US20020058581A1 - Proppant composition for gas and oil well l fracturing - Google Patents

Proppant composition for gas and oil well l fracturing Download PDF

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US20020058581A1
US20020058581A1 US09/955,281 US95528101A US2002058581A1 US 20020058581 A1 US20020058581 A1 US 20020058581A1 US 95528101 A US95528101 A US 95528101A US 2002058581 A1 US2002058581 A1 US 2002058581A1
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resin
pellet
proppant
coating
pellets
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Robert Youngman
Patrick Okell
Syed Akbar
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Fairmount Santrol Inc
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    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B41/00After-treatment of mortars, concrete, artificial stone or ceramics; Treatment of natural stone
    • C04B41/009After-treatment of mortars, concrete, artificial stone or ceramics; Treatment of natural stone characterised by the material treated
    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B35/00Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products
    • C04B35/01Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxide ceramics
    • C04B35/16Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxide ceramics based on silicates other than clay
    • C04B35/18Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxide ceramics based on silicates other than clay rich in aluminium oxide
    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B35/00Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products
    • C04B35/622Forming processes; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products
    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B41/00After-treatment of mortars, concrete, artificial stone or ceramics; Treatment of natural stone
    • C04B41/45Coating or impregnating, e.g. injection in masonry, partial coating of green or fired ceramics, organic coating compositions for adhering together two concrete elements
    • C04B41/4584Coating or impregnating of particulate or fibrous ceramic material
    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B41/00After-treatment of mortars, concrete, artificial stone or ceramics; Treatment of natural stone
    • C04B41/45Coating or impregnating, e.g. injection in masonry, partial coating of green or fired ceramics, organic coating compositions for adhering together two concrete elements
    • C04B41/52Multiple coating or impregnating multiple coating or impregnating with the same composition or with compositions only differing in the concentration of the constituents, is classified as single coating or impregnation
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K8/00Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
    • C09K8/60Compositions for stimulating production by acting on the underground formation
    • C09K8/80Compositions for reinforcing fractures, e.g. compositions of proppants used to keep the fractures open
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K8/00Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
    • C09K8/60Compositions for stimulating production by acting on the underground formation
    • C09K8/80Compositions for reinforcing fractures, e.g. compositions of proppants used to keep the fractures open
    • C09K8/805Coated proppants
    • YGENERAL 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
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/29Coated or structually defined flake, particle, cell, strand, strand portion, rod, filament, macroscopic fiber or mass thereof
    • Y10T428/2982Particulate matter [e.g., sphere, flake, etc.]
    • Y10T428/2991Coated
    • Y10T428/2998Coated including synthetic resin or polymer

Definitions

  • the present invention relates to proppant pellets prepared by using aluminasilica containing waste materials from industrial processes.
  • the proppant pellets may be resin coated.
  • the present invention further relates to a method for the manufacture of proppant pellets.
  • Sintered bauxite or high grade alumina have been used as proppant materials at well depths greater than 20,000 feet, but these high strength proppants have much higher densities than sand and therefore require high viscosity pumping fluids or high pumping rates. Larger pumping equipment is required, and wear rates on fluid carrying equipment is accelerated. In addition, the raw materials used to make the proppant materials are more costly.
  • Proppants of intermediate density are known, and work well in the intermediate depths and pressures, i.e., 7,000 to 14,000 feet (5,000-10,000 psi).
  • Proppant pellets having a specific gravity of less than 3.4 g/cm 3 have been made from diaspore clay, bauxite, and/or alumina.
  • Eufala bauxite, a bauxitic-kaolin material has been used to prepare a proppant with a density of less than 3.0 g/cm 3 .
  • Also known is a method of making ceramic microspheres for use as proppants from water-soluble salts, mineral compositions or organometallic complexes, and ultrafine bauxite or alumina-containing particles.
  • a low density proppant has been prepared from kaolin clay and amorphous to microcrystalline silica. The raw materials used to make all these intermediate proppants are costly, and a less expensive proppant material is desired.
  • Resin coated particles have been used in efforts to improve the stability of proppants at high closure stresses.
  • Sand or other substrates have been coated with an infusible resin such as an epoxy or phenolic resin. These materials are superior to sand at intermediate stress levels.
  • the resin coated particles still show a decrease in permeability.
  • a process is known for coating particulates with an infusible resin for use as proppants in fracturing operations.
  • the particulates include sand, nut shells, glass beads and aluminum pellets.
  • the resins include urea-aldehyde resins, phenol-aldehyde resins, epoxy resins, furfuryl alcohol resins and polyester or alkyd resins.
  • the resin coating may be applied by mixing the particles with a melted resin and subsequently cooling the mixture, or dissolving the resin in a solvent, applying it to the particles, and evaporating the solvent. Coupling agents may be added to the system to improve the strength of the resin-substrate bond.
  • Proppants comprising sand particles with a precured phenol formaldehyde resin coating have been used for propping fractures in subterranean formations.
  • the present invention utilizes spent ceramic media from petroleum refining operations, where the media provides a catalytic function during “cracking” of the hydrocarbons, while drawing out impurities from the crude oil as it passes through a packed column of ceramic beads.
  • These beads are manufactured by Englehard Corporation, WR Grace and Akzo Nobel as well as other Far Eastern producers and are variously known as fluid cracking catalyst, e-cats, and equilibrium catalyst (hereinafter referred to as “fluid cracking catalyst” or “FCC”).
  • FCC fluid cracking catalyst
  • the use of catalytic ceramic media for removing impurities from petroleum products is a long established art.
  • the catalytic media can be regenerated after use as a cracking catalyst several times but eventually is spent, and is discarded as waste material.
  • the present invention uses the FCC as a base material for remanufacturing larger ceramic spheres, which can be used in the hydraulic fracturing of subterranean oil and gas bearing formations.
  • the present invention provides a spherical ceramic proppant pellet comprising spent fluid cracking catalyst particles, wherein the pellet is formed by reducing the median particle size of the catalyst; mixing the catalyst particles with water and a binder to form spherical pellets; and sintering the pellets.
  • the present invention also provides a method for preparing a spherical ceramic proppant pellet, the method comprising the steps of providing spent fluid cracking catalyst particles; reducing the particle size of the catalyst particles; mixing the catalyst particles with water and a binder to form spherical pellets; and sintering the pellets.
  • the present invention further provides a proppant composition comprising spent fluid cracking catalyst, wherein the spent fluid cracking catalyst comprises from about 25 to about 80 weight percent synthetic silica, and from about 20 to about 75 weight percent alumina.
  • the spent fluid cracking catalyst may optionally further comprise at least one of:
  • [0020] detectable amounts of a least one component selected from the group consisting of platinum, rhenium, sulfur compounds, and rare earth metals.
  • FIG. 1 is a graphical representation of the conductivity of an FCC ceramic proppant and a commercial lightweight ceramic proppant at various closure pressures.
  • the present invention utilizes fluid cracking catalyst, a material rich in alumina and silica, as a ceramic feedstock for producing proppant pellets.
  • the catalyst material is formed into pellets and sintered using conventional methods.
  • Spent fluid cracking catalysts exist as ceramic beads comprising calcined mixtures of silica (SiO2), alumina (Al2O3), with minor amounts of antimony, copper, nickel, vanadium, lead, rare earth metals, sulfates, sulfides, and trace amounts of other components.
  • silica SiO2
  • Al2O3 alumina
  • antimony copper
  • nickel vanadium
  • lead rare earth metals
  • Zeolite sometimes called molecular sieve, has a well-defined lattice structure. Its basic building blocks are silica and alumina tetrahedra. Typical zeolites also contain counterions such as sodium, and ammonium ions. Zeolites employed in the manufacture of the FCC catalyst are synthetic versions of naturally occurring zeolites called faujasites. Zeolites with applications to FCC are Type X, Type Y, and ZSM-5. Both X and Y zeolites have essentially the same crystalline structure. The major difference is that the X zeolite has a lower silica/alumina ratio than the Y zeolite. Virtually all of today's catalysts contain Y zeolite or variations thereof.
  • ultrastable Y aluminum-deficient zeolite
  • Zeolites are sometimes ion exchanged with rare earth components in order to increase catalytic activity and thermal stability.
  • Rare earth is a generic name for fourteen metallic elements of the lanthanide series, including lanthanum and cerium.
  • the matrix component of the FCC can also have catalytic activity.
  • Alumina is normally the source for the matrix component.
  • Most FCCs contain an amorphous alumina matrix, but some catalyst suppliers incorporate a form of alumina that has a crystalline structure.
  • the filler component is a clay incorporated into the catalyst to dilute its activity.
  • Kaolin Al 2 (OH) 2 ,Si 2 O 5 ] is the most common clay used in the FCC catalyst.
  • One FCC catalyst manufacturer used kaoline clay as a skeleton to grow the zeolite in situ.
  • the binder serves as a “glue” to hold the zeolite, matrix and filler together.
  • the functions of the filler and the binder are to provide physical integrity and mechanical strength. They impact such characteristics of the FCC as density, attrition resistance, and particle size distribution.
  • Spent fluid cracking catalyst also contains a number of metal contaminants, including nickel, vanadium, iron, antimony and copper. These contaminants originate largely from the heavy, high-molecular weight fraction of the FCC feed. The quantity of these metals on the FCC is determined by their levels in the petroleum feedstock and the catalyst addition rate. Essentially, all these metals in the feed are deposited on the catalyst. Much of the iron on the FCC comes from metal scale from piping.
  • coke Another component of spent fluid cracking catalyst is coke, which is carbon that is deposited on the catalyst during cracking.
  • the catalyst loses its activity and selectivity.
  • Fresh catalyst is added to the reactor unit continually to replace the catalyst lost by attrition and to maintain catalyst activity.
  • part of the catalyst inventory is periodically withdrawn from the unit to control the catalyst level in the regenerator.
  • This spent catalyst provides a low cost feedstock that is rich in alumina and silica, and according to the invention is remanufactured to produce larger ceramic spheres.
  • the ceramic spheres can be used as proppants in the hydraulic fracturing of subterranean oil and gas bearing formations.
  • Spent fluid cracking catalysts suitable for the proppant of the present invention therefore primarily contain silica and alumina, and may further contain sodium or other counterions, rare earth elements, carbon, metals such as typically found in petroleum feedstocks, and other contaminants.
  • the ratio of silica to alumina is a critical factor in the ultimate performance of the proppant product, but can be quite variable in fluid cracking catalysts.
  • a nominal 45/55 silica to alumina weight ratio is quite common in FCCs.
  • Preferred useful ratios by weight of silica to alumina for use as a feedstock material for proppants according to the present invention are about 2:1 to more preferably about 1:1.
  • Spent fluid cracking catalyst suitable for use as a feedstock material comprise 25-80 weight percent silica, preferably 40 to 60, weight percent silica, and even more preferably 45 to 55 weight percent silica.
  • Suitable fluid cracking catalyst for use according to the present invention comprise 20-75 weight percent alumina, preferably 30 to 60 weight percent alumina, and even more preferably 45 to 55 weight percent alumina.
  • Typical ranges of chemical compositions for MET 192 or MET 195 from Metalloy Corporation are shown in Table A. TABLE A Chemical Name Wt Percent Silica (synthetic), SiO 2 25-80 Alumina Al 2 O 3 20-75 Quartz (SiO 2 ) ⁇ 1.0 Antimony 0-2500 ppm Copper 5-1000 ppm Vanadium 45-7000 ppm Lead 200 ppm
  • alumina or silica can be added, such as clay or silica gel, to adjust the silica:alumina weight ratio to 1:1 to 2:1.
  • the spherical ceramic proppant pellets of the present invention are prepared by a method comprising the steps of providing spent fluid cracking catalyst particles, reducing the particle size of the catalyst particles, mixing the catalyst particles with water and a binder to form spherical pellets, and sintering the pellets.
  • the pellets are preferably screened to provide a suitable median particle size.
  • Reduction of the particle size of the FCC particles is preferably accomplished by conventional ball milling techniques, including either wet or dry ball milling.
  • the median particle size of the FCC particles after reduction is preferably about 1 to about 10 microns, and more preferably about 2 to about 6 microns, as measured by laser diffraction.
  • the comminuted FCC particles are then mixed with water and a binder.
  • Suitable binders include, but are not limited to, polyvinyl acetate, methyl cellulose, and polymethylmethacrylate.
  • the amount of water used is preferably 25-45 percent by weight of fluid cracking catalyst, but will vary depending on the composition of the FCC.
  • the amount of binder used is preferably about 0.1% to 0.5% by weight, preferably about 0.2 to 0.25%, but will depend on particle size distribution and shape.
  • Mixing may be accomplished by conventional methods.
  • a Eirich mixer is used, such as an Eirich RVO2.
  • the pellet size is determined by mixer run time. A mix time of 45 seconds to 80 seconds is usually sufficient in the particular equipment used to form well rounded substantially spherical pellets in the size range of 1 mm to 420 microns. After spherical pellets form, the pellets are dried at relatively low temperatures of from about 120 to about 150° C. After drying, the pellets are sufficiently tough to undergo the stress of pneumatic handling and sintering.
  • Sintering is preferably accomplished using a rotary kiln, although other conventional sintering methods may be used. Pellets are sintered at a temperature of about 1,300° C. to about 1,500° C. The temperature along the kiln will vary but most preferably a temperature of about 1,500° C. is attained for a dwell time of at least about 30 minutes. Sintering causes a reduction of up to 20% in particle size as well as an increase in density in the component products.
  • a finished proppant particle according to the process described above may have a density in the range of about 2 to about 2.7 gm/cm 3 , depending upon the source FCC and actual sintering temperature. Preferably, the density of the finished proppant particle is from about 2.45 gm/cm 3 to about 2.65 gm/cm 3 .
  • pellets After sintering the pellets assume a darker gray color and can be screened by Rotex or other conventional methods into the particle sizes needed.
  • a typical product size is 20/40 mesh, which indicates that 90 weight percent of its pellets are between 0.0167 inches and 0.0331 inches in size. Preferably, 90 weight percent of the pellets are between 0.0232 inches and 0.0331 inches in size.
  • Spent FCC particles were ball milled to a 4-6 micron median particle size, as measured by laser diffraction.
  • Ten pounds of milled material having a dried, free flowing form was fed to a pellet forming mixer device, specifically an Eirich RVO2.
  • a pellet forming mixer device specifically an Eirich RVO2.
  • 25% to 45% by weight of water and liquid polyvinyl acetate (PVA) was added in the amount of 0.3% by liquid volume. The addition of PVA added green strength for subsequent sintering.
  • the spherical pellets were sintered in a rotary kiln at a temperature of between 1,325° C. to 1,500° C. for about 30 minutes. After sintering, the pellets were screened to 20/40 mesh.
  • pellets so formed are surprisingly similar in performance to existing ceramic proppant pellets, albeit with slightly lower crush resistance and lower conductivity with respect to brine and hydrocarbons, as shown in FIG. 1.
  • Crush numbers were generated at 7,500 psi, according to standard API RP 60 procedures. Crush data, shown in Table 2, indicate a slight decline in crush strength over current lightweight ceramics, but the proppants prepared according to the present invention have performance approximating existing commercial proppant products, and are suitable for commercial use. TABLE 2 20/40 Proppant Material % Crush at 7500 psi FCC Ceramic Proppants 9.1 Commercial Lightweight 6.8 Ceramic Proppants
  • crush resistance and conductivity of the proppant products prepared according to the present invention will equal or exceed that of commercial lightweight ceramic proppants, with manufacturing scaleup.
  • the Krumbein roundness and sphericity of the FCC derived ceramic proppants are approximately 0.9 and are equivalent to commercial lightweight ceramic proppants.
  • Additional proppant pellets were prepared from spent FCC catalyst according to the above described procedure, with 24 hour wet milling in a ball mill, drying and pressing into pellets. Sintering was conducted at 1300° C., 1400° C. or 1500° C. for 10 minutes. A final density of 99.6% of theoretical was achieved. X-ray diffraction indicated that the pellets contained about 50 to about 60 mol % cristobalite and about 40 to about 50 mol % mullite.
  • proppant pellets comprising spent fluid cracking catalyst utilize waste materials from the petroleum refining process which would otherwise be costly to dispose of or reclaim.
  • the proppant pellets of the present invention are lightweight, low density materials with crush strength and conductivity approximating those of existing products.
  • the utility of the FCC ceramic proppant of the present invention can be extended into high stress applications by coating the proppant with a resin coating.
  • the resin coating may be cured or curable.
  • the FCC ceramic proppant pellets are coated with a resin dissolved in a solvent which is then evaporated. The resin is then cured.
  • the FCC ceramic proppant pellets are mixed with a melted resin which is then cooled, coating the pellets.
  • the resin coating is then cured.
  • the resin coating is curable, but not substantially cured prior to use. In this embodiment, the resin is cured after injection into the well formation by techniques known in the art.
  • FCC ceramic proppant pellets are covered with an inner coating of a fusible, curable resin and an outer coating of a substantially cured resin.
  • the resin coated particle can be used as a self-consolidating proppant, and is compatible with the fracturing fluid.
  • the proppant pellet may further comprise an additional coating of a substantially cured resin which is located on the exterior of the substrate and inside the inner coating. Such particles exhibit enhanced properties such as improved fractionating fluid compatibility.
  • Resins suitable for the inner and outer coatings are generally any resins capable of being coated on the substrate and then being cured to a higher degree of polymerization.
  • resins include phenol-aldehyde resins of both the resole and novolac type, urea-aldehyde resins, melamine-aldehyde resins, epoxy resins and furfuryl alcohol resins and copolymers of such resins.
  • the resins must form a solid non-tacky coating at ambient temperatures. This is required so that the coated particles remain free flowing and so that they do not agglomerate under normal storage conditions.
  • the preferred resins are the phenol-formaldehyde resins. These resins include true thermosetting phenolic resins of the resole type and phenolic novolac resins that may be rendered heat reactive by the addition of catalyst and formaldehyde. Such resins with softening points of 185° F. to 290° F. are acceptable.
  • the inner and outer coatings can be formed starting with the same or different type of resins.
  • the inner coating could be produced from a novolac and the outer coat from a resole.
  • the outer resin must be curable at conditions that leave the inner coating curable, i.e., fusible and heat reactive.
  • a coupling agent as subsequently described is preferably incorporated during manufacture into the resin that is to be used as the inner coating, and may optionally also be incorporated into the resin that is to be used as the outer coating.
  • the coupling agent which has a functional group reactive in the resin system is added in an amount ranging from about 0.1 to 10% by weight of the resin. The preferred range is from about 0.1 to 3% by weight of the resin.
  • the coupling agent is incorporated into the resin under the normal reaction conditions used for the formation of the phenol-formaldehyde resin.
  • the coupling agent is added to the resin after the phenol formaldehyde condensation reaction has occurred and the resin has been dehydrated to the final free phenol and melt viscosity range.
  • a preferred resin of the inner coating is a phenolic novolac resin.
  • Particularly suitable are phenolic novolac resins manufactured by Georgia Pacific, known as 99NO7, and by OxyChem, known as 24-715.
  • the GP-099N07 resin has a softening point range of 85° F.-100° F.
  • the OxyChem 24-715 exhibits a softening point range of 70° F.-87° F.
  • Hexamethylenetetramine is the preferred material for this function as it serves as both a catalyst and a source of formaldehyde.
  • the coupling agent to be employed is chosen based on the resin to be used.
  • the coupling agents include amino, epoxy, and ureido organo silanes.
  • Epoxy modified gamma-glycidoxypropyltrimethoxysilane has given excellent results when used in the amount of 0.50-1.00% based on the weight of the resin.
  • the use of coupling agents as incorporated into the resin and as applied directly to the particulate substrate is discussed in Graham et al, U.S. Pat. No. 4,518,039, incorporated herein by reference as if fully written out below.
  • the outer coating of resin is formed from a heat curable resin coating formed over the inner resin. As stated previously, this outer resin must be curable at conditions that do not completely cure the inner coating thus leaving the inner coating curable.
  • the preferred resins for the outer coating are of the resole type. Particularly suitable is a fast curing resole resin manufactured by Georgia Pacific known as 102N68. Resole resins generally are provided dissolved in a methanol and water solution as is Georgia Pacific 102N68. The resin exhibits an extremely fast cure having a 150° C. hot plate cure time of 30 seconds or less.
  • the preferred resole should be in a solution of water and methanol as the solvent system.
  • the organic solids level should be 65-75%, with a water content in the 5-15% level.
  • the hot plate cure time at 150° C. should be in the range of 25-40 seconds.
  • the inner and outer resin coatings may be formed by a variety of methods. For example, the solvent coating process described in U.S. Pat. No. 3,929,191, to Graham et al., incorporated herein by reference as if fully written out below.
  • the improved high strength particles of this embodiment of the invention are coated in a multi-step process.
  • a phenol-formaldehyde resin inner coat is formed over the particulate substrate.
  • an outer coating is formed. The outer coating is then cured at conditions that leave the inner resin curable.
  • the first or inner coating of resin may be formed on the particulate substrate by first coating the heated substrate with a phenol-formaldehyde novolac resin. This coating is carried out by preheating the particulate substrate to a temperature above the melting point of the particular resin used.
  • the particulate substrate is heated to 350° F. to 500° F. prior to resin addition.
  • the heated substrate is charged to a mixer or muller where generally from about 1% to about 6%, by weight of substrate, resin is added.
  • the preferred amount of resin based on the weight of substrate is about 2%.
  • the substrate and melted resin are allowed to mix in the muller for a time sufficient to insure the formation of a uniform coating of resin on the particulate, usually about 10 to about 30 seconds.
  • hexamethylenetetramine is added to the substrate resin mixture.
  • the preferred amount of hexamethylenetetramine is about 13% by weight of the resin.
  • water is added to quench the reaction of the inner resin coating. The amount of water added and the timing of its addition is adjusted to quench the curing of the inner resin while maintaining sufficient heat in the proppant to cure the outer coating that is added next.
  • the outer resin is then coated over the inner resin and allowed to substantially cure.
  • Substantially cured is to be interpreted as meaning that the cross-linking reaction of the resin is substantially complete and that at typical downhole temperatures only minimal additional curing takes place.
  • the outer coating is the preferred resole, its addition is preferably carried out by adding it as a solution in a water/methanol mixture comprising between 15-30% methanol and 5-15% water. The preferred mixture is 6% water and 25% methanol.
  • the FCC ceramic proppant pellet is coated with a substantially cured inner resin coating and an outer resin coating which may be heat curable, fully cured, or of intermediate nature.
  • a reinforcing agent may be interspersed at the inner resin coating/outer resin coating boundary. Suitable resins include those described above in the previous embodiment.
  • a key to the increased strength of the resin coated particles of this embodiment is the addition of a reinforcing agent in the boundary region between the inner and outer resin coatings.
  • the reinforcing agents are preferably added after coating the particle with the inner resin coating but before the inner coating is cured.
  • Suitable reinforcing agents include materials known to act as reinforcing agents in typical engineering resins and composite materials. Common to all suitable reinforcing agents is the requirement that they be of a particle size calculated to give the required properties. For example, various mineral fillers including fumed silicas, silica four, talc, clays, mica, asbestos, calcium carbonate, calcium sulfate, metals and wollastanite are suitable. The size of such reinforcing agents is typically less than 300 mesh. Reinforcing materials of a fibrous or rod like nature should be less than about 0.006 inches and preferably about 0.002 inches in length. Of these, silica flour ground to about 325 mesh is preferred.
  • Another type of reinforcing agent with utility in the present invention are impact modifiers used in engineering resins and composite materials.
  • examples of such materials include polyisobutylene, ethylene-vinyl acetate copolymers, ethylene-propylene copolymers and other rubbery materials.
  • core shell impact modifiers having a rubbery core with a graft polymerized crystalline shell. To obtain the proper particle size cryogenic grinding of the rubbery materials is useful.
  • the coated or uncoated free flowing FCC ceramic proppant pellet particles produced as described above may be used as proppants, gravel or fluid loss agents in hydraulic fracturing, frac packing and gravel packs.
  • the application will determine the choice of whether the proppant pellet is resin coated or not, and whether the coatings are cured or curable. For example, a curable coating may be indicated for gravel packing, while in fracturing a substantially cured outer coating may be preferred to prevent interaction with the frac fluid.
  • a fracture is first generated by injecting a viscous fluid into the formation at a sufficient rate and pressure to cause the formation to fail in tension.
  • the fracturing fluid may be an oil base, water base, acid, emulsion, foam or other fluid.
  • the fracturing fluid may contain several additives such as viscosity builders, drag reducers, fluid loss additives, corrosion inhibitors, cross linkers and the like, known in the art.
  • Injection of the fluid is typically continued until a fracture of the desired geometry is obtained.
  • the fracture at the well bore is at least 2.5 times the diameter of the largest proppant pellet.
  • a carrier fluid having the proppant suspended therein is then pumped into the fracture.
  • the temperature of the carrier fluid during pumping operations will be low so as to prevent premature curing of the outer resin coat.
  • the carrier fluid bleeds off into the formation and deposits the proppant pellets in the fracture.
  • the process is controlled by fluid loss agents which are small aggregate particles which temporarily slow the fluid loss to the formation.

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Abstract

An aluminosilicate ceramic, spherical pellet made from spent ceramic catalyst. More specifically, a spherical ceramic pellet made from spent fluid cracking catalyst. The pellets can be made by grinding the catalyst particles, forming them into spherical pellets, and then sintering the pellets. The final product is useful as a proppant in oil and gas well fracturing.

Description

    FIELD OF THE INVENTION
  • The present invention relates to proppant pellets prepared by using aluminasilica containing waste materials from industrial processes. The proppant pellets may be resin coated. The present invention further relates to a method for the manufacture of proppant pellets. [0001]
  • BACKGROUND OF THE INVENTION
  • In the completion and operation of oil wells, gas wells, water wells, and similar boreholes, it frequently is desirable to alter the producing characteristics of the formation by treating the well. Many such treatments involve the use of particulate material. For example, in hydraulic fracturing, particles called proppants are used to maintain the fracture in a propped condition. In hydraulic fracturing, proppant particles under high closure stress tend to fragment and disintegrate. At closure stresses above about 5,000 psi, silica sand, the most common proppant, is not normally employed due to its propensity to disintegrate. The resulting fines from this disintegration migrate and plug the interstitial flow passages in the propped interval. These migratory fines drastically reduce the permeability of the propped fracture. Since closure stress varies directly with depth, this means that sand is not a useful proppant material at depths greater than about 5,000 feet. [0002]
  • Sintered bauxite or high grade alumina have been used as proppant materials at well depths greater than 20,000 feet, but these high strength proppants have much higher densities than sand and therefore require high viscosity pumping fluids or high pumping rates. Larger pumping equipment is required, and wear rates on fluid carrying equipment is accelerated. In addition, the raw materials used to make the proppant materials are more costly. [0003]
  • Proppants of intermediate density are known, and work well in the intermediate depths and pressures, i.e., 7,000 to 14,000 feet (5,000-10,000 psi). Proppant pellets having a specific gravity of less than 3.4 g/cm[0004] 3 have been made from diaspore clay, bauxite, and/or alumina. Eufala bauxite, a bauxitic-kaolin material, has been used to prepare a proppant with a density of less than 3.0 g/cm3. Also known is a method of making ceramic microspheres for use as proppants from water-soluble salts, mineral compositions or organometallic complexes, and ultrafine bauxite or alumina-containing particles. A low density proppant has been prepared from kaolin clay and amorphous to microcrystalline silica. The raw materials used to make all these intermediate proppants are costly, and a less expensive proppant material is desired.
  • Resin coated particles have been used in efforts to improve the stability of proppants at high closure stresses. Sand or other substrates have been coated with an infusible resin such as an epoxy or phenolic resin. These materials are superior to sand at intermediate stress levels. However, at high temperature and high stress levels, the resin coated particles still show a decrease in permeability. [0005]
  • A process is known for coating particulates with an infusible resin for use as proppants in fracturing operations. The particulates include sand, nut shells, glass beads and aluminum pellets. The resins include urea-aldehyde resins, phenol-aldehyde resins, epoxy resins, furfuryl alcohol resins and polyester or alkyd resins. The resin coating may be applied by mixing the particles with a melted resin and subsequently cooling the mixture, or dissolving the resin in a solvent, applying it to the particles, and evaporating the solvent. Coupling agents may be added to the system to improve the strength of the resin-substrate bond. [0006]
  • Proppants comprising sand particles with a precured phenol formaldehyde resin coating have been used for propping fractures in subterranean formations. [0007]
  • Although resin coated sands have proven satisfactory in numerous applications, concern exists over their use under high closure stresses. For example, some self consolidating resin coated particles of the prior art do not develop their full strength until the resin coating has cured in the formation. In the event of rapid closure of the fracture, the proppant could be crushed before the resin cured, resulting in decreased permeability. This problem is alleviated by the use of a dual resin coated particle having a reinforcing agent interspersed at the inner resin/outer resin boundary, as described in U.S. Pat. No. 5,422,183 assigned to Santrol, Inc, incorporated herein by reference as if fully written out below. [0008]
  • SUMMARY OF THE INVENTION
  • The present invention utilizes spent ceramic media from petroleum refining operations, where the media provides a catalytic function during “cracking” of the hydrocarbons, while drawing out impurities from the crude oil as it passes through a packed column of ceramic beads. These beads are manufactured by Englehard Corporation, WR Grace and Akzo Nobel as well as other Far Eastern producers and are variously known as fluid cracking catalyst, e-cats, and equilibrium catalyst (hereinafter referred to as “fluid cracking catalyst” or “FCC”). The use of catalytic ceramic media for removing impurities from petroleum products is a long established art. The catalytic media can be regenerated after use as a cracking catalyst several times but eventually is spent, and is discarded as waste material. The present invention uses the FCC as a base material for remanufacturing larger ceramic spheres, which can be used in the hydraulic fracturing of subterranean oil and gas bearing formations. [0009]
  • The present invention provides a spherical ceramic proppant pellet comprising spent fluid cracking catalyst particles, wherein the pellet is formed by reducing the median particle size of the catalyst; mixing the catalyst particles with water and a binder to form spherical pellets; and sintering the pellets. [0010]
  • The present invention also provides a method for preparing a spherical ceramic proppant pellet, the method comprising the steps of providing spent fluid cracking catalyst particles; reducing the particle size of the catalyst particles; mixing the catalyst particles with water and a binder to form spherical pellets; and sintering the pellets. [0011]
  • The present invention further provides a proppant composition comprising spent fluid cracking catalyst, wherein the spent fluid cracking catalyst comprises from about 25 to about 80 weight percent synthetic silica, and from about 20 to about 75 weight percent alumina. The spent fluid cracking catalyst may optionally further comprise at least one of: [0012]
  • up to about 1,000 parts per million copper; [0013]
  • up to about 7,000 parts per million vanadium; [0014]
  • up to about 200 parts per million lead; [0015]
  • up to about 7000 parts per million nickel; [0016]
  • up to about 2500 parts per million antimony; [0017]
  • up to about 2 weight percent iron; [0018]
  • up to about 1.5 weight percent sodium; and, [0019]
  • detectable amounts of a least one component selected from the group consisting of platinum, rhenium, sulfur compounds, and rare earth metals.[0020]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a graphical representation of the conductivity of an FCC ceramic proppant and a commercial lightweight ceramic proppant at various closure pressures.[0021]
  • DETAILED DESCRIPTION OF THE INVENTION
  • The present invention utilizes fluid cracking catalyst, a material rich in alumina and silica, as a ceramic feedstock for producing proppant pellets. The catalyst material is formed into pellets and sintered using conventional methods. [0022]
  • Spent fluid cracking catalysts exist as ceramic beads comprising calcined mixtures of silica (SiO2), alumina (Al2O3), with minor amounts of antimony, copper, nickel, vanadium, lead, rare earth metals, sulfates, sulfides, and trace amounts of other components. Although the exact compositions of commercial FCCs are proprietary, in general a fluid cracking catalyst has four major component systems: zeolite, matrix, binder, and filler. [0023]
  • Zeolite, sometimes called molecular sieve, has a well-defined lattice structure. Its basic building blocks are silica and alumina tetrahedra. Typical zeolites also contain counterions such as sodium, and ammonium ions. Zeolites employed in the manufacture of the FCC catalyst are synthetic versions of naturally occurring zeolites called faujasites. Zeolites with applications to FCC are Type X, Type Y, and ZSM-5. Both X and Y zeolites have essentially the same crystalline structure. The major difference is that the X zeolite has a lower silica/alumina ratio than the Y zeolite. Virtually all of today's catalysts contain Y zeolite or variations thereof. One variation is an aluminum-deficient zeolite, called ultrastable Y, or simply USY. Zeolites are sometimes ion exchanged with rare earth components in order to increase catalytic activity and thermal stability. Rare earth is a generic name for fourteen metallic elements of the lanthanide series, including lanthanum and cerium. [0024]
  • The matrix component of the FCC can also have catalytic activity. Alumina is normally the source for the matrix component. Most FCCs contain an amorphous alumina matrix, but some catalyst suppliers incorporate a form of alumina that has a crystalline structure. [0025]
  • The filler component is a clay incorporated into the catalyst to dilute its activity. Kaolin [Al[0026] 2(OH)2,Si2O5] is the most common clay used in the FCC catalyst. One FCC catalyst manufacturer used kaoline clay as a skeleton to grow the zeolite in situ.
  • The binder serves as a “glue” to hold the zeolite, matrix and filler together. The functions of the filler and the binder are to provide physical integrity and mechanical strength. They impact such characteristics of the FCC as density, attrition resistance, and particle size distribution. [0027]
  • Spent fluid cracking catalyst also contains a number of metal contaminants, including nickel, vanadium, iron, antimony and copper. These contaminants originate largely from the heavy, high-molecular weight fraction of the FCC feed. The quantity of these metals on the FCC is determined by their levels in the petroleum feedstock and the catalyst addition rate. Essentially, all these metals in the feed are deposited on the catalyst. Much of the iron on the FCC comes from metal scale from piping. [0028]
  • Another component of spent fluid cracking catalyst is coke, which is carbon that is deposited on the catalyst during cracking. [0029]
  • As metal and carbon contaminants are deposited on the FCC, the catalyst loses its activity and selectivity. Fresh catalyst is added to the reactor unit continually to replace the catalyst lost by attrition and to maintain catalyst activity. In cases where the makeup rate for activity maintenance exceeds catalyst losses, part of the catalyst inventory is periodically withdrawn from the unit to control the catalyst level in the regenerator. This spent catalyst provides a low cost feedstock that is rich in alumina and silica, and according to the invention is remanufactured to produce larger ceramic spheres. The ceramic spheres can be used as proppants in the hydraulic fracturing of subterranean oil and gas bearing formations. [0030]
  • Spent fluid cracking catalysts suitable for the proppant of the present invention therefore primarily contain silica and alumina, and may further contain sodium or other counterions, rare earth elements, carbon, metals such as typically found in petroleum feedstocks, and other contaminants. [0031]
  • The ratio of silica to alumina is a critical factor in the ultimate performance of the proppant product, but can be quite variable in fluid cracking catalysts. A nominal 45/55 silica to alumina weight ratio is quite common in FCCs. Preferred useful ratios by weight of silica to alumina for use as a feedstock material for proppants according to the present invention are about 2:1 to more preferably about 1:1. Spent fluid cracking catalyst suitable for use as a feedstock material comprise 25-80 weight percent silica, preferably 40 to 60, weight percent silica, and even more preferably 45 to 55 weight percent silica. Suitable fluid cracking catalyst for use according to the present invention comprise 20-75 weight percent alumina, preferably 30 to 60 weight percent alumina, and even more preferably 45 to 55 weight percent alumina. Typical ranges of chemical compositions for MET 192 or MET 195 from Metalloy Corporation are shown in Table A. [0032]
    TABLE A
    Chemical Name Wt Percent
    Silica (synthetic), SiO2 25-80
    Alumina Al2O3 20-75
    Quartz (SiO2) <1.0
    Antimony 0-2500 ppm
    Copper 5-1000 ppm
    Vanadium 45-7000 ppm
    Lead 200 ppm
  • This chemical analysis is included for example purposes only, and should not be considered as a limitation of the FCC used to produce the proppants of the present invention. In some instances, alumina or silica can be added, such as clay or silica gel, to adjust the silica:alumina weight ratio to 1:1 to 2:1. [0033]
  • The spherical ceramic proppant pellets of the present invention are prepared by a method comprising the steps of providing spent fluid cracking catalyst particles, reducing the particle size of the catalyst particles, mixing the catalyst particles with water and a binder to form spherical pellets, and sintering the pellets. The pellets are preferably screened to provide a suitable median particle size. [0034]
  • Reduction of the particle size of the FCC particles is preferably accomplished by conventional ball milling techniques, including either wet or dry ball milling. The median particle size of the FCC particles after reduction is preferably about 1 to about 10 microns, and more preferably about 2 to about 6 microns, as measured by laser diffraction. [0035]
  • The comminuted FCC particles are then mixed with water and a binder. Suitable binders include, but are not limited to, polyvinyl acetate, methyl cellulose, and polymethylmethacrylate. The amount of water used is preferably 25-45 percent by weight of fluid cracking catalyst, but will vary depending on the composition of the FCC. The amount of binder used is preferably about 0.1% to 0.5% by weight, preferably about 0.2 to 0.25%, but will depend on particle size distribution and shape. [0036]
  • Mixing may be accomplished by conventional methods. Preferably, a Eirich mixer is used, such as an Eirich RVO2. The pellet size is determined by mixer run time. A mix time of 45 seconds to 80 seconds is usually sufficient in the particular equipment used to form well rounded substantially spherical pellets in the size range of 1 mm to 420 microns. After spherical pellets form, the pellets are dried at relatively low temperatures of from about 120 to about 150° C. After drying, the pellets are sufficiently tough to undergo the stress of pneumatic handling and sintering. [0037]
  • Sintering is preferably accomplished using a rotary kiln, although other conventional sintering methods may be used. Pellets are sintered at a temperature of about 1,300° C. to about 1,500° C. The temperature along the kiln will vary but most preferably a temperature of about 1,500° C. is attained for a dwell time of at least about 30 minutes. Sintering causes a reduction of up to 20% in particle size as well as an increase in density in the component products. A finished proppant particle according to the process described above may have a density in the range of about 2 to about 2.7 gm/cm[0038] 3, depending upon the source FCC and actual sintering temperature. Preferably, the density of the finished proppant particle is from about 2.45 gm/cm3 to about 2.65 gm/cm3.
  • After sintering the pellets assume a darker gray color and can be screened by Rotex or other conventional methods into the particle sizes needed. A typical product size is 20/40 mesh, which indicates that 90 weight percent of its pellets are between 0.0167 inches and 0.0331 inches in size. Preferably, 90 weight percent of the pellets are between 0.0232 inches and 0.0331 inches in size. [0039]
  • EXAMPLE 1
  • Spent FCC particles were ball milled to a 4-6 micron median particle size, as measured by laser diffraction. Ten pounds of milled material having a dried, free flowing form was fed to a pellet forming mixer device, specifically an Eirich RVO2. To the test batch, 25% to 45% by weight of water and liquid polyvinyl acetate (PVA) was added in the amount of 0.3% by liquid volume. The addition of PVA added green strength for subsequent sintering. [0040]
  • When spherical pellets formed in the mixer, the machine was stopped and the pellets were transferred to a low temperature convection oven and dried at 120° F. for 1 hour. The specific gravity of the product at this stage was approximately 2.1 gm/cm[0041] 3.
  • After drying, the spherical pellets were sintered in a rotary kiln at a temperature of between 1,325° C. to 1,500° C. for about 30 minutes. After sintering, the pellets were screened to 20/40 mesh. [0042]
  • The pellets so formed are surprisingly similar in performance to existing ceramic proppant pellets, albeit with slightly lower crush resistance and lower conductivity with respect to brine and hydrocarbons, as shown in FIG. 1. [0043]
  • Conductivity Data
  • Conductivity testing to determine the relative conductivity of the final FCC pellets was followed according to standard StimLab procedures using 2% KCl as the flowing medium. As shown in Table 1, the data indicate that the FCC product, although slightly lower in absolute conductivity, is within 10% of the performance of a typical lightweight ceramic at higher closures (10,000 psi). This is graphically represented in FIG. 1, where [0044] line 10 shows the performance of commercial lightweight ceramic proppant, and line 20 show the performance of the FCC ceramic proppant.
    TABLE 1
    Conductivity of 20/40 FCC Ceramic Proppant vs.
    Commercial 20/40 Lightweight Ceramic Proppant
    2 lb./sq.ft., 250° F., 50 hours @ closure, 2% KCl solution.
    Conductivity
    (md-ft) Conductivity
    Closure Lightweight (md-ft)
    (psi) Ceramic Proppant FCC Ceramic Proppant
    1000 10518  10278 
    2000 8800 7365
    4000 8157 6500
    6000 6100 5100
    8000 4738 3719
    10000  1973 1770
  • Crush Data
  • Crush numbers were generated at 7,500 psi, according to standard API RP 60 procedures. Crush data, shown in Table 2, indicate a slight decline in crush strength over current lightweight ceramics, but the proppants prepared according to the present invention have performance approximating existing commercial proppant products, and are suitable for commercial use. [0045]
    TABLE 2
    20/40 Proppant Material % Crush at 7500 psi
    FCC Ceramic Proppants 9.1
    Commercial Lightweight 6.8
    Ceramic Proppants
  • It is expected that crush resistance and conductivity of the proppant products prepared according to the present invention, will equal or exceed that of commercial lightweight ceramic proppants, with manufacturing scaleup. [0046]
  • Roundness and Sphericity
  • The Krumbein roundness and sphericity of the FCC derived ceramic proppants are approximately 0.9 and are equivalent to commercial lightweight ceramic proppants. [0047]
  • Additional proppant pellets were prepared from spent FCC catalyst according to the above described procedure, with 24 hour wet milling in a ball mill, drying and pressing into pellets. Sintering was conducted at 1300° C., 1400° C. or 1500° C. for 10 minutes. A final density of 99.6% of theoretical was achieved. X-ray diffraction indicated that the pellets contained about 50 to about 60 mol % cristobalite and about 40 to about 50 mol % mullite. [0048]
  • Other proppant pellets prepared according to the process of the present invention were tested for conductivity as described above, and the results of the tests are reported in Table 3, below. [0049]
    TABLE 3
    Closure Conductivity
    (psi) (md-ft)
    1000  8750-10278
    2000 6500-7365
    4000 5500-6500
    6000 4800-5100
    8000 3500-3719
    10000  1650-1770
  • Advantageously, proppant pellets comprising spent fluid cracking catalyst utilize waste materials from the petroleum refining process which would otherwise be costly to dispose of or reclaim. The proppant pellets of the present invention are lightweight, low density materials with crush strength and conductivity approximating those of existing products. [0050]
  • The utility of the FCC ceramic proppant of the present invention can be extended into high stress applications by coating the proppant with a resin coating. The resin coating may be cured or curable. In one embodiment, the FCC ceramic proppant pellets are coated with a resin dissolved in a solvent which is then evaporated. The resin is then cured. In another embodiment, the FCC ceramic proppant pellets are mixed with a melted resin which is then cooled, coating the pellets. The resin coating is then cured. Alternately, the resin coating is curable, but not substantially cured prior to use. In this embodiment, the resin is cured after injection into the well formation by techniques known in the art. [0051]
  • In a preferred embodiment, FCC ceramic proppant pellets are covered with an inner coating of a fusible, curable resin and an outer coating of a substantially cured resin. The resin coated particle can be used as a self-consolidating proppant, and is compatible with the fracturing fluid. If desired, the proppant pellet may further comprise an additional coating of a substantially cured resin which is located on the exterior of the substrate and inside the inner coating. Such particles exhibit enhanced properties such as improved fractionating fluid compatibility. [0052]
  • Resins suitable for the inner and outer coatings are generally any resins capable of being coated on the substrate and then being cured to a higher degree of polymerization. Examples of such resins include phenol-aldehyde resins of both the resole and novolac type, urea-aldehyde resins, melamine-aldehyde resins, epoxy resins and furfuryl alcohol resins and copolymers of such resins. The resins must form a solid non-tacky coating at ambient temperatures. This is required so that the coated particles remain free flowing and so that they do not agglomerate under normal storage conditions. [0053]
  • The preferred resins are the phenol-formaldehyde resins. These resins include true thermosetting phenolic resins of the resole type and phenolic novolac resins that may be rendered heat reactive by the addition of catalyst and formaldehyde. Such resins with softening points of 185° F. to 290° F. are acceptable. [0054]
  • The inner and outer coatings can be formed starting with the same or different type of resins. For example, the inner coating could be produced from a novolac and the outer coat from a resole. Regardless of the type of resin used, the outer resin must be curable at conditions that leave the inner coating curable, i.e., fusible and heat reactive. [0055]
  • A coupling agent as subsequently described is preferably incorporated during manufacture into the resin that is to be used as the inner coating, and may optionally also be incorporated into the resin that is to be used as the outer coating. The coupling agent which has a functional group reactive in the resin system is added in an amount ranging from about 0.1 to 10% by weight of the resin. The preferred range is from about 0.1 to 3% by weight of the resin. When using the preferred phenol formaldehyde resins, the coupling agent is incorporated into the resin under the normal reaction conditions used for the formation of the phenol-formaldehyde resin. The coupling agent is added to the resin after the phenol formaldehyde condensation reaction has occurred and the resin has been dehydrated to the final free phenol and melt viscosity range. [0056]
  • A preferred resin of the inner coating is a phenolic novolac resin. Particularly suitable are phenolic novolac resins manufactured by Georgia Pacific, known as 99NO7, and by OxyChem, known as 24-715. The GP-099N07 resin has a softening point range of 85° F.-100° F. The OxyChem 24-715 exhibits a softening point range of 70° F.-87° F. When either resin is used, it is necessary to add to the mixture a cross-linking agent to effect the subsequent curing of the resin. Hexamethylenetetramine is the preferred material for this function as it serves as both a catalyst and a source of formaldehyde. [0057]
  • The coupling agent to be employed is chosen based on the resin to be used. For phenolic resins, the coupling agents include amino, epoxy, and ureido organo silanes. Epoxy modified gamma-glycidoxypropyltrimethoxysilane has given excellent results when used in the amount of 0.50-1.00% based on the weight of the resin. The use of coupling agents as incorporated into the resin and as applied directly to the particulate substrate is discussed in Graham et al, U.S. Pat. No. 4,518,039, incorporated herein by reference as if fully written out below. [0058]
  • The outer coating of resin is formed from a heat curable resin coating formed over the inner resin. As stated previously, this outer resin must be curable at conditions that do not completely cure the inner coating thus leaving the inner coating curable. The preferred resins for the outer coating are of the resole type. Particularly suitable is a fast curing resole resin manufactured by Georgia Pacific known as 102N68. Resole resins generally are provided dissolved in a methanol and water solution as is Georgia Pacific 102N68. The resin exhibits an extremely fast cure having a 150° C. hot plate cure time of 30 seconds or less. The preferred resole should be in a solution of water and methanol as the solvent system. The organic solids level should be 65-75%, with a water content in the 5-15% level. The hot plate cure time at 150° C. should be in the range of 25-40 seconds. [0059]
  • The inner and outer resin coatings may be formed by a variety of methods. For example, the solvent coating process described in U.S. Pat. No. 3,929,191, to Graham et al., incorporated herein by reference as if fully written out below. [0060]
  • Other processes such as that described in U.S. Pat. No. 3,492,147 to Young et al. describes the coating of a particulate substrate with a liquid, uncatalyzed resin composition characterized by its ability to extract a catalyst or curing agent from a non-aqueous solution. As stated above, the preferred resins for use with the instant invention are phenol-formaldehyde novolac resins. When using such resins the preferred coating method is a hot melt coating procedure for forming the inner coat. Such a procedure is described in U.S. Pat. No. 4,585,064, to Graham et al, incorporated herein by reference as if fully written out below. Solvents are preferably used to apply the outer coat. The following is a discussion of typical coating process parameters using the preferred phenol-formaldehyde novolac resins. [0061]
  • The improved high strength particles of this embodiment of the invention are coated in a multi-step process. In the first step a phenol-formaldehyde resin inner coat is formed over the particulate substrate. In the second step an outer coating is formed. The outer coating is then cured at conditions that leave the inner resin curable. [0062]
  • The first or inner coating of resin may be formed on the particulate substrate by first coating the heated substrate with a phenol-formaldehyde novolac resin. This coating is carried out by preheating the particulate substrate to a temperature above the melting point of the particular resin used. [0063]
  • Typically the particulate substrate is heated to 350° F. to 500° F. prior to resin addition. The heated substrate is charged to a mixer or muller where generally from about 1% to about 6%, by weight of substrate, resin is added. The preferred amount of resin based on the weight of substrate is about 2%. [0064]
  • After completion of addition of the resin to the substrate, the substrate and melted resin are allowed to mix in the muller for a time sufficient to insure the formation of a uniform coating of resin on the particulate, usually about 10 to about 30 seconds. [0065]
  • Following this mixing step from about 5 to about 25%, by weight of the resin, of hexamethylenetetramine is added to the substrate resin mixture. The preferred amount of hexamethylenetetramine is about 13% by weight of the resin. After addition of the hexamethylenetetramine the entire mixture is allowed to mull for approximately one minute. Then water is added to quench the reaction of the inner resin coating. The amount of water added and the timing of its addition is adjusted to quench the curing of the inner resin while maintaining sufficient heat in the proppant to cure the outer coating that is added next. [0066]
  • The outer resin is then coated over the inner resin and allowed to substantially cure. Substantially cured, as used herein, is to be interpreted as meaning that the cross-linking reaction of the resin is substantially complete and that at typical downhole temperatures only minimal additional curing takes place. When the outer coating is the preferred resole, its addition is preferably carried out by adding it as a solution in a water/methanol mixture comprising between 15-30% methanol and 5-15% water. The preferred mixture is 6% water and 25% methanol. [0067]
  • As can be appreciated, it is useful in preparing the coated proppant of the present embodiment of the invention to precisely control the heat and mass balance to ensure that a cured outer coating encapsulates a still curable inner resin coating. One skilled in the art will recognize that batch size, equipment used, and resins selected will affect process conditions. Initial process temperature, process intervals, amounts of quench water added and amounts of solvent are all interrelated and may be manipulated to arrive at an optimal process. Although experimentation may be required, optimization is within the level of skill in the art. [0068]
  • In yet another preferred embodiment, the FCC ceramic proppant pellet is coated with a substantially cured inner resin coating and an outer resin coating which may be heat curable, fully cured, or of intermediate nature. A reinforcing agent may be interspersed at the inner resin coating/outer resin coating boundary. Suitable resins include those described above in the previous embodiment. [0069]
  • A key to the increased strength of the resin coated particles of this embodiment is the addition of a reinforcing agent in the boundary region between the inner and outer resin coatings. The reinforcing agents are preferably added after coating the particle with the inner resin coating but before the inner coating is cured. [0070]
  • Suitable reinforcing agents include materials known to act as reinforcing agents in typical engineering resins and composite materials. Common to all suitable reinforcing agents is the requirement that they be of a particle size calculated to give the required properties. For example, various mineral fillers including fumed silicas, silica four, talc, clays, mica, asbestos, calcium carbonate, calcium sulfate, metals and wollastanite are suitable. The size of such reinforcing agents is typically less than 300 mesh. Reinforcing materials of a fibrous or rod like nature should be less than about 0.006 inches and preferably about 0.002 inches in length. Of these, silica flour ground to about 325 mesh is preferred. [0071]
  • Another type of reinforcing agent with utility in the present invention are impact modifiers used in engineering resins and composite materials. Examples of such materials include polyisobutylene, ethylene-vinyl acetate copolymers, ethylene-propylene copolymers and other rubbery materials. Also suitable are the so-called core shell impact modifiers having a rubbery core with a graft polymerized crystalline shell. To obtain the proper particle size cryogenic grinding of the rubbery materials is useful. [0072]
  • In accordance with the method of the present invention, the coated or uncoated free flowing FCC ceramic proppant pellet particles produced as described above may be used as proppants, gravel or fluid loss agents in hydraulic fracturing, frac packing and gravel packs. The application will determine the choice of whether the proppant pellet is resin coated or not, and whether the coatings are cured or curable. For example, a curable coating may be indicated for gravel packing, while in fracturing a substantially cured outer coating may be preferred to prevent interaction with the frac fluid. [0073]
  • In carrying out a hydraulic fracturing operation, a fracture is first generated by injecting a viscous fluid into the formation at a sufficient rate and pressure to cause the formation to fail in tension. The fracturing fluid may be an oil base, water base, acid, emulsion, foam or other fluid. The fracturing fluid may contain several additives such as viscosity builders, drag reducers, fluid loss additives, corrosion inhibitors, cross linkers and the like, known in the art. Injection of the fluid is typically continued until a fracture of the desired geometry is obtained. Preferably the fracture at the well bore is at least 2.5 times the diameter of the largest proppant pellet. A carrier fluid having the proppant suspended therein is then pumped into the fracture. If the particles are resin coated with a curable resin, the temperature of the carrier fluid during pumping operations will be low so as to prevent premature curing of the outer resin coat. The carrier fluid bleeds off into the formation and deposits the proppant pellets in the fracture. The process is controlled by fluid loss agents which are small aggregate particles which temporarily slow the fluid loss to the formation. [0074]
  • After the proppant is placed, the well is shut in with pressure maintained on the formation. As the pressure within the fracture approaches the normal formation pressure, the fracture walls close in on the proppant and apply an overburden stress thereto. Deeper wells exert higher closure stress and require stronger proppants. Some curable resin coated proppants do not develop their full strength until the resin coating has cured in the formation. In the event of rapid closure of the fracture, the proppant could be crushed before the resin cures, resulting in decreased permeability. [0075]
  • When proppant pellets having an inner curable coating and an outer substantially cured coating are used, it is believed that the closure stress ruptures the outer coating exposing the curable inner coating. At the same time ambient formation temperature heats the inner resin coating. Initially, the resin fuses and unites at contact areas between contiguous particles or with the formation walls. As the temperature increases the polymerization reaction proceeds until the resin is cured into an insoluble and infusible crosslinked state. Grain to grain links are formed in pendular regions between adjacent particles and bond the packed particles into a permeable mass having considerable compressive strength. [0076]
  • It should now be apparent that various embodiments of the present invention accomplish the object of this invention. It should be appreciated that the present invention is not limited to the specific embodiments described above, but includes variations, modifications, and equivalent embodiments defined by the following claims. [0077]

Claims (30)

What is claimed is:
1. A spherical ceramic proppant pellet comprising spent fluid cracking catalyst particles, wherein the pellet is formed by:
a. reducing the median particle size of the catalyst;
b. mixing the catalyst particles with water and a binder to form spherical pellets; and
c. sintering the pellets.
2. The proppant pellet of claim 1, wherein the pellet has a Krumbein roundness and sphericity of greater than or equal to 0.9.
3. The proppant pellet of claim 1, wherein the pellet has a crush strength at 7,500 psi of less than or equal to 9.1 percent.
4. The proppant pellet of claim 1, wherein the pellet has a conductivity at least about 1650 md-ft, after 50 hours at 10,000 psi and 250° F. using 2% KCl as the flowing medium.
5. The proppant pellet of claim 1, wherein the spent fluid cracking catalyst comprises from about 25 to about 80 weight percent silica, and from about 20 to about 75 weight percent alumina.
6. The proppant pellet of claim 1, wherein the pellet comprises silica and alumina in a weight ratio of about 2:1 to about 1:1.
7. The proppant pellet of claim 1, wherein the pellet comprises silica and alumina in a weight ratio of about 1:1.
8. The proppant pellet of claim 1, wherein the spent fluid cracking catalyst comprises a zeolite.
9. The proppant pellet of claim 1, wherein the density of the pellets after sintering is from about 2 g/cm3 to about 2.7 g/cm3.
10. The proppant pellet of claim 1, wherein the pellet is coated with at least one resin.
11. A method for preparing a spherical ceramic proppant pellet, the method comprising:
a. providing spent fluid cracking catalyst particles;
b. reducing the particle size of the catalyst particles;
c. mixing the catalyst particles with water and a binder to form spherical pellets; and
d. sintering the pellets.
12. The method of claim 11, wherein said reducing the particle size of the catalyst particles comprises reducing the mean particle size of the particles to from about 4 to about 6 microns.
13. The method of claim 11, wherein the binder is one of polyvinyl acetate, methyl cellulose, and polymethylmethacrylate.
14. The method of claim 11, wherein said sintering comprises heating the pellets at a temperature of between about 1,300° C. to about 1,500° C.
15. The method of claim 11, wherein the method further comprises coating the pellets with at least one resin after sintering.
16. The method of claim 15, wherein said coating comprises coating the pellet with an inner coating of a fusible, curable resin and an outer coating of a substantially cured resin.
17. The method of claim 15, wherein said coating comprises coating the pellet with a substantially cured inner resin coating, an outer resin coating, wherein the outer resin coating may be cured or curable, and optionally a reinforcing agent.
18. The method of claim 11, wherein the spent fluid cracking catalyst particles comprise a zeolite.
19. The method of claim 11, further comprising screening the pellets to a mean particle size of 20/40 mesh.
20. A proppant pellet composition comprising pelletized and calcined spent fluid cracking catalyst, wherein the spent fluid cracking catalyst comprises from about 25 to about 80 weight percent silica, and from about 20 to about 75 weight percent alumina.
21. The proppant pellet composition of claim 20, wherein the silica and alumina are present in a weight ratio of silica/alumina of from about 2:1 to about 1:1.
22. The proppant pellet composition of claim 20, wherein the silica and alumina are present in a weight ratio of silica/alumina of about 1:1.
23. The proppant pellet composition of claim 20, wherein the density of the pellet composition after sintering is from about 2 g/cm3 to about 2.7 g/cm3.
24. The proppant pellet composition of claim 20, wherein the mean particle size of the pellet composition is about 20/40 mesh.
25. The proppant pellet composition of claim 20, wherein the spent fluid cracking catalyst optionally further comprises at least one of:
up to about 1000 parts per million copper;
up to about 7000 parts per million vanadium;
up to about 200 parts per million lead;
up to about 7000 parts per million nickel;
up to about 2500 parts per million antimony;
up to about 2 weight percent iron;
up to about 1.5 weight percent sodium; and,
detectable amounts of at least one component selected from the group consisting of platinum, rhenium, sulfur compounds, and rare earth metals.
26. The proppant pellet composition of claim 20, wherein the composition further comprises at least one resin coating.
27. The proppant pellet composition of claim 25, wherein the resin coating comprises an inner coating of a substantially cured resin, an outer coating of resin, and optionally a reinforcing agent interspersed at the inner coating/outer coating boundary.
28. The proppant pellet composition of claim 25, wherein the resin coating comprises an inner coating of a fusible curable resin and an outer coating of a substantially heat-cured resin, wherein the resin of the outer coating is heat-curable at conditions that leave the resin of the inner coating uncured.
29. The proppant pellet composition of claims 27 or 28, wherein
the resin of the inner coating is at least one resin independently selected from the group consisting of phenol-aldehyde resins, urea-aldehyde resins, melamine-aldehyde resins, epoxy resins, furfuryl alcohol resins, and copolymers of such resins; and wherein
the resin of the outer coating is at least one resin independently selected from the group consisting of phenol-aldehyde resins, urea-aldehyde resins, melamine-aldehyde resins, epoxy resins, furfuryl alcohol resins, and copolymers of such resins.
30. A method of propping a fracture in a subterranean formation comprising creating a fracture in said subterranean formation, and placing in said fracture a quantity of the proppant pellets set forth in any one of the above claims.
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Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004097171A1 (en) * 2003-04-29 2004-11-11 Mineração Curimbaba Ltda. Proppant for hydraulic fracturing of oil and gas wells and process for decreasing or eliminating 'flow-back' effect in oil and gas wells'
US20040231844A1 (en) * 2003-05-22 2004-11-25 Nguyen Philip D. Lightweight high strength particles and methods of their use in wells
US20050016726A1 (en) * 2003-05-22 2005-01-27 Nguyen Philip D. High strength particles and methods of their use in subterranean operations
US7135231B1 (en) 2003-07-01 2006-11-14 Fairmont Minerals, Ltd. Process for incremental coating of proppants for hydraulic fracturing and proppants produced therefrom
US20080058228A1 (en) * 2006-08-30 2008-03-06 Carbo Ceramics Inc. Low bulk density proppant and methods for producing the same
US20080078547A1 (en) * 2006-10-02 2008-04-03 Sinclair A Richard Proppants with soluble composite coatings
US20080115935A1 (en) * 2006-01-06 2008-05-22 Mango Frank D In situ conversion of heavy hydrocarbons to catalytic gas
JP2008538122A (en) * 2005-02-25 2008-10-09 スーペリアー・グラファイト・カンパニー Graphite coating of particulate matter
US20090014179A1 (en) * 2006-01-06 2009-01-15 Mango Frank D In Situ Conversion Of Heavy Hydrocarbons To Catalytic Gas
US20100071901A1 (en) * 2008-09-25 2010-03-25 Halliburton Energy Services, Inc. Sintered proppant made with a raw material containing alkaline earth equivalent
US20110195877A1 (en) * 2008-10-30 2011-08-11 Adderson Thomas J Crystalline ceramic particles
WO2012021373A1 (en) 2010-08-12 2012-02-16 Conocophillips Company Controlled release material
US20120048554A1 (en) * 2010-08-25 2012-03-01 Schlumberger Technology Corporation Delivery of particulate material below ground
WO2012174118A1 (en) * 2011-06-15 2012-12-20 MAR Systems, Inc. Proppants for removal of contaminants from fluid streams and methods of using same
US8727006B2 (en) 2010-05-04 2014-05-20 Petroleum Habitats, Llc Detecting and remedying hydrogen starvation of catalytic hydrocarbon generation reactions in earthen formations
US20140329664A1 (en) * 2010-11-09 2014-11-06 Sienna Technologies, Inc. High temperature catalysts for decomposition of liquid monopropellants and methods for producing the same
WO2014204517A3 (en) * 2013-03-16 2015-04-09 Mcclung Guy L Cryogenic treatments & systems, materials made with them & methods for using them

Families Citing this family (138)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7426961B2 (en) * 2002-09-03 2008-09-23 Bj Services Company Method of treating subterranean formations with porous particulate materials
US6580785B2 (en) * 1997-02-28 2003-06-17 Paradyne Corporation Apparatus and method for simultaneous multiple telephone type services on a single telephone line
US6779604B2 (en) * 2000-06-05 2004-08-24 Exxonmobil Upstream Research Company Deformable gravel pack and method of forming
US20030195121A1 (en) * 2002-04-11 2003-10-16 Fitzgerald Michael Dylon Sulphur based proppants and process therefor
US6691780B2 (en) 2002-04-18 2004-02-17 Halliburton Energy Services, Inc. Tracking of particulate flowback in subterranean wells
KR100688839B1 (en) * 2002-08-19 2007-02-28 에스케이 주식회사 Cordierite ceramic article using waste catalyst and preparing method for the same
US7036591B2 (en) * 2002-10-10 2006-05-02 Carbo Ceramics Inc. Low density proppant
US6780804B2 (en) * 2003-01-24 2004-08-24 Saint-Gobain Ceramics & Plastics, Inc. Extended particle size distribution ceramic fracturing proppant
US7210528B1 (en) * 2003-03-18 2007-05-01 Bj Services Company Method of treatment subterranean formations using multiple proppant stages or mixed proppants
EP1659103B1 (en) * 2003-05-08 2014-07-09 Otkrytoe Aktsionernoe Obschestvo "Borovichsky Kombinat Ogneuporov". Charging material for producing refractory high-strength spherical granules and method for the production thereof
US7032664B2 (en) * 2004-06-02 2006-04-25 Halliburton Energy Services, Inc. Nanocomposite particulates and methods of using nanocomposite particulates
US7871702B2 (en) * 2003-07-30 2011-01-18 Halliburton Energy Services, Inc. Particulates comprising silica and alumina, and methods of utilizing these particulates in subterranean applications
CA2540415C (en) * 2003-11-04 2007-01-02 Global Synfrac Inc. Proppants and their manufacture
US20050173116A1 (en) 2004-02-10 2005-08-11 Nguyen Philip D. Resin compositions and methods of using resin compositions to control proppant flow-back
US7211547B2 (en) 2004-03-03 2007-05-01 Halliburton Energy Services, Inc. Resin compositions and methods of using such resin compositions in subterranean applications
JP2007532721A (en) * 2004-04-12 2007-11-15 カーボ、サラミクス、インク Hydraulic fracturing proppant coating and / or treatment to improve wettability, proppant lubrication and / or reduce damage by fracturing fluid and reservoir fluid
US7299875B2 (en) 2004-06-08 2007-11-27 Halliburton Energy Services, Inc. Methods for controlling particulate migration
US7213651B2 (en) * 2004-06-10 2007-05-08 Bj Services Company Methods and compositions for introducing conductive channels into a hydraulic fracturing treatment
JP2008505835A (en) 2004-07-09 2008-02-28 カーボ、サラミクス、インク Method for producing solid ceramic particles using a spray drying process
US20060016598A1 (en) * 2004-07-21 2006-01-26 Urbanek Thomas W Lightweight proppant and method of making same
US7409999B2 (en) * 2004-07-30 2008-08-12 Baker Hughes Incorporated Downhole inflow control device with shut-off feature
US20060052251A1 (en) * 2004-09-09 2006-03-09 Anderson David K Time release multisource marker and method of deployment
JP2008513553A (en) * 2004-09-14 2008-05-01 カーボ、サラミクス、インク Sintered spherical pellet
US7757768B2 (en) 2004-10-08 2010-07-20 Halliburton Energy Services, Inc. Method and composition for enhancing coverage and displacement of treatment fluids into subterranean formations
US20070059528A1 (en) * 2004-12-08 2007-03-15 Carbo Ceramics Inc. Low resin demand foundry media
US7883740B2 (en) 2004-12-12 2011-02-08 Halliburton Energy Services, Inc. Low-quality particulates and methods of making and using improved low-quality particulates
MX2007007914A (en) * 2004-12-30 2007-08-14 Sun Drilling Products Corp Thermoset nanocomposite particles, processing for their production, and their use in oil and natural gas drilling applications.
US8258083B2 (en) * 2004-12-30 2012-09-04 Sun Drilling Products Corporation Method for the fracture stimulation of a subterranean formation having a wellbore by using impact-modified thermoset polymer nanocomposite particles as proppants
US20060162929A1 (en) * 2005-01-26 2006-07-27 Global Synfrac Inc. Lightweight proppant and method of making same
WO2006083914A2 (en) * 2005-02-02 2006-08-10 Total Separation Solutions, Llc In situ filter construction
US8012533B2 (en) * 2005-02-04 2011-09-06 Oxane Materials, Inc. Composition and method for making a proppant
AR053672A1 (en) * 2005-02-04 2007-05-16 Oxane Materials Inc A COMPOSITION AND METHOD TO MAKE AN ENTIBATOR
US7867613B2 (en) * 2005-02-04 2011-01-11 Oxane Materials, Inc. Composition and method for making a proppant
US7491444B2 (en) * 2005-02-04 2009-02-17 Oxane Materials, Inc. Composition and method for making a proppant
EP1861210A2 (en) * 2005-03-01 2007-12-05 Carbo Ceramics Inc. Methods for producing sintered particles from a slurry of an alumina-containing raw material
US7673686B2 (en) 2005-03-29 2010-03-09 Halliburton Energy Services, Inc. Method of stabilizing unconsolidated formation for sand control
US9714371B2 (en) 2005-05-02 2017-07-25 Trican Well Service Ltd. Method for making particulate slurries and particulate slurry compositions
US7318474B2 (en) 2005-07-11 2008-01-15 Halliburton Energy Services, Inc. Methods and compositions for controlling formation fines and reducing proppant flow-back
US20070023187A1 (en) * 2005-07-29 2007-02-01 Carbo Ceramics Inc. Sintered spherical pellets useful for gas and oil well proppants
DE102005045180B4 (en) * 2005-09-21 2007-11-15 Center For Abrasives And Refractories Research & Development C.A.R.R.D. Gmbh Spherical corundum grains based on molten aluminum oxide and a process for their preparation
JP2009512557A (en) * 2005-10-19 2009-03-26 カーボ、サラミクス、インク Low thermal expansion casting media
US7845409B2 (en) * 2005-12-28 2010-12-07 3M Innovative Properties Company Low density proppant particles and use thereof
US7819192B2 (en) 2006-02-10 2010-10-26 Halliburton Energy Services, Inc. Consolidating agent emulsions and associated methods
US8613320B2 (en) 2006-02-10 2013-12-24 Halliburton Energy Services, Inc. Compositions and applications of resins in treating subterranean formations
US7926591B2 (en) 2006-02-10 2011-04-19 Halliburton Energy Services, Inc. Aqueous-based emulsified consolidating agents suitable for use in drill-in applications
US7665517B2 (en) 2006-02-15 2010-02-23 Halliburton Energy Services, Inc. Methods of cleaning sand control screens and gravel packs
CA2536957C (en) * 2006-02-17 2008-01-22 Jade Oilfield Service Ltd. Method of treating a formation using deformable proppants
US8151874B2 (en) 2006-02-27 2012-04-10 Halliburton Energy Services, Inc. Thermal recovery of shallow bitumen through increased permeability inclusions
US20070199700A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced hydrocarbon recovery by in situ combustion of oil sand formations
US7591306B2 (en) * 2006-02-27 2009-09-22 Geosierra Llc Enhanced hydrocarbon recovery by steam injection of oil sand formations
US20070199697A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced hydrocarbon recovery by steam injection of oil sand formations
US7866395B2 (en) * 2006-02-27 2011-01-11 Geosierra Llc Hydraulic fracture initiation and propagation control in unconsolidated and weakly cemented sediments
US20070199711A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced hydrocarbon recovery by vaporizing solvents in oil sand formations
US20070199710A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced hydrocarbon recovery by convective heating of oil sand formations
US7748458B2 (en) * 2006-02-27 2010-07-06 Geosierra Llc Initiation and propagation control of vertical hydraulic fractures in unconsolidated and weakly cemented sediments
US7404441B2 (en) * 2006-02-27 2008-07-29 Geosierra, Llc Hydraulic feature initiation and propagation control in unconsolidated and weakly cemented sediments
US20070199699A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced Hydrocarbon Recovery By Vaporizing Solvents in Oil Sand Formations
US20070199712A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced hydrocarbon recovery by steam injection of oil sand formations
US20070199701A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Ehanced hydrocarbon recovery by in situ combustion of oil sand formations
US20070199705A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Enhanced hydrocarbon recovery by vaporizing solvents in oil sand formations
US20070199695A1 (en) * 2006-02-27 2007-08-30 Grant Hocking Hydraulic Fracture Initiation and Propagation Control in Unconsolidated and Weakly Cemented Sediments
US7520325B2 (en) * 2006-02-27 2009-04-21 Geosierra Llc Enhanced hydrocarbon recovery by in situ combustion of oil sand formations
US7604054B2 (en) * 2006-02-27 2009-10-20 Geosierra Llc Enhanced hydrocarbon recovery by convective heating of oil sand formations
US7828998B2 (en) 2006-07-11 2010-11-09 Carbo Ceramics, Inc. Material having a controlled microstructure, core-shell macrostructure, and method for its fabrication
US20080066910A1 (en) * 2006-09-01 2008-03-20 Jean Andre Alary Rod-shaped proppant and anti-flowback additive, method of manufacture, and method of use
US8562900B2 (en) * 2006-09-01 2013-10-22 Imerys Method of manufacturing and using rod-shaped proppants and anti-flowback additives
WO2008046074A2 (en) * 2006-10-13 2008-04-17 Ek Roger B Ferrosilicate proppant and granule composition
US7934557B2 (en) 2007-02-15 2011-05-03 Halliburton Energy Services, Inc. Methods of completing wells for controlling water and particulate production
RU2421498C2 (en) * 2007-03-12 2011-06-20 Сэнт-Гобэн Керамикс Энд Пластикс, Инк. High-strength ceramic elements and production method and use thereof
RU2346910C1 (en) * 2007-04-20 2009-02-20 Шлюмбергер Текнолоджи Б.В. Low density ceramic proppant and method of preparation thereof
BRPI0810971A2 (en) 2007-04-26 2015-07-21 Trican Well Service Ltd Fluid particulate drag control method and aqueous sludge composition method
EA201000114A1 (en) * 2007-07-06 2010-06-30 Карбо Керамикс Инк. PROPPANT AND METHOD OF HYDRAULIC PLASTING OF THE PLATE (OPTIONS)
US7647966B2 (en) * 2007-08-01 2010-01-19 Halliburton Energy Services, Inc. Method for drainage of heavy oil reservoir via horizontal wellbore
US7942206B2 (en) 2007-10-12 2011-05-17 Baker Hughes Incorporated In-flow control device utilizing a water sensitive media
US8312931B2 (en) 2007-10-12 2012-11-20 Baker Hughes Incorporated Flow restriction device
US8096351B2 (en) * 2007-10-19 2012-01-17 Baker Hughes Incorporated Water sensing adaptable in-flow control device and method of use
US20090301726A1 (en) * 2007-10-12 2009-12-10 Baker Hughes Incorporated Apparatus and Method for Controlling Water In-Flow Into Wellbores
US7784543B2 (en) 2007-10-19 2010-08-31 Baker Hughes Incorporated Device and system for well completion and control and method for completing and controlling a well
US7775271B2 (en) * 2007-10-19 2010-08-17 Baker Hughes Incorporated Device and system for well completion and control and method for completing and controlling a well
US7793714B2 (en) * 2007-10-19 2010-09-14 Baker Hughes Incorporated Device and system for well completion and control and method for completing and controlling a well
US7891430B2 (en) * 2007-10-19 2011-02-22 Baker Hughes Incorporated Water control device using electromagnetics
US20090101329A1 (en) * 2007-10-19 2009-04-23 Baker Hughes Incorporated Water Sensing Adaptable Inflow Control Device Using a Powered System
US7775277B2 (en) 2007-10-19 2010-08-17 Baker Hughes Incorporated Device and system for well completion and control and method for completing and controlling a well
US7913755B2 (en) 2007-10-19 2011-03-29 Baker Hughes Incorporated Device and system for well completion and control and method for completing and controlling a well
US8069921B2 (en) * 2007-10-19 2011-12-06 Baker Hughes Incorporated Adjustable flow control devices for use in hydrocarbon production
US20090118145A1 (en) * 2007-10-19 2009-05-07 Carbo Ceramics Inc. Method for producing proppant using a dopant
US8544548B2 (en) 2007-10-19 2013-10-01 Baker Hughes Incorporated Water dissolvable materials for activating inflow control devices that control flow of subsurface fluids
US7913765B2 (en) 2007-10-19 2011-03-29 Baker Hughes Incorporated Water absorbing or dissolving materials used as an in-flow control device and method of use
US20090101354A1 (en) * 2007-10-19 2009-04-23 Baker Hughes Incorporated Water Sensing Devices and Methods Utilizing Same to Control Flow of Subsurface Fluids
US7918272B2 (en) 2007-10-19 2011-04-05 Baker Hughes Incorporated Permeable medium flow control devices for use in hydrocarbon production
US7789139B2 (en) * 2007-10-19 2010-09-07 Baker Hughes Incorporated Device and system for well completion and control and method for completing and controlling a well
US20090101344A1 (en) * 2007-10-22 2009-04-23 Baker Hughes Incorporated Water Dissolvable Released Material Used as Inflow Control Device
US7918275B2 (en) * 2007-11-27 2011-04-05 Baker Hughes Incorporated Water sensitive adaptive inflow control using couette flow to actuate a valve
US7832477B2 (en) 2007-12-28 2010-11-16 Halliburton Energy Services, Inc. Casing deformation and control for inclusion propagation
US7950455B2 (en) 2008-01-14 2011-05-31 Baker Hughes Incorporated Non-spherical well treating particulates and methods of using the same
US8839849B2 (en) 2008-03-18 2014-09-23 Baker Hughes Incorporated Water sensitive variable counterweight device driven by osmosis
US7992637B2 (en) 2008-04-02 2011-08-09 Baker Hughes Incorporated Reverse flow in-flow control device
US8931570B2 (en) 2008-05-08 2015-01-13 Baker Hughes Incorporated Reactive in-flow control device for subterranean wellbores
US8113292B2 (en) 2008-05-13 2012-02-14 Baker Hughes Incorporated Strokable liner hanger and method
US8555958B2 (en) 2008-05-13 2013-10-15 Baker Hughes Incorporated Pipeless steam assisted gravity drainage system and method
US20090283256A1 (en) * 2008-05-13 2009-11-19 Baker Hughes Incorporated Downhole tubular length compensating system and method
US8171999B2 (en) 2008-05-13 2012-05-08 Baker Huges Incorporated Downhole flow control device and method
US7789152B2 (en) * 2008-05-13 2010-09-07 Baker Hughes Incorporated Plug protection system and method
US7762341B2 (en) 2008-05-13 2010-07-27 Baker Hughes Incorporated Flow control device utilizing a reactive media
US8205675B2 (en) * 2008-10-09 2012-06-26 Baker Hughes Incorporated Method of enhancing fracture conductivity
US7762329B1 (en) 2009-01-27 2010-07-27 Halliburton Energy Services, Inc. Methods for servicing well bores with hardenable resin compositions
US8132624B2 (en) 2009-06-02 2012-03-13 Baker Hughes Incorporated Permeability flow balancing within integral screen joints and method
US8056627B2 (en) 2009-06-02 2011-11-15 Baker Hughes Incorporated Permeability flow balancing within integral screen joints and method
US8151881B2 (en) 2009-06-02 2012-04-10 Baker Hughes Incorporated Permeability flow balancing within integral screen joints
CN101880524A (en) 2010-04-27 2010-11-10 福建省宁德市俊杰瓷业有限公司 Ultra-low-density ceramic proppant and preparation method thereof
US8722140B2 (en) 2009-09-22 2014-05-13 Certainteed Corporation Solar heat-reflective roofing granules, solar heat-reflective shingles, and process for producing the same
MY162476A (en) 2009-12-22 2017-06-15 Halliburton Energy Services Inc A proppant having a glass-ceramic material
US8714248B2 (en) * 2010-08-25 2014-05-06 Schlumberger Technology Corporation Method of gravel packing
US9051511B2 (en) 2010-12-08 2015-06-09 Joseph Buford PARSE Multiple component neutrally buoyant proppant
US9102867B2 (en) 2010-12-08 2015-08-11 Joseph Buford PARSE Single component neutrally buoyant proppant
US8614157B2 (en) * 2011-03-25 2013-12-24 Carbo Ceramics, Inc. Sintered particles and methods for producing sintered particles from a slurry of an alumina-containing raw material
US8955585B2 (en) 2011-09-27 2015-02-17 Halliburton Energy Services, Inc. Forming inclusions in selected azimuthal orientations from a casing section
US10041327B2 (en) 2012-06-26 2018-08-07 Baker Hughes, A Ge Company, Llc Diverting systems for use in low temperature well treatment operations
US9920610B2 (en) 2012-06-26 2018-03-20 Baker Hughes, A Ge Company, Llc Method of using diverter and proppant mixture
CA2858545A1 (en) * 2011-12-06 2013-06-13 Imerys Oilfield Minerals, Inc. Granulated inorganic particulates and their use in oilfield applications
US9033040B2 (en) 2011-12-16 2015-05-19 Baker Hughes Incorporated Use of composite of lightweight hollow core having adhered or embedded cement in cementing a well
CA2877830C (en) 2012-06-26 2018-03-20 Baker Hughes Incorporated Methods of improving hydraulic fracture network
AU2013280404B2 (en) 2012-06-26 2017-02-02 Baker Hughes Incorporated Method of using phthalic and terephthalic acids and derivatives thereof in well treatment operations
US10988678B2 (en) 2012-06-26 2021-04-27 Baker Hughes, A Ge Company, Llc Well treatment operations using diverting system
US11111766B2 (en) 2012-06-26 2021-09-07 Baker Hughes Holdings Llc Methods of improving hydraulic fracture network
US9646729B2 (en) * 2013-01-18 2017-05-09 Westinghouse Electric Company Llc Laser sintering systems and methods for remote manufacture of high density pellets containing highly radioactive elements
US9429006B2 (en) 2013-03-01 2016-08-30 Baker Hughes Incorporated Method of enhancing fracture conductivity
CN103773356B (en) * 2014-01-21 2016-11-16 成都新柯力化工科技有限公司 A kind of shale gas exploitation particulate material and preparation method thereof
BR112016028045A8 (en) 2014-06-02 2021-05-04 Anavo Tech Llc modified biopolymers, and their production methods
US9994764B2 (en) * 2014-07-31 2018-06-12 Carbo Ceramics Inc. Methods and systems for infusing porous ceramic proppant with a chemical treatment agent
EP3180494A4 (en) 2014-08-15 2018-01-03 Baker Hughes Incorporated Diverting systems for use in well treatment operations
EP3359505A1 (en) * 2015-10-05 2018-08-15 ZaaK Technologies GmbH Sintered spheres, process for their production and use thereof
MX2018006309A (en) 2015-11-23 2019-09-04 Tethis Inc Coated particles and methods of making and using the same.
US20170145527A1 (en) 2015-11-24 2017-05-25 Premier Industries, LLC System and Method for Forming Spherical Silica-Based Proppant and Pig Iron Utilizing Mining Slag
US10730799B2 (en) 2016-12-31 2020-08-04 Certainteed Corporation Solar reflective composite granules and method of making solar reflective composite granules
US10752831B2 (en) 2017-03-15 2020-08-25 Carbo Ceramics Inc. Catalytic proppant and methods for making and using same
US10618042B1 (en) 2017-05-31 2020-04-14 University Of South Florida Mixed metal oxide extrudate catalyst
FR3095653A1 (en) * 2019-05-03 2020-11-06 Jianqiang Zhao DOUBLE-COATED SUPPORT AGENT

Family Cites Families (67)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3492147A (en) 1964-10-22 1970-01-27 Halliburton Co Method of coating particulate solids with an infusible resin
US3497008A (en) 1968-03-05 1970-02-24 Exxon Production Research Co Method of propping fractures with ceramic particles
US3642505A (en) 1968-07-11 1972-02-15 Gen Refractories Co Manufacture of mullite refractory grain and product
US3659651A (en) 1970-08-17 1972-05-02 Exxon Production Research Co Hydraulic fracturing using reinforced resin pellets
US3890072A (en) 1973-09-04 1975-06-17 Norton Co Apparatus for forming solid spherical pellets
US3929191A (en) 1974-08-15 1975-12-30 Exxon Production Research Co Method for treating subterranean formations
GB1514927A (en) 1974-10-23 1978-06-21 United States Borax Chem Process for the production of boric acid
CA1045027A (en) 1975-09-26 1978-12-26 Walter A. Hedden Hydraulic fracturing method using sintered bauxite propping agent
JPS57140323A (en) 1978-08-28 1982-08-30 Torobin Leonard B Formed matter made from hollow beads
US4671909A (en) 1978-09-21 1987-06-09 Torobin Leonard B Method for making hollow porous microspheres
US5212143A (en) 1978-08-28 1993-05-18 Torobin Leonard B Hollow porous microspheres made from dispersed particle compositions
US4440866A (en) 1980-07-07 1984-04-03 A/S Niro Atomizer Process for the production of sintered bauxite spheres
US4547468A (en) 1981-08-10 1985-10-15 Terra Tek, Inc. Hollow proppants and a process for their manufacture
US4597991A (en) 1981-08-20 1986-07-01 Graham John W Method for producing heat curable particles
US4518039A (en) 1981-08-20 1985-05-21 Graham John W Method for treating subterranean formations
US4522731A (en) 1982-10-28 1985-06-11 Dresser Industries, Inc. Hydraulic fracturing propping agent
US4658899A (en) 1982-02-09 1987-04-21 Standard Oil Proppants Company, L.P. Use of uncalcined/partially calcined ingredients in the manufacture of sintered pellets useful for gas and oil well proppants
US4623630A (en) 1982-02-09 1986-11-18 Standard Oil Proppants Company Use of uncalcined/partially calcined ingredients in the manufacture of sintered pellets useful for gas and oil well proppants
US4894285B1 (en) 1982-02-09 1994-01-11 Carbo Ceramics Inc. Sintered spherical pellets containing clay as a major component useful for gas and oil well proppants
US4427068A (en) 1982-02-09 1984-01-24 Kennecott Corporation Sintered spherical pellets containing clay as a major component useful for gas and oil well proppants
US4879181B1 (en) 1982-02-09 1994-01-11 Carbo Ceramics Inc. Sintered spherical pellets containing clay as a major component useful for gas and oil well proppants
US4462466A (en) 1982-03-29 1984-07-31 Kachnik Joseph E Method of propping fractures in subterranean formations
AU547407B2 (en) 1982-07-23 1985-10-17 Norton Co. Low density proppant for oil and gas wells
US5120455A (en) 1982-10-28 1992-06-09 Carbo Ceramics Inc. Hydraulic fracturing propping agent
US4555493A (en) 1983-12-07 1985-11-26 Reynolds Metals Company Aluminosilicate ceramic proppant for gas and oil well fracturing and method of forming same
US4493875A (en) 1983-12-09 1985-01-15 Minnesota Mining And Manufacturing Company Proppant for well fractures and method of making same
US4944905A (en) 1984-01-18 1990-07-31 Minnesota Mining And Manufacturing Company Particulate ceramic useful as a proppant
US4680230A (en) 1984-01-18 1987-07-14 Minnesota Mining And Manufacturing Company Particulate ceramic useful as a proppant
US4585064A (en) 1984-07-02 1986-04-29 Graham John W High strength particulates
US4717594A (en) 1984-07-02 1988-01-05 Graham John W High strength particulates
US4668645A (en) 1984-07-05 1987-05-26 Arup Khaund Sintered low density gas and oil well proppants from a low cost unblended clay material of selected composition
US4744831A (en) 1984-07-30 1988-05-17 Minnesota Mining And Manufacturing Company Hollow inorganic spheres and methods for making such spheres
US4713203A (en) 1985-05-23 1987-12-15 Comalco Aluminium Limited Bauxite proppant
US4632876A (en) 1985-06-12 1986-12-30 Minnesota Mining And Manufacturing Company Ceramic spheroids having low density and high crush resistance
US4725390A (en) 1985-06-12 1988-02-16 Minnesota Mining And Manufacturing Company Process for making ceramic spheroids
US4639427A (en) 1985-06-28 1987-01-27 Norton Company Stress-corrosion resistant proppant for oil and gas wells
US4657754A (en) 1985-11-21 1987-04-14 Norton Company Aluminum oxide powders and process
US4654266A (en) 1985-12-24 1987-03-31 Kachnik Joseph L Durable, high-strength proppant and method for forming same
US4867931A (en) 1986-02-10 1989-09-19 Materials Technology Corporation Methods for producing fiber reinforced microspheres made from dispersed particle compositions
US4785884A (en) 1986-05-23 1988-11-22 Acme Resin Corporation Consolidation of partially cured resin coated particulate material
US4733729A (en) 1986-09-08 1988-03-29 Dowell Schlumberger Incorporated Matched particle/liquid density well packing technique
US4869960A (en) 1987-09-17 1989-09-26 Minnesota Mining And Manufacturing Company Epoxy novolac coated ceramic particulate
US5030603A (en) 1988-08-02 1991-07-09 Norton-Alcoa Lightweight oil and gas well proppants
US4921820A (en) 1989-01-17 1990-05-01 Norton-Alcoa Proppants Lightweight proppant for oil and gas wells and methods for making and using same
US4921821A (en) 1988-08-02 1990-05-01 Norton-Alcoa Proppants Lightweight oil and gas well proppants and methods for making and using same
USRE34371E (en) 1989-01-17 1993-09-07 Norton-Alcoa Lightweight proppant for oil and gas wells and methods for making and using same
US4977116A (en) 1989-01-17 1990-12-11 Norton-Alcoa Method for making lightweight proppant for oil and gas wells
GB8907993D0 (en) 1989-04-10 1989-05-24 Ici Plc Particulate ceramic materials and production thereof
US4938286A (en) 1989-07-14 1990-07-03 Mobil Oil Corporation Method for formation stimulation in horizontal wellbores using hydraulic fracturing
US5188175A (en) 1989-08-14 1993-02-23 Carbo Ceramics Inc. Method of fracturing a subterranean formation with a lightweight propping agent
ES2056394T3 (en) 1989-12-22 1994-10-01 Comalco Alu CERAMIC MICROSPHERES.
US5240654A (en) 1989-12-22 1993-08-31 Comalco Aluminium Limited Method of making ceramic microspheres
US5310002A (en) 1992-04-17 1994-05-10 Halliburton Company Gas well treatment compositions and methods
US5425994A (en) 1992-08-04 1995-06-20 Technisand, Inc. Resin coated particulates comprissing a formaldehyde source-metal compound (FS-MC) complex
US5321062A (en) 1992-10-20 1994-06-14 Halliburton Company Substituted alkoxy benzene and use thereof as wetting aid for polyepoxide resins
US5305832A (en) 1992-12-21 1994-04-26 The Western Company Of North America Method for fracturing high temperature subterranean formations
US5424285A (en) 1993-01-27 1995-06-13 The Western Company Of North America Method for reducing deleterious environmental impact of subterranean fracturing processes
CA2497728C (en) 1993-04-05 2008-02-19 Roger J. Card Control of particulate flowback in subterranean wells
US5422183A (en) 1993-06-01 1995-06-06 Santrol, Inc. Composite and reinforced coatings on proppants and particles
US5639806A (en) 1995-03-28 1997-06-17 Borden Chemical, Inc. Bisphenol-containing resin coating articles and methods of using same
US5787986A (en) 1995-03-29 1998-08-04 Halliburton Energy Services, Inc. Control of particulate flowback in subterranean wells
US5775425A (en) 1995-03-29 1998-07-07 Halliburton Energy Services, Inc. Control of fine particulate flowback in subterranean wells
US5582249A (en) 1995-08-02 1996-12-10 Halliburton Company Control of particulate flowback in subterranean wells
US5558822A (en) 1995-08-16 1996-09-24 Gas Research Institute Method for production of spheroidized particles
US5833361A (en) 1995-09-07 1998-11-10 Funk; James E. Apparatus for the production of small spherical granules
US5582250A (en) 1995-11-09 1996-12-10 Dowell, A Division Of Schlumberger Technology Corporation Overbalanced perforating and fracturing process using low-density, neutrally buoyant proppant
US5782300A (en) 1996-11-13 1998-07-21 Schlumberger Technology Corporation Suspension and porous pack for reduction of particles in subterranean well fluids, and method for treating an underground formation

Cited By (43)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7954548B2 (en) 2003-04-29 2011-06-07 Mineracao Curimbaba Ltda. Proppant for hydraulic fracturing of oil and gas wells
WO2004097171A1 (en) * 2003-04-29 2004-11-11 Mineração Curimbaba Ltda. Proppant for hydraulic fracturing of oil and gas wells and process for decreasing or eliminating 'flow-back' effect in oil and gas wells'
US20070084602A1 (en) * 2003-04-29 2007-04-19 Sebastiao Curimbaba Proppant for hydraulic fracturing of oil and gas wells and process for decreasing or eliminating "flow-back" effect in oil and gas wells
WO2004104371A1 (en) * 2003-05-22 2004-12-02 Halliburton Energy Services, Inc. Lightweight high strength particles and methods of their use in wells
US20050016726A1 (en) * 2003-05-22 2005-01-27 Nguyen Philip D. High strength particles and methods of their use in subterranean operations
US20050284630A1 (en) * 2003-05-22 2005-12-29 Halliburton Energy Services, Inc. Lightweight high strength particles and methods of their use in wells
US6983797B2 (en) 2003-05-22 2006-01-10 Halliburton Energy Services, Inc. Lightweight high strength particles and methods of their use in wells
US7036592B2 (en) 2003-05-22 2006-05-02 Halliburton Energy Services, Inc. High strength particles and methods of their use in subterranean operations
US20040231844A1 (en) * 2003-05-22 2004-11-25 Nguyen Philip D. Lightweight high strength particles and methods of their use in wells
US20070036977A1 (en) * 2003-07-01 2007-02-15 Sinclair A R Process for incremental coating of proppants for hydraulic fracturing and proppants produced therefrom
US7135231B1 (en) 2003-07-01 2006-11-14 Fairmont Minerals, Ltd. Process for incremental coating of proppants for hydraulic fracturing and proppants produced therefrom
US8852682B2 (en) 2003-07-01 2014-10-07 Fairmount Minerals, Ltd. Process for incremental coating of proppants for hydraulic fracturing and proppants produced therefrom
JP2008538122A (en) * 2005-02-25 2008-10-09 スーペリアー・グラファイト・カンパニー Graphite coating of particulate matter
US20090014179A1 (en) * 2006-01-06 2009-01-15 Mango Frank D In Situ Conversion Of Heavy Hydrocarbons To Catalytic Gas
US20080115935A1 (en) * 2006-01-06 2008-05-22 Mango Frank D In situ conversion of heavy hydrocarbons to catalytic gas
US20100200234A1 (en) * 2006-01-06 2010-08-12 Mango Frank D In Situ Conversion of Heavy Hydrocarbons to Catalytic Gas
US8091643B2 (en) 2006-01-06 2012-01-10 Petroleum Habitats, Llc In situ conversion of heavy hydrocarbons to catalytic gas
US8273937B2 (en) 2006-01-06 2012-09-25 Petroleum Habitats, Llc Generating natural gas from heavy hydrocarbons
US20110077445A1 (en) * 2006-01-06 2011-03-31 Mango Frank D Generating natural gas from heavy hydrocarbons
US7845414B2 (en) * 2006-01-06 2010-12-07 Petroleum Habitats, L.L.C. In situ conversion of heavy hydrocarbons to catalytic gas
US20080058228A1 (en) * 2006-08-30 2008-03-06 Carbo Ceramics Inc. Low bulk density proppant and methods for producing the same
US8063000B2 (en) 2006-08-30 2011-11-22 Carbo Ceramics Inc. Low bulk density proppant and methods for producing the same
WO2008028074A2 (en) * 2006-08-30 2008-03-06 Carbo Ceramics Inc. Low bulk density proppant and methods for producing the same
WO2008028074A3 (en) * 2006-08-30 2008-06-26 Carbo Ceramics Inc Low bulk density proppant and methods for producing the same
EA015865B1 (en) * 2006-08-30 2011-12-30 Карбо Керамикс Инк. Low bulk density proppant and methods for producing the same
US20080078547A1 (en) * 2006-10-02 2008-04-03 Sinclair A Richard Proppants with soluble composite coatings
WO2008042317A1 (en) * 2006-10-02 2008-04-10 Fairmount Minerals, Ltd Proppants with soluble composite coatings
US7490667B2 (en) 2006-10-02 2009-02-17 Fairmount Minerals, Inc. Proppants with soluble composite coatings
US8012582B2 (en) 2008-09-25 2011-09-06 Halliburton Energy Services, Inc. Sintered proppant made with a raw material containing alkaline earth equivalent
US20100071901A1 (en) * 2008-09-25 2010-03-25 Halliburton Energy Services, Inc. Sintered proppant made with a raw material containing alkaline earth equivalent
US20110195877A1 (en) * 2008-10-30 2011-08-11 Adderson Thomas J Crystalline ceramic particles
US8727006B2 (en) 2010-05-04 2014-05-20 Petroleum Habitats, Llc Detecting and remedying hydrogen starvation of catalytic hydrocarbon generation reactions in earthen formations
WO2012021373A1 (en) 2010-08-12 2012-02-16 Conocophillips Company Controlled release material
US20120048554A1 (en) * 2010-08-25 2012-03-01 Schlumberger Technology Corporation Delivery of particulate material below ground
US9234415B2 (en) * 2010-08-25 2016-01-12 Schlumberger Technology Corporation Delivery of particulate material below ground
US20140329664A1 (en) * 2010-11-09 2014-11-06 Sienna Technologies, Inc. High temperature catalysts for decomposition of liquid monopropellants and methods for producing the same
US9855548B2 (en) * 2010-11-09 2018-01-02 Sienna Technologies, Inc. High temperature catalysts for decomposition of liquid monopropellants and methods for producing the same
US20120322696A1 (en) * 2011-06-15 2012-12-20 Hayes Missy Proppants for removal of contaminants from fluid streams and methods of using same
WO2012174118A1 (en) * 2011-06-15 2012-12-20 MAR Systems, Inc. Proppants for removal of contaminants from fluid streams and methods of using same
US9822296B2 (en) * 2011-06-15 2017-11-21 The Frazer And Cruickshank Living Trust Proppants for removal of contaminants from fluid streams and methods of using same
US9932244B2 (en) 2011-06-15 2018-04-03 The Frazer And Cruickshank Proppants for removal of contaminants from fluid streams and methods of using same
US10479704B2 (en) 2011-06-15 2019-11-19 The Frazer And Cruickshank Living Trust Dated Mar. 24, 1982 Proppants for removal of contaminants from fluid streams and methods of using same
WO2014204517A3 (en) * 2013-03-16 2015-04-09 Mcclung Guy L Cryogenic treatments & systems, materials made with them & methods for using them

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