Claims
- 1. A process for producing a mixture of particulates comprising:
forming a dispersion comprising at least a first particulate material and a second particulate material dispersed in compressed gas under mixing conditions comprising a temperature and a pressure effective to maintain at least a portion of said compressed gas in liquid phase and comprising agitation conditions effective to produce substantially no agglomeration, said agitation conditions comprising sonication; separating said compressed gas from said mixed dispersion, producing said mixture of particulates.
- 2. The process of claim 1 wherein said particulates are selected from the group consisting of metals, ceramics, polymeric materials, oxides, nitrides, borides, silicides, phosphites, sulfides, oxynitrides, carbides, carbonitrides, intermetallic compounds, organometallic compounds, and nanocomposite materials.
- 3. A process for producing a mixture of particulates comprising:
forming a first dispersion comprising a first particulate material dispersed in compressed gas under agitation conditions effective to produce substantially no agglomeration, said agitation conditions comprising sonication and a temperature and a pressure effective to maintain at least a portion of said compressed gas in liquid phase; forming a second dispersion comprising a second particulate material dispersed in compressed gas under said agitation conditions; feeding said first dispersion and said second dispersion to a mixing zone under mixing conditions effective to produce a mixed dispersion comprising said first particulate material and said second particulate material; and separating said compressed gas from said mixed dispersion under collection conditions effective to collect said mixture comprising said first particulate material and said second particulate material.
- 4. The process of claim 3 wherein said first particulate material and said second particulate material are selected from the group consisting of reactive particulates, metals, ceramics, polymeric materials, oxides, nitrides, borides, suicides, phosphites, sulfides, oxynitrides, carbides, carbonitrides, intermetallic compounds, organometallic compounds, and nanocomposite materials.
- 5. The process of claim 3 wherein said first particulate material and said second particulate material comprise reactive particulates.
- 6. The process of claim 5 wherein said reactive particulates comprise at least a first reactive particulate and a second reactive particulate which undergo an exothermic redox reaction.
- 7. The process of claim 5 wherein said reactive particulates have a thermodynamic energy density of from about 10 kJ/cc to about 20 kJ/cc.
- 8. The process of claim 5 wherein said reactive particulates have a thermodynamic energy density of 17 kJ/cc.
- 9. The process of claim 6 wherein said first reactive particulates comprise a first metal selected from the group consisting of calcium, magnesium, sodium, lithium, aluminum, boron zirconium, titanium, yttrium, silicon, and zinc.
- 10. The process of claim 7 wherein said first reactive particulates comprise a first metal selected from the group consisting of calcium, magnesium, sodium, lithium, aluminum, boron zirconium, titanium, yttrium, silicon, and zinc.
- 11. The process of claim 6 wherein said first reactive particulates comprise aluminum.
- 12. The process of claim 11 wherein said aluminum is a nanoaluminum.
- 13. The process of claim 6 wherein said second reactive particulates comprise a second metal selected from the group consisting of copper, molybdenum, titanium, iron, and magnesium.
- 14. The process of claim 6 wherein said second metal is selected from the group consisting of copper and molybdenum
- 15. The process of claim 6 wherein said second metal comprises molybdenum.
- 16. The process of claim 7 wherein said second metal is selected from the group consisting of copper, molybdenum, titanium, iron, and magnesium.
- 17. The process of claim 7 wherein said second metal is selected from the group consisting of copper and molybdenum
- 18. The process of claim 7 wherein said metal comprises molybdenum.
- 19. The process of claim 9 wherein said second metal is selected from the group consisting of copper, molybdenum, titanium, iron, and magnesium.
- 20. The process of claim 9 wherein said second metal is selected from the group consisting of copper and molybdenum.
- 21. The process of claim 9 wherein said second metal comprises molybdenum.
- 22. The process of claim 10 wherein said second metal is selected from the group consisting of copper, molybdenum, titanium, iron, and magnesium.
- 23. The process of claim 10 wherein said second metal is selected from the group consisting of copper and molybdenum
- 24. The process of claim 10 wherein said second metal comprises molybdenum.
- 25. The process of claim 6 wherein said second reactive particulates further comprise an electron carrying group.
- 26. The process of claim 7 wherein said second reactive particulates further comprise an electron carrying group.
- 27. The process of claim 13 wherein said second reactive particulates further comprise an electron carrying group.
- 28. The process of claim 19 wherein said second reactive particulates further comprise an electron carrying group.
- 29. The process of claim 25 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 30. The process of claim 25 wherein said electron carrying group is selected from the group consisting of oxygen and halogens.
- 31. The process of claim 25 wherein said electron carrying group is selected from the group consisting of oxygen, chlorine, bromine and fluorine.
- 32. The process of claim 25 wherein said electron carrying group comprises oxygen.
- 33. The process of claim 26 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 34. The process of claim 26 wherein said electron carrying group is selected from the group consisting of oxygen and halogens.
- 35. The process of claim 26 wherein said electron carrying group is selected from the group consisting of oxygen, chlorine, bromine and fluorine.
- 36. The process of claim 26 wherein said electron carrying group comprises oxygen.
- 37. The process of claim 27 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 38. The process of claim 27 wherein said electron carrying group is selected from the group consisting of oxygen and halogens.
- 39. The process of claim 27 wherein said electron carrying group is selected from the group consisting of oxygen, chlorine, bromine and fluorine.
- 40. The process of claim 27 wherein said electron carrying group comprises oxygen.
- 41. The process of claim 28 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 42. The process of claim 28 wherein said electron carrying group is selected from the group consisting of oxygen and halogens.
- 43. The process of claim 28 wherein said electron carrying group is selected from the group consisting of oxygen, chlorine, bromine and fluorine.
- 44. The process of claim 28 wherein said electron carrying group comprises oxygen.
- 45. The process of claim 5 wherein said reactive particulates are superthermites.
- 46. The process of claim 7 wherein said reactive particulates are superthermites.
- 47. The process of claim 3 wherein said particulates have a maximum outer diameter of 100 nm or less.
- 48. The process of claim 5 wherein said particulates have a maximum outer diameter of 100 nm or less.
- 49. The process of claim 6 wherein said particulates have a maximum outer diameter of 100 nm or less.
- 50. The process of claim 27 wherein said particulates have a maximum outer diameter of 100 nm or less.
- 51. The process of claim 28 wherein said particulates have a maximum outer diameter of 100 nm or less.
- 52. The process of claim 12 wherein said nanoaluminum comprises particulates comprising an oxide coating having a thickness of from about 2.0 nm to about 2.5 nm.
- 53. The process of claim 3 wherein said compressed gas selected from the group consisting of substantially inert gases, hydrocarbons, fluorocarbons, and carbon dioxide.
- 54. The process of claim 3 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 55. The process of claim 5 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 56. The process of claim 6 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 57. The process of claim 7 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 58. The process of claim 9 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 59. The process of claim 10 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 60. The process of claim 14 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 61. The process of claim 15 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 62. The process of claim 22 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 63. The process of claim 28 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 64. The process of claim 6 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 65. The process of claim 7 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 66. The process of claim 8 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 67. The process of claim 63 wherein said mixing conditions comprise a contact interval of less than about 2 seconds
- 68. A process for producing a mixture comprising superthermites comprising:
forming a first dispersion comprising a first superthermite dispersed in compressed gas under agitation conditions effective to produce substantially no agglomeration, said agitation conditions comprising sonication and a temperature and pressure effective to maintain at least a portion of said compressed gas in liquid phase; forming a second dispersion comprising a second superthermite dispersed in compressed gas under said agitation conditions; feeding said first dispersion and said second dispersion to a mixing zone under mixing conditions effective to produce a mixed dispersion comprising said first superthermite and said second superthermite and to prevent redox reactions between said first superthermite and said second superthermite; and separating said compressed gas from said mixed dispersion under collection conditions effective to collect said mixture comprising said first superthermites and said second superthermites.
- 69. The process of claim 68 wherein said reactive particulates have a thermodynamic energy density of from about 10 kJ/cc to about 20 kJ/cc.
- 70. The process of claim 68 wherein said reactive particulates have a thermodynamic energy density of 17 kJ/cc.
- 71. The process of claim 68 wherein said aluminum is a nanoaluminum.
- 72. The process of claim 69 wherein said aluminum is a nanoaluminum.
- 73. The process of claim 68 wherein said superthermites comprise molybdenum.
- 74. The process of claim 69 wherein said superthermites comprise molybdenum.
- 75. The process of claim 70 wherein said superthermites comprise molybdenum.
- 76. The process of claim 71 wherein said superthermites comprise molybdenum.
- 77. The process of claim 72 wherein said superthermites comprise molybdenum.
- 78. The process of claim 73 wherein said molybdenum further comprises an electron carrying group.
- 79. The process of claim 74 wherein said molybdenum further comprises an electron carrying group.
- 80. The process of claim 75 wherein said molybdenum further comprises an electron carrying group.
- 81. The process of claim 76 wherein said molybdenum further comprises an electron carrying group.
- 82. The process of claim 77 wherein said molybdenum further comprises an electron carrying group.
- 83. The process of claim 78 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 84. The process of claim 78 wherein said electron carrying group comprises oxygen.
- 85. The process of claim 79 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 86. The process of claim 79 wherein said electron carrying group comprises oxygen.
- 87. The process of claim 80 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 88. The process of claim 80 wherein said electron carrying group comprises oxygen.
- 89. The process of claim 81 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 90. The process of claim 81 wherein said electron carrying group comprises oxygen.
- 91. The process of claim 82 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 92. The process of claim 82 wherein said electron carrying group comprises oxygen.
- 93. The process of claim 83 wherein said electron carrying group is selected from the group consisting of oxygen, halogens, and sulfur.
- 94. The process of claim 83 wherein said electron carrying group comprises oxygen.
- 95. The process of claim 68 wherein said particulates have a maximum outer diameter of 100 nm or less.
- 96. The process of claim 71 wherein said nanoaluminum comprises particulates comprising an oxide coating having a thickness of from about 2.0 nm to about 2.5 nm.
- 97. The process of claim 72 wherein said nanoaluminum comprises particulates comprising an oxide coating having a thickness of from about 2.0 nm to about 2.5 nm.
- 98. The process of claim 76 wherein said nanoaluminum comprises particulates comprising an oxide coating having a thickness of from about 2.0 nm to about 2.5 nm.
- 99. The process of claim 77 wherein said nanoaluminum comprises particulates comprising an oxide coating having a thickness of from about 2.0 nm to about 2.5 nm.
- 100. The process of claim 68 wherein said compressed gas selected from the group consisting of substantially inert gases, hydrocarbons, fluorocarbons, and carbon dioxide.
- 101. The process of claim 68 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 102. The process of claim 69 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 103. The process of claim 70 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 104. The process of claim 71 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 105. The process of claim 72 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 106. The process of claim 73 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 107. The process of claim 74 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 108. The process of claim 75 wherein
said compressed gas is carbon dioxide; and said collection conditions are effective to prevent formation of dry ice.
- 109. The process of claim 97 wherein said ultrasonic conditions and said mixing conditions comprise a temperature of from about 0° C. to about 32° C. and a pressure of from about 70 bar to about 170 bar.
- 110. The process of claim 98 wherein said pressure is about 120 bar.
- 111. The process of claim 110 wherein said temperature is about 31.1° C. or less.
- 112. The process of claim 68 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 113. The process of claim 69 wherein said mixing conditions comprise a contact interval of less than about 2 seconds
- 114. The process of claim 101 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 115. A process for producing a mixture comprising nanoaluminum and molybdenum oxide comprising:
forming a first dispersion comprising nanoaluminum dispersed in compressed carbon dioxide under agitation conditions effective to produce substantially no agglomeration, said agitation conditions comprising sonication and a temperature and pressure effective to maintain at least a portion of said compressed carbon dioxide in liquid phase; forming a second dispersion comprising molybdenum oxide dispersed in compressed carbon dioxide under said agitation conditions; feeding said first dispersion and said second dispersion to a mixing zone under mixing conditions effective to produce a mixed dispersion comprising said nanoaluminum and said molybdenum oxide and to prevent redox reactions between said nanoaluminum and said molybdenum oxide; and separating said compressed carbon dioxide from said mixed dispersion under collection conditions effective to collect said mixture comprising said nanoaluminum and said molybdenum oxide.
- 116. The process of claim 115 wherein said nanoaluminum comprises particulates comprising an oxide coating having a thickness of from about 2.0 nm to about 2.5 nm.
- 117. The process of claim 115 wherein said agitation conditions and said mixing conditions comprise a temperature of from about 0° C. to about 32° C. and a pressure of from about 70 bar to about 170 bar.
- 118. The process of claim 117 wherein said pressure is about 120 bar.
- 119. The process of claim 118 wherein said temperature is about 31.1° C. or less.
- 120. The process of claim 115 wherein said agitation conditions comprise a solids loading of about 5% or less.
- 121. The process of claim 115 wherein said agitation conditions comprise a solids loading of about 2 wt. % or less.
- 122. The process of claim 117 wherein said agitation conditions comprise a solids loading of about 5% or less.
- 123. The process of claim 117 wherein said agitation conditions comprise a solids loading of about 2 wt. % or less.
- 124. The process of claim 118 wherein said agitation conditions comprise a solids loading of about 5% or less.
- 125. The process of claim 118 wherein said agitation conditions comprise a solids loading of about 2 wt. % or less.
- 126. The process of claim 119 wherein said agitation conditions comprise a solids loading of about 5% or less.
- 127. The process of claim 119 wherein said agitation conditions comprise a solids loading of about 2 wt. % or less.
- 128. The process of claim 115 wherein said agitation conditions comprise magnetically coupled stirring effective to produce an axial flow pattern comprising axial currents that follow mixing vessel geometry outward from a magnetically coupled stirrer to a vessel wall.
- 129. The process of claim 128 wherein said magnetically coupled stirring produces a turbulent flow in said dispersion mixture at a rate of about 6 nm at about 2500 rpm.
- 130. The process of claim 115 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 131. The process of claim 117 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 132. The process of claim 118 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 133. The process of claim 119 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 134. The process of claim 120 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 135. The process of claim 121 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 136. The process of claim 126 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 137. The process of claim 127 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 138. The process of claim 128 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 139. The process of claim 129 wherein said mixing conditions comprise a contact interval of about 2 seconds or less.
- 140. The process of claim 115 wherein said mixing conditions comprise a contact interval of less than 2 seconds.
- 141. The process of claim 129 wherein said mixing conditions comprise a contact interval of less than 2 seconds.
- 142. The process of claim 115 further comprising providing a static free environment.
- 143. The process of claim 119 further comprising providing a static free environment.
- 144. The process of claim 126 further comprising providing a static free environment.
- 145. The process of claim 127 further comprising providing a static free environment.
- 146. The process of claim 129 further comprising providing a static free environment.
- 147. The process of claim 137 further comprising providing a static free environment.
- 148. The process of claim 138 further comprising providing a static free environment.
- 149. The process of claim 139 further comprising providing a static free environment.
GOVERNMENT RIGHTS
[0001] The U.S. government has certain rights in this invention pursuant to contract number DAAE30-01-1098 from the U.S. Army (TACOM-ARDEC), Picatinny Arsenal, N.J.