Claims
- 1. A preconditioned ultra-low emission carbon material capable of removing contaminants from a reactive fluid to produce a purified reactive fluid, wherein the concentrations of said contaminants in said ultra-pure reactive fluid are less than 100 parts-per-billion, and wherein said preconditioned ultra-low emission carbon material is stored in a substantially non-contaminating environment until contacted with said contaminated reactive fluid.
- 2. The preconditioned ultra-low emission carbon material of claim 1, wherein the preconditioned ultra-low emission carbon material does not emit water into said reactive fluid.
- 3. The preconditioned ultra-low emission carbon material of claim 1, wherein said contaminants comprise water.
- 4. The preconditioned ultra-low emission carbon material of claim 1, wherein said contaminants comprise carbon dioxide.
- 5. The preconditioned ultra-low emission carbon material of claim 1, wherein said contaminants comprise carbon monoxide.
- 6. The preconditioned ultra-low emission carbon material of claim 1, wherein said contaminants comprise organic compounds.
- 7. The preconditioned ultra-low emission carbon material of claim 6, wherein said contaminants comprise straight chain or branched hydrocarbons.
- 8. The preconditioned ultra-low emission carbon material of claim 7, wherein said hydrocarbon is hexane or n-butane.
- 9. The preconditioned ultra-low emission carbon material of claim 1, wherein the concentrations of said contaminants in said reactive fluid are measured by Fourier Transform Infra Red Spectrometry.
- 10. The preconditioned ultra-low emission carbon material of claim 1, wherein said reactive fluid is ammonia.
- 11. A method of producing a preconditioned ultra-low emission carbon material for purifying a contaminated reactive fluid, said method comprising:
a) placing a carbon material containing trace amounts of water in a reactor having a gas inlet and a gas outlet; b) heating said carbon material in said reactor for at least twenty four hours at a temperature between about 300° C. and 800° C. under a flow of ultra-dry inert gas; c) measuring the amount of water in said inert gas exiting said reactor; d) terminating said heating when the concentration of water in said inert gas exiting said reactor is below about ten parts-per-million, whereby an ultra-low emission carbon material is produced; e) purging the ultra-low emission carbon material with an ultra-purified reactive gas at room temperature for a specific period of time; f) heating the ultra-low emission carbon material under the ultra-purified reactive gas purge at a temperature range of about 50° to 400° C. for between a few hours and a few days, thereby producing a preconditioned ultra-low emission carbon material; and g) maintaining said preconditioned ultra-low emission carbon material in a substantially non-contaminating environment.
- 12. The method of claim 11, further comprising:
h) providing a container having a gas inlet port, a gas outlet port, and a receiving port; i) purging said container with an ultra-dry inert gas; j) transferring a portion of said preconditioned ultra-low emission carbon material from said reactor to said container while flowing an ultra-dry inert gas through said container; i) closing said receiving port while maintaining the flow of inert gas through said container; and k) closing said inlet and outlet ports, whereby said preconditioned ultra-low emission carbon material is maintained in said container in an ultra-dry inert atmosphere.
- 13. The method of claim 11, wherein said carbon material is a high hardness carbon material.
- 14. The method of claim 11, wherein the concentration of water in said inert gas exiting said reactor is measured by Fourier Transform Infra Red Spectrometry.
- 15. The method of claim 11, wherein said termination step d) occurs when the concentration of water in said inert gas exiting said reactor is between 10 and 100 parts-per-billion at ambient temperature.
- 16. The method of claim 11, wherein said carbon material in step b) is heated at a temperature between about 500° and 700° C.
- 17. The method of claim 11, wherein said carbon material in step b) is heated for between 2 and 5 days.
- 18. The method of claim 11, wherein said preconditioned ultra-low emission carbon material is capable of reducing trace amounts of contaminants in said reactive fluid to less than about one part-per-billion.
- 19. The method of claim 18, wherein said contaminants are selected from organic compounds, carbon dioxide, carbon monoxide and water.
- 20. The method of claim 19, wherein said organic compounds comprise straight chain or branched hydrocarbons.
- 21. The method of claim 20, wherein said hydrocarbons are hexane or n-butane.
- 22. The method of claim 11, wherein said reactive fluid is ammonia.
- 23. The method of claim 12, wherein said container is adapted for use in a gas purifying system.
- 24. A preconditioned ultra-low emission carbon material for removing contaminants from a reactive fluid, said carbon material produced according to the method comprising:
a) placing a carbon material containing trace amounts of water in a reactor having a gas inlet and a gas outlet; b) heating said carbon material in said reactor for at least twenty four hours at a temperature between about 300° C. and 800° C. under a flow of ultra-dry inert gas; c) measuring the concentration of water in said inert gas exiting said reactor; d) terminating said heating when the concentration of water in said inert gas exiting said reactor is below about ten parts-per-million, whereby an ultra-low emission carbon material is produced; e) purging the ultra-low emission carbon material with an ultra-purified reactive gas at room temperature for a specific period of time; f) heating the ultra-low emission carbon material under the ultra-purified reactive gas purge at a temperature range of about 50° to 400° C. for between a few hours and a few days, thereby producing a preconditioned ultra-low emission carbon material; and g) maintaining said preconditioned ultra-low emission carbon material in a substantially non-contaminating environment.
- 25. The preconditioned ultra-low emission carbon material of claim 24, wherein said method further comprises:
h) providing a container having a gas inlet port, a gas outlet port, and a receiving port; i) purging said container with an ultra-dry inert gas; j) transferring a portion of said preconditioned ultra-low emission carbon material from said reactor to said container while flowing said ultra-dry inert gas through said container; and i) closing said receiving port while maintaining the flow of inert gas through said container; and k) closing said inlet and outlet ports, whereby said preconditioned ultra-low emission carbon material is maintained in said container in an ultra-dry inert atmosphere.
- 26. The preconditioned ultra-low emission carbon material of claim 24, wherein said preconditioned ultra-low emission carbon material does not emit water into said reactive fluid.
- 27. The preconditioned ultra-low emission carbon material of claim 24, wherein said carbon material is a high hardness carbon material.
- 28. The preconditioned ultra-low emission carbon material of claim 24, wherein the amount of water in said reactive purge gas exiting said reactor is measured by Fourier Transform Infra Red Spectrometry.
- 29. The preconditioned ultra-low emission carbon material of claim 24, wherein said termination in step d) occurs when the concentration of water in said inert gas exiting said reactor is between 10 and 100 parts-per-billion at ambient temperature.
- 30. The preconditioned ultra-low emission carbon material of claim 24, wherein said carbon material in step b) is heated at a temperature between about 500° and 700° C.
- 31. The preconditioned ultra-low emission carbon material of claim 24, wherein said carbon material in step b) is heated for between 2 and 5 days.
- 32. The preconditioned ultra-low emission carbon material of claim 24, wherein said preconditioned ultra-low emission carbon material is capable of reducing trace amounts of contaminants in said reactive fluid to less than about one part-per-billion.
- 33. The preconditioned ultra-low emission carbon material of claim 28, wherein said contaminants are selected from organic compounds, carbon dioxide, carbon monoxide and water.
- 34. The preconditioned ultra-low emission carbon material of claim 33, wherein said organic compounds comprise straight chain or branched hydrocarbons.
- 35. The preconditioned ultra-low emission carbon material of claim 34, wherein said hydrocarbons are hexane or n-butane.
- 36. The preconditioned ultra-low emission carbon material of claim 24, wherein said reactive fluid is ammonia.
- 37. The preconditioned ultra-low emission carbon material of claim 24, wherein said container is adapted for use in a gas purifying system.
- 38. A method for reducing concentrations of trace contaminants from a reactive fluid, the method comprising contacting the contaminated reactive fluid with a preconditioned ultra-low emission carbon material, wherein said preconditioned ultra-low emission carbon material reduces the concentration of the contaminants to less than 100 parts-per-billion by volume and does not emit water into the reactive fluid.
- 39. The method of claim 38, wherein the concentration of said contaminants in said purified reactive fluid is less than 100 parts per trillion.
- 40. The method of claim 38, wherein said contaminants comprise organic compounds.
- 41. The method of claim 40, wherein said organic compounds comprise straight chain or branched chain hydrocarbons.
- 42. The method of claim 41, wherein said hydrocarbon is hexane or n-butene.
- 43. The method of claim 38, wherein said contaminants comprise carbon dioxide.
- 44. The method of claim 38, wherein said contaminants comprise carbon monoxide.
- 45. The method of claim 38, wherein said contaminants comprise water.
- 46. The method of claim 38, wherein the concentration of contaminants in said reactive fluid are measured by Fourier Transform Infra Red Spectrometry.
- 47. The method of claim 38, wherein said reactive fluid is ammonia.
- 48. A purifier system for purifying a reactive fluid, comprising:
a preconditioned ultra-low emission carbon material capable of reducing concentrations of trace contaminants in a reactive fluid to less than 100 parts-per-billion to produce a purified reactive fluid; and a container for holding said carbon material, wherein said container comprises an inlet and an outlet to allow said reactive fluid to flow through said container, wherein said container maintains said preconditioned ultra-low emission carbon material in a substantially non-contaminating environment until said carbon material is contacted with said contaminated reactive fluid.
- 49. The purifier system of claim 48, wherein the preconditioned ultra-low emission carbon material does not emit water into the reactive fluid.
- 50. The purifier system of claim 48, wherein said contaminants comprise organic compounds.
- 51. The purifier system of claim 50, wherein said organic compounds comprise straight chain or branched chain hydrocarbons.
- 52. The purifier system of claim 51, wherein said hydrocarbon is hexane or n-butane.
- 53. The purifier system of claim 48, wherein said contaminants comprise carbon dioxide.
- 54. The purifier system of claim 48, wherein said contaminants comprise carbon monoxide.
- 55. The purifier system of claim 48, wherein said contaminants comprise water.
- 56. The purifier system of claim 48, wherein said reactive fluid is ammonia.
- 57. A purifier system for removing contaminants in a reactive fluid, comprising:
a first container comprising a first inlet and a first outlet and containing a scavenger material capable of removing oxygen and/or moisture impurities from said reactive fluid; a preconditioned ultra-low emission carbon material capable of reducing concentrations of trace contaminants in said contaminated reactive fluid to less than 100 parts-per-billion to produce purified reactive fluid; and a second container comprising a second inlet and a second outlet for holding said carbon material, wherein said second container is positioned downstream of said first container and said second gas inlet is connected to said first outlet, wherein said second container maintains said carbon material in a substantially non-contaminating environment until said carbon material is contacted with said reactive fluid.
- 58. The purifier system of claim 57, wherein said preconditioned ultra-low emission carbon material does not emit water into said reactive fluid.
- 59. The purifier system of claim 57, wherein the concentrations of said contaminants in said reactive fluid are measured by Fourier Transform Infra Red Spectrometry.
- 60. The purifier system of claim 57, wherein said contaminants comprise organic compounds.
- 61. The purifier system of claim 60, wherein said organic compounds comprise straight chain or branched chain hydrocarbons.
- 62. The purifier system of claim 61, wherein said hydrocarbon is hexane or n-butane.
- 63. The purifier system of claim 57, wherein said contaminants comprise carbon dioxide.
- 64. The purifier system of claim 57, wherein said contaminants comprise carbon monoxide.
- 65. The purifier system of claim 57, wherein said contaminants comprise water.
- 66. The purifier system of claim 57, wherein said reactive fluid is ammonia.
- 67. The purifier system of claim 57, wherein said scavenger material comprises a metallated macroreticular polymer, wherein said polymer is metallated with Group IA or Group IIA alkyl or aryl organometallic compounds.
- 68. The purifier system of claim 57, wherein said scavenger material is selected from the group consisting of Groups IIA, IVA, IIIB and IVB metal oxides.
- 69. The purifier system of claim 68, wherein said oxide is alumina or an alumina-based material.
- 70. The purifier system of claim 69, wherein said oxide is modified by a metal salt or a metal oxide.
- 71. The purifier system of claim 68, wherein said oxide is silica or a silica-based material.
- 72. The purifier system of claim 71, wherein said oxide is modified by a metal salt or a metal oxide.
- 73. The purifier system of claim 68, wherein the scavenger material is a zeolite molecular sieve.
- 74. A purifier system for purifying a contaminated reactive fluid, comprising:
a container for holding gas purifying materials, wherein said container comprises an gas stream inlet and a gas stream outlet to allow said reactive fluid to flow through said container, wherein said gas purifying materials comprise a scavenger material capable of removing oxygen and/or moisture impurities from said reactive fluid, and a preconditioned ultra-low emission carbon material capable of reducing concentrations of trace contaminants in said reactive fluid to less than 100 parts-per-billion concentration by volume to produce a purified reactive fluid, said carbon material located downstream of said scavenger material, wherein said container maintains said carbon material in a substantially non-contaminating environment until said carbon material is contacted with said contaminated reactive fluid.
- 75. The purifier system of claim 74, wherein said preconditioned ultra-low emission carbon material does not emit water into said reactive fluid.
- 76. The purifier system of claim 74, wherein the concentration of said contaminants in said reactive fluid are measured by Fourier Transform Infra Red Spectrometry.
- 77. The purifier system of claim 74, wherein said contaminants comprise organic compounds.
- 78. The purifier system of claim 77, wherein said organic compounds comprise straight chain or branched chain hydrocarbons.
- 79. The purifier system of claim 78, wherein said hydrocarbon is hexane or n-butane.
- 80. The purifier system of claim 74, wherein said contaminants comprise carbon dioxide.
- 81. The purifier system of claim 74, wherein said contaminants comprise carbon monoxide.
- 82. The purifier system of claim 74, wherein said contaminants comprise water.
- 83. The purifier system of claim 74, wherein said reactive fluid is ammonia.
- 84. The purifier system of claim 74, wherein said scavenger material comprises a metallated macroreticular polymer, wherein said polymer is metallated with Group IA or Group IIA alkyl or aryl organometallic compounds.
- 85. The purifier system of claim 74, wherein said scavenger material is selected from the group consisting of Groups IIA, IVA, IIIB and IVB metal oxides.
- 86. The purifier system of claim 85, wherein said oxide is alumina or an alumina-based material.
- 87. The purifier system of claim 86, wherein said oxide is modified by a metal salt or a metal oxide.
- 88. The purifier system of claim 85, wherein said oxide is silica or a silica-based material.
- 89. The purifier system of claim 88, wherein said oxide is modified by a metal salt or a metal oxide.
- 90. The purifier system of claim 85, wherein the scavenger material is a zeolite molecular sieve.
- 91. A purifier system for removing contaminants from a reactive fluid, comprising:
a bed comprising a mixture of a preconditioned ultra-low emission carbon material capable of reducing concentrations of trace impurities in said reactive fluid to less than 1 part-per-billion and a scavenger material capable of removing oxygen and/or moisture impurities from said reactive fluid to produce a purified reactive fluid, and a container for holding said bed, wherein said container comprises an inlet and an outlet to allow said reactive fluid to flow through said container, wherein said container maintains said preconditioned ultra-low emission carbon material in a substantially non-contaminating environment until said carbon material is contacted with said reactive fluid.
- 92. The purifier system of claim 91, wherein said preconditioned ultra-low emission carbon material does not emit water into said reactive fluid.
- 93. The purifier system of claim 91, wherein the concentration of said contaminants in said reactive fluid are measured by Fourier Transform Infra Red Spectrometry.
- 94. The purifier system of claim 91, wherein said contaminants comprise organic compounds.
- 95. The purifier system of claim 94, wherein said organic compounds comprise straight chain or branched chain hydrocarbons.
- 96. The purifier system of claim 95, wherein said hydrocarbon is hexane or n-butane.
- 97. The purifier system of claim 91, wherein said contaminants comprise carbon dioxide.
- 98. The purifier system of claim 91, wherein said contaminants comprise carbon monoxide.
- 99. The purifier system of claim 91, wherein said contaminants comprise water.
- 100. The purifier system of claim 91, wherein said reactive fluid is ammonia.
- 101. The purifier system of claim 91, wherein said scavenger material comprises a metallated macroreticular polymer, wherein said polymer is metallated with Group IA or Group IIA alkyl or aryl organometallic compounds.
- 102. The purifier system of claim 91, wherein said scavenger material is selected from the group consisting of Groups ILIA, IVA, IIIB and IVB metal oxides.
- 103. The purifier system of claim 102, wherein said oxide is alumina or an alumina-based material.
- 104. The purifier system of claim 103, wherein said oxide is modified by a metal salt or a metal oxide.
- 105. The purifier system of claim 102, wherein said oxide is silica or a silica-based material.
- 106. The purifier system of claim 105, wherein said oxide is modified by a metal salt or a metal oxide.
- 107. The purifier system of claim 102, wherein the scavenger material is a zeolite molecular sieve.
RELATED APPLICATIONS
[0001] The present invention is a Continuation-in-Part application of U.S. patent application. Ser. No. 09/748,734, filed Dec. 26, 2000.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09748734 |
Dec 2000 |
US |
Child |
09777741 |
Feb 2001 |
US |