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WO2022231752A1 - Composition for ceramics, method of making, and use thereof - Google Patents

Composition for ceramics, method of making, and use thereof Download PDF

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Publication number
WO2022231752A1
WO2022231752A1 PCT/US2022/022530 US2022022530W WO2022231752A1 WO 2022231752 A1 WO2022231752 A1 WO 2022231752A1 US 2022022530 W US2022022530 W US 2022022530W WO 2022231752 A1 WO2022231752 A1 WO 2022231752A1
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Prior art keywords
composition
swf
amount ranging
chosen
present
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French (fr)
Inventor
Dennis Clay Parker
James CUTRIGHT
Nick L. JOHN
Donald Keith MILLS
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Active Minerals International LLC
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Active Minerals International LLC
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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
    • C04B33/00Clay-wares
    • C04B33/02Preparing or treating the raw materials individually or as batches
    • C04B33/04Clay; Kaolin
    • 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
    • C04B28/00Compositions of mortars, concrete or artificial stone, containing inorganic binders or the reaction product of an inorganic and an organic binder, e.g. polycarboxylate cements
    • C04B28/001Compositions of mortars, concrete or artificial stone, containing inorganic binders or the reaction product of an inorganic and an organic binder, e.g. polycarboxylate cements containing unburned clay
    • 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
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/30Constituents and secondary phases not being of a fibrous nature
    • C04B2235/34Non-metal oxides, non-metal mixed oxides, or salts thereof that form the non-metal oxides upon heating, e.g. carbonates, nitrates, (oxy)hydroxides, chlorides
    • C04B2235/3418Silicon oxide, silicic acids or oxide forming salts thereof, e.g. silica sol, fused silica, silica fume, cristobalite, quartz or flint
    • 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
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/30Constituents and secondary phases not being of a fibrous nature
    • C04B2235/34Non-metal oxides, non-metal mixed oxides, or salts thereof that form the non-metal oxides upon heating, e.g. carbonates, nitrates, (oxy)hydroxides, chlorides
    • C04B2235/3427Silicates other than clay, e.g. water glass
    • C04B2235/3463Alumino-silicates other than clay, e.g. mullite
    • C04B2235/3472Alkali metal alumino-silicates other than clay, e.g. spodumene, alkali feldspars such as albite or orthoclase, micas such as muscovite, zeolites such as natrolite
    • 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
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/30Constituents and secondary phases not being of a fibrous nature
    • C04B2235/34Non-metal oxides, non-metal mixed oxides, or salts thereof that form the non-metal oxides upon heating, e.g. carbonates, nitrates, (oxy)hydroxides, chlorides
    • C04B2235/3427Silicates other than clay, e.g. water glass
    • C04B2235/3463Alumino-silicates other than clay, e.g. mullite
    • C04B2235/3481Alkaline earth metal alumino-silicates other than clay, e.g. cordierite, beryl, micas such as margarite, plagioclase feldspars such as anorthite, zeolites such as chabazite
    • 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
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/30Constituents and secondary phases not being of a fibrous nature
    • C04B2235/34Non-metal oxides, non-metal mixed oxides, or salts thereof that form the non-metal oxides upon heating, e.g. carbonates, nitrates, (oxy)hydroxides, chlorides
    • C04B2235/349Clays, e.g. bentonites, smectites such as montmorillonite, vermiculites or kaolines, e.g. illite, talc or sepiolite
    • 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
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/50Constituents or additives of the starting mixture chosen for their shape or used because of their shape or their physical appearance
    • C04B2235/54Particle size related information
    • C04B2235/5409Particle size related information expressed by specific surface values
    • 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
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/50Constituents or additives of the starting mixture chosen for their shape or used because of their shape or their physical appearance
    • C04B2235/54Particle size related information
    • C04B2235/5418Particle size related information expressed by the size of the particles or aggregates thereof
    • C04B2235/5436Particle size related information expressed by the size of the particles or aggregates thereof micrometer sized, i.e. from 1 to 100 micron

Definitions

  • a composition which comprises at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction amount ranging from 1.0 to 10.0%; kaolin present in a solid weight fraction amount ranging from 17% to 50%; and optionally Ball Clay in a solid weight fraction amount ranging from 0% to 25%.
  • the composition is makeable by mixing component ingredients.
  • the composition is used to make ceramic pieces, e.g., via casting, pressing, jiggering or jollying, especially when the ceramic formulation has solids, chemistry and viscosity suitable for shaping before drying, sintering, and optionally finishing.
  • a composition in the form of powder(s), granules or prills; or in the form of a slurry; or in the form of a paste or filter cake that can be used to prepare a suspension, slip, or a pug which can be cast, pressed, jiggered or jollied into ceramic pieces, containing reduced concentration of, or no, Ball Clay, along with at least one kaolin, at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; ground quartz; ground feldspar, along with addition of dispersants and other additives.
  • the composition is usable to prepare a slip or pug to cast, press, jigger or jolly ceramic pieces.
  • the composition is makeable by blending the kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; and Ball Clay in the form of crude clay, dried clay, or slurried clay, or any combination of these, along with addition of quartz, feldspar, dispersants and other additives.
  • Ball Clays are a group of clays comprised of 20% to 80% kaolinite, 10% to 25% mica, 6% to 65% quartz and a variety of other minerals and carbonaceous materials (such as lignite) in smaller ratios. Because they were deposited in layers over time, there are sometimes large differences in mineral and chemical composition within a single deposit.
  • Ball Clays are used in ceramics for their plasticity.
  • Ball Clays are used in slips because of their ability to suspend high density minerals in slurries and slips.
  • Ball Clay One disadvantage of Ball Clay is difficulty reaching a stable viscosity, without aging Ball Clay slurry for one to seven days prior to production of a full slip.
  • Ball Clay One disadvantage of Ball Clay is difficulty controlling casting rate of a slip to achieve a rapid casting.
  • Ball Clay One disadvantage of Ball Clay is difficulty in obtaining local sources in many parts of the world, raising the cost of ceramics produced with Ball Clay.
  • Ball Clay One disadvantage of using Ball Clay is the need to use 3 to 4 different Ball Clays along with 2 to 3 different kaolin clays to balance all the properties required of the plastic portion of a body formulation.
  • the percent solid weight fraction of an ingredient of a composition is the weight of the dry solid ingredient in a given volume of the composition divided by the total dry weight of all solids in that volume of the composition multiplied by 100%.
  • the formula is:
  • W s,i is the weight of the dry solid ingredient in the composition having total weight W s .
  • W s,i the weight of the dry solid ingredient in the composition having total weight W s .
  • a composition comprises at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction amount ranging from 17% to 50%; and optionally Ball Clay in a solid weight fraction amount ranging from 0% to 25%.
  • the sepiolite is from a locality chosen from in Little Cottonwood Canyon, Salt Lake Co., Utah; from Crestmore, Riverside Co., California; at Ash Meadows, Nye Co., Nevada; and Cerro Mercado, Durango, Mexico.
  • the sepiolite is from an area near Madrid, Spain or Nye County, NV (USA), such as Amargosa Valley, NV (USA).
  • the sepiolite is in a form associated with other non-sepiolite minerals, such as dolomite.
  • the sepiolite is another form substantially free of non-sepiolite minerals.
  • the sepiolite is ground or dried or both ground and dried.
  • the sepiolite is in a slurry. In some embodiments, the sepiolite is crude.
  • the at least one mineral agent is palygorskite. In some embodiments, the palygorskite is from Attapulgus, Georgia. [024] In some embodiments, the at least one mineral agent is bentonite. In some embodiments, the bentonite is from a locality chosen from near Rock River, Wyoming and Mississippi. In some embodiments, the bentonite is chosen from calcium bentonite and sodium benonite. In some embodiments, the bentonite is substantially free of non- bentonite minerals.
  • the at least one mineral agent is montmorillonite.
  • the montmorillonite is from a locality chosen from Montmorillon, Vienne, France; at Belle Fourche, Butte Co., South Dakota; and at Clay Spur, near Newcastle, Crook Co., and at Strasburg, Shenandoah Co., Virginia.
  • the montmorillonite is associated with other non-montmorillonite minerals, such as cristobalite, zeolites, biotite, quartz, orthoclase, dolomite, and the like.
  • the montmorillonite is substantially free of non-montmorillonite minerals.
  • the at least one mineral agent is added in the form of a slurry or pre-gel, consisting of the one or more forms of sepiolite and water.
  • the pre-gel consists of from 18% to 26% (w/w%) of the one or more forms of sepiolite by weight and the remainder water.
  • the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite is present in an amount SWF ranging from 1.5% to 7.5% or from 1.8% to 6.5% or from 1.9% to 5.5%.
  • kaolin clay is chosen from inert hydrous aluminum silicate clay with MBI less than 5 (See ASTM C-837-09), and grit content less than 1%.
  • the kaolin is chosen from those in which less than or equal to 0.25 wt% of the material has a size greater than 47pm or less than or equal to 0.12 wt% of the material has a size greater than 47pm.
  • kaolin clay is chosen from inert hydrous aluminum silicate clay with MBI 7 to 15 or MBI 12 to 25.
  • kaolin clay is chosen from inert hydrous aluminum silicate clay with a low surface area.
  • kaolin clay is chosen from inert hydrous aluminum silicate clay with Baroid casting rate above 200g and surface area below 10m 2 /g.
  • the kaolin clay is chosen from crude, unprocessed kaolin in which less than 6% has a size greater than 47 pm.
  • the kaolin clay is chosen from air float kaolin clays such as those obtained from Active Minerals International Acti-Min ® line of air-floated kaolin clays.
  • the kaolin clay is chosen from hard and soft clays.
  • the soft clay is air float kaolin.
  • the hard clay is reinforcement clay.
  • the kaolin clay is chosen from ACTI-MIN ® SA-1, ACTI-MIN ® CR, ACTI-MIN ® WC-5, ACTI-CAST ® CM, ACTI-CAST ® Coarse, ACTI- CAST ® AF, ACTI-MIN ® RP-2, ACTI-MIN ® RP-80, ACTI-MIN ® Sl-R, ACTI-MIN ® FE, CHAMPION ® , and CROWN ® .
  • the kaolin is present in an amount SWF ranging from 32% to 38% or from 35% to 40% or from 38% to 48%.
  • the Ball Clay is chosen from one or more sources in Kentucky, Tennessee and Mississippi.
  • the Ball Clay is present in an amount SWF ranging from 2% to 17% or from 1% to 5.0 % or from 7% to 15%.
  • the composition further comprises at least one liquid.
  • the at least one liquid is water.
  • the liquid comprises water and at least one other liquid.
  • the water is present in an amount greater than 80% v/v relative to the total volume of the water plus the volume of the at least one other liquid.
  • the amount is greater than 90% v/v or 95% v/v or 99% v/v.
  • the amount ranges from 85% to 95% v/v or from 96% to 99% v/v.
  • the at least one other liquid is an organic liquid. In some embodiments, the at least one other liquid is miscible with water or at least partially miscible with water. In some embodiments, the at least one other liquid is an alcohol.
  • the composition further comprises quartz or feldspar.
  • the Quartz is crystalline silica having a D90 of less than 75 pm or less than 45 pm.
  • the silica is chosen from quartz sand, sandstone, or flint pebbles.
  • the Feldspar is sodium feldspar having a D90 of less than 75 pm or less than 45 pm.
  • the Feldspar may be substituted with potassium feldspar, nepheline syenite or aplite.
  • the feldspar is chosen from aluminosilicates containing sodium (Na), potassium (K), and/or calcium (Ca).
  • the composition comprises one, two or all three additional ingredients chosen from feldspar, nepheline syenite, and silica.
  • the ingredients are nepheline syenite and silica.
  • the ingredients are feldspar and silica.
  • the ingredients are feldspar, nepheline syenite and silica.
  • the ingredient is nepheline syenite.
  • the composition further comprises a dispersant.
  • the dispersant is organic, such as polyacrylates and acrylic derivatives or polycarbonates.
  • the dispersant is inorganic, such as sodium silicates, phosphates and polyphosphates, sodium and potassium hydroxides, and sodium and potassium carbonates.
  • the dispersant is chosen from sodium silicate, tripolyphosphate pyrophosphate, tetraphosphate, and hexametaphosphate.
  • the dispersant is chosen from tetrasodium pyrophosphate TSPP.
  • the composition is free of dispersant.
  • the composition comprises additives, other than those noted above.
  • these additives are chosen from dispersants, surfactants, binders, coagulants, flocculants and pH modifiers.
  • the composition further comprises dispersants such as those chosen from sodium silicate, tripolyphosphate pyrophosphate, tetraphosphate, and hexametaphosphate dispersants.
  • the dispersant is present in an amount sufficient to maintain low viscosity at high solids content.
  • the dispersant is tetrasodium pyrophosphate TSPP.
  • the composition further comprises one or more quaternary amines.
  • the one or more quaternary amines make it possible to maintain plasticity and increase cast rate, or to counteract the effects of high dispersant concentration.
  • Quaternary amines are commonly used as industrial and household disinfectants, or as surfactants, fabric softeners and anti-static agents, or in cosmetics and personal care items such as shampoos. They have not been used in the ceramic industry for control of casting rate and plasticity.
  • the one or more quaternary amines are chosen from those of the following formula:
  • N is nitrogen
  • R 1 -R 4 are independently chosen from C 1 -C 50 alkyl groups (such as Ci
  • X- is an anion, such as chloride, bromide, acetate and saccharinate.
  • R 1 -R 4 are the same. In some embodiments, R 1 -R 4 differ. In some embodiments, some of R 1 -R 4 are the same while other differ.
  • the quaternary amines are chosen from those of the above formula in which Ri is benzyl, R 2 and R 3 are methyl and R 4 is Cx-Cix . and optionally still X is chloride.
  • the quaternary amines are benzalkonium chloride, or distearyl dimethyl ammonium chloride or n-alkyl dimethyl benzyl chloride.
  • the quaternary amines are chosen from babassuamidopropalkonium chloride, benzalkonium chloride, benzathonium chloride, grapefruit seed extract, methylbenzethonium chloride, cetalkonium chloride, vegetable oil quaternary, quaternium-15, stearalkonium chloride, polyquaternium, guar hydroxypropyltrimonium chloride, behentrimonium chloride, behentrimonium methosulfate.
  • Quaternary amines make it possible, in some embodiments, to increase cast rate of the composition from 50% to 150%.
  • Quaternary amines make it possible, in some embodiments, to allow for the composition to be fully dispersed to a low viscosity using organic or inorganic dispersants, or both types of dispersants, and then to be recovered to an acceptable casting rate and high plasticity. [060] Quaternary amines make it possible, in some embodiments, to bring a measure of plasticity, as determined by ease of cutting an object, into the same range as observed when cutting a traditional ball clay slip.
  • composition in some embodiments, to, when cast at high pressure, firms up sufficiently to be cut within minutes of removing from the mold.
  • the one or more quaternary amines are present in a solid weight fraction (SWF) amount ranging from 0.005 to 0.025% or from 0.01 to 0.04% or from 0.02 to 0.5%.
  • SWF solid weight fraction
  • the composition further comprises one or more coagulants, such as inorganic coagulants or organic coagulants or a combination of both inorganic and organic coagulants.
  • the organic coagulants are chosen from polyamines, polyDADMAC, melamine formaldehyde, and tannins.
  • the inorganic coagulants are chosen from aluminum sulfate (alum), aluminum chloride, polyaluminum chloride (PAC1), aluminum chlorohydrate (ACH), ferric sulfate, ferrous sulfate, and ferric chloride.
  • the composition further comprises one or more flocculants, such as cationic or anionic flocculants.
  • the cationic flocculants are chosen from polymers and copolymers, such as copolymers of AETAC (N,N- dimethylaminoethyl acrylate methyl chloride quaternary) or METAC (N,N- dimethylaminoethyl methacrylate methyl chloride quaternary) and acrylamide.
  • the anionic flocculants are chosen from polymers and copolymers, such as copolymers of acrylamide and acrylic acid.
  • the composition further comprises one or more pH modifiers.
  • the pH modifier is selected from gypsum, hydrated lime, ammonium nitrate, and aluminum sulfate.
  • the pH modifier is chosen from sodium hydroxide, caustic soda, hydrated lime, shell meal, limestone, burned lime, dolomite, sugar beet lime, and calcium silicate.
  • the pH modifier is chosen from aluminum sulfate, calcium sulfate, magnesium sulfate, Epsom salt, calcium chloride, lime sulfur, ferric sulfate, sulfuric acid, acetic acid, hydrochloric acid, sulfur, and gypsum.
  • the neutralizer is selected from gypsum, hydrated lime, ammonium nitrate, and aluminum sulfate.
  • the composition is in a form chosen from aqueous suspensions or slurries, pugs, pastes, cakes, powders, granules, pellets, and prills.
  • a suspension or slurry is a paste or liquid in which solid particles are partially or fully dispersed.
  • a suspension is a liquid in which solid particles are dispersed.
  • a slurry is a flowable suspension.
  • a slip is a liquid in which substantially all the components of a ceramic body have been mixed.
  • the solid particles of a slip or suspension are the solid particulates.
  • the liquid is water.
  • the liquid comprises water and at least one other liquid.
  • the water is present in an amount greater than 80% v/v relative to the total volume of the water plus the volume of the at least one other liquid.
  • the amount is greater than 90% v/v or 95% v/v or 99% v/v.
  • the amount ranges from 85% to 95% v/v or from 96% to 99% v/v..
  • the aqueous suspension is a slurry, i.e., flowable.
  • a slip is a liquid in which substantially all the components of a ceramic body have been mixed.
  • the solid particles of a slip or suspension are the solid particulates.
  • the aqueous suspension has a total percent solids by weight (w/w%) amount ranging from 60% to 74% or from 65% to 75%.
  • the composition is in the form chosen from pugs or pastes.
  • the composition is mixed with water (as noted herein) and optionally at least one other liquid (as noted herein) to make a workable paste in a pug mill, before an optional extrusion.
  • the composition has a form chosen from pugs, pastes or cakes having a total percent solids by weight (w/w%) amount ranging from 70% to 90% or from 75% to 85%.
  • the composition is in the form of a pug having a total percent solids by weight (w/w%) amount ranging from 75% to 90% (w/w%) solids.
  • the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
  • the composition is makeable by mixing.
  • the ingredients of the composition are mixed.
  • mixing is facilitated by a mixer, such as a dry mixer such as a ribbon mixer, a cement mixer, a Mueller mixer, and the like.
  • the ingredients of the composition are agitated to form a composition in the form of an aqueous slurry or suspension.
  • the composition in the form of pug, cake, powder, granule, pellet or prill is mixed in water first, followed by addition of the non-plastic materials, if desired, and other materials; in some embodiments, the composition in the form of pug, cake, powder, granule, pellet or prill is added second or last. In some embodiments, the composition is not aged after addition to water or slurry. Order of addition is variable.
  • the composition in the form of a slurry is not aged; in some embodiments, the composition in the form of a slurry is reduced in solids concentration (w/w%) prior to addition of other materials; in some embodiments, the composition in the form of a slurry is added to a slurry or paste of other materials. Order of addition is not critical.
  • the composition is prepared by adding the one or more mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; the kaolin and the Ball Clay in the form of powder clay, a liquid or slurry, or crude unprocessed clay.
  • the dispersant and other materials are added in the form of a liquid or slurry.
  • the composition is in the form of slurry.
  • the method of making the composition comprises mixing water, the at least one first mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin, Ball Clay, dispersant and other materials, and mixing to form a homogeneous composition at a viscosity below 1500 cP, or between 1600 and 2500 cP, or between 1200 and 1800 cP.
  • the mixing further comprises mixing at least one second mineral agent (being the same or different than the first mineral agent) chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; and the composition in the form of slurry comprises at least one second mineral agent, which in some embodiments includes at least one form of sepiolite.
  • at least one second mineral agent being the same or different than the first mineral agent
  • the composition in the form of slurry comprises at least one second mineral agent, which in some embodiments includes at least one form of sepiolite.
  • the composition is prepared by adding the ingredients to a pug mixer to form a pug, paste or granules.
  • the composition is prepared by producing slurry followed by filter pressing to make a press cake, or followed by spray drying to make granules, or followed by pin mixing to make granules.
  • the storage of the composition in the form of slurry is for a period greater than 8 hours. In some embodiments, the storage is for a period ranging from 8 hours to 7 days. In some embodiments, the storage is for a period ranging from 3 to 6 days or from 4 to 5 days. In some embodiments, the storage is for 6 to 10 weeks during transport.
  • the slurry viscosity is altered by addition of dispersant after storage.
  • composition is useable to make ceramic pieces.
  • the composition is formed into wet ceramic pieces having defined shapes.
  • a base composition is wet with water and optionally one other liquid until a desired level of viscosity, plasticity and moldability is attained (slip or slurry options may contain e.g., dispersants).
  • the wet ceramic pieces having defined shapes are formed by extruding the composition.
  • the wet ceramic pieces having defined shapes are formed by pressing the composition.
  • the wet ceramic pieces having defined shapes are formed by jiggering and/or jollying the composition.
  • the wet ceramic pieces having defined shapes are formed by casting the composition.
  • the wet ceramic pieces having defined shapes are dryable to form a dried ceramic piece. In some embodiments, the wet ceramic pieces having defined shapes are dried to form a dried ceramic piece using tunnel drying or periodic drying. [092] In some embodiments, the dried ceramic pieces are sinterable via heat to form a ceramic piece. Sintering results in densification. In some embodiments, sintering via heat is accompanied by compressing the dried ceramic piece before sintering via heat.
  • the ceramic pieces are fmishable. In some embodiments, the ceramic pieces are finished by lapping, grinding, polishing, and/or glazing. In some embodiments, the ceramic pieces are finished by lapping, grinding, and/or polishing.
  • glaze is applied before sintering and must shrink at a rate similar to that of the body during the sintering process to prevent cracking or crazing.
  • the composition makes it possible to provide higher green and fired strength compared to standard with marginally higher shrinkage.
  • a composition comprising kaolin, Ball Clay, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, Ball Clay, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, Ball Clay, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a ceramic pug suitable for pressing, jiggering or jollying.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a pug or cake capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a pug or cake capable of replacing some or most of the plastic and non-plastic components in a ceramic pug suitable for pressing, jiggering or jollying.
  • the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite
  • quartz and / or feldspar and / or nepheline syenite an optionally further comprises optionally Ball Clay
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a powder, granule, pellet or prill capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
  • the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite
  • quartz and / or feldspar and / or nepheline syenite an optionally further comprises optionally Ball Clay
  • a composition in the form of a powder, a granule or a prill having 90% to 100% (w/w%) solids; or in the form of a slurry having 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing some or most of the plastic and non-plastic components of a slip, makes it possible to exhibit reduced aging requirements.
  • a composition in the form of a powder, a granule or a prill having 90% to 100% (w/w%) solids; or in the form of a slurry having 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing some or most of the plastic and non-plastic components of a slip, makes it possible to exhibit greater stability in viscosity and thixotropy.
  • a composition in the form of a powder, a granule or a prill having 90% to 100% (w/w%) solids; or in the form of a slurry 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing some or most of the plastic and non-plastic components of a slip, makes it possible to exhibit equal or greater casting rates compared to a traditional slip.
  • traditional slips and pugs comprise a plastic portion that includes Ball Clay and kaolin in a ratio of approximately 2:1; e.g., SWF of 30%: 15%; or 34%:16% or; 37%: 15%, along with other clay minerals and dispersants.
  • traditional slips and pugs comprise a non-plastic portion that includes ground silica and ground feldspar in a ratio of approximately 3:7; e.g., SWF of 11%:38%; or 10%:40%; 12%:42%, along with other minerals and additives.
  • plastic to non-plastic ratio of approximately 1:1; e.g., Plastic to non-plastic SWF ratio of 51%:49%; or 50%:50%; or 52%:48%; or 48%:52%, along with small additions of dispersants, additives and other plastic or non-plastic minerals.
  • All solids in a slip are present in solids fraction of approximately 65% to 75% (w/w %).
  • Applications of a slip include, but are not limited to, casting sanitaryware, electrical porcelain and certain types of tableware.
  • All solids in a pug or cake are present in solids fraction of approximately 75% to 85% (w/w %).
  • Applications include, but are not limited to pressed tile and craft ware.
  • a composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; and optionally Ball Clay, in some embodiments, is a blended slurry capable of replacing some or the entire plastic component in a slip for casting.
  • a composition comprising the at least one mineral agent chose from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a blended slurry capable of replacing some or the entire plastic component in a ceramic pug suitable for pressing, jiggering or jollying.
  • a composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a pug or cake capable of replacing some or the entire plastic component in a slip for casting.
  • a composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a pug or cake capable of replacing some or all of the plastic component in a ceramic pug suitable for pressing, jiggering or jollying.
  • a composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite, kaolin and optionally Ball Clay, in some embodiments, is a powder, granule, pellet or prill capable of replacing some or all of the plastic component in a slip for casting.
  • a composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a powder, granule, pellet or prill capable of replacing some or all of the plastic component in a ceramic pug suitable for pressing, jiggering or jollying.
  • compositions of Examples 1-3 would possibly make it possible to remove or eliminate the content of Ball clay in ceramic processing.
  • compositions are prepared. The percentages are in SWF%.
  • compositions of Examples 4-7 would possibly make it possible to remove or eliminate the content of Ball clay in ceramic processing.

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Abstract

A composition comprises at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction amount ranging from 17% to 50%; and optionally Ball Clay in a solid weight fraction amount ranging from 0% to 25%. Although makeable by other processes, in some embodiments, the composition is makeable by mixing component ingredients. Although usable for other purposes, in some embodiments, the composition is used to make ceramic pieces, e.g., via casting, pressing, jiggering or jollying, especially when the slip has solids, chemistry and viscosity suitable for shaping before drying, sintering, and optionally finishing.

Description

COMPOSITION FOR CERAMICS, METHOD OF MAKING, AND USE THEREOF Cross-Reference To Related Application
[001] This application claims priority to U.S. Provisional Application No. 63/182,240, filed April 30, 2021, which application is incorporated by reference herein in its entirety.
Field
[002] A composition which comprises at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction amount ranging from 1.0 to 10.0%; kaolin present in a solid weight fraction amount ranging from 17% to 50%; and optionally Ball Clay in a solid weight fraction amount ranging from 0% to 25%. Although makeable by other processes, in some embodiments, the composition is makeable by mixing component ingredients. Although usable for other purposes, in some embodiments, the composition is used to make ceramic pieces, e.g., via casting, pressing, jiggering or jollying, especially when the ceramic formulation has solids, chemistry and viscosity suitable for shaping before drying, sintering, and optionally finishing.
[003] A composition, in the form of powder(s), granules or prills; or in the form of a slurry; or in the form of a paste or filter cake that can be used to prepare a suspension, slip, or a pug which can be cast, pressed, jiggered or jollied into ceramic pieces, containing reduced concentration of, or no, Ball Clay, along with at least one kaolin, at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; ground quartz; ground feldspar, along with addition of dispersants and other additives. Although usable for other purposes, the composition is usable to prepare a slip or pug to cast, press, jigger or jolly ceramic pieces. Although makeable in other ways, the composition is makeable by blending the kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; and Ball Clay in the form of crude clay, dried clay, or slurried clay, or any combination of these, along with addition of quartz, feldspar, dispersants and other additives.
[004] A composition, in the form of a ceramic body, with or without finishing, that has been cast, pressed, jiggered or jollied to form a ceramic piece using the inventions described. Introduction
[005] Ball Clays are a group of clays comprised of 20% to 80% kaolinite, 10% to 25% mica, 6% to 65% quartz and a variety of other minerals and carbonaceous materials (such as lignite) in smaller ratios. Because they were deposited in layers over time, there are sometimes large differences in mineral and chemical composition within a single deposit.
[006] Ball Clays are used in ceramics for their plasticity.
[007] Ball Clays are used in slips because of their ability to suspend high density minerals in slurries and slips.
[008] Ball Clays are rare, being mined primarily in Kentucky, Tennessee, Mississippi and parts of England.
[009] One disadvantage of Ball Clay is difficulty reaching a stable viscosity, without aging Ball Clay slurry for one to seven days prior to production of a full slip.
[010] One disadvantage of Ball Clay is difficulty controlling casting rate of a slip to achieve a rapid casting.
[011] One disadvantage of Ball Clay is difficulty in obtaining local sources in many parts of the world, raising the cost of ceramics produced with Ball Clay.
[012] One disadvantage of using Ball Clay is the need to use 3 to 4 different Ball Clays along with 2 to 3 different kaolin clays to balance all the properties required of the plastic portion of a body formulation.
[013] One difficulty replacing Ball Clay is maintaining plasticity, especially in cast and dry pieces (green strength) without affecting viscosity build and casting rate of the slip.
[014] One difficulty replacing Ball Clay is maintaining fired strength without losing plasticity (green strength) or changing the percent shrinkage of a fired piece.
[015] It is to be understood that both the foregoing general description and the following detailed description are representative and explanatory only and are not restrictive of the invention, as claimed.
DESCRIPTION OF THE EMBODIMENTS
[016] The percent solids by weight (w/w%) is the weight of dry solids in a given volume of a composition divided by the total weight of the composition multiplied by 100%. w/w% is calculated using the following formula: w/w% = Ws/Wt x 100% (1) in which Ws is the weight of dry solids in the composition, and Wt is the total weight of the composition. For example, if the total weight of solids (Ws) in a composition is 75g, and the total weight of composition (Wt) is lOOg, then the percent solids by weight w/w% is 75%.
[017] The percent solid weight fraction of an ingredient of a composition (SWFi%) is the weight of the dry solid ingredient in a given volume of the composition divided by the total dry weight of all solids in that volume of the composition multiplied by 100%. The formula is:
SWFi% = Ws,i/Ws x 100% (2)
[018] in which Ws,i is the weight of the dry solid ingredient in the composition having total weight Ws. For example, if the total weight of solids (Ws) in a composition is lOOg, and 2.0g of which is sepiolite (Ws,i), then for sepiolite, SMFsepioiite % = 2.0%.
[019] A composition comprises at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction amount ranging from 17% to 50%; and optionally Ball Clay in a solid weight fraction amount ranging from 0% to 25%.
[020] In some embodiments, the sepiolite is from a locality chosen from in Little Cottonwood Canyon, Salt Lake Co., Utah; from Crestmore, Riverside Co., California; at Ash Meadows, Nye Co., Nevada; and Cerro Mercado, Durango, Mexico. In some embodiments, the sepiolite is from an area near Madrid, Spain or Nye County, NV (USA), such as Amargosa Valley, NV (USA). In some embodiments, the sepiolite is in a form associated with other non-sepiolite minerals, such as dolomite. In some embodiments, the sepiolite is another form substantially free of non-sepiolite minerals.
[021] In some embodiments, the sepiolite is ground or dried or both ground and dried.
[022] In some embodiments, the sepiolite is in a slurry. In some embodiments, the sepiolite is crude.
[023] In some embodiments, the at least one mineral agent is palygorskite. In some embodiments, the palygorskite is from Attapulgus, Georgia. [024] In some embodiments, the at least one mineral agent is bentonite. In some embodiments, the bentonite is from a locality chosen from near Rock River, Wyoming and Mississippi. In some embodiments, the bentonite is chosen from calcium bentonite and sodium benonite. In some embodiments, the bentonite is substantially free of non- bentonite minerals.
[025] In some embodiments, the at least one mineral agent is montmorillonite. In some embodiments, the montmorillonite is from a locality chosen from Montmorillon, Vienne, France; at Belle Fourche, Butte Co., South Dakota; and at Clay Spur, near Newcastle, Crook Co., and at Strasburg, Shenandoah Co., Virginia. In some embodiments, the montmorillonite is associated with other non-montmorillonite minerals, such as cristobalite, zeolites, biotite, quartz, orthoclase, dolomite, and the like. In some embodiments, the montmorillonite is substantially free of non-montmorillonite minerals.
[026] In some embodiments, the at least one mineral agent is added in the form of a slurry or pre-gel, consisting of the one or more forms of sepiolite and water. In some embodiments, the pre-gel consists of from 18% to 26% (w/w%) of the one or more forms of sepiolite by weight and the remainder water.
[027] In some embodiments, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite is present in an amount SWF ranging from 1.5% to 7.5% or from 1.8% to 6.5% or from 1.9% to 5.5%.
[028] In some embodiments, kaolin clay is chosen from inert hydrous aluminum silicate clay with MBI less than 5 (See ASTM C-837-09), and grit content less than 1%. In some embodiments, the kaolin is chosen from those in which less than or equal to 0.25 wt% of the material has a size greater than 47pm or less than or equal to 0.12 wt% of the material has a size greater than 47pm. In some embodiments, kaolin clay is chosen from inert hydrous aluminum silicate clay with MBI 7 to 15 or MBI 12 to 25.
[029] In some embodiments, kaolin clay is chosen from inert hydrous aluminum silicate clay with a low surface area.
[030] In some embodiments, kaolin clay is chosen from inert hydrous aluminum silicate clay with Baroid casting rate above 200g and surface area below 10m2/g.
[031] In some embodiments, the kaolin clay is chosen from crude, unprocessed kaolin in which less than 6% has a size greater than 47 pm. [032] In some embodiments, the kaolin clay is chosen from air float kaolin clays such as those obtained from Active Minerals International Acti-Min® line of air-floated kaolin clays.
[033] In some embodiments, the kaolin clay is chosen from hard and soft clays. In some embodiments, the soft clay is air float kaolin. In some embodiments, the hard clay is reinforcement clay.
[034] In some embodiments, the kaolin clay is chosen from ACTI-MIN® SA-1, ACTI-MIN® CR, ACTI-MIN® WC-5, ACTI-CAST® CM, ACTI-CAST® Coarse, ACTI- CAST® AF, ACTI-MIN® RP-2, ACTI-MIN® RP-80, ACTI-MIN® Sl-R, ACTI-MIN® FE, CHAMPION®, and CROWN®.
[035] In some embodiments, the kaolin is present in an amount SWF ranging from 32% to 38% or from 35% to 40% or from 38% to 48%.
[036] In some embodiments, the Ball Clay is chosen from one or more sources in Kentucky, Tennessee and Mississippi.
[037] In some embodiments, the Ball Clay is present in an amount SWF ranging from 2% to 17% or from 1% to 5.0 % or from 7% to 15%.
[038] In some embodiments, the composition further comprises at least one liquid. In some embodiments, the at least one liquid is water. In some embodiments, the liquid comprises water and at least one other liquid. In some embodiments, the water is present in an amount greater than 80% v/v relative to the total volume of the water plus the volume of the at least one other liquid. In some embodiments, the amount is greater than 90% v/v or 95% v/v or 99% v/v. In some embodiments, the amount ranges from 85% to 95% v/v or from 96% to 99% v/v.
[039] In some embodiments, the at least one other liquid is an organic liquid. In some embodiments, the at least one other liquid is miscible with water or at least partially miscible with water. In some embodiments, the at least one other liquid is an alcohol.
[040] In some embodiments, the composition further comprises quartz or feldspar.
[041] In some embodiments, the Quartz is crystalline silica having a D90 of less than 75 pm or less than 45 pm. In some embodiments, the silica is chosen from quartz sand, sandstone, or flint pebbles. [042] In some embodiments, the Feldspar is sodium feldspar having a D90 of less than 75 pm or less than 45 pm. In some embodiments the Feldspar may be substituted with potassium feldspar, nepheline syenite or aplite. In some embodiments, the feldspar is chosen from aluminosilicates containing sodium (Na), potassium (K), and/or calcium (Ca).
[043] In some embodiments, the composition comprises one, two or all three additional ingredients chosen from feldspar, nepheline syenite, and silica. In some additional embodiments, the ingredients are nepheline syenite and silica. In some additional embodiments, the ingredients are feldspar and silica. In some additional embodiments, the ingredients are feldspar, nepheline syenite and silica. In some additional embodiments, the ingredient is nepheline syenite.
[044] In some embodiments, the composition further comprises a dispersant. In some embodiments, the dispersant is organic, such as polyacrylates and acrylic derivatives or polycarbonates. In some embodiments, the dispersant is inorganic, such as sodium silicates, phosphates and polyphosphates, sodium and potassium hydroxides, and sodium and potassium carbonates. In some embodiments, the dispersant is chosen from sodium silicate, tripolyphosphate pyrophosphate, tetraphosphate, and hexametaphosphate. In some embodiments, the dispersant is chosen from tetrasodium pyrophosphate TSPP. In some embodiments, the composition is free of dispersant.
[045] In some embodiments, the composition comprises additives, other than those noted above. In some embodiments, these additives are chosen from dispersants, surfactants, binders, coagulants, flocculants and pH modifiers.
[046] In some embodiments, the composition further comprises dispersants such as those chosen from sodium silicate, tripolyphosphate pyrophosphate, tetraphosphate, and hexametaphosphate dispersants. The dispersant is present in an amount sufficient to maintain low viscosity at high solids content. In some embodiments, the dispersant is tetrasodium pyrophosphate TSPP.
[047] In some embodiments, the composition further comprises one or more quaternary amines. In some embodiments, the one or more quaternary amines make it possible to maintain plasticity and increase cast rate, or to counteract the effects of high dispersant concentration.
[048] Quaternary amines are commonly used as industrial and household disinfectants, or as surfactants, fabric softeners and anti-static agents, or in cosmetics and personal care items such as shampoos. They have not been used in the ceramic industry for control of casting rate and plasticity.
[049] In some embodiments, the one or more quaternary amines are chosen from those of the following formula:
[050] [N-RIR2R3R4]+X·, in which
[051] N is nitrogen,
[052] R1-R4 are independently chosen from C1-C50 alkyl groups (such as Ci
(methyl), C2 (ethyl), C3 (i-propyl or n-propyl), C4, C5, Ce, Cs, C10, C12, C14, Ci6, and Cis and longer alkyl chains with up to 50 carbons) or an aryl group having from 6 to 14 carbon atoms and optionally linked with an alkyl spacer having C1-C18 (such as phenyl, benzyl, ethyl phenyl, C3-C18 phenyl), and
[053] X- is an anion, such as chloride, bromide, acetate and saccharinate.
[054] In some embodiments, R1-R4 are the same. In some embodiments, R1-R4 differ. In some embodiments, some of R1-R4 are the same while other differ.
[055] In some embodiments, the quaternary amines are chosen from those of the above formula in which Ri is benzyl, R2 and R3 are methyl and R4 is Cx-Cix. and optionally still X is chloride.
[056] In some embodiments, the quaternary amines are benzalkonium chloride, or distearyl dimethyl ammonium chloride or n-alkyl dimethyl benzyl chloride.
[057] In some embodiment, the quaternary amines are chosen from babassuamidopropalkonium chloride, benzalkonium chloride, benzathonium chloride, grapefruit seed extract, methylbenzethonium chloride, cetalkonium chloride, vegetable oil quaternary, quaternium-15, stearalkonium chloride, polyquaternium, guar hydroxypropyltrimonium chloride, behentrimonium chloride, behentrimonium methosulfate.
[058] Quaternary amines make it possible, in some embodiments, to increase cast rate of the composition from 50% to 150%.
[059] Quaternary amines make it possible, in some embodiments, to allow for the composition to be fully dispersed to a low viscosity using organic or inorganic dispersants, or both types of dispersants, and then to be recovered to an acceptable casting rate and high plasticity. [060] Quaternary amines make it possible, in some embodiments, to bring a measure of plasticity, as determined by ease of cutting an object, into the same range as observed when cutting a traditional ball clay slip.
[061] The composition, in some embodiments, to, when cast at high pressure, firms up sufficiently to be cut within minutes of removing from the mold.
[062] When present, the one or more quaternary amines are present in a solid weight fraction (SWF) amount ranging from 0.005 to 0.025% or from 0.01 to 0.04% or from 0.02 to 0.5%.
[063] In some embodiments, the composition further comprises one or more coagulants, such as inorganic coagulants or organic coagulants or a combination of both inorganic and organic coagulants. In some embodiments, the organic coagulants are chosen from polyamines, polyDADMAC, melamine formaldehyde, and tannins. In some embodiments, the inorganic coagulants are chosen from aluminum sulfate (alum), aluminum chloride, polyaluminum chloride (PAC1), aluminum chlorohydrate (ACH), ferric sulfate, ferrous sulfate, and ferric chloride.
[064] In some embodiments, the composition further comprises one or more flocculants, such as cationic or anionic flocculants. In some embodiments, the cationic flocculants are chosen from polymers and copolymers, such as copolymers of AETAC (N,N- dimethylaminoethyl acrylate methyl chloride quaternary) or METAC (N,N- dimethylaminoethyl methacrylate methyl chloride quaternary) and acrylamide. In some embodiments, the anionic flocculants are chosen from polymers and copolymers, such as copolymers of acrylamide and acrylic acid.
[065] In some embodiments, the composition further comprises one or more pH modifiers. In some embodiments, the pH modifier is selected from gypsum, hydrated lime, ammonium nitrate, and aluminum sulfate. In some embodiments, the pH modifier is chosen from sodium hydroxide, caustic soda, hydrated lime, shell meal, limestone, burned lime, dolomite, sugar beet lime, and calcium silicate. In some embodiments, the pH modifier is chosen from aluminum sulfate, calcium sulfate, magnesium sulfate, Epsom salt, calcium chloride, lime sulfur, ferric sulfate, sulfuric acid, acetic acid, hydrochloric acid, sulfur, and gypsum. In some embodiments, the neutralizer is selected from gypsum, hydrated lime, ammonium nitrate, and aluminum sulfate. [066] In some embodiments, the composition is in a form chosen from aqueous suspensions or slurries, pugs, pastes, cakes, powders, granules, pellets, and prills.
[067] As used herein, a suspension or slurry is a paste or liquid in which solid particles are partially or fully dispersed.
[068] As used herein, a suspension is a liquid in which solid particles are dispersed. A slurry is a flowable suspension.
[069] As used herein, a slip is a liquid in which substantially all the components of a ceramic body have been mixed. The solid particles of a slip or suspension are the solid particulates.
[070] In some embodiments of an aqueous suspension, the liquid is water. In some embodiments, the liquid comprises water and at least one other liquid. In embodiments of an aqueous suspension, the water is present in an amount greater than 80% v/v relative to the total volume of the water plus the volume of the at least one other liquid. In some embodiments, the amount is greater than 90% v/v or 95% v/v or 99% v/v. In some embodiments, the amount ranges from 85% to 95% v/v or from 96% to 99% v/v..
[071] In some embodiments, the aqueous suspension is a slurry, i.e., flowable.
[072] As used herein, a slip is a liquid in which substantially all the components of a ceramic body have been mixed. The solid particles of a slip or suspension are the solid particulates.
[073] In some embodiments, the aqueous suspension has a total percent solids by weight (w/w%) amount ranging from 60% to 74% or from 65% to 75%.
[074] In some embodiments, the composition is in the form chosen from pugs or pastes. For example, the composition is mixed with water (as noted herein) and optionally at least one other liquid (as noted herein) to make a workable paste in a pug mill, before an optional extrusion.
[075] In some embodiments, the composition has a form chosen from pugs, pastes or cakes having a total percent solids by weight (w/w%) amount ranging from 70% to 90% or from 75% to 85%.
[076] In some embodiments, the composition is in the form of a pug having a total percent solids by weight (w/w%) amount ranging from 75% to 90% (w/w%) solids. [077] In some embodiments, the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
[078] The composition is makeable by mixing. In some embodiments, the ingredients of the composition are mixed. In some embodiments, mixing is facilitated by a mixer, such as a dry mixer such as a ribbon mixer, a cement mixer, a Mueller mixer, and the like.
[079] In some embodiments, the ingredients of the composition are agitated to form a composition in the form of an aqueous slurry or suspension.
[080] In some embodiments, the composition in the form of pug, cake, powder, granule, pellet or prill is mixed in water first, followed by addition of the non-plastic materials, if desired, and other materials; in some embodiments, the composition in the form of pug, cake, powder, granule, pellet or prill is added second or last. In some embodiments, the composition is not aged after addition to water or slurry. Order of addition is variable.
[081] In some embodiments, the composition in the form of a slurry is not aged; in some embodiments, the composition in the form of a slurry is reduced in solids concentration (w/w%) prior to addition of other materials; in some embodiments, the composition in the form of a slurry is added to a slurry or paste of other materials. Order of addition is not critical.
[082] In some embodiments, the composition is prepared by adding the one or more mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; the kaolin and the Ball Clay in the form of powder clay, a liquid or slurry, or crude unprocessed clay. In some embodiments the dispersant and other materials are added in the form of a liquid or slurry.
[083] In some embodiments the composition is in the form of slurry. For example, the method of making the composition, in the form of a slurry, comprises mixing water, the at least one first mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin, Ball Clay, dispersant and other materials, and mixing to form a homogeneous composition at a viscosity below 1500 cP, or between 1600 and 2500 cP, or between 1200 and 1800 cP. In some embodiments, the mixing further comprises mixing at least one second mineral agent (being the same or different than the first mineral agent) chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; and the composition in the form of slurry comprises at least one second mineral agent, which in some embodiments includes at least one form of sepiolite.
[084] These are exemplary methods of making, and any composition described herein is makeable by mixing the ingredients and agitating described herein.
[085] In some embodiments, the composition is prepared by adding the ingredients to a pug mixer to form a pug, paste or granules.
[086] In some embodiments, the composition is prepared by producing slurry followed by filter pressing to make a press cake, or followed by spray drying to make granules, or followed by pin mixing to make granules.
[087] In some embodiments, the storage of the composition in the form of slurry is for a period greater than 8 hours. In some embodiments, the storage is for a period ranging from 8 hours to 7 days. In some embodiments, the storage is for a period ranging from 3 to 6 days or from 4 to 5 days. In some embodiments, the storage is for 6 to 10 weeks during transport.
[088] In some embodiments the slurry viscosity is altered by addition of dispersant after storage.
[089] The composition is useable to make ceramic pieces.
[090] In some embodiments, the composition is formed into wet ceramic pieces having defined shapes. For example, a base composition is wet with water and optionally one other liquid until a desired level of viscosity, plasticity and moldability is attained (slip or slurry options may contain e.g., dispersants). In some embodiments, the wet ceramic pieces having defined shapes are formed by extruding the composition. In some embodiments, the wet ceramic pieces having defined shapes are formed by pressing the composition. In some embodiments, the wet ceramic pieces having defined shapes are formed by jiggering and/or jollying the composition. In some embodiments, the wet ceramic pieces having defined shapes are formed by casting the composition.
[091] In some embodiments, the wet ceramic pieces having defined shapes are dryable to form a dried ceramic piece. In some embodiments, the wet ceramic pieces having defined shapes are dried to form a dried ceramic piece using tunnel drying or periodic drying. [092] In some embodiments, the dried ceramic pieces are sinterable via heat to form a ceramic piece. Sintering results in densification. In some embodiments, sintering via heat is accompanied by compressing the dried ceramic piece before sintering via heat.
[093] The ceramic pieces are fmishable. In some embodiments, the ceramic pieces are finished by lapping, grinding, polishing, and/or glazing. In some embodiments, the ceramic pieces are finished by lapping, grinding, and/or polishing.
[094] In some embodiments glaze is applied before sintering and must shrink at a rate similar to that of the body during the sintering process to prevent cracking or crazing.
[095] In some embodiments, the composition makes it possible to provide higher green and fired strength compared to standard with marginally higher shrinkage.
[096] A composition comprising kaolin, Ball Clay, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting. A composition comprising kaolin, Ball Clay, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting. A composition comprising kaolin, Ball Clay, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
[097] A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting. A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting. A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite, in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
[098] A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by blending a slurry capable of replacing some or most of the plastic and non-plastic components in a ceramic pug suitable for pressing, jiggering or jollying.
[099] A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a pug or cake capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
[0100] A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a pug or cake capable of replacing some or most of the plastic and non-plastic components in a ceramic pug suitable for pressing, jiggering or jollying.
[0101] A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a powder, granule, pellet or prill capable of replacing some or most of the plastic and non-plastic components in a slip for casting.
[0102] A composition comprising kaolin, the at least one mineral agent chose from forms of sepiolite, palygorskite, bentonite, and montmorillonite; quartz and / or feldspar and / or nepheline syenite (an optionally further comprises optionally Ball Clay), in some embodiments is makeable by forming a powder, granule, pellet or prill capable of replacing some or most of the plastic and non-plastic components in a ceramic pug suitable for pressing, jiggering or jollying.
[0103] A composition, in the form of a powder, a granule or a prill having 90% to 100% (w/w%) solids; or in the form of a slurry having 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing some or most of the plastic and non-plastic components of a slip, makes it possible to exhibit reduced aging requirements.
[0104] A composition, in the form of a powder, a granule or a prill having 90% to 100% (w/w%) solids; or in the form of a slurry having 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing some or most of the plastic and non-plastic components of a slip, makes it possible to exhibit greater stability in viscosity and thixotropy.
[0105] A composition, in the form of a powder, a granule or a prill having 90% to 100% (w/w%) solids; or in the form of a slurry 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing some or most of the plastic and non-plastic components of a slip, makes it possible to exhibit equal or greater casting rates compared to a traditional slip.
[0106] As known to the inventors, traditional slips and pugs comprise a plastic portion that includes Ball Clay and kaolin in a ratio of approximately 2:1; e.g., SWF of 30%: 15%; or 34%:16% or; 37%: 15%, along with other clay minerals and dispersants.
[0107] As known to the inventors, traditional slips and pugs comprise a non-plastic portion that includes ground silica and ground feldspar in a ratio of approximately 3:7; e.g., SWF of 11%:38%; or 10%:40%; 12%:42%, along with other minerals and additives.
[0108] As known to the inventors, traditional slips and pugs comprise plastic to non-plastic ratio of approximately 1:1; e.g., Plastic to non-plastic SWF ratio of 51%:49%; or 50%:50%; or 52%:48%; or 48%:52%, along with small additions of dispersants, additives and other plastic or non-plastic minerals.
[0109] All solids in a slip are present in solids fraction of approximately 65% to 75% (w/w %). Applications of a slip include, but are not limited to, casting sanitaryware, electrical porcelain and certain types of tableware.
[0110] All solids in a pug or cake are present in solids fraction of approximately 75% to 85% (w/w %). Applications include, but are not limited to pressed tile and craft ware.
[0111] A composition comprising kaolin, the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; and optionally Ball Clay, in some embodiments, is a blended slurry capable of replacing some or the entire plastic component in a slip for casting.
[0112] A composition comprising the at least one mineral agent chose from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a blended slurry capable of replacing some or the entire plastic component in a ceramic pug suitable for pressing, jiggering or jollying.
[0113] A composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a pug or cake capable of replacing some or the entire plastic component in a slip for casting.
[0114] A composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a pug or cake capable of replacing some or all of the plastic component in a ceramic pug suitable for pressing, jiggering or jollying.
[0115] A composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite, kaolin and optionally Ball Clay, in some embodiments, is a powder, granule, pellet or prill capable of replacing some or all of the plastic component in a slip for casting.
[0116] A composition comprising the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite; kaolin and optionally Ball Clay, in some embodiments, is a powder, granule, pellet or prill capable of replacing some or all of the plastic component in a ceramic pug suitable for pressing, jiggering or jollying.
[0117] A composition in the form chosen from powders, granules, and prills having 90% to 100% (w/w%) solids; or in the form of a slurry having 60% to 78% (w/w%) solids; or in the form of a pug having 75% to 85% (w/w%) solids which, by replacing the plastic component of a slip makes it possible (1) to reduce aging requirements; (2) to exhibit greater stability in viscosity and thixotropy; and/or (3) to exhibit equal or greater casting rates compared to a traditional slip.
[0118] Examples [0119] The following compositions are prepared. The percentages are in SWF%.
Figure imgf000017_0001
[0120] It is believed that the compositions of Examples 1-3 would possibly make it possible to remove or eliminate the content of Ball clay in ceramic processing.
[0121] The following compositions are prepared. The percentages are in SWF%.
Figure imgf000017_0002
[0122] It is believed that the compositions of Examples 4-7 would possibly make it possible to remove or eliminate the content of Ball clay in ceramic processing.
[0123] Other embodiments of the invention will be apparent to those of ordinary skill in the art from consideration of the specification and practice of the embodiments disclosed herein. It is intended that the specification and examples be considered as non limiting, with a true scope and spirit of the invention being indicated by the following claims.

Claims

WHAT IS CLAIMED IS:
1. A composition, comprising: at least one form of sepiolite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
2. The composition of claim 1, wherein the at least one form of sepiolite is present in an amount SWF ranging from 1.5% to 7.5%.
3. The composition of claim 1, wherein the at least one form of sepiolite is chosen from sepiolite associated with dolomite.
4. The composition of claim 1, wherein the at least one form of sepiolite is chosen from sepiolite substantially free of non-sepiolite minerals.
5. The composition of claim 1, wherein the at least one form of sepiolite is chosen from sepiolite slurry or unprocessed crude sepiolite.
6. The composition of claim 1, wherein the kaolin is present in an amount SWF ranging from 35% to 45%.
7. The composition of claim 1, wherein the total percent solids by weight (w/w%) amount in the composition ranges from 60% to 99%.
8 The composition of claim 1, further comprising at least one quaternary amine.
9. The composition of claim 1, further comprising one or more additional ingredients chosen from quartz, feldspar, and nepheline syenite.
10. The composition of claim 1, wherein the composition is in a form chosen from aqueous slurries, suspensions, pugs, pastes, cakes, powders, granules, pellets, and prills.
11. The composition of claim 1, wherein the composition has a form chosen from aqueous suspensions having a total percent solids by weight (w/w%) amount ranging from 60% to 74%.
12. The composition of claim 1, wherein the composition has a form chosen from pugs, cakes and pastes having a total percent solids by weight (w/w%) amount ranging from 70% to 90%.
13. The composition of claim 1, wherein the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
14. A method of making a composition, comprising mixing at least one form of sepiolite, kaolin, and optionally Ball Clay, wherein the composition comprises: at least one form of sepiolite present in a solid weight fraction (SWF) amount ranging from 0.25% to 5%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
15. The method of claim 14, comprising mixing a liquid, at least one form of sepiolite, kaolin, and optionally Ball Clay to make a mixture.
16. The method of claim 15, wherein the liquid comprises water.
17. The method of claim 16, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of an aqueous slurry or suspension.
18. The method of claim 15, wherein the liquid further comprises at least one organic liquid.
19. A method of making a ceramic piece, comprising mixing at least one form of sepiolite, kaolin, and optionally Ball Clay to form a first composition comprising: at least one form of sepiolite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%; forming the composition into wet ceramic pieces having a defined shape; drying the wet ceramic piece having a defined shape to form a dried ceramic piece; and sintering the dried ceramic piece.
20. The method of claim 19, further comprising thereafter finishing the sintered ceramic piece.
21. Any composition disclosed herein.
22. Any use of a composition disclosed herein for making a ceramic.
23. A composition, comprising: at least one form of palygorskite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
24. The composition of claim 23, wherein the at least one form of palygorskite is present in an amount SWF ranging from 1.5% to 7.5%.
25. The composition of claim 23, wherein the at least one form of palygorskite is chosen from dried or filtered palygorskite.
26. The composition of claim 23, wherein the at least one form of palygorskite is chosen from palygorskite substantially free of non- palygorskite minerals.
27. The composition of claim 23, wherein the kaolin is present in an amount SWF ranging from 35% to 45%.
28. The composition of claim 23, wherein the total percent solids by weight (w/w%) amount in the composition ranges from 60% to 99%.
29. The composition of claim 23, further comprising at least one quaternary amine.
30. The composition of claim 23, further comprising one or more additional ingredients chosen from quartz, feldspar, and nepheline syenite.
31. The composition of claim 23, wherein the composition is in a form chosen from aqueous slurries, suspensions, pugs, pastes, cakes, powders, granules, pellets, and prills.
32. The composition of claim 23, wherein the composition has a form chosen from aqueous suspensions having a total percent solids by weight (w/w%) amount ranging from 60% to 74%.
33. The composition of claim 23, wherein the composition has a form chosen from pugs, cakes and pastes having a total percent solids by weight (w/w%) amount ranging from 70% to 90%.
34. The composition of claim 23, wherein the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
35. A method of making a composition, comprising mixing at least one form of palygorskite, kaolin, and optionally Ball Clay, wherein the composition comprises: at least one form of palygorskite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
36. The method of claim 35, comprising mixing a liquid, at least one form of palygorskite, kaolin, and optionally Ball Clay to make a mixture.
37. The method of claim 36, wherein the liquid comprises water.
38. The method of claim 37, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of an aqueous slurry or suspension.
39. The method of claim 36, wherein the liquid further comprises at least one organic liquid.
40. The method of claim 36, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of a slurry or suspension.
41. A method of making a ceramic piece, comprising mixing at least one form of palygorskite, kaolin, and optionally Ball Clay to form a first composition comprising: at least one form of palygorskite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%; forming the composition into wet ceramic pieces having a defined shape; drying the wet ceramic piece having a defined shape to form a dried ceramic piece; sintering the dried ceramic piece.
42. The method of claim 41, further comprising thereafter finishing the sintered ceramic piece.
43. A composition, comprising: at least one form of montmorillonite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
44. The composition of claim 43, wherein the at least one form of montmorillonite is present in an amount SWF ranging from 1.5% to 10.5%.
45. The composition of claim 43, wherein the at least one form of montmorillonite is chosen from montmorillonite associated with other minerals.
46. The composition of claim 43, wherein the at least one form of montmorillonite is chosen from montmorillonite substantially free of non-montmorillonite minerals.
47. The composition of claim 43, wherein the at least one form of montmorillonite is chosen from montmorillonite slurry or unprocessed crude montmorillonite.
48. The composition of claim 43, wherein the kaolin is present in an amount SWF ranging from 35% to 45%.
49. The composition of claim 43, wherein the total percent solids by weight (w/w%) amount in the composition ranges from 60% to 99%.
50. The composition of claim 43, further comprising at least one quaternary amine.
51. The composition of claim 43, further comprising one or more additional ingredients chosen from quartz, feldspar, and nepheline syenite.
52. The composition of claim 43, wherein the composition is in a form chosen from aqueous slurries, suspensions, pugs, pastes, cakes, powders, granules, pellets, and prills.
53. The composition of claim 43, wherein the composition has a form chosen from aqueous suspensions having a total percent solids by weight (w/w%) amount ranging from 60% to 74%.
54. The composition of claim 43, wherein the composition has a form chosen from pugs, cakes and pastes having a total percent solids by weight (w/w%) amount ranging from 70% to 90%.
55. The composition of claim 43, wherein the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
56. A method of making a composition, comprising mixing at least one form of montmorillonite, kaolin, and optionally Ball Clay, wherein the composition comprises: at least one form of montmorillonite present in a solid weight fraction (SWF) amount ranging from 0.25% to 5%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
57. The method of claim 56, comprising mixing a liquid, at least one form of montmorillonite, kaolin, and optionally Ball Clay to make a mixture.
58. The method of claim 57, wherein the liquid comprises water.
59. The method of claim 58, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of an aqueous slurry or suspension.
60. The method of claim 57, wherein the liquid further comprises at least one organic liquid.
61. The method of claim 57, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of a slurry or suspension.
62. A method of making a ceramic piece, comprising mixing at least one form of montmorillonite, kaolin, and optionally Ball Clay to form a first composition comprising: at least one form of montmorillonite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%; forming the composition into wet ceramic pieces having a defined shape; drying the wet ceramic piece having a defined shape to form a dried ceramic piece; and sintering the dried ceramic piece.
63. The method of claim 62, further comprising thereafter finishing the sintered ceramic piece.
64. A composition, comprising: at least one form of bentonite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
65. The composition of claim 64, wherein the at least one form of bentonite is present in an amount SWF ranging from 1.5% to 7.5%.
66. The composition of claim 64, wherein the at least one form of bentonite is chosen from bentonite associated with other minerals.
67. The composition of claim 64, wherein the at least one form of bentonite is chosen from bentonite substantially free of non-bentonite minerals.
68. The composition of claim 64, wherein the at least one form of bentonite is chosen from bentonite slurry or unprocessed crude bentonite.
69. The composition of claim 64, wherein the kaolin is present in an amount SWF ranging from 35% to 45%.
70. The composition of claim 64, wherein the total percent solids by weight (w/w%) amount in the composition ranges from 60% to 99%.
71. The composition of claim 64, further comprising at least one quaternary amine.
72. The composition of claim 64, further comprising one or more additional ingredients chosen from quartz, feldspar, and nepheline syenite.
73. The composition of claim 64, wherein the composition is in a form chosen from aqueous slurries, suspensions, pugs, pastes, cakes, powders, granules, pellets, and prills.
74. The composition of claim 64, wherein the composition has a form chosen from aqueous suspensions having a total percent solids by weight (w/w%) amount ranging from 60% to 74%.
75. The composition of claim 64, wherein the composition has a form chosen from pugs, cakes and pastes having a total percent solids by weight (w/w%) amount ranging from 70% to 90%.
76. The composition of claim 64, wherein the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
77. A method of making a composition, comprising mixing at least one form of bentonite, kaolin, and optionally Ball Clay, wherein the composition comprises: at least one form of bentonite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
78. The method of claim 77, comprising mixing a liquid, at least one form of bentonite, kaolin, and optionally Ball Clay to make a mixture.
79. The method of claim 78, wherein the liquid comprises water.
80. The method of claim 79, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of an aqueous slurry or suspension.
81. The method of claim 78, wherein the liquid further comprises at least one organic liquid.
82. The method of claim 78, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of a slurry or suspension.
83. A method of making a ceramic piece, comprising mixing at least one form of bentonite, kaolin, and optionally Ball Clay to form a first composition comprising: at least one form of bentonite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%; forming the composition into wet ceramic pieces having a defined shape; drying the wet ceramic piece having a defined shape to form a dried ceramic piece; and sintering the dried ceramic piece.
84. The method of claim 83, further comprising thereafter finishing the sintered ceramic piece.
85. A composition, comprising: at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
86. The composition of claim 85, wherein the at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite is present in an amount SWF ranging from 1.5% to 7.5%.
87. The composition of claim 85, wherein the at least one mineral agent is chosen from two or more different forms of sepiolite, palygorskite, bentonite, and montmorillonite.
88. The composition of claim 85, wherein the at least one mineral agent is chosen from two or more different forms of sepiolite and palygorskite.
89. The composition of claim 85, wherein the at least one mineral agent is chosen from two or more different forms of sepiolite.
90. The composition of claim 85, wherein the kaolin is present in an amount SWF ranging from 35% to 45%.
91. The composition of claim 85, wherein the total percent solids by weight (w/w%) amount in the composition ranges from 60% to 99%.
92. The composition of claim 85, further comprising at least one quaternary amine.
93. The composition of claim 85, further comprising one or more additional ingredients chosen from quartz, feldspar, and nepheline syenite.
94. The composition of claim 85, wherein the composition is in a form chosen from aqueous slurries, suspensions, pugs, pastes, cakes, powders, granules, pellets, and prills.
95. The composition of claim 85, wherein the composition has a form chosen from aqueous suspensions having a total percent solids by weight (w/w%) amount ranging from 60% to 74%.
96. The composition of claim 85, wherein the composition has a form chosen from pugs, cakes and pastes having a total percent solids by weight (w/w%) amount ranging from 70% to 90%.
97. The composition of claim 85, wherein the composition has a form chosen from powders, granules, pellets, and prills having a total percent solids by weight (w/w%) amount ranging from 85% to 100%.
98. A method of making a composition, comprising mixing at least one mineral agent chosen from forms of sepiolite, palygorskite, and montmorillonite, kaolin, and optionally Ball Clay, wherein the composition comprises: at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite present in a solid weight fraction (SWF) amount ranging from 0.25% to 5%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%.
99. The method of claim 98, comprising mixing a liquid, at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite, kaolin, and optionally Ball Clay to make a mixture.
100. The method of claim 99, wherein the liquid comprises water.
101. The method of claim 100, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of an aqueous slurry or suspension.
102. The method of claim 101, wherein the liquid further comprises at least one organic liquid.
103. The method of claim 99, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of a slurry or suspension.
104. A method of making a ceramic piece, comprising mixing at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite, kaolin, and optionally Ball Clay to form a first composition comprising: at least one mineral agent chosen from forms of sepiolite, palygorskite, bentonite, and montmorillonite in a solid weight fraction (SWF) amount ranging from 1.0% to 10.0%; kaolin present in a solid weight fraction (SWF) amount ranging from 17% to 50%; and
Ball Clay present in a solid weight fraction (SWF) amount ranging from 0% to 25%; forming the composition into wet ceramic pieces having a defined shape; drying the wet ceramic piece having a defined shape to form a dried ceramic piece; and sintering the dried ceramic piece.
105. The method of claim 104, further comprising thereafter finishing the sintered ceramic piece.
106. The method of claim 15, wherein the mixture is agitated to form a slurry or suspension, and the composition is in the form of a slurry or suspension.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116332634A (en) * 2023-01-07 2023-06-27 广东欧文莱陶瓷有限公司 Ceramic tile with anti-fouling effect and mutton-fat jade touch sense and preparation method thereof

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140031455A1 (en) * 2011-02-01 2014-01-30 Julio Santarén Romé Method for producing a compound based on pseudolaminar silicates and the use thereof as a filler for polymeric materials
US20140119841A1 (en) * 2012-10-31 2014-05-01 Active Minerals International Mineral suspending agent, method of making, and use thereof
CN110183211A (en) * 2019-06-04 2019-08-30 河北工业大学 A kind of sepiolite Strengthening and Toughening sanitary ceramic body and preparation method thereof
US20210032164A1 (en) * 2017-05-05 2021-02-04 Active Minerals International, Llc Composition to completely or partially replace ball clay in ceramics, method of making, and use thereof

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140031455A1 (en) * 2011-02-01 2014-01-30 Julio Santarén Romé Method for producing a compound based on pseudolaminar silicates and the use thereof as a filler for polymeric materials
US20140119841A1 (en) * 2012-10-31 2014-05-01 Active Minerals International Mineral suspending agent, method of making, and use thereof
US20210032164A1 (en) * 2017-05-05 2021-02-04 Active Minerals International, Llc Composition to completely or partially replace ball clay in ceramics, method of making, and use thereof
CN110183211A (en) * 2019-06-04 2019-08-30 河北工业大学 A kind of sepiolite Strengthening and Toughening sanitary ceramic body and preparation method thereof

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
ANONYMOUS: "COMPOUND SUMMARY Kaolin | Al2H4O9Si2 - PubChem", INTERNET ARCHIVE WAYBACK MACHINE, 22 April 2021 (2021-04-22), pages 1 - 47, XP093002895, Retrieved from the Internet <URL:https://web.archive.org/web/20210422041556/https://pubchem.ncbi.nlm.nih.gov/compound/kaolin> [retrieved on 20221129] *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116332634A (en) * 2023-01-07 2023-06-27 广东欧文莱陶瓷有限公司 Ceramic tile with anti-fouling effect and mutton-fat jade touch sense and preparation method thereof
CN116332634B (en) * 2023-01-07 2024-01-30 广东欧文莱陶瓷有限公司 Ceramic tile with anti-fouling effect and mutton-fat jade touch sense and preparation method thereof

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