Claims
- 1. An aqueous composition comprising:
(A) at least one water-soluble component comprising at least one functional group that undergoes a crosslinking reaction; and (B) at least one film-forming polymer.
- 2. The composition of claim 1 wherein component (A) is selected from at least one of acrylamide-based crosslinkable polymers, polyamidoamine-epihalohydrin resins, polyamines, and polyimines.
- 3. The composition of claim 2 wherein component (A) comprises acrylamide-based crosslinkable polymers.
- 4. The composition of claim 3 wherein component (A) comprises cationic functionalized polyacrylamides.
- 5. The composition of claim 2 wherein the functional group of component (A) is selected from at least one of epoxy, azetidinium, aldehyde, carboxyl group, acrylate and derivatives thereof, acrylamide and derivatives thereof, and quaternary amine.
- 6. The composition of claim 5 wherein the functional group of component (A) is selected from at least one of epoxy and azetidinium.
- 7. The composition of claim 2 wherein the film-forming polymer is selected from at least one polymer derived from monomers of alkyl halides of from 2-12 C atoms, alkene halides of from 2-12 C atoms, alkyl acrylamides of from 2-12 C atoms, alkene acrylamides of from 2-12 C atoms, alkyl acrylates of from 2-12 C atoms, and alkene acrylates of from 2-12 C atoms.
- 8. The composition of claim 7 wherein the film-forming polymer is selected from at least one polymer derived from at least one monomer selected from at least one of styrene, dimethylstyrene, vinyltoluene, chloroprene, butadiene, ethylene, acrylamide, acrylonitrile, acrolein, methylacrylate, ethylacrylate, acrylic acid, methacrylic acid, methyl methacrylate, n-butyl acrylate, vinylidene chloride, vinyl ester, vinyl chloride, vinyl acetate, acrylated urethane, hydroxyethyl acrylate, dimethylaminoethyleneacrylate, and vinyl acetate.
- 9. The composition of claim 2 wherein the film-forming polymer is a latex selected from at least one polymer derived from at least one monomer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene, wherein the alkyl halide has from 2 to 12 C atoms, and wherein the alkene has from 2 to 12 C atoms.
- 10. The composition of claim 9 wherein the alkyl halide comprises a vinyl halide.
- 11. The composition of claim 10 wherein the alkyl halide comprises a vinyl halide and the alkene comprises an olefin.
- 12. The composition of claim 9, wherein the alkyl halide comprises a vinyl halide and the alkene comprises ethylene.
- 13. The composition of claim 12, wherein the vinyl halide comprises vinyl chloride.
- 14. The composition of claim 13, wherein the alkyl halide comprises a vinyl chloride and the alkene comprises ethylene.
- 15. The composition of claim 7 wherein the dry weight ratio of (A) to (B) is about 5:1 to 1:1.
- 16. The composition of claim 15 wherein the dry weight ratio of (A) to (B) is about 2:1 to 1:1.
- 17. The composition of claim 16 wherein the dry weight ratio of (A) to (B) is about 1.69:1.
- 18. The composition of claim 7 further comprising a fluoacid.
- 19. The composition of claim 15 further comprising a fluoacid.
- 20. A substrate coated with a cured composition of claim 1.
- 21. A substrate coated with the composition of claim 2.
- 22. A metal substrate coated with a cured composition of claim 18.
- 23. The metal substrate of claim 22, wherein the fluoacid is selected from at least one of fluotitanic acid and fluozirconic acid.
- 24. The metal substrate of claim 23, wherein a cured composition has a pH from about 1.5 to about 5.0.
- 25. A metal substrate coated with a cured composition of claim 19.
- 26. The metal substrate of claim 25, wherein the fluoacid is selected from at least one of fluotitanic acid and fluozirconic acid.
- 27. The metal substrate of claim 26, wherein a cured composition has a pH from about 1.5 to about 5.0.
- 28. A cellulosic product comprising a cured composition of claim 1.
- 29. A cellulosic product comprising a cured composition of claim 2.
- 30. A ceiling tile comprising a cured composition of claim 1.
- 31. A non-woven product comprising a cured composition of claim 1.
- 32. A latex extender comprising a cured composition of claim 1.
- 33. A paint comprising a cured composition of claim 1.
- 34. The composition of claim 7 wherein the dry weight ratio of (A) to (B) is about 5:1 to 1:1.
- 35. The composition of claim 34, further comprising a fluoacid.
- 36. A metal substrate coated with a cured composition of claim 35.
- 37. The metal substrate of claim 36, wherein the fluoacid is selected from at least one of fluotitanic acid and fluozirconic acid.
- 38. The metal substrate of claim 37, wherein the composition has a pH from about 1.5 to about 5.0.
- 39. A cellulosic product comprising a cured composition of claim 34.
- 40. A latex extender comprising a cured composition of claim 34.
- 41. A non-woven product comprising a cured composition of claim 34.
- 42. A method of preparing a coated substrate which comprises:
(1) coating a substrate with a coating composition comprising:
(A) at least one water-soluble component comprising at least one functional group that undergoes a crosslinking reaction; and (B) at least one film-forming polymer; and (2) curing the coating composition on the substrate.
- 43. The method of claim 42 wherein said coating composition is dried in place on surface of said substrate.
- 44. The method of claim 42 further comprises rinsing said coating composition from said coated substrate.
- 45. The method of claim 44 wherein component (A) is selected from at least one of acrylamide-based crosslinkable polymers, polyamidoamine-epihalohydrin resins, polyamines, and polyimines.
- 46. The method of claim 45 wherein component (A) comprises acrylamide-based crosslinkable polymers.
- 47. The method of claim 45 wherein component (A) comprises cationic functionalized polyacrylamides.
- 48. The method of claim 45 wherein the functional group of component (A) is selected from at least one of epoxy, azetidinium, aldehyde, carboxyl group, acrylate and derivatives thereof, acrylamide and derivatives thereof, and quaternary amine.
- 49. The method of claim 48 wherein the functional group of component (A) is selected from at least one of epoxy and azetidinium.
- 50. The method of claim 45 wherein the film-forming polymer is selected from at least one polymer derived from monomers of alkyl halides of from 2-12 C atoms, alkene halides of from 2-12 C atoms, alkyl acrylamides of from 2-12 C atoms, alkene acrylamides of from 2-12 C atoms, alkyl acrylates of from 2-12 C atoms, and alkene acrylates of from 2-12 C atoms.
- 51. The method of claim 50 wherein the film-forming polymer is selected from at least one polymer derived from at least one monomer selected from at least one of styrene, dimethylstyrene, vinyltoluene, chloroprene, butadiene, ethylene, acrylamide, acrylonitrile, acrolein, methylacrylate, ethylacrylate, acrylic acid, methacrylic acid, methyl methacrylate, n-butyl acrylate, vinylidene chloride, vinyl ester, vinyl chloride, vinyl acetate, acrylated urethane, hydroxyethyl acrylate, dimethylaminoethyleneacrylate, and vinyl acetate.
- 52. The method of claim 45 wherein the film-forming polymer is a latex selected from at least one polymer derived from at least one monomer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene, wherein the alkyl halide has from 2 to 12 C atoms, and wherein the alkene has from 2 to 12 C atoms.
- 53. The method of claim 52 wherein the alkyl halide comprises a vinyl halide and the alkene comprises an olefin.
- 54. The method of claim 52, wherein the alkyl halide comprises a vinyl halide and the alkene comprises ethylene.
- 55. The method of claim 50 wherein the dry weight ratio of (A) to (B) is about 5:1 to 1:1.
- 56. The method of claim 55 wherein the dry weight ratio of (A) to (B) is about 1.69:1.
- 57. The method of claim 50 further comprising a fluoacid.
- 58. The method of claim 55 further comprising a fluoacid.
- 59. A metal substrate prepared by the method of claim 57.
- 60. The metal substrate of claim 59, wherein the fluoacid is selected from at least one of fluotitanic acid and fluozirconic acid.
- 61. The metal substrate of claim 60 wherein the composition has a pH from about 1.5 to about 5.0.
- 62. A metal substrate prepared by the method of claim 58.
- 63. The metal substrate of claim 62, wherein the fluoacid is selected from at least one of fluotitanic acid and fluozirconic acid.
- 64. The metal substrate of claim 63, wherein the composition has a pH from about 1.5 to about 5.0.
- 65. The method of claim 47 wherein the film-forming polymer is selected from at least one polymer derived from monomers of alkyl halides of from 2-12 C atoms, alkene halides of from 2-12 C atoms, alkyl acrylamides of from 2-12 C atoms, alkene acrylamides of from 2-12 C atoms, alkyl acrylates of from 2-12 C atoms, and alkene acrylates of from 2-12 C atoms.
- 66. The method of claim 65 wherein the dry weight ratio of (A) to (B) is about 2:1 to 1:1.
- 67. The method of claim 66, further comprising a fluoacid selected from at least one of fluotitanic acid and fluozirconic acid.
- 68. A metal substrate coated with a cured composition of claim 67.
- 69. A method of preparing cellulosic products which comprises:
substantially simultaneously or sequentially adding to a system comprising cellulosic fibers, wherein the system is selected from at least one of aqueous system, felt, web, and combinations thereof (A) at least one water-soluble component comprising at least one functional group that undergoes a crosslinking reaction; and (B) at least one film-forming polymer.
- 70. The method of claim 69 wherein component (A) is selected from at least one of acrylamide-based crosslinkable polymers, polyamidoamine-epihalohydrin resins, polyamines, and polyimines.
- 71. The method of claim 70 wherein component (A) comprises acrylamide-based crosslinkable polymers.
- 72. The method of claim 71 wherein component (A) comprises cationic functionalized polyacrylamides.
- 73. The method of claim 70 wherein the functional group of component (A) is selected from at least one of epoxy, azetidinium, aldehyde, carboxyl group, acrylate and derivatives thereof, acrylamide and derivatives thereof, and quaternary amine.
- 74. The method of claim 73 wherein the functional group of component (A) is selected from at least one of epoxy and azetidinium.
- 75. The method of claim 70 wherein the film-forming polymer is selected from at least one polymer derived from at least one monomer derived from monomers of alkyl halides of from 2-12 C atoms, alkene halides of from 2-12 C atoms, alkyl acrylamides of from 2-12 C atoms, alkene acrylamides of from 2-12 C atoms, alkyl acrylates of from 2-12 C atoms, and alkene acrylates of from 2-12 C atoms.
- 76. The method of claim 75 wherein the film-forming polymer is selected from at least one polymer derived from at least one monomer selected from at least one of styrene, dimethylstyrene, vinyltoluene, chloroprene, butadiene, ethylene, acrylamide, acrylonitrile, acrolein, methylacrylate, ethylacrylate, acrylic acid, methacrylic acid, methyl methacrylate, n-butyl acrylate, vinylidene chloride, vinyl ester, vinyl chloride, vinyl acetate, acrylated urethane, hydroxyethyl acrylate, dimethylaminoethyleneacrylate, and vinyl acetate.
- 77. The method of claim 70 wherein the film-forming polymer is a latex selected from at least one polymer derived from at least one monomer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene, wherein the alkyl halide has from 2 to 12 C atoms, and wherein the alkene has from 2 to 12 C atoms.
- 78. The method of claim 77 wherein the alkyl halide comprises a vinyl halide and the alkene comprises an olefin.
- 79. The method of claim 77, wherein the alkyl halide comprises a vinyl halide and the alkene comprises ethylene.
- 80. The method of claim 75 wherein the dry weight ratio of (A) to (B) is about 5:1 to 1:1.
- 81. The method of claim 80 wherein the dry weight ratio of (A) to (B) is about 1.69:1.
- 82. The method of claim 72 wherein the film-forming polymer is selected from at least one polymer derived from monomers of alkyl halides of from 2-12 C atoms, alkene halides of from 2-12 C atoms, alkyl acrylamides of from 2-12 C atoms, alkene acrylamides of from 2-12 C atoms, alkyl acrylates of from 2-12 C atoms, and alkene acrylates of from 2-12 C atoms.
- 83. The method of claim 82 wherein the dry weight ratio of (A) to (B) is about 5:1 to 1:1.
- 84. The method of claim 83 wherein the dry weight ratio of (A) to (B) is about 2:1 to 1:1.
- 85. A cellulosic product prepared by the method of claim 84.
- 86. A ceiling tile prepared by the method of claim 84.
- 87. A non-woven product prepared by the method of claim 84.
- 88. A method for forming a substantially chromium-free, dried in place conversion coating on a metal surface comprising applying to a metal surface:
(1) an aqueous composition comprising (A) at least one water-soluble component comprising at least one functional group that undergoes a crosslinking reaction; and (B) at least one film-forming polymer; and (2) fluoacid,
wherein the amount of the composition in (1) is from about 0.1 to about 90% by weight, and wherein the amount of fluoacid is from about 0.2 to about 20% by weight.
- 89. The method of claim 88, wherein the fluoacid is selected from at least one of fluotitanic acid and fluozirconic acid.
- 90. The method of claim 89, wherein the composition has a pH from about 1.5 to about 5.0.
- 91. The method of claim 90 wherein component (A) is selected from at least one of acrylamide-based crosslinkable polymers, polyamidoamine-epihalohydrin resins, polyamines, and polyimines.
- 92. The method of claim 91 wherein component (A) comprises acrylamide-based crosslinkable polymers.
- 93. The method of claim 92 wherein the functional group of component (A) is selected from at least one of epoxy, azetidinium, aldehyde, carboxyl group, acrylate and derivatives thereof, acrylamide and derivatives thereof, and quaternary amine.
- 94. The method of claim 93 wherein the functional group of component (A) is selected from at least one of epoxy and azetidinium.
- 95. The method of claim 91 wherein the film-forming polymer is selected from at least one polymer derived from monomers of alkyl halides of from 2-12 C atoms, alkene halides of from 2-12 C atoms, alkyl acrylamides of from 2-12 C atoms, alkene acrylamides of from 2-12 C atoms, alkyl acrylates of from 2-12 C atoms, and alkene acrylates of from 2-12 C atoms.
- 96. The method of claim 95 wherein the film-forming polymer is selected from at least one polymer derived from at least one monomer selected from at least one of styrene, dimethylstyrene, vinyltoluene, chloroprene, butadiene, ethylene, acrylamide, acrylonitrile, acrolein, methylacrylate, ethylacrylate, acrylic acid, methacrylic acid, methyl methacrylate, n-butyl acrylate, vinylidene chloride, vinyl ester, vinyl chloride, vinyl acetate, acrylated urethane, hydroxyethyl acrylate, dimethylaminoethyleneacrylate, and vinyl acetate.
- 97. The method of claim 89 wherein the film-forming polymer is a latex selected from at least one polymer derived from at least one monomer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene, wherein the alkyl halide has from 2 to 12 C atoms, and wherein the alkene has from 2 to 12 C atoms.
- 98. The method of claim 95 wherein the dry weight ratio of (A) to (B) is about 5:1 to 1:1.
- 99. The method of claim 98 wherein the dry weight ratio of (A) to (B) is about 1.69:1.
- 100. A metal substrate prepared by the method of claim 88.
- 101. A metal substrate prepared by the method of claim 89.
- 102. A metal substrate prepared by the method of claim 95.
- 103. A metal substrate prepared by the method of claim 98.
- 104. A coating composition comprising:
(A) at least one polyamidoamine-epihalohydrin resin; and (B) at least one material in an amount sufficient to impart a cuttability value of less than about 15 to a substrate coated with the cured coating composition.
- 105. The coating composition of claim 104, wherein the cuttability value is less than about 10.
- 106. The coating composition of claim 105, wherein the cuttability value is less than about 2.
- 107. The coating composition of claim 106, wherein the cuttability value is less than about 1.
- 108. A coating composition comprising:
(A) at least one polyamidoamine-epihalohydrin resin; and (B) at least one material selected from flexibilizing materials, crosslink inhibiters and combinations thereof in an amount sufficient to impart a cuttability value of less than about 15 to a substrate coated with the coating composition.
- 109. The coating composition of claim 108, wherein the cuttability value is less than about 10.
- 110. The coating composition of claim 109, wherein the cuttability value is less than about 2.
- 111. The coating composition of claim 110, wherein the cuttability value is less than about 1.
- 112. The composition of claim 104, wherein (B) is selected from copolymers derived from monomers including at least one of alkyl halides, alkenes, methyl methacrylate, butyl acrylate, styrene vinylidene chloride, acrylic acid, methacrylic acid, and vinyl acrylic-based materials.
- 113. A coating composition comprising:
(A) at least one polyamidoamine-epihalohydrin resin; and (B) at least one polymer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene.
- 114. The coating composition of claim 113, wherein the alkyl halide comprises a vinyl halide.
- 115. The coating composition of claim 113, wherein the alkyl halide comprises a vinyl halide and the alkene comprises an olefin.
- 116. The coating composition of claim 113, wherein the alkyl halide comprises a vinyl halide and the alkene comprises ethylene.
- 117. The coating composition of claim 115, wherein the vinyl halide comprises vinyl chloride.
- 118. The coating composition of claim 116, wherein the alkyl halide comprises a vinyl chloride and the alkene comprises ethylene.
- 119. The coating composition of claim 113, wherein component (A) comprises an aqueous solution of component (A) present in an amount in a range of from about 5% to about 95% by weight based on the total weight of all components of the composition, and component (B) comprises an aqueous emulsion of component (B) present in an amount in a range of from about 5% to about 95% by weight based on the total weight of all components of the composition.
- 120. The coating composition of claim 119, wherein component (A) comprises an aqueous solution of component (A) present in an amount in a range of from about 50% to about 85% by weight based on the total weight of all components of the composition, and component (B) comprises an aqueous emulsion of component (B) present in an amount in a range of from about 8% to about 50% by weight based on the total weight of all components of the composition.
- 121. The coating composition of claim 120, wherein component (A) comprises an aqueous solution of component (A) present in an amount of about 75% by weight based on the total weight of all components of the composition, and component (B) comprises an aqueous emulsion of component (B) present in an amount of about 11% by weight based on the total weight of all components of the composition.
- 122. The coating composition of claim 113, further comprising a surfactant.
- 123. The coating composition of claim 122, wherein the surfactant comprises an octylphenoxypolyethoxyethanol nonionic surfactant.
- 124. The coating composition of claim 122, wherein the surfactant is present in an amount of up to about 5%, by weight.
- 125. The coating composition of claim 124, wherein the surfactant is present in an amount of up to about 1% by weight.
- 126. The coating composition of claim 125, wherein the surfactant is present in an amount of about 0.05-0.25% by weight.
- 127. A substrate, coated with the coating composition of claim 104.
- 128. A coated building unit comprising a substrate and the coating of claim 104.
- 129. The coated building unit of claim 128, wherein the substrate comprises a ceiling tile.
- 130. The coated building unit of claim 128, wherein the substrate comprises a wall board.
- 131. The coated building unit of claim 128, which exhibits a Hess Rake Test Value of at least about 8, and a cuttablity value of less than about 15.
- 132. The coated building unit of claim 131, which exhibits a Hess Rake Test Value of at least about 10, and a cuttablity value of less than about 10.
- 133. The coated building unit of claim 132, which exhibits a Hess Rake Test Value of at least about 12, and a cuttablity value of less than about 2.
- 134. The coated building unit of claim 133, which exhibits a Hess Rake Test Value of at least about 14, and a cuttablity value of less than about 1.
- 135. A building unit coated with a composition comprising:
(A) at least one polyamidoamine-epihalohydrin resin; and (B) at least one polymer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene.
- 136. The coated building unit of claim 135, wherein the substrate comprises a ceiling tile.
- 137. The coated building unit of claim 135, wherein the substrate comprises a wall board.
- 138. The coated building unit of claim 135, which exhibits a Hess Rake Test Value range of at least about 8, and a cuttability value of less than about 15.
- 139. The coated building unit of claim 138, which exhibits a Hess Rake Test Value of at least about 10, and a cuttability value of less than about 10.
- 140. The coated building unit of claim 139, which exhibits a Hess Rake Test Value of at least about 12, and a cuttability value of less than about 2.
- 141. The coated building unit of claim 140, which exhibits a Hess Rake Test Value of at least about 14, and a cuttability value of less than about 1.
- 142. A coating composition comprising:
(A) at least one polyamidoamine-epihalohydrin resin; and (B) at least one material in an amount sufficient to impart sufficient flexibility, such that when the coating is applied to a substrate and cured, the cured coating exhibits substantially no delamination from the substrate or cracking, when the substrate is bent substantially 180° subsequent to curing.
- 143. The composition of claim 142, wherein the thickness of the coating after curing is in the range of about 5-10 mils when cured.
- 144. The composition of claim 142, wherein the sufficient flexibility, is such that when the coating is applied to a substrate and cured, the cured coating exhibits substantially no delamination or cracking, when the substrate is bent substantially 360°.
- 145. A substrate, coated with the coating composition of claim 142.
- 146. A coated building unit comprising a substrate and the coating of claim 143.
- 147. The coated building unit of claim 146, wherein the substrate comprises a ceiling tile.
- 148. The coated building unit of claim 146, wherein the substrate comprises a wall board.
- 149. The coating composition of claim 142, wherein (B) is selected from copolymers derived from monomers including at least one of alkyl halides, alkenes, methyl methacrylate, butyl acrylate, styrene vinylidene chloride, acrylic acid, methacrylic acid, and vinyl acrylic-based materials.
- 150. A method of producing a coated substrate comprising
(1) coating a substrate with a coating composition comprising:
(A) at least one polyamidoamine-epihalohydrin resin; and (B) at least one material in an amount sufficient to impart a cuttability value of less than about 15 to the coated substrate upon curing the coating composition; and (2) curing the coating composition on the substrate.
- 151. The method of claim 150, wherein the cuttability value is less than about 10.
- 152. The method of claim 151, wherein the cuttability value is less than about 2.
- 153. The method of claim 152, wherein the cuttability value is less than about 1.
- 154. The method of claim 153, wherein the substrate comprises a building unit.
- 155. The method of claim 154, wherein the building unit comprises a ceiling tile.
- 156. The method of claim 154, wherein the building unit comprises a wall board.
- 157. The method of claim 150, wherein the material of (2) comprises at least one polymer comprising repeating units derived from an alkyl halide having at least one double bond and an alkene.
- 158. The coating composition of claim 157, wherein the alkyl halide comprises a vinyl halide.
- 159. The method of claim 158, wherein the alkyl halide comprises a vinyl halide and the alkene comprises an olefin.
- 160. The method of claim 158, wherein the alkyl halide comprises a vinyl halide and the alkene comprises ethylene.
- 161. The method of claim 160, wherein the vinyl halide comprises vinyl chloride.
- 162. The method of claim 150, wherein (B) is selected from copolymers derived from monomers including at least one of alkyl halides, alkenes, methyl methacrylate, butyl acrylate, styrene vinylidene chloride, acrylic acid, methacrylic acid, and vinyl acrylic-based materials.
- 163. The method of claim 150, wherein component (A) comprises an aqueous solution of component (A) present in an amount in a range of from about 5% to about 95% by weight based on the total weight of all components of the composition, and component (B) comprises an aqueous emulsion of component (B) present in an amount in a range of from about 5% to about 95% by weight based on the total weight of all components of the composition.
- 164. The method of claim 163, wherein component (A) comprises an aqueous solution of component (A) present in an amount in a range of from about 50% to about 85% by weight based on the total weight of all components of the composition, and component (B) comprises an aqueous emulsion of component (B) present in an amount in a range of from about 8% to about 50% by weight based on the total weight of all components of the composition.
- 165. The method of claim 164, wherein component (A) comprises an aqueous solution of component (A) present in an amount of about 75% by weight based on the total weight of all components of the composition, and component (B) comprises an aqueous emulsion of component (B) present in an amount of 11% by weight based on the total weight of all components of the composition.
- 166. The composition of claim 104, wherein the weight ratio of (A):(B) is from about 0.05 to about 19.
- 167. The composition of claim 104, wherein the weight ratio of (A):(B) is from about 4 to about 12.
- 168. The composition of claim 104, wherein the weight ratio of (A):(B) is from about 6 to about 8.
- 169. The composition of claim 104, wherein the weight ratio of (A):(B) is from about 6.5 to about 7.0
- 170. The composition of claim 104, wherein the weight ratio of (A):(B) is about 6.75.
- 171. The method of claim 150, wherein the weight ratio of (A):(B) is from about 0.05 to about 19.
- 172. The method of claim 150, wherein the weight ratio of (A):(B) is from about 4 to about 12.
- 173. The method of claim 150, wherein the weight ratio of (A):(B) is from about 6 to about 8.
- 174. The method of claim 150, wherein the weight ratio of (A):(B) is from about 6.5 to about 7.0
- 175. The method of claim 150, wherein the weight ratio of (A):(B) is about 6.75.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application is a continuation-in-part of U.S. application Ser. No. 09/348,346 filed Jul. 8, 1999, the entire disclosure of which is expressly incorporated by reference herein.
[0002] This application also expressly incorporates by reference herein the entire disclosure of U.S. application Ser. No. __/______ [Attorney Docket No. P18732], entitled “Compositions for Imparting Desired Properties to Materials”, which is being concurrently filed with the present application.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09613529 |
Jul 2000 |
US |
Child |
10341164 |
Jan 2003 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09348346 |
Jul 1999 |
US |
Child |
09613529 |
Jul 2000 |
US |