracturing a well using less proppant. Because highly effective proppant placement can be achieved with the easily - transportable surface-modified proppants as disclosed herein, it is anticipated that a smaller amount of these surface-modified proppants would be required for any given fracturing operation, as compared to systems using traditional proppants. With an increasing demand for fracturing grade sand/proppants, and a decreasing supply of desirably-shaped sand for proppant use, it would be advantageous to provide systems and methods such as those disclosed herein where less proppant can be used to achieve results comparable to or superior to the outcomes using current techniques.
- the hydrogel layer can be degraded by chemical, thermal, mechanical, and biological mechanisms.
- the polymeric surface modification on the proppant can be broken down with the aid of chemical breakers, for example, ammonium persulfate, magnesium peroxide, or other oxidizers.
- the polymeric surface modification on the proppant can also be broken down with the aid of ambient reservoir conditions, such as elevated brine content, elevated temperature, and contact with hydrocarbons. Controlled breaking of the hydrogel layer upon reaching a target temperature or amount of time in the fluid can be used as a means to direct the placement of the proppant in the desired location in fractures.
- the degradation of the hydrogel layer is also beneficial to ensuring the adequate conductivity of the propped fracture after completing the hydraulic fracturing operations.
- the hydrogel layer can demonstrate stimuli- responsive properties, so that it swells with water when exposed to a first set of conditions, such as a certain first temperature or pH, and it loses water, loses volume, loses thickness, or even collapses, when subjected to a certain set of conditions, such as a second temperature or pH.
- temperature-responsive hydrogels can be coated onto proppant materials.
- the temperature responsive hydrogel layer can swell when exposed to water at a first set of conditions, such as a water temperature of 50-100 degrees F, and then it can collapse when exposed to a second set of conditions, such as a water temperature of 1 10-450 degrees F.
- the temperature responsive hydrogel coated proppant can have self-suspending properties as the fracturing fluid carries it underground to the location of the fractures at an initial water temperature, for example 50-100 degrees F.
- the temperature responsive hydrogel can be a water soluble polymer or copolymer composition comprising hydrophobic monomers selected from the group consisting of alkyl acrylate esters, N-alkyl acrylamides, propylene oxide, styrene, and vinylcaprolactam.
- the N-alkyl substituted acrylamides can be N-isopropylacrylamide, N-butylacrylamide, N-octylacrylamide, and the like.
- the alkyl acrylate esters can be substituted by alkyl chains having from 1 to about 30 carbons. In a preferred
- the temperature responsive hydrogel polymer comprises N- isopropylacrylamide and contains up to about 90 percent of hydrophilic comonomer units.
- the type and amount of the hydrophobic monomer substituent in the hydrogel polymer can be selected by experimental optimization techniques to adjust the water solubility and the temperature responsive properties of the hydrogel polymer.
- additives for example, chemical additives
- the additives can include chemical additives that can be advantageously delivered in the hydrogel layer, for example scale inhibitor, biocide, breaker, wax control, asphaltene control, and tracers.
- the chemical additives can be in the form of water soluble materials, water insoluble particles, fibers, metallic powders or flakes, and the like.
- the chemical additives can be selected such that they slowly dissolve or decompose to release their chemical activity.
- chemical additives can be chemically bound to the polymer in the hydrogel layer, for example, by covalent bonding, ionic bonding, hydrophobic association, hydrogen bonding, or encapsulation.
- the chemical additives can be added to the proppant separately from the hydrogel, or they can be combined with the hydrogel coating formulation at the time of manufacture of the coated proppant.
- Breaker chemicals such as persulfates, peroxides, permanganates, perchlorates, periodates or percarbonates can be added in this method of delivery.
- the transport and delivery of these chemicals with the hydrogel coated proppant has the advantage of a targeted delivery of the chemicals to a fracture or to a proppant pack.
- This method offers the advantage of concentrating the chemical additives in the location where their function is needed, thereby delivering the chemical additive more efficiently, more effectively, and at lower concentration.
- the desorption, oxidation, or degradation of the hydrogel polymer can result in the controlled release of the chemical additives from the self- suspending proppant.
- a hydraulic fracturing operation can have multiple stages of fracturing; the proppants injected in each stage can contain unique chemical additives acting as tracers.
- Tracers are commonly used in hydraulic fracturing, including tracers that can be detected by high performance liquid chromatography (HPLC), gas chromatography (GC), ultraviolet or visible absorbance, and radioactive signal measurement. Analysis of the fluids produced from the fractured well can provide information about the relative productivity of each fracturing stage by the presence and concentration of the unique tracers corresponding to the stages.
- additives acting as breakers can be carried in the hydrogel layer, e.g., by physical binding or entanglement in the polymer layer.
- the breakers can be modified with a cationic surface coating to provide an anchoring mechanism to attach the breakers to the anionic hydrogel of the self-suspending proppant.
- magnesium peroxide powder can be coated with a cationic polymer such as poly-DADMAC, and this cationically modified magnesium peroxide can be blended with the hydrogel coated proppant either before or after the proppant is introduced into the hydraulic fracturing water stream.
- the breakers are transported to the same location as the hydrogel proppants, so the breaker can be efficiently targeted at the hydrogel layer.
- the oxidative breakers can have an accelerated activity at higher temperatures.
- the breaker chemicals incorporated in the hydrogel layer can become activated upon placement in the fractures, for example, by the elevated temperatures of the petroleum bearing reservoir.
- breakers can be pumped into a subterranean formation before and/or after the introduction of the hydrogel-coated proppants.
- the fluid containing the excess breaker will flow back through the proppant pack and have the ability to assist degradation of the hydrogel layer after the proppant has reached its destination.
- the breaker can infiltrate the proppant pack and have its effect on the breakdown of the hydrogel layer.
- the breaker can be added at multiple times to assist breaking the hydrogel layer.
- the breakers can be used in a combination of types, for example, a lower temperature activated breaker such as ammonium persulfate can be used for a quick effect, in combination with an encapsulated, longer acting, or higher temperature activated breaker such as magnesium peroxide, to give a sustained effect of breaking the hydrogel layer over the course of time before the fluids are flowed back and the well is put into production.
- a lower temperature activated breaker such as ammonium persulfate
- an encapsulated, longer acting, or higher temperature activated breaker such as magnesium peroxide
- the surface of a proppant particulate substrate can be coated with a selected polymer, either as a single layer or as a series of multiple coating layers.
- the coating (either single layer or multilayer) can show switchable behavior under certain circumstances.
- switchable behavior or “switching behavior” refers to a change in properties with a change in circumstances, for example, a change from one set of properties during the transport phase and another set of properties inside the fracture. Switching behavior can be seen, for example, when a particle demonstrates hydrophilic properties in the fracturing fluid and adhesive properties when in place within the fractures. Such behavior can triggered by circumstances like the high closing pressures inside the fracture site so that the outer layer of the coating rearranges itself to exhibit more advantageous properties.
- the coated particle can switch from hydrophilic to hydrophobic when subjected to the high pressures inside the fractures.
- the coating can provide the particle with lubrication in this state, facilitating its movement through the proppant slurry.
- the switchable inner layer can be hydrophobic or adhesive, or both.
- the inner layer becomes exposed, its properties can manifest themselves. If the inner layer has adhesive properties, for example, it can fix the particles to each other to prevent their flowback. This inner layer can also be configured to capture fines in case the proppant particle fails. Moreover, the residual intact hydrophilic groups present in the outer coating can allow easy flow of oil through the proppant pack.
- a coated proppant particle can be produced that bears the following layers of coating.
- a pressure-activated fixative polymer can be used to coat the proppant substrate.
- This coating layer can be elastomeric, thereby providing strength to the proppant pack by helping to agglomerate the proppant particles and distribute stress.
- this coating layer can encapsulate the substrate particles and retain any fines produced in the event of substrate failure.
- a block copolymer can be adsorbed or otherwise disposed upon the first layer of coating. The copolymer can have a section with high affinity for the first polymeric layer, allowing strong interaction (hydrophobic interaction), and can have another section that is hydrophilic, allowing for easy transport of the proppant in the transport fluid.
- a stronger interaction between the first and second coating layers may be useful.
- a swelling-deswelling technique can be implemented.
- the block copolymer can be adsorbed onto the surface of the elastomeric-coated particle.
- the first coating layer can be swelled with small amounts of an organic solvent that allow the hydrophobic block of the copolymer to penetrate deeper into the first coating layer and to become entangled in the elastomeric coating. By removing the organic solvent, the layered polymeric composite will deswell, resulting in a stronger interaction of copolymer with the elastomeric particle.
- proppant systems using coatings as disclosed herein can decrease the amount of airborne particles associated with proppant manufacture.
- respirable dust including fine crystalline silica dust associated with handling and processing proppant sand can be captured and held by the proppant coatings during their processing.
- coating agents can be added that have a particular affinity for particulates in the environment that could adversely affect worker safety or create nuisance dust problems.
- a hydrogel coating on proppant particles can serve as a binder or capturing agent by mechanically entrapping or adhering to the dust particulates.
- the addition of a species capable of crosslinking the swellable polymer on the proppant surface can effectively reduce the ability of the polymer layer to swell prematurely. Decreased swelling of the polymer can reduce the tendency of the polymer- coated proppant to undergo caking during storage in humid conditions.
- the crosslinker will not impede hydration/swelling of the polymer coating once the polymer-coated proppant is dispersed in an aqueous fluid, such as a hydraulic fracturing fluid.
- the crosslinking species has the capability of forming a bond with a carboxyl functional group, an amide functional group, or both.
- the crosslinking species forms a bond that can be broken or removed under mechanical shear or by the action of a chemical breaker.
- the crosslinking species can be added directly into the polymer used to coat the proppant, simultaneously added to the proppant with the polymer while mixing, or added some time after addition of the polymer to the proppant but before drying.
- the crosslinking species can be chosen from organic compounds containing aldehyde, amine, anhydride, or epoxy functional groups.
- the crosslinking species can also be an organometallic compound.
- Organometallic compounds able to associate and/or bond with the carboxyl functional group are an example of a crosslinking species that form shear sensitive bonds.
- the organometallic compound is able to reduce the swelling tendency of the polymer-coated proppant via crosslinking the carboxyl groups prior to the introduction of the proppant into a hydraulic fracturing fluid.
- the crosslinked polymer coating encounters the high shear forces of pumping associated with hydraulic fracturing, the crosslink on the polymer can be degraded, allowing the polymer to swell unhindered when the proppant is introduced into the hydraulic fracturing fluid.
- a thin, non-hygroscopic coating layer can be applied to the surface of a hydrogel-coated proppant to create a barrier preventing the swellable polymer layer on adjacent proppant particles from adhering during storage.
- the outer layer utilized can be comprised of compounds that are water-soluble, water insoluble or both.
- the outer layer can be formulated such that it remains in the solid phase at temperatures below 40°C and has a melting point in the range of 40°C to 120°C.
- the outer layer is formulated such that the melting point is low enough that the outer layer will be in the liquid phase during the drying process in the manufacturing of the polymer coated proppant, yet is high enough that the outer layer will exist in the solid phase during storage and transport of the polymer coated proppant.
- the outer layer acts as a barrier to reduce caking of the coated proppant in humid environments.
- caking refers to the formation of clumps or solid masses by adhesion of the loose granular material. Caking of proppants during storage is undesirable for material handling purposes.
- the hydrophobic outer layer can be added to the polymer-coated proppant as a finely divided powder or as a liquid.
- the outer layer material can be melted prior to addition to the coated proppant; in other embodiments the outer layer material can be added as a solid or waxy material, which can melt during the drying process.
- the solid outer layer can be added to the proppant simultaneously with the polymer or can be added at some time after addition of polymer but before the drying process.
- the outer layer can be comprised of fatty acids, hydrogenated oils, vegetable oils, castor oil, waxes, polyethylene oxides, polypropylene oxides, and the like.
- Proppant particulate substrates can include for use in the present invention include graded sand, resin coated sand, bauxite, ceramic materials, glass materials, walnut hulls, polymeric materials, resinous materials, rubber materials, and the like, and combinations thereof.
- the self- suspending proppant ("SSP") as disclosed herein can also be made using specialty proppants, such as ceramics, bauxite, and resin coated sand. By combining sand SSP with specialty SSP, a proppant injection can have favorable strength, permeability, suspension, and transport properties.
- the substrates can include naturally occurring materials, for example nutshells that have been chipped, ground, pulverized or crushed to a suitable size (e.g., walnut, pecan, coconut, almond, ivory nut, brazil nut, and the like), or for example seed shells or fruit pits that have been chipped, ground, pulverized or crushed to a suitable size (e.g., plum, olive, peach, cherry, apricot, etc.), or for example chipped, ground, pulverized or crushed materials from other plants such as corn cobs.
- a suitable size e.g., walnut, pecan, coconut, almond, ivory nut, brazil nut, and the like
- seed shells or fruit pits that have been chipped, ground, pulverized or crushed to a suitable size
- a suitable size e.g., plum, olive, peach, cherry, apricot, etc.
- chipped, ground, pulverized or crushed materials from other plants such as corn cob
- the substrates can be derived from wood or processed wood, including but not limited to woods such as oak, hickory, walnut, mahogany, poplar, and the like.
- aggregates can be formed, using an inorganic material joined or bonded to an organic material.
- the proppant particulate substrates will be comprised of particles (whether individual substances or aggregates of two or more substances) having a size in the order of mesh size 4 to 100 (US Standard Sieve numbers).
- the term "particulate” includes all known shapes of materials without limitation, such as spherical materials, elongate materials, polygonal materials, fibrous materials, irregular materials, and any mixture thereof.
- the particulate substrate can be formed as a composite from a binder and a filler material.
- suitable filler materials can include inorganic materials such as solid glass, glass microspheres, fly ash, silica, alumina, fumed carbon, carbon black, graphite, mica, boron, zirconia, talc, kaolin, titanium dioxide, calcium silicate, and the like.
- the proppant particulate substrate can be reinforced to increase their resistance to the high pressure of the formation which could otherwise crush or deform them.
- Reinforcing materials can be selected from those materials that are able to add structural strength to the proppant particulate substrate, for example, high strength particles such as ceramic, metal, glass, sand, and the like, or any other materials capable of being combined with a particulate substrate to provide it with additional strength.
- composite hydrogel-coated proppants can be formed from substrates that have undergone previous treatments or coatings.
- resin-coated proppant particles are familiar to skilled artisans.
- the formulations and methods described above for coating are suitable for use with coated or treated proppant particles, including curable and precured resin coated proppants.
- a swellable hydrogel layer can be applied to the resin-coated sand to improve its suspension characteristics.
- the adhesion promoters can be, for example, block co-polymers composed of both hydrophilic and hydrophobic monomers.
- the block co-polymer can be added after the substrate sand is resin-coated or at the same time as the resin coating.
- cationic species can be used such as fatty amines, polyquaternary amines, and cationic surfactants.
- the proppant particulate substrate can be fabricated as an aggregate of two or more different materials providing different properties.
- a core particulate substrate having high compression strength can be combined with a buoyant material having a lower density than the high-compression-strength material.
- the combination of these two materials as an aggregate can provide a core particle having an appropriate amount of strength, while having a relatively lower density.
- As a lower density particle it can be suspended adequately in a less viscous fracturing fluid, allowing the fracturing fluid to be pumped more easily, and allowing more dispersion of the proppants within the formation as they are propelled by the less viscous fluid into more distal regions.
- High density materials used as proppant particulate substrates such as sand, ceramics, bauxite, and the like, can be combined with lower density materials such as hollow glass particles, other hollow core particles, certain polymeric materials, and naturally-occurring materials (nut shells, seed shells, fruit pits, woods, or other naturally occurring materials that have been chipped, ground, pulverized or crushed), yielding a less dense aggregate that still possesses adequate compression strength.
- Aggregates suitable for use as proppant particulate substrates can be formed using techniques to attach the two components to each other.
- a proppant particulate substrate can be mixed with the buoyant material having a particle size similar to the size of the proppant particulate substrates.
- the two types of particles can then be mixed together and bound by an adhesive, such as a wax, a phenol- formaldehyde novolac resin, etc., so that a population of doublet aggregate particles are formed, one subpopulation having a proppant particulate substrate attached to another similar particle, one subpopulation having a proppant particulate substrate attached to a buoyant particle, and one subpopulation having a buoyant particle attached to another buoyant particle.
- the three subpopulations could be separated by their difference in density: the first subpopulation would sink in water, the second subpopulation would remain suspended in the liquid, and the third subpopulation would float.
- a proppant particulate substrate can be engineered so that it is less dense by covering the surface of the particulate substrate with a foamy material.
- the thickness of the foamy material can be designed to yield a composite that is effectively neutrally buoyant.
- a particle having a desirable compression strength can be coated with one reactant for a foaming reaction, followed by exposure to the other reactant. With the triggering of foam formation, a foam-coated proppant particulate will be produced.
- a water-blown polyurethane foam can be used to provide a coating around the particles that would lower the overall particle density.
- the particle can be initially coated with Reactant A, for example, a mixture of one or more polyols with a suitable catalyst (e.g., an amine).
- Reactant B e.g., an amine
- the final foam will form on the particle, for example when it is treated with steam while being shaken; the agitation will prevent the particles from agglomerating as the foam forms on their surfaces.
- fibers, including biodegradable fibers can be added to the fracture fluid along with SSP.
- Fibers, including biodegradable fibers can form a fiber network that help carry the proppant with the fluid.
- a number of fiber types are familiar to skilled artisans for adding to fracture fluid. As would be understood by skilled artisans, fibers added to the fracture fluid can degrade under downhole conditions, and channels are formed in the proppant pack. The channels then have higher permeability and are therefore the flow channels through which hydrocarbons travel from the formation to the wellbore.
- fiber can refer to a synthetic fiber or a natural fiber.
- synthetic fibers include fibers or microfibers that are manufactured in whole or in part.
- Synthetic fibers include artificial fibers, where a natural precursor material is modified to form a fiber.
- cellulose derived from natural materials
- Cellulose can also be modified to produce cellulose acetate fibers.
- synthetic fibers can be formed from synthetic materials that are inorganic or organic.
- Exemplary synthetic fibers can be formed from materials such as substituted or unsubstituted lactides, glycolides, polylactic acid, polyglycolic acid, or copolymers thereof.
- Other materials to form fibers include polymers of glycolic acid or copolymers formed therewith, as are familiar to skilled artisans.
- Natural fiber refers to a fiber or a microfiber derived from a natural source without artificial modification.
- Natural fibers include vegetable- derived fibers, animal-derived fibers and mineral-derived fibers.
- Vegetable-derived fibers can be predominately cellulosic, e.g., cotton, jute, flax, hemp, sisal, ramie, and the like.
- Vegetable-derived fibers can include fibers derived from seeds or seed cases, such as cotton or kapok.
- Vegetable-derived fibers can include fibers derived from leaves, such as sisal and agave.
- Vegetable-derived fibers can include fibers derived from the skin or bast surrounding the stem of a plant, such as flax, jute, kenaf, hemp, ramie, rattan, soybean fibers, vine fibers, jute, kenaf, industrial hemp, ramie, rattan, soybean fiber, and banana fibers.
- Vegetable-derived fibers can include fibers derived from the fruit of a plant, such as coconut fibers.
- Vegetable-derived fibers can include fibers derived from the stalk of a plant, such as wheat, rice, barley, bamboo, and grass.
- Vegetable-derived fibers can include wood fibers.
- Animal-derived fibers typically comprise proteins, e.g., wool, silk, mohair, and the like.
- Animal-derived fibers can be derived from animal hair, e.g., sheep's wool, goat hair, alpaca hair, horse hair, etc.
- Animal-derived fibers can be derived from animal body parts, e.g., catgut, sinew, etc.
- Animal-derived fibers can be collected from the dried saliva or other excretions of insects or their cocoons, e.g., silk obtained from silk worm cocoons.
- Animal-derived fibers can be derived from feathers of birds.
- Mineral-derived natural fibers are obtained from minerals.
- Mineral-derived fibers can be derived from asbestos.
- Mineral-derived fibers can be a glass or ceramic fiber, e.g., glass wool fibers, quartz fibers, aluminum oxide, silicon carbide, boron carbide, and the like.
- Fibers may advantageously be selected or formed so that they degrade at specified pH or temperatures, or to degrade over time, and/or to have chemical compatibilities with specified carrier fluids used in proppant transport.
- Useful synthetic fibers can be made, for example, from solid cyclic dimers or solid polymers of organic acids known to hydro lyze under specific or tunable conditions of pH, temperature, time, and the like.
- fibers can decompose in the locations to which they have been transported under predetermined conditioned.
- the decomposition of the fibers can yield decomposition products that are environmentally benign.
- Ethoxylated lauryl alcohol surfactant (Ethal LA- 12/80%)) (Ethox Chemical Co, SC)
- An inner polymer layer of 100 ppm concentration was prepared on a sand sample by adding 200 g 30/70 mesh frac sand to a FlackTek Max 100 long jar. To the sand was added 85 g tap water and 2 g of a 1% polydiallyldimethylammonium chloride (PDAC) solution. The sample was then shaken by hand for approximately 5 minutes, vacuum filtered and dried in an oven at 80°C. The sand sample was then removed from the oven and used in subsequent testing.
- PDAC polydiallyldimethylammonium chloride
- Outer polymer layers were applied to sand samples by mixing sand with liquid Flopam EM533 polymer under different conditions.
- polymer product was added neat.
- polymer product was extended by diluting with hexane.
- For hexane dilution 10 g polymer was added to 10 g hexane in a 40 mL glass vial and vortex mixed until homogenous.
- Polymer was then added to 30/70 mesh frac sand samples of 30 g in FlackTek Max 100 jars. Samples were placed in a FlackTek DAC150 SpeedMixer at 2600 rpm for about 25 seconds. Samples were removed from SpeedMixer and allowed to dry in an oven at 80°C overnight.
- a 40g 30/70 mesh frac sand sample was treated with an outer polymer layer by adding 1.3 g Flopam EM533 polymer to the 40 g of sand in a FlackTek Max 100 jar and shaking the jar by hand for 2 minutes. The sand was then sieved through a 25 mesh screen. To assess polymer retention on sand under shear, tests were conducted by adding 10 g of treated sand to 200 g tap water with different levels of PDAC in a 300 mL glass beaker. It is believed that the PDAC will interact ionically to stabilize the polymer layer on the sand.
- Example 7 Covalent Crosslink of Outer Polymer Layer - PEGDGE
- Bed heights were measured for the four samples by adding 1 g of the sand sample to 10 g of tap water in a 20 mL glass vial, inverting the vials approximately 10 times to adequately wet the sand and allowing the vials to sit undisturbed for about 10 minutes. Bed heights were then measured with a digital caliper. Results are listed in Table 4.
- Example 8 Covalent Crosslink of Outer Polymer Layer - Glyoxal
- Example 9 Cationic/Anionic polymer treatments
- Flopam EM533 was then added to each of the samples.
- the jars were again shaken by hand for 2 minutes.
- the samples were then dried at 80°C overnight.
- the sand samples were removed from the oven and sieved through a 25 mesh screen.
- For settled bed height measurements 1 g of sand was added to 10 g tap water in 20 mL vials, inverted about 10 times and given about 10 minutes to settle. Bed height was measured with a digital caliper. Results are given in Table 6.
- Example 10 Sand coated with macromolecular particles
- a 30 g sample of 30/70 mesh frac sand was added to a FlackTek Max 100 jar. To the sand, 0.3g of paraffin wax was added. The sample was placed in a FlackTek DAC 150 SpeedMixer and mixed at 2500 rpm for 2 minutes. After mixing, 1 g of carboxymethyl cellulose was added to the sample. The sample was again placed in the FlackTek DAC 150 SpeedMixer and mixed at 2500 rpm for 1 minute. The sand sample was sieved through a 25 mesh screen. For settled bed height measurements 1 g of sand was added to 10 g tap water in a 20 mL vial, inverted about 10 times and given about 10 minutes to settle. The sand in this sample clumped together immediately and did not disperse in the water, and an accurate measurement of bed height could not be obtained.
- Example 1 1 Modified sand beaker testing
- a 30 g sample of 30/70 mesh frac sand was added to a FlackTek Max 100 jar.
- the sand was treated with Flopam EM533 by adding 0.45 g of the polymer to the jar and shaking by hand for 2 minutes.
- the sample was then dried at 80°C overnight. After drying, the sample was removed from the oven and sieved over a 25 mesh screen. After sieving, four samples were prepared by adding 1 g of the treated sand to 10 g of tap water in a 20 mL vial. The vials were inverted about 10 times and left to settle for 10 minutes.
- a 10% ammonium persulfate solution was made by adding 2 g of ammonium persulfate to 18 g of tap water.
- Example 12 Emulsion Additives
- each of the above samples was vortex mixed for 30 seconds to ensure homogeneity.
- 50 g of 40/70 sand was combined with 1.5 g of one of the polymer samples above and then mixed for 30 s.
- the modified proppant samples were evaluated for shear stability in the 1 liter shear test. This test involves addition of 50 grams of modified proppant to 1 liter of water in a square plastic beaker, followed by mixing on a paddle/jar mixer (EC Engineering model CLM-4) at 200 rpm (corresponding to a shear rate of about 550 s "1 ) for different amounts of time.
- the sheared samples are then poured into a 1000 mL graduated cylinder and allowed to settle by gravity for 10 minutes, then the bed height of the settled proppant sand is recorded.
- an unmodified proppant sand will produce a bed height of 10 mm after any amount of mixing.
- the self-suspending proppant samples will produce a higher bed level vs. unmodified proppant due to the hydrogel layer encapsulating the sand grains.
- increasing the shear rate or time can cause the bed height of self-suspending proppant to decrease as a result of desorption of the hydrogel layer from the surface of the modified proppant. For this reason, it is desirable for the bed height to be as high as possible in this test, especially after shear.
- This experiment sought to determine the effect of glycerol and other additives on the performance of self-suspending proppants (denoted as SSP below).
- 1 kg of dry 40/70 sand was added to the bowl of a KitchenAid stand mixer, model KSM90WH, which was fitted with the paddle attachment.
- 3.09 g of glycerol was mixed with 27.84 g of EM533 emulsion polymer, then the mixture was added to the top of the sand and allowed to soak in for 1 minute.
- the mixer was started at speed 1 (72 rpm primary rotation). Samples were collected at 1-2 minute intervals and dried for 1 hour at 90°C.
- each sample was subjected to the 1 liter shear test, where 50 g of SSP was added to 1 L of water and sheared at 200 rpm (an approximate shear rate of 550 s "1 ) for 20 minutes. After transferring the water/SSP mixture to a 1 liter graduated cylinder and settling for 10 min, the bed heights were recorded. The experiment was repeated with 30.93 g EM533 emulsion polymer alone added to 1 kg of sand. These results are shown in FIG. 7. As shown in the graph, the glycerol additive increased bed heights significantly.
- Example 14 Modified proppant with an anticaking agent
- Modified proppant samples were made with and without anticaking agent for a comparison.
- Sample A 50 g of 40/70 sand was added to a FlackTek jar.
- 1.5 g of EM533 emulsion polymer was added to the sand and the sample was mixed for 30 seconds.
- 0.25 g of calcium silicate was added to the sample and the sample was mixed again for 30 seconds.
- the sample was then dried for 1 hour at 85°C. After drying, the sample was poured over a 25 mesh screen and shaken lightly for 30 seconds. The amount of sand that passed through the sieve was then measured.
- Sample B 50 g of 40/70 sand was added to a FlackTek jar.
- Samples A and B were separately added to 1 L of water and then sheared in the EC Engineering Mixer for 20 minutes at 200 rpm. After shearing, the samples were transferred to a 1 L graduated cylinder and left to settle for 10 minutes. After settling, the bed heights were measured, showing no significant loss in shear stability as a result of incorporating an anticaking agent. Table 9 shows these results.
- Example 15 Hydrogel coating of sand by dissolving a water-soluble polymer in a monomer formulation followed by polymerization of the monomers
- Example 16 Polyurethane hydrogel coating of sand
- [00162] 100 g of 30/70 mesh frac sand can be added to a Hobart type mixer and heated to 120°C. Next 6 g of a polyethyleneglycol (Fluka 81190) will be added and allowed to mix for 1 minute. Then 0.53 g of Desmodur N75 from Bayer will be added. After mixing for 1 more minute, one drop of catalyst l,4-Diazabicyclo[2.2.2]octane (Aldrich D27802) will be added and the mixture will be allowed to react for 5 more minutes. The obtained solid is washed with methanol, vacuum filtered and dried in an oven at 80°C.
- Coated sand samples made in Examples 15 and 16 were tested for shear stability. 1 L of tap water was added to a square beaker with a capacity of 1.25 L and markings at the 1 L level. The beaker was then placed in an EC Engineering CLM4 paddle mixer. The mixer was set to mix at 300 rpm. Once mixing commenced, 50 g of the coated sand sample was added to the beaker. After 30 seconds of mixing at 300 rpm, the mixing was reduced to 200 rpm and continued for 20 minutes. At the end of this mixing, the mixture was poured into a 1 L graduated cylinder and allowed to settle. After 10 minutes, the settled bed height was recorded, as shown in Table 10. Higher bed heights indicate better proppant performance.
- Example 20 Effect of glycerol on mixing
- the results of these shear tests are shown in FIG. 9.
- the graph demonstrates that both undermixing and overmixing can affect the behavior of the coated proppants, leading to dissociation of the polymer from the sand during the shear test.
- an optimal amount of mixing was between about 5 and 20 minutes.
- the effect of mixing duration upon performance suggests that the coating is fragile while wet, and it is more durable once it is dry.
- coatings with glycerol-blended emulsions appeared to cause the processing window (i.e., the acceptable amount of mixing time) to widen. Additionally, glycerol-blended emulsion coatings appeared to invert more fully, leading to better coating properties such as increased bed heights.
- Example 21 Production of self-suspending proppant using a pug mill
- a 3 cubic foot pug mill type mixer was used to make a batch of self-suspending proppant. About 50 lbs of 40/70 mesh sand was added to the pug mill. In a 1 L beaker, about 756 g of SNF Flopam EM533 was added and 84 g of glycerol was mixed into the polymer. The entire mixture was then poured evenly on top of the sand in the pug mill. The pug mill was turned on and mixed at about 70 rpm. Samples were taken after 30, 60, 120, 180, 240, 300, 420, and 600 seconds of mixing. The samples were dried for one hour.
- SSP self-suspending proppant
- Example 24 Anti-caking agents added to SSP
- a 400 g batch of SSP was produced in the same manner as described in Example 15. The sample was split into about 50 g subsamples and then 0.25 g of fumed silica with an aggregate size of 80 nm was mixed into each sample. Samples were then covered and aged at room temperature. The samples were tested in the same manner as described in Example 21. The results are shown in Table 16.
- Example 26 Anti-caking agents with different particulate size
- Example 27 Chemical composition of anti-caking agents
- Example 28 Anti-Caking Agents: Amounts Needed for Drying
- Example 29 Silica anti-caking agents
- Example 30 Preheating sand
- Example 31 Forced air drying
- a small-scale vertical screw blender was constructed. Sand and SNF Flopam EM533 were added to the container, and then mixed with the screw turning at about 120 rpm. The sample was then split into two 50 g parts, one of which was oven dried at 80°C, the other mixed with 0.5 g (lwt%) fumed silica. Both were then subjected to a shear test as described in Example 17. The results of bed height measurement were as follows: Oven Dried, 1 h gave a bed height of 101.34 mm; Undried, with 1% of 7 nm fumed silica added, gave a bed height of 91.47 mm. Both oven drying and the addition of anti-caking agent to dry the product produced high bed heights.
- Example 34 Mixing and heating with anti-caking agents
- Example 35 Microwave drying
- Example 36 Vacuum drying
- Example 37 Hydrogel coating of sand by admicellar polymerization
- frac sand can be added to 500 ml of a previously degassed aqueous solution containing 0.6 mM hexadecyltrimethylammonium bromide (CTAB) surfactant (equivalent to 2/3 of the critical micelle concentration of CTAB), and 6 mM monomer (mixture of acrylic acid/acrylamide in a mol ratio 30/70).
- CTAB hexadecyltrimethylammonium bromide
- 6 mM monomer mixture of acrylic acid/acrylamide in a mol ratio 30/70.
- Adsorption of the CTAB and monomer onto the sand particle can be carried out under gentle stirring for 24 h at 25°C.
- 0.6 mM Ammonium persulfate can be added to the reactor and the polymerization will take place for 3 h at 80°C.
- Excess polymer and surfactant can be rinsed with several volumes of water and the sample will be dried overnight in the vacuum oven at 80°C.
- Example 38 Hydrogel coating of sand by inverse suspension polymerization
- a mixture for coating the proppant was made by combining 10 g glycerol and 90 g Flopam EM533 in a glass vial and mixing for 30 seconds with a vortex mixer. This polymer mixture is used in following examples.
- Example 40 Preparation of 40/70 mesh self-suspending proppant ("SSP")
- a sample of 40/70 mesh size SSP was prepared by adding 500 g of 40/70 frac sand into the bowl of a KitchenAid mixer. 20 g of the coating polymer of Example 39 was added to the sand. The mixer was turned on at a setting of 1 and the sand and polymer mixture mixed for 7 minutes. After mixing, the sample was dried for 1 hour at 85°C. After 1 hour, the sample was removed from the oven and any lumps were broken into individual grains.
- Example 41 Preparation of 30/50 mesh self-suspending proppant ("SSP")
- a sample of 30/50 mesh size SSP was prepared by adding 500 g of 30/50 frac sand into the bowl of a KitchenAid mixer. 20g of the coating polymer of Example 39 was added to the sand. The mixer was turned on at a setting of 1 and the sand and polymer mixture mixed for 7 minutes. After mixing, the sample was dried for 1 hour at 85°C. After 1 hour, the sample was removed from the oven and any lumps were broken into individual grains.
- Example 42 Reduced fines content of self-suspending proppant ("SSP") vs. sand
- a stack of standard mesh sieves was prepared with 40 mesh on top, 70 mesh in the middle, and a pan at the bottom. The tare weight of each clean/dry sieve was measured and recorded. 50 g of the 40/70 mesh SSP of Example 20 was added to the top of the sieve stack, and the stack was shaken by hand for five minutes. After shaking, the stack was disassembled and each sieve was weighed. The mass retained on each sieve was calculated as a percent of the original sample mass, and the amount of the sample remaining in the pan represents the fines fraction, as defined by a 70 mesh cutoff. The procedure was repeated, substituting unmodified 40/70 mesh frac sand for the 40/70 SSP.
- Table 24 show the particle size distribution for 40/70 SSP.
- Table 25 contains the particle size analysis for unmodified 40/70 frac sand. The results show that the amount of material passing the 70 mesh screen is reduced in 40/70 SSP (1.2% vs. 4.8%). This shows that SSP can contain a reduced amount of fine particulates than a sand sample.
- SSP Self-suspending proppants
- anticaking agents In addition to anticaking agents' being able to replace a drying step, they can be used to generally improve handling qualities for SSP.
- a number of different particulate materials were tested as anticaking agents, as set forth in Table 26 below.
- 800 g of 30/50 mesh sand was mixed in a KitchenAid mixer at speed 1 (144 rpm) with 32 g of coating polymer of Example 19.
- 20 g samples were taken and blended with a selected anticaking agent in a mixer, with anticaking agent doses calculated as a percent of the total sand in the sample.
- the consistency of the samples was observed and recorded as "Appearance before drying," then they were dried for 1 hour at 85°C.
- Example 46 Treating Resin Coated Sand with SMA 4000i
- Resin coated sand was coated with SMA 4000i by adding 25 g of resin coated sand into a 250 mL round bottom flask. Separately, 0.25 g of SMA 4000i was dissolved in 3.57 g of tetrahydrofuran (THF) to make a 7% solution. 1.43 g of the THF solution was then added to the resin coated sand in the round bottom flask. Additional THF was added to the round bottom flask until the sand was coved. The THF was then evaporated off of the sample using a rotary evaporator.
- THF tetrahydrofuran
- Example 47 Treating Resin Coated Sand with SMA 4000i
- Resin coated sand was coated with SMA 4000i by adding 25 g of resin coated sand into a 250 mL round bottom flask. Separately, 0.25 g of SMA 2000i was dissolved in 3.57 g of THF to make a 7% solution. 0.72 g of the THF solution was then added to the resin coated sand in the round bottom flask. Additional THF was added to the round bottom flask until the sand was coved. The THF was then evaporated off of the sample using a rotary evaporator.
- Example 48 Treating Resin Coated Sand with SMA 2000i
- Resin coated sand was coated with SMA 2000i by adding 25 g of resin coated sand into a 250 mL round bottom flask. Separately, 0.25 g of SMA 4000i was dissolved in 3.57 g of THF to make a 7% solution. 1.43 g of the THF solution was then added to the resin coated sand in the round bottom flask. Additional THF was added to the round bottom flask until the sand was coved. The THF was then evaporated off of the sample using a rotary evaporator.
- Example 49 Treating Resin Coated Sand with SMA 2000i
- Resin coated sand was coated with SMA 2000i by adding 25 g of resin coated sand into a 250 mL round bottom flask. Separately, 0.25 g of SMA 2000i was dissolved in 3.57 g of THF to make a 7% solution. 0.72 g of the THF solution was then added to the resin coated sand in the round bottom flask. Additional THF was added to the round bottom flask until the sand was coved. The THF was then evaporated off of the sample using a rotary evaporator.
- Example 50 Treating Resin Coated Sand with Pluronic L31
- Resin coated sand was coated with Pluronic Surfactant L35 by adding 20 g of resin coated sand into a small FlackTek jar. 0.025 g of the surfactant was added to the resin coated sand. The sample was then mixed using a FlackTek Speedmixer at 800 rpm for 30 seconds.
- Example 52 Treating Resin Coated Sand with Pluronic L81
- Resin coated sand was coated with Pluronic Surfactant L35 by adding 20 g of resin coated sand into a small FlackTek jar. 0.025 g of the surfactant was added to the resin coated sand. The sample was then mixed using a FlackTek Speedmixer at 800 rpm for 30 seconds.
- Example 53 Treating Resin Coated Sand with ARQUAD® 2HT-75
- Resin coated sand was coated with ARQUAD® 2HT-75 by adding 25 g of resin coated sand into a 250 mL round bottom flask. Separately, 0.25 g of ARQUAD® 2HT-75 was dissolved in 3.57 g of IP A to make a 7% solution. 0.72 g of the IPA solution was then added to the resin coated sand in the round bottom flask. Additional IPA was added to the round bottom flask until the sand was coved. The IPA was then evaporated off of the sample using a rotary evaporator.
- Example 54 Treating Resin Coated Sand with ADOGEN® 464
- Resin coated sand was coated with ADOGEN® 464 by adding 20 g of resin coated sand into a small FlackTek jar. 0.025 g of the ADOGEN® 464 was added to the resin coated sand. The sample was then mixed using a FlackTek Speedmixer at 800 rpm for 30 seconds.
- Example 56 Hydrogel Coating of Sand Samples
- Sand samples were prepared by placing 20 g of the samples prepared in Example 46 through Example 54 into small FlackTek jars. 0.6 g of the coating mixture prepared in Example 35 was added into each the jar. The contents were then mixed at 800 rpm for 1 minute using a FlackTek speed mixer. The samples were then dried for 30 minutes at
- Tyzor TE is a triethanolamine titanium chelate 80% solution in ethanol.
- Tyzor TEAZ is a 100% actives triethanolamine zirconium chelate product. These metal chelates were dispersed in castor oil at different concentrations and applied to proppant in a second addition step during the coating process. Samples of coated proppant were prepared by adding 3 g of a blend of Flopam EM533 and glycerol to 100 g of 30/50 mesh proppant white sand in a FlackTek Max 100 jar. The samples were then mixed in a FlackTek Speedmixer at 850 rpm for 30 seconds.
- Samples were then removed from the Speedmixer and in some cases treated with a metal chelate/castor oil blend. Samples were then returned to the Speedmixer and mixed at 850 rpm for 30 seconds. Samples were then removed from the Speedmixer, transferred to a watch glass, and dried at 100°C for 30 minutes in a forced air laboratory oven. After drying, samples were sieved through an 18 mesh screen. For humidity aging 50 g of the formulated samples were placed in Max 100 FlackTek jars and left sitting in a humidity chamber for 1 hour. The relative humidity of the chamber was kept between 60-70%. After humidification, samples were tested in a Carver Press cell (2.25" I.D.) with an applied load of 1,000 lbs for 30 seconds.
- Samples of coated proppant sand were formulated by adding 3 g of a Flopam EM533/glycerol blend to 100 g of 30/50 mesh proppant white sand. The samples were mixed at 850 rpm for 30 seconds in a FlackTek Speedmixer. Samples were then removed from the Speedmixer and in some cases treated with a dry powder. Samples were then returned to the Speedmixer and mixed at 850 rpm for 30 seconds to uniformly distribute the powder through the sample. Samples were then removed from the Speedmixer, transferred to a watch glass, and dried at 100°C for 30 minutes in a forced air laboratory oven. After drying, samples were sieved through an 18 mesh screen.
- Example 59 Oil-based Additives
Abstract
Description
Claims
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EP13778014.4A EP2838972A4 (en) | 2012-04-19 | 2013-03-15 | Self-suspending proppants for hydraulic fracturing |
RU2014145131A RU2621239C2 (en) | 2012-04-19 | 2013-03-15 | Self-suspending proppants for hydraulic fracturing |
AU2013249741A AU2013249741A1 (en) | 2012-04-19 | 2013-03-15 | Self-suspending proppants for hydraulic fracturing |
BR112014026041A BR112014026041A2 (en) | 2012-04-19 | 2013-03-15 | modified proppant, formulation for hydraulic fracturing, fracturing method, method of reducing the amount of thickening agent, method of producing a modified proppant, and method of producing a hydrogel-coated proppant |
CN201380030233.XA CN104364343A (en) | 2012-04-19 | 2013-03-15 | Self-suspending proppants for hydraulic fracturing |
CA2870726A CA2870726A1 (en) | 2012-04-19 | 2013-03-15 | Self-suspending proppants for hydraulic fracturing |
HK15103787.4A HK1203213A1 (en) | 2012-04-19 | 2015-04-20 | Self suspending proppants for hydraulic fracturing |
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Also Published As
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EP2838973A1 (en) | 2015-02-25 |
AU2013249741A1 (en) | 2014-11-06 |
AU2013249743B2 (en) | 2016-12-22 |
BR112014026038A2 (en) | 2017-06-27 |
BR112014026041A2 (en) | 2017-06-27 |
HK1203212A1 (en) | 2015-10-23 |
AU2017200137A1 (en) | 2017-02-02 |
EP2838973A4 (en) | 2016-03-02 |
MX2014012610A (en) | 2015-04-08 |
EP2838972A1 (en) | 2015-02-25 |
RU2014145131A (en) | 2016-06-10 |
AU2013249743A1 (en) | 2014-11-06 |
RU2621239C2 (en) | 2017-06-01 |
HK1203213A1 (en) | 2015-10-23 |
CN104364343A (en) | 2015-02-18 |
CA2870726A1 (en) | 2013-10-24 |
CN104379697A (en) | 2015-02-25 |
EP2838972A4 (en) | 2015-12-23 |
WO2013158308A1 (en) | 2013-10-24 |
CA2870730A1 (en) | 2013-10-24 |
MX2014012609A (en) | 2015-01-19 |
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