Claims
- 1. A fire-resistant polymer material, comprising:
a polymer; and a reactive flame retardant chemical, wherein said fire-resistant polymer material is transparent and intumescent.
- 2. The fire-resistant polymer material of claim 1, wherein the fire-retardant chemical forms a bond with said polymer.
- 3. The fire-resistant polymer of claim 1, wherein said polymer comprises acrylamide, bisacrylamide, an initiator and a catalyst.
- 4. The fire-resistant polymer of claim 1, further comprising a second fire-retardant chemical selected from the group consisting of bromine and chlorine for a total of about 60%, organic halogen compounds, phosphorous containing polyol, boron-phosphate, modified organic halogens, di-linoleic acid/tri-linoleic acid/ethylene diamine copolymers, polyphosphate-nitrogen liquid, inorganic salts, acrylic polymer compounds, dibutyl butylphosphonate, antimony oxide, antimonyperoxide, sodium borate, barium metaborate, alumina trihydrate, magnesium hydroxide, decabromodiphenyl oxides, vinyl bromide, dimethylphosphonate, and/or dibromoneopentyl glycol, dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, halogenated compound Z, organic phosphate Y, chlorinated paraffin W, organic phosphate X and NT aqua fire retardant, organophosphorus monomers, phosphorus-containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 5. The fire-retardant polymer material of claim 1, wherein said polymer material is disposed between spaces between two or more sheets of transparent material, thereby forming a fire-resistant transparent material.
- 6. The fire-resistant transparent material of claim 5, wherein said sheets of transparent material are selected from the group consisting of tempered glass, laminated glass, annealed glass, plastic, fiberglass and masonite.
- 7. The fire-resistant polymer material of claim 1, wherein said reactive flame retardant chemical is selected from the group consisting of dialkyl phosphorus carboxyl Amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus-containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 8. The fire-resistant polymer of claim 1, wherein said polymer comprises an acrylamide polymer.
- 9. A fire-resistant transparent material comprising:
at least one sheet of transparent material; a fire resistant polymer; and a reactive fire retardant chemical.
- 10. The fire resistant transparent material of claim 9, wherein said reactive flame retardant chemical is selected from the group consisting of dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus -containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 11. The fire resistant transparent material of claim 9, wherein said polymer further comprises a second fire retardant material.
- 12. The fire resistant material of claim 11, wherein said fire retardant material is selected from the group consisting of bromine and chlorine for a total of about 60%, organic halogen compounds, phosphorous containing polyol, boron-phosphate, modified organic halogens, di-linoleic acid/tri-linoleic acid/ethylene diamine copolymers, polyphosphate-nitrogen liquid, inorganic salts, acrylic polymer compounds, dibutyl butylphosphonate, antimony oxide, antimony peroxide, sodium borate, barium metaborate, alumina trihydrate, magnesium hydroxide, decabromodiphenyl oxides, vinyl bromide, dimethylphosphonate, and/or dibromoneopentyl glycol, dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus -containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 13. The fire-resistant transparent material of claim 9, wherein said polymer is substantially free of bubbles at temperatures below about 100° C.
- 14. A method for manufacturing a fire-resistant polymer material, comprising the steps of:
mixing an aqueous solution of a monomer with a reactive fire-retardant chemical; and polymerizing said solution, wherein said fire-resistant polymer material is at least one of intumescent and transparent.
- 15. The method of claim 14, wherein said polymer is formed from an aqueous solution of acrylamide monomers, an initiator, formaldehyde and a catalyst.
- 16. The method of claim 14, wherein said monomer comprises a material selected from the group consisting of acrylamide, methylene bisacrylamide, N-methylol acrylamide, poloxamers, polyethylene glycols, polyethylene glycol monomethyl ethers, and polysorbates.
- 17. The method of claim 14, further comprising adding a salt.
- 18. The method of claim 17, wherein said salt comprises magnesium chloride.
- 19. The method of claim 14, wherein said initiator comprises sodium persulfate.
- 20. The method of claim 14, further comprising the step of adding a second fire-retardant chemical selected from the group consisting of bromine and chlorine for a total of about 60%, organic halogen compounds, phosphorous containing polyol, boron-phosphate, modified organic halogens, di-linoleic acid/tri-linoleic acid/ethylene diamine copolymers, polyphosphate-nitrogen liquid, inorganic salts, acrylic polymer compounds, dibutyl butylphosphonate, antimony oxide, antimony peroxide, sodium borate, barium metaborate, alumina trihydrate, magnesium hydroxide, decabromodiphenyl oxides, vinyl bromide, dimethylphosphonate, and/or dibromoneopentyl glycol, dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus-containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 21. The method of claim 14, wherein said polymer is made from a solution comprising about 51% water, about 7% to about 12% acrylamide, and about 4% NMA 2820.
- 22. The method of claim 15, wherein said percentage of acrylamide is in the range of about 8% to about 12%.
- 23. The method of claim 15, wherein the percentage of acrylamide is in the range of about 7.5%.
- 24. The method of claim 15, wherein said initiator is triethanolamine.
- 25. The method of claim 24, wherein the amount of triethanolamine is from about 0.05% to about 1% by weight.
- 26. The method of claim 15, wherein said catalyst is sodium persulfate.
- 27. The method of claim 26, wherein the amount of sodium persulfate is from about 0.05% to about 1% by weight.
- 28. A method of manufacturing a fire-resistant transparent material, comprising the steps of:
providing at least one sheet of transparent material; applying a fire-resistant polymer material comprising a polymer and a reactive fire-retardant chemical to said transparent material; and permitting said fire-resistant polymer material to polymerize, said fire-resistant polymer material is at least one of transparent and intumsecent.
- 29. The method of claim 28 wherein the polymer is acrylamide in the range of about 5% to about 15% by weight.
- 30. The method of claim 28 wherein the polymer is acrylamide in an of about 7.5% by weight.
- 31. A method for protecting a structure from fire, comprising the steps of:
selecting a structure subject to fire damage; and applying a coating of the fire-resistant polymer of claim 1 thereto.
- 32. The method of claim 31, wherein said polymer comprises acrylamide.
- 33. The method of claim 31, further comprising adding a second fire-retardant chemical selected from the group consisting of bromine and chlorine for a total of about 60%, organic halogen compounds, phosphorous containing polyol, boron-phosphate, modified organic halogens, di-linoleic acid/tri-linoleic acid/ethylene diamine copolymers, polyphosphate-nitrogen liquid, inorganic salts, acrylic polymer compounds, dibutyl butylphosphonate, antimony oxide, antimony peroxide, sodium borate, barium metaborate, alumina trihydrate, magnesium hydroxide, decabromodiphenyl oxides, vinyl bromide, dimethylphosphonate, and/or dibromoneopentyl glycol, dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus -containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 34. The transparent fire-resistant material of claim 5, wherein said material passes a two-hour fire endurance test and has a thickness of about 1.5 inches.
- 35. The fire-resistant polymer material of claim 1, further comprising a radiation shielding material.
- 36. The fire-resistant polymer material of claim 35, wherein said radiation shielding material comprises lead.
- 37. A fire-resistant hull comprising the fire-resistant polymer material of claim 1.
- 38. A fire-resistant fabric comprising:
a fabric; and the fire resistant polymer material of claim 1 applied to said fabric.
- 39. A method for protecting an object from fire, comprising the step of coating said object with the fire-resistant polymer material of claim 1 sufficient to protect said object from fire damage.
- 40. The method of claim 40, wherein said fire-resistant polymer further comprises a second fire -retardant chemical selected from the group consisting of bromine and chlorine for a total of about 60%, organic halogen compounds, phosphorous containing polyol, boron-phosphate, modified organic halogens, di-linoleic acid/tri-linoleic acid/ethylene diamine copolymers, polyphosphate-nitrogen liquid, inorganic salts, acrylic polymer compounds, dibutyl butylphosphonate, antimony oxide, antimony peroxide, sodium borate, barium metaborate, alumina trihydrate, magnesium hydroxide, decabromodiphenyl oxides, vinyl bromide, dimethylphosphonate, -and/or dibromoneopentyl glycol, dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus-containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 41. A fire-resistant polymer material, comprising:
a polymer; and means for bonding a reactive fire retardant chemical to said polymer, said fire-resistant polymer material being at least one of intumescent and transparent.
- 42. A fire-resistant transparent material, comprising:
a transparent polymer; means for bonding a fire-retardant chemical to said polymer; and means for supporting said fire-retardant chemical.
- 43. A fire-resistant wall comprising a fire-resistant polymer material of claim 1.
- 44. The fire-resistant wall of claim 43, wherein said fire-resistant polymer material is in the interior of said wall.
- 45. The fire-resistant polymer material of claim 1, comprising at least two fire-retardant chemicals, one of said fire-retardant chemicals being bonded with said polymer.
- 46. The fire-resistant polymer material of claim 8, wherein said polymer is formed from a solution comprising about 0% to about 10% NMA 2820, about 5% to about 20% of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 47. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8%NMA2820, about 5% to about 20% of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 48. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 1% to about 7% NMA 2820, about 5 to 20% of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 49. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 5% to about 6% NMA 2820, about 5% to 20% of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 50. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 5% NMA 2820, about 5% to 20% of a stock 50% solution of acrylamide in water and about 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 51. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8% NMA 2820, about 5 to 15% of of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 52. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8% NMA 2820, about 10 to 15% of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 53. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8% NMA 2820, about 15% of a stock 50% solution of acrylamide in water and 0.2% to about 3% of a 1% solution of N,N′-methylenebisacrylamide.
- 54. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8% NMA 2820, about 5% to 20% of a stock 50% solution of acrylamide in water and 0.2% to about 2% of a 1% solution of N,N′-methylenebisacrylamide.
- 55. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8% NMA 2820, about 5% to about 20% of a stock 50% solution of acrylamide in water and 0.5% to about 1% of a 1% solution of N,N′-methylenebisacrylamide.
- 56. The fire-resistant polymer material of claim 8, wherein said polymer is made from a solution comprising about 0.5% to about 8% NMA 2820, about 5% to about 20% of a stock 50% solution of acrylamide in water and about 0.8% of a 1% solution of N,N′-methylenebisacrylamide.
- 57. The method of claim 14, further comprising the step of adding a second fire-retardant chemical selected from the group consisting of bromine and chlorine for a total of about 60%, organic halogen compounds, phosphorous containing polyol, boron-phosphate, modified organic halogens, di-linoleic acid/tri-linoleic acid/ethylene diamine copolymers, polyphosphate-nitrogen liquid, inorganic salts, acrylic polymer compounds, dibutyl butylphosphonate, antimony oxide, antimony peroxide, sodium borate, barium metaborate, alumina trihydrate, magnesium hydroxide, decabromodiphenyl oxides, vinyl bromide, dimethylphosphonate, and/or dibromoneopentyl glycol, dialkyl phosphorus carboxyl amide-TMM, dialkyl phosphorus carboxyl amide, oligomeric 2-chloroethyl phosphate, dimethyl methylphosphonate, organophosphorus monomers, phosphorus-containing diols phosphorous-containing polyols, phosphonomethylated ethers, amide-cyanamides, halogenated alkyl, aryl or alkenyl phosphates, halogenated alkyl, aryl or alkenyl phosphonates and halogenated dialkyl diaryl or dialkenyl phosphites.
- 58. The method of claim 14, wherein said fire-resistant polymer material comprises magnesium chloride hexahydrate and dialkyl phosphorus carboxyl amide.
- 59. The method of claim 58, further comprising the step of adjusting the pH of said solution to between about 7.5 and about 9.0 with sodium hydroxide.
- 60. The method of claim 28, wherein the polymer is acrylamide in an amount in the range of about 10% to about 15% by weight.
- 61. A method for manufacturing a fire-resistant transparent material comprising the steps of:
providing at least two sheets of transparent material positioned relative to each another to define a space therebetween; filling said space with a mixture of a monomer solution and a reactive fire-resistant chemical; and permitting said solution to polymerize into an intumescent polymer.
- 62. The method of claim 15, further comprising the step of adding sufficient urea to neutralize the formaldehyde.
- 63. The method of claim 62, wherein the amount of urea is in the range of about 0.05% and about 2% by weight.
- 64. The method of claim 15, wherein said polymerizing agent is selected from the group consisting of triethanolamine and sodium persulfate and wherein said polymerizing agent is in an amount between about 0.05% and about 1% by weight.
- 65. The method of claim 14, wherein the heat of polymerization observed during the step of polymerizing is greater than 100% of the heat of polymerization for a polymer consisting of acrylamide alone without said reactive fire-retardant chemical.
- 66. The method of claim 14, where less than about 200 ppm of un-reacted monomers are left after the step of polymerization.
- 67. The fire-resistant material of claim 1, wherein less than about 200 ppm of un-reacted monomers are left after polymerization.
- 68. A method for manufacturing a fire-resistant transparent material comprising the steps of:
providing at least two sheets of transparent material positioned relative to each another to define a space therebetween; filling said space with a mixture of a monomer solution and a reactive fire-retardant chemical; and permitting said solution to polymerize, wherein the heat of polymerization observed during said polymerization step is greater than 100% of the heat of polymerization for a polymer consisting of acrylamide alone without said reactive fire-retardant chemical.
- 69. The method of claim 68, wherein said fire-resistant transparent material is intumescent.
- 70. A method for manufacturing a fire-resistant transparent material comprising the steps of:
providing at least two sheets of transparent material positioned relative to each another to define a space therebetween; filling said space with a mixture of a polymer solution and a reactive fire-retardant chemical; and permitting said solution to polymerize, wherein less than about 200 ppm of un-reacted monomers are left after polymerization.
- 71. The method of claim 70, wherein said fire-resistant transparent material is intumsecent.
- 72. A fire resistant transparent material, comprising:
at least two pieces of transparent material defining a space therebetween; and
a fire-resistant polymer material in said space, comprising:
a polymer; and a reactive fire-retardant chemical; wherein said fire-resistant polymer material has less than about 200 ppm of un-reacted monomers left after polymerization.
- 73. The material of claim 72, wherein said fire-resistant transparent material is intumescent.
- 74. The method of claim 14, wherein said monomer comprises a silicate.
RELATED APPLICATION
[0001] This application claims priorityto U.S. Provisional Patent Application Serial No. 60/289,050, filed May 4, 2001, herein incorporated filly be reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60289050 |
May 2001 |
US |