Claims
- 1. A cooling apparatus comprising:
- (a) a cabinet, case or container having a cooling chamber therein;
- (b) one or more reactors each containing a complex compound formed by adsorbing a polar gas on a metal salt, and in which said reactors said polar gas is alternately adsorbed and desorbed on said complex compound, said metal salt comprising a halide, nitrate, nitrite, oxalate, perchlorate, sulfate or sulfite of an alkali metal, alkaline earth metal, transition metal, zinc, cadmium, tin or aluminum, or sodium borofluoride or a double metal chloride or bromide, and wherein said complex compound is formed by restricting the volumetric expansion and controlling the density thereof during said adsorption of said polar gas on said metal salt, whereby said complex compound is capable of increased reaction rates in the number of moles of said polar gas adsorbed and/or desorbed per mole of said complex compound per hour at adsorption or desorption times of less than 60 minutes, respectively, as compared to a complex compound formed without restricting the volumetric expansion and controlling the density thereof, wherein said one or more reactors comprise one or more reaction chambers having a maximum mean mass diffusion path length of less than about 15 mm;
- (c) condenser means for condensing said polar gas and evaporator means thermally exposed to said cooling chamber for providing cooling therein and conduits for directing said polar gas from said one or more reactors to said condenser means, and from said evaporator means to said one or more reactors, and
- (d) heating means cooperating with said one or more reactors for heating said complex compound therein.
- 2. The cooling apparatus of claim 1 wherein said one or more reaction chambers have a maximum thermal diffusion path length of between about 0.6 and about 3 mm, a maximum mean mass diffusion path length of between about 2.5 and about 7 mm, and wherein said salt or said complex compound has a density of between about 0.2 and about 0.9 g/cc of reaction chamber volume.
- 3. The apparatus of claim 1 including a plurality of heat transfer fins extending along said reactor and in heat transfer communication with said metal salt, wherein the distance between said fins is 2.8 mm or less.
- 4. The apparatus of claim 1 wherein said one or more reaction chambers have a maximum thermal diffusion path length of less than about 4.5 mm.
- 5. The apparatus of claim 1 wherein said complex compound or said metal salt has a density in said reactor of between about 0.2 and about 1.0 g/cc of reaction chamber volume.
- 6. The apparatus of claim 1 including gas distribution means for directing said polar gas to and from said metal salt or said complex compound in said one or more reaction chambers, and wherein at least 60% of said metal salt or said complex compound, by weight, is within 25 mm or less of a gas distribution means.
- 7. The apparatus of claim 1 including one or more heat exchange surfaces in thermal contact with said metal salt and said complex compound and comprising a gas permeable material.
- 8. The apparatus of claim 1 including one or more gas permeable surfaces extending into said reaction chamber in contact with said metal salt and said complex compound along at least a portion of said gas permeable surface.
- 9. The apparatus of claim 1 wherein said metal salt and said complex compound comprise a mixture thereof, respectively, with a gas permeable admixture composition having a microporous surface for distributing said polar gas in said mixture.
- 10. A cooling apparatus comprising:
- (a) a cabinet, case or container having a cooling chamber therein;
- (b) one or more reactors each containing a complex compound formed by adsorbing a polar gas on a metal salt, and in which said reactors said polar gas is alternately adsorbed and desorbed on said complex compound, said metal salt comprising a halide, nitrate, nitrite, oxalate, perchlorate, sulfate or sulfite of an alkali metal, alkaline earth metal, transition metal, zinc, cadmium, tin or aluminum, or sodium borofluoride or a double metal chloride or bromide, and wherein said complex compound is formed by restricting the volumetric expansion and controlling the density thereof during said adsorption of said polar gas on said metal salt, whereby said complex compound is capable of increased reaction rates in the number of moles of said polar gas adsorbed and/or desorbed per mole of said complex compound per hour at adsorption or desorption times of less than 60 minutes, respectively, as compared to a complex compound formed without restricting the volumetric expansion and controlling the density thereof, wherein said one or more reactors comprise one or more reaction chambers having a maximum thermal diffusion path length of less than 1.5 mm;
- (c) condenser means for condensing said polar gas and evaporator means thermally exposed to said cooling chamber for providing cooling therein and conduits for directing said polar gas from said one or more reactors to said condenser means, and from said evaporator means to said one or more reactors, and
- (d) heating means cooperating with said one or more reactors for heating said complex compound therein.
- 11. The apparatus of claim 10 including gas distribution means for directing said polar gas to and from said metal salt or said complex compound in said reaction chambers, and wherein at least 60% of said metal salt or said complex compound, by weight, is within 25 mm or less of a gas distribution means.
- 12. The apparatus of claim 10 wherein said one or more reaction chambers have a maximum mean mass diffusion path length of less than about 15 mm.
- 13. The apparatus of claim 10 including one or more heat exchange surfaces in thermal contact with said metal salt and said complex compound and comprising a gas permeable material.
- 14. The apparatus of claim 10 including one or more gas permeable surfaces extending into said reaction chamber in contact with said metal salt and said complex compound along at least a portion of said gas permeable surface.
- 15. The apparatus of claim 10 wherein said metal salt and said complex compound comprise a mixture thereof, respectively, with a gas permeable admixture composition having a microporous surface for distributing said polar gas in said mixture.
- 16. A cooling apparatus comprising:
- (a) a cabinet, case or container having a cooling chamber therein;
- (b) one or more reactors each containing a complex compound formed by adsorbing a polar gas on a metal salt, and in which said reactors said polar gas is alternately adsorbed and desorbed on said complex compound, said metal salt comprising a halide, nitrate, nitrite, oxalate, perchlorate, sulfate or sulfite of an alkali metal, alkaline earth metal, transition metal, zinc, cadmium, tin or aluminum, or sodium borofluoride or a double metal chloride or bromide, and wherein said complex compound is formed by restricting the volumetric expansion and controlling the density thereof during said adsorption of said polar gas on said metal salt, whereby said complex compound is capable of increased reaction rates in the number of moles of said polar gas adsorbed and/or desorbed per mole of said complex compound per hour at adsorption or desorption times of less than 60 minutes, respectively, as compared to a complex compound formed without restricting the volumetric expansion and controlling the density thereof, wherein said one or more reactors comprise one or more reaction chambers in which at least 60% of said metal salt or said complex compound, by weight, is within 25 mm or less of a gas distribution means;
- (c) condenser means for condensing said polar gas and evaporator means thermally exposed to said cooling chamber for providing cooling therein and conduits for directing said polar gas from said one or more reactors to said condenser means, and from said evaporator means to said one or more reactors, and
- (d) heating means cooperating with said one or more reactors for heating said complex compound therein.
- 17. The apparatus of claim 16 wherein said one or more reaction chambers have a maximum thermal diffusion path length of less than 1.5 mm.
- 18. The apparatus of claim 16 including one or more heat exchange surfaces in thermal contact with said metal salt and said complex compound and comprising a gas permeable material.
- 19. The apparatus of claim 16 including one or more gas permeable surfaces extending into said reaction chamber in contact with said metal salt and said complex compound along at least a portion of said gas permeable surface.
- 20. The apparatus of claim 1 wherein said heating means comprises electrical resistance heating means.
- 21. The apparatus of claim 1 wherein said heating means comprises hot gases of combustion for heating said complex compounds.
- 22. The apparatus of claim 1 wherein said heating means comprises a heat transfer fluid for heating said complex compounds.
- 23. The apparatus of claim 1 wherein said heating means comprises one or more heat pipes for heating said complex compounds.
- 24. The apparatus of claim 1 wherein said apparatus comprises at least one cooling chamber having a volume of up to 1000 liters.
- 25. The apparatus of claim 1 wherein said apparatus comprises at least one cooling and/or freezing compartment having a volume of between about 1000 and about 30,000 liters.
- 26. The apparatus of claim 1 wherein said apparatus includes a freezer compartment.
- 27. The apparatus of claim 20 comprising a portable cooler and/or freezer.
- 28. The apparatus of claim 27 including a transformer for converting AC to DC for heating said electrical resistance heating means.
- 29. The apparatus of claim 1 comprising a dispensing or vending machine for products cooled in said cooling chamber.
- 30. The apparatus of claim 1 wherein said cooling chamber comprises separate refrigeration and freezer compartments, wherein said evaporator means is capable of -10.degree. C., and wherein said apparatus includes heat exchanger means for directing cooling from said evaporator means for cooling the refrigeration compartment to a temperature below about 10.degree. C.
- 31. The apparatus of claim 30 wherein said condenser means comprises a natural convection condenser capable of condensing said polar gas at between about 10.degree. C. and 45.degree. C. above ambient temperature.
- 32. The apparatus of claim 1 wherein said cooling chamber comprises a refrigeration compartment and wherein said evaporator means is capable of cooling said refrigeration compartment to a temperature below about 10.degree. C.
- 33. The apparatus of claim 32 wherein the complex compound in said one or more reactors is capable of providing evaporator temperatures of between about -35.degree. C. and about -8.degree. C.
- 34. The apparatus of claim 32 wherein the complex compound in said one or more reactors is capable of providing a temperature differential between the temperature of said complex compound and the evaporator temperature during adsorption of at least about 45.degree. C.
- 35. The apparatus of claim 34 wherein said complex compound comprises CACl.sub.2.2-4 (NH.sub.3), CACl.sub.2.4-8 (NH.sub.3), or mixtures thereof, SRCl.sub.2.1-8 (NH.sub.3) or SrBr.sub.2.2-8 (NH.sub.3).
- 36. The apparatus of claim 1 wherein said cooling chamber comprises a freezing compartment and wherein said evaporator means is capable of cooling said freezing compartment to a temperature below about 10.degree. C.
- 37. The apparatus of claim 36 wherein the complex compound in said one or more reactors is capable of providing evaporator temperatures of between about -25.degree. C. and about -45.degree. C.
- 38. The apparatus of claim 36 wherein the complex compound in said one or more reactors is capable of providing a temperature differential between the temperature of said complex compound and the evaporator temperature during adsorption of at least about 60.degree. C.
- 39. The apparatus of claim 38 wherein said complex compound comprises CaCl.sub.2 . X (NH.sub.3) complexes, SrCl.sub.2.1-8 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CaI.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), FeI.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), or mixtures thereof.
- 40. The cooling apparatus of claim 1 comprising two or more of said reactors each having a different complex compound therein and including means for supplying a heat transfer fluid to and from said reactors and for directing the heat transfer fluid from an exothermic adsorption reaction to a reactor for driving an endothermic desorption reaction.
- 41. A cooling apparatus of claim 40 comprising three or more reactors, said complex compounds having an ascending order of gaseous reactant vapor pressure wherein the adsorption temperature of a lower vapor pressure complex compound at adsorption pressure is at least8.degree. C. higher than the desorption temperature of the next successive higher vapor pressure complex compound at desorption pressure.
- 42. The cooling apparatus of claim 40 wherein a high vapor pressure complex compound is selected from the group consisting of CACl.sub.2.4-8 (NH.sub.3), CACl.sub.2.2-4 (NH.sub.3) and mixtures thereof, SRCl.sub.2.1-8 (NH.sub.3), BaCl.sub.2.0-8 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), NaBF.sub.4.0.5-2.5 (NH.sub.3), and NaBr.0-5.25 (NH.sub.3), and mixtures thereof.
- 43. The cooling apparatus of claim 40 wherein a lower vapor pressure complex compound is selected from the group consisting of SrCl.sub.2.1-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH .sub.3), CaBr.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), NiCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), SnCl.sub.2.0-2.5 (NH.sub.3 ), CuSO.sub.4.2-4 (NH.sub.3), and CaCl.sub.2.0-1 (NH.sub.3), CaCl.sub.2.1-2 (NH.sub.3) and mixtures thereof.
- 44. The apparatus of claim 1 comprising a plurality of said reactors, said evaporator means including a first evaporator for providing cooling to a first cooling compartment and a second evaporator for providing cooling to a second cooling compartment.
- 45. The apparatus of claim 44 comprising one or more first reactors and one or more second reactors, said one or more first reactors containing a complex compound having a lower vapor pressure than the complex compound in said one or more second reactors.
- 46. The apparatus of claim 45 wherein said first evaporator is operatively connected to said one or more first reactors, and wherein said second evaporator is operatively connected to said one or more second reactors.
- 47. The apparatus of claim 46 including heat transfer components for directing a heat transfer fluid between said first and said second reactors for directing heat of adsorption from said first reactors for driving desorption reactions in said second reactors.
- 48. The cooling apparatus of claim 40 comprising one or more first reactors and one or more second reactors, said reactors including reactor heat exchange components for directing the heat transfer fluid in heat exchange exposure to the complex compound therein,
- a heat rejection conduit loop communicating with said reactor heat exchange components for rejecting heat from said one or more first and second reactors during adsorption therein, said loop including a first portion for directing vaporized heat transfer fluid from an adsorbing reactor to said condenser means, and a second portion for directing condensed heat transfer fluid from said condenser means to an adsorbing reactor,
- a heat transfer fluid located in said heat rejection conduit loop capable of a phase change from liquid to gas at a temperature at or below the temperature of adsorption in an adsorbing reactor, and
- vapor operated fluid displacement means cooperating with said second portion of said heat rejection conduit loop for displacing liquid phase heat transfer fluid therefrom to reactor heat exchange means.
- 49. The apparatus of claim 48 wherein said heat transfer fluid is the same composition as said polar gas.
- 50. The apparatus of claim 48 wherein said fluid displacement means comprises a pump.
- 51. A cooling apparatus of claim 1 comprising one or more first reactors and one or more second reactors, said reactors including reactor heat exchange means for directing the heat transfer fluid in heat exchange exposure to the complex compound therein, said apparatus including a heat rejection conduit loop communicating with said reactor heat exchange means for rejecting heat from said one or more first and second reactors during adsorption therein, said loop including a first portion for directing vaporized heat transfer fluid from an adsorbing reactor to said condenser means, and a second portion for directing condensed heat transfer fluid from said condenser means to an adsorbing reactor,
- a heat transfer fluid located in said heat rejection conduit loop capable of a phase change from liquid to gas at a temperature at or below the temperature of adsorption in an adsorbing reactor, and
- vapor operated fluid displacement means cooperating with said second portion of said heat rejection conduit loop for displacing liquid phase heat transfer fluid therefrom to reactor heat exchange means.
- 52. The apparatus of claim 51 wherein said heat transfer fluid is the same composition as said polar gas.
- 53. The apparatus of claim 51 wherein said fluid displacement means comprises a pump.
- 54. The apparatus of claim 53 wherein said pump comprises a gas operated pump having a generally vertical pipe containing liquid phase heat transfer fluid communicating with said reactor heat exchange means and with a second pipe for directing vaporized heat transfer fluid or desorbed polar gas to drive said liquid phase heat exchange fluid along said vertical pipe.
- 55. The apparatus of claim 51 wherein said fluid displacement means comprises a reservoir for holding liquid heat transfer fluid and includes one or more ejectors for pumping liquid refrigerant from said reservoir to said reactors.
- 56. The apparatus of claim 51 wherein said fluid displacement means comprises a heater cooperating with said second portion of said heat rejection conduit loop for heating liquid heat transfer fluid or condensed polar gas therein for pumping liquid heat transfer fluid or condensed polar gas to reactor heat exchange means for cooling an adsorbing reactor.
- 57. The apparatus of claim 56 including first one-way valves for preventing back flow of heated liquid heat transfer fluid or condensed polar gas along said second portion of said heat rejection conduit loop.
- 58. The apparatus of claim 51 including passageway means for directing desorbed polar gas from said solid adsorbent to said reactor heat exchange means.
- 59. The apparatus of claim 58 including a selectively operated valve cooperating with said passageway means and said first portion of said heat rejection conduit loop for selectively directing desorbed polar gas to said reactor heat exchange means during reactor desorption, and selectively directing polar gas from a reactor to a condenser during reactor adsorption.
- 60. The apparatus of claim 58 including pressure operated valves cooperating with said first portion of said heat rejection conduit loop and said passageway means and responsive to desorbed polar gas pressure for closing during reactor desorption thereby directing desorbed polar gas to said reactor heat exchange means during reactor desorption, and for opening during reactor adsorption thereby directing polar gas from a reactor to a condenser.
- 61. The apparatus of claim 57 wherein said condenser means comprises first and second condensers, said first condenser communicating with said heat rejection conduit loop for condensing said heat transfer fluid, and said second condenser communicating with said first and second reactors for condensing desorbed polar gas therefrom.
- 62. The apparatus of claim 61 including selectively operated valve means cooperating with said heat rejection conduit loop for selectively directing vaporized heat transfer fluid from a reactor to said first condenser during reactor adsorption and for directing heat transfer fluid from reactor heat exchange means to said fluid displacement means during reactor desorption.
- 63. The apparatus of claim 62, wherein said fluid displacement means comprises a reservoir communicating with said reactors for receiving desorbed polar gas therefrom, and communicating with said second condenser for receiving condensed polar gas therefrom.
- 64. The apparatus of claim 63 wherein said reservoir includes a heater cooperating therewith for heating refrigerant for displacing condensed refrigerant liquid from said reservoir to said reactor heat exchange means.
- 65. The apparatus of claim 51 wherein said first reactors contain a complex compound different from the complex compound in said second reactors.
- 66. The apparatus of claim 51 comprising a plurality of three or more reactors, each containing a different complex compound said complex compounds having an ascending order of gaseous reactant vapor pressure with the adsorbing temperature of a lower vapor pressure compound at a low reaction pressure being higher than the desorption temperature of the next successive higher vapor pressure compound at a high reaction pressure, and including means for directing heat transfer fluid between said reactors for rejecting heat of adsorption from the highest temperature reactor to the next lower temperature reactor.
- 67. The apparatus of claim 51 wherein said polar gas is ammonia and said metal salt comprises SrCl.sub.2, SrBr.sub.2, CaCl.sub.2, CaBr.sub.2, CaI.sub.2, CoCl.sub.2, CoBr.sub.2, BaCl.sub.2, BaBr.sub.2, MgCl.sub.2, MgBr.sub.2, FeCl.sub.2, FeBr.sub.2, FeI.sub.2, NiCl.sub.2, ZnCl.sub.2, SnCl.sub.2, MnCl.sub.2, MnBr.sub.2 or CrCl.sub.2 or mixtures thereof.
- 68. The apparatus of claim 67 wherein said heat transfer fluid is ammonia.
- 69. The apparatus of claim 1 including a reservoir for receiving condensed polar gas from said condenser means and conduits for directing condensed polar gas from said condenser means to said reservoir and for directing liquid polar gas from said reservoir to said evaporator means.
- 70. The apparatus of claim 69 comprising a single reactor, wherein said condenser means comprises a condenser, and wherein said liquid holding reservoir is located above said reactor and below said condenser, whereby condensed polar gas is gravitationally directed from said condenser to said reservoir.
- 71. The apparatus of claim 70 wherein said reactor includes a reactor heat exchanger in heat exchange exposure to said complex compound therein, said apparatus including a conduit extending between said reactor heat exchanger and said reservoir and a selectively operated valve for opening and closing said conduit for controlling the flow of condensed polar gas from said reservoir to said reactor heat exchanger to cool said reactor for adsorption.
- 72. The apparatus of claim 1 including a float control device cooperating with a conduit and said evaporator means for feeding condensed polar gas to said evaporator means.
- 73. The apparatus of claim 72 wherein said float control device comprises a float chamber having a float therein and a valve actuated by movement of said float for directing condensed polar gas to said evaporator means in response to the position of said float in said float chamber.
- 74. The apparatus of claim 1 wherein said condenser means comprises one or more condensers and said evaporator means comprises one or more evaporators.
- 75. The apparatus of claim 1 wherein said condenser means and said evaporator means comprise a heat exchanger alternatively functioning as a condenser and an evaporator.
- 76. The apparatus of claim 75 including a reservoir for receiving condensed polar gas from said heat exchanger and including conduits for directing said condensed polar gas between said reservoir and said heat exchanger.
- 77. The apparatus of claim 1 wherein said polar gas is ammonia, and wherein said complex compounds are capable of adsorbing and/or desorbing at least 0.02 gram of ammonia per minute per cc of complex compound at reaction times of 30 minutes or less.
- 78. The apparatus of claim 1 wherein said polar gas is ammonia, and wherein said complex compounds are capable of adsorbing and/or desorbing at least 0.01 gram of ammonia per minute per cc of total reaction chamber volume at reaction times of 30 minutes or less.
- 79. A method of operating the cooling apparatus of claim 1 wherein said polar gas is ammonia, said method comprising repeatedly alternately adsorbing and desorbing ammonia on said complex compound at adsorption and desorption reactions at cycle time periods of less than about 30 minutes, respectively.
- 80. The method of claim 79 wherein said reaction rates are carried out to adsorb and/or desorb at least 0.01 gram of ammonia per minute per cc of total reaction chamber volume.
- 81. The method of claim 79 wherein said reaction rates are carried out to adsorb and/or desorb at least 0.02 gram of ammonia per minute per cc of complex compound.
- 82. The method of claim 79 wherein rates of reaction are determined by the formula.
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of up to 4.5moles/mole, and wherein the minimum value of k is 0.0004.
- 83. The method of claim 79 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of between 4.5 and 6 moles/mole, and wherein the minimum value of k is 0.0003.
- 84. The method of claim 79 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of above 6 moles/mole, and wherein the minimum value of k is 0.0002.
- 85. A method of operating the cooling apparatus of claim 1 comprising two of said reactors said method comprising repeatedly alternately adsorbing and desorbing said polar gas on said complex compound wherein the desorption cycle is carried out at least 10% faster than said adsorption cycle.
- 86. A cooling apparatus comprising:
- (a) a cabinet, case or container having a cooling chamber therein;
- (b) one or more first reactors and one or more second reactors, each of said first reactors containing a first, relatively high vapor pressure complex compound and each of said second reactors containing a second complex compound having a lower vapor pressure than said first complex compound, said first and second complex compounds formed by adsorbing a polar gas on a metal salt, and in which said one or more reactors said polar gas is alternately adsorbed and desorbed on said complex compound, said metal salt comprising a halide, nitrate, nitrite, oxalate, perchlorate, sulfate or sulfite of an alkali metal, alkaline earth metal, transition metal, zinc, cadmium, tin or aluminum, or sodium borofluoride or a double metal chloride or bromide, and wherein said complex compound is formed by restricting the volumetric expansion thereof during said adsorption of said polar gas on said metal salt, whereby said complex compound is capable of increased reaction rates in the number of moles of said polar gas adsorbed and/or desorbed per mole of said complex compound per hour at adsorption or desorption times of less than 60 minutes, respectively, as compared to a complex compound formed without restricting the volumetric expansion thereof, wherein the equilibrium temperature of said first complex compound relative to evaporator temperature is at least 40.degree. C.;
- (c) a condenser and an evaporator for condensing and evaporating said polar gas, respectively, and conduits and valve means cooperating therewith for directing said polar gas from said one or more reactors to said condenser, from said condenser to said evaporator and from said evaporator to said one or more reactors said evaporator in thermal communication with said cooling chamber; and
- (d) heat transfer means in thermal communication with said first and second complex compounds in said first and second reactors, respectively, and heat transfer fluid conduits for directing a heat transfer fluid between said reactors whereby heat from an exothermic adsorption reaction in said one or more second reactors is directed to said one or more first reactors for driving an endothermic desorption reaction therein.
- 87. A cooling apparatus of claim 86 wherein the first complex compound is capable of providing an equilibrium temperature differential between the complex compound temperature during adsorption and the evaporator temperature of at least 40.degree. C.
- 88. The cooling apparatus of claim 86 wherein said first complex compound is selected from the group consisting of CaCl.sub.2.4-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3) and mixtures thereof, SrCl.sub.2.1-8 (NH.sub.3), BaCl.sub.2.0-8 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), NaBF.sub.4.0.5-2.5 (NH.sub.3), and NaBr.0-5.25 (NH.sub.3), and mixtures thereof.
- 89. The cooling apparatus of claim 86 wherein the second complex compound is capable of providing an equilibrium temperature at adsorption pressure at least 8.degree. C. greater than the equilibrium temperature of said first complex compound at desorption pressure.
- 90. The cooling apparatus of claim 89 wherein said second complex compound is selected from the group consisting of SrCl.sub.2.1-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), NiCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (N), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), SnCl.sub.2.0-2.5 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), and CaCl.sub.2.0-1 (NH.sub.3), CaCl.sub.2.1-2 (NH.sub.3), and mixtures thereof.
- 91. A cooling apparatus comprising:
- (a) a cabinet, case or container having a cooling chamber therein;
- (b) one or more first reactors and one or more second reactors, each of said first reactors containing a first complex compound and each of said second reactors containing a second complex compound different from said first complex compound, said first and second complex compounds formed by adsorbing a polar gas on a metal salt, and in which one or more reactors said polar gas is alternately adsorbed and desorbed on said complex compound, said metal salt comprising a halide, nitrate, nitrite, oxalate, perchlorate, sulfate or sulfite of an alkali metal, alkaline earth metal, transition metal, zinc, cadmium, tin or aluminum, or sodium borofluoride or a double metal chloride, and wherein said complex compound is formed by restricting the volumetric expansion thereof during said adsorption of said polar gas on said metal salt, whereby said complex compound is capable of increased reaction rates in the number of moles of said polar gas adsorbed and/or desorbed per mole of said complex compound per hour at adsorption or desorption times of less than 60 minutes, respectively, as compared to a complex compound formed without restricting the volumetric expansion thereof, wherein the equilibrium temperature of said first complex compound differs from the equilibrium temperature of said second complex compound by between about 20.degree. C. and about 150.degree. C. at the same operating pressure, and wherein said one or more first reactors are thermally exposed to said cooling chamber for providing cooling therein, and wherein said one or more second reactors are substantially away from thermal exposure to said cooling chamber; and
- (c) heating means cooperating with said one or more second reactors for selectively heating the said second complex compound for driving a desorption reaction therein.
- 92. The cooling apparatus of claim 91 wherein the first complex compound is selected from the group consisting of CaCl.sub.2.4-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3) and mixtures thereof, SrCl.sub.2.18-8 (NH.sub.3), BaCl.sub.2.0-8 (NH.sub.3), NaBF.sub.4.0.5-2.5 (NH.sub.3), and NaBr.0-5.25 (NH.sub.3), and mixtures thereof.
- 93. The cooling apparatus of claim 91 wherein the second complex compound is selected from the group consisting of SrCl.sub.2.1-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3), LiCl..0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), NiCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub..2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), SnCl.sub.2.0-2.5 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), NaBF.sub.4.0.5-2.5 (NH.sub.3) and CaCl.sub.2.0-1 (NH.sub.3), CaCl.sub.2.1-2 (NH.sub.3), and mixtures thereof.
- 94. The apparatus of claim 10 wherein said condenser means and said evaporator means comprise a heat exchanger alternatively functioning as a condenser and an evaporator.
- 95. The apparatus of claim 16 wherein said condenser means and said evaporator means comprise a heat exchanger alternatively functioning as a condenser and an evaporator.
- 96. The apparatus of claim 27 wherein said condenser means and said evaporator means comprise a heat exchanger alternatively functioning as a condenser and an evaporator.
- 97. The apparatus of claim 75 comprising a portable cooler and/or freezer.
- 98. The apparatus of claim 94 comprising a portable cooler and/or freezer.
- 99. The apparatus of claim 95 comprising a portable cooler and/or freezer.
- 100. The apparatus of claim 10 wherein said heating means comprises electrical resistance heating means.
- 101. The apparatus of claim 10 wherein said heating means comprises hot gases of combustion for heating said complex compounds.
- 102. The apparatus of claim 10 wherein said heating means comprises a heat transfer fluid for heating said complex compounds.
- 103. The apparatus of claim 10 wherein said heating means comprises one or more heat pipes for heating said complex compounds.
- 104. The apparatus of claim 10 wherein said apparatus comprises at least one cooling chamber having a volume of up to 1000 liters.
- 105. The apparatus of claim 10 wherein said apparatus comprises at least one cooling and/or freezing compartment having a volume of between about 1000 and about 30,000 liters.
- 106. The apparatus of claim 10 wherein said apparatus includes a freezer compartment.
- 107. The apparatus of claim 100 comprising a portable cooler and/or freezer.
- 108. The apparatus of claim 107 including a transformer for converting AC to DC for heating said electrical resistance heating means.
- 109. The apparatus of claim 10 comprising a dispensing or vending machine for products cooled in said cooling chamber.
- 110. The apparatus of claim 10 wherein said cooling chamber comprises separate refrigeration and freezer compartments, wherein said evaporator means is capable of cooling the freezer compartment to a temperature below about -10.degree. C., and wherein said apparatus includes heat exchanger means for directing cooling from said evaporator means for cooling the refrigeration compartment to a temperature below about 10.degree. C.
- 111. The apparatus of claim 110 wherein said condenser means comprises a natural convection condenser capable of condensing said polar gas at between about 10.degree. C. and 45.degree. C. above ambient temperature.
- 112. The apparatus of claim 10 wherein said cooling chamber comprises a refrigeration compartment and wherein said evaporator means is capable of cooling said refrigeration compartment to a temperature below about 10.degree. C.
- 113. The apparatus of claim 112 wherein the complex compound in said one or more reactors is capable of providing evaporator temperatures of between about -35.degree. C. and about -8.degree. C.
- 114. The apparatus of claim 112 wherein the complex compound in said one or more reactors is capable of providing a temperature differential between the temperature of said complex compound and the evaporator temperature during adsorption of at least about 45.degree. C.
- 115. The apparatus of claim 114 wherein said complex compound comprises CACl.sub.2.2-4 (NH.sub.3), CACl.sub.2.4-8 (NH.sub.3), or mixtures thereof, SrCl.sub.2.1-8 (NH.sub.3) or SrBr.sub.2.2-8 (NH.sub.3).
- 116. The apparatus of claim 10 wherein said cooling chamber comprises a freezing compartment and wherein said evaporator means is capable of cooling said freezing compartment to a temperature below about -10.degree. C.
- 117. The apparatus of claim 116 wherein the complex compound in said one or more reactors is capable of providing evaporator temperatures of between about -25.degree. C. and about -45.degree. C.
- 118. The apparatus of claim 116 wherein the complex compound in said one or more reactors is capable of providing a temperature differential between the temperature of said complex compound and the evaporator temperature during adsorption of at least about 60.degree. C.
- 119. The apparatus of claim 118 wherein said complex compound comprises CaCl.sub.2 . X (NH.sub.3) complexes, SrCl.sub.2.1-8 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CaI.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), FeI.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), or mixtures thereof.
- 120. The cooling apparatus of claim 10 comprising two or more of said reactors each having a different complex compound therein and including means for supplying a heat transfer fluid to and from said reactors and for directing the heat transfer fluid from an exothermic adsorption reaction to a reactor for driving an endothermic desorption reaction.
- 121. A cooling apparatus of claim 120 comprising three or more reactors, said complex compounds having an ascending order of gaseous reactant vapor pressure wherein the adsorption temperature of a lower vapor pressure complex compound at adsorption pressure is at least 8.degree. C. higher than the desorption temperature of the next successive higher vapor pressure complex compound at desorption pressure.
- 122. The cooling apparatus of claim 120 wherein a high vapor pressure complex compound is selected from the group consisting of CaCl.sub.2.4-8 (NH.sub.), CaCl.sub.2.2-4 (NH.sub.3) and mixtures thereof, SrCl.sub.2.1-8 (NH.sub.3), BaCl.sub.2.0-8 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), NaBF.sub.4.0.5-2.5 (NH.sub.3), and NaBr.0-5.25 (NH.sub.3), and mixtures thereof.
- 123. The cooling apparatus of claim 120 wherein a lower vapor pressure complex compound is selected from the group consisting of SRCl.sub.2.1-8 (NH.sub.3 ), CaCl.sub.2.2-4 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), NiCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), SnCl.sub.2.0-2.5 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), and CaCl.sub.2.0-1 (NH.sub.3), CaCl.sub.2.1-2 (NH.sub.3), and mixtures thereof.
- 124. The apparatus of claim 10 comprising a plurality of said reactors, said evaporator means including a first evaporator for providing cooling to a first cooling compartment and a second evaporator for providing cooling to a second cooling compartment.
- 125. The apparatus of claim 124 comprising one or more first reactors and one or more second reactors, said one or more first reactors containing a complex compound having a lower vapor pressure than the complex compound in said one or more second reactors.
- 126. The apparatus of claim 125 wherein said first evaporator is operatively connected to said one or more first reactors, and wherein said second evaporator is operatively connected to said one or more second reactors.
- 127. The apparatus of claim 126 including heat transfer components for directing a heat transfer fluid between said first and said second reactors for directing heat of adsorption from said first reactors for driving desorption reactions in said second reactors.
- 128. The cooling apparatus of claim 120 comprising one or more first reactors and one or more second reactors, said reactors including reactor heat exchange components for directing the heat transfer fluid in heat exchange exposure to the complex compound therein,
- a heat rejection conduit loop communicating with said reactor heat exchange components for rejecting heat from said one or more first and second reactors during adsorption therein, said loop including a first portion for directing vaporized heat transfer fluid from an adsorbing reactor to said condenser means, and a second portion for directing condensed heat transfer fluid from said condenser means to an adsorbing reactor,
- a heat transfer fluid located in said heat rejection conduit loop capable of a phase change from liquid to gas at a temperature at or below the temperature of adsorption in an adsorbing reactor, and
- vapor operated fluid displacement means cooperating with said second portion of said heat rejection conduit loop for displacing liquid phase heat transfer fluid therefrom to reactor heat exchange means.
- 129. The apparatus of claim 128 wherein said heat transfer fluid is the same composition as said polar gas.
- 130. The apparatus of claim 128 wherein said fluid displacement means comprises a pump.
- 131. A cooling apparatus of claim 10 comprising one or more first reactors and one or more second reactors, said reactors including reactor heat exchange means for directing the heat transfer fluid in heat exchange exposure to the complex compound therein, said apparatus including a heat rejection conduit loop communicating with said reactor heat exchange means for rejecting heat from said one or more first and second reactors during adsorption therein, said loop including a first portion for directing vaporized heat transfer fluid from an adsorbing reactor to said condenser means, and a second portion for directing condensed heat transfer fluid from said condenser means to an adsorbing reactor,
- a heat transfer fluid located in said heat rejection conduit loop capable of a phase change from liquid to gas at a temperature at or below the temperature of adsorption in an adsorbing reactor, and
- vapor operated fluid displacement means cooperating with said second portion of said heat rejection conduit loop for displacing liquid phase heat transfer fluid therefrom to reactor heat exchange means.
- 132. The apparatus of claim 131 wherein said heat transfer fluid is the same composition as said polar gas.
- 133. The apparatus of claim 131 wherein said fluid displacement means comprises a pump.
- 134. The apparatus of claim 133 wherein said pump comprises a gas operated pump having a generally vertical pipe containing liquid phase heat transfer fluid communicating with said reactor heat exchange means and with a second pipe for directing vaporized heat transfer fluid or desorbed polar gas to drive said liquid phase heat exchange fluid along said vertical pipe.
- 135. The apparatus of claim 131 wherein said fluid displacement means comprises a reservoir for holding liquid heat transfer fluid and includes one or more ejectors for pumping liquid refrigerant from said reservoir to said reactors.
- 136. The apparatus of claim 131 wherein said fluid displacement means comprises a heater cooperating with said second portion of said heat rejection conduit loop for heating liquid heat transfer fluid or condensed polar gas therein for pumping liquid heat transfer fluid or condensed polar gas to reactor heat exchange means for cooling an adsorbing reactor.
- 137. The apparatus of claim 136 including first one-way valves for preventing back flow of heated liquid heat transfer fluid or condensed polar gas along said second portion of said heat rejection conduit loop.
- 138. The apparatus of claim 131 including passageway means for directing desorbed polar gas from said solid adsorbent to said reactor heat exchange means.
- 139. The apparatus of claim 138 including a selectively operated valve cooperating with said passageway means and said first portion of said heat rejection conduit loop for selectively directing desorbed polar gas to said reactor heat exchange means during reactor desorption, and selectively directing polar gas from a reactor to a condenser during reactor adsorption.
- 140. The apparatus of claim 138 including pressure operated valves cooperating with said first portion of said heat rejection conduit loop and said passageway means and responsive to desorbed polar gas pressure for closing during reactor desorption thereby directing desorbed polar gas to said reactor heat exchange means during reactor desorption, and for opening during reactor adsorption thereby directing polar gas from a reactor to a condenser.
- 141. The apparatus of claim 137 wherein said condenser means comprises first and second condensers, said first condenser communicating with said heat rejection conduit loop for condensing said heat transfer fluid, and said second condenser communicating with said first and second reactors for condensing desorbed polar gas therefrom.
- 142. The apparatus of claim 141 including selectively operated valve means cooperating with said heat rejection conduit loop for selectively directing vaporized heat transfer fluid from a reactor to said first condenser during reactor adsorption and for directing heat transfer fluid from reactor heat exchange means to said fluid displacement means during reactor desorption.
- 143. The apparatus of claim 142, wherein said fluid displacement means comprises a reservoir communicating with said reactors for receiving desorbed polar gas therefrom, and communicating with said second condenser for receiving condensed polar gas therefrom.
- 144. The apparatus of claim 143 wherein said reservoir includes a heater cooperating therewith for heating refrigerant for displacing condensed refrigerant liquid from said reservoir to said reactor heat exchange means.
- 145. The apparatus of claim 131 wherein said first reactors contain a complex compound different from the complex compound in said second reactors.
- 146. The apparatus of claim 131 comprising a plurality of three or more reactors, each containing a different complex compound said complex compounds having an ascending order of gaseous reactant vapor pressure with the adsorbing temperature of a lower vapor pressure compound at a low reaction pressure being higher than the desorption temperature of the next successive higher vapor pressure compound at a high reaction pressure, and including means for directing heat transfer fluid between said reactors for rejecting heat of adsorption from the highest temperature reactor to the next lower temperature reactor.
- 147. The apparatus of claim 131 wherein said polar gas is ammonia and said metal salt comprises SrCl.sub.2, SrBr.sub.2, CaCl.sub.2, CaBr.sub.2, CaI.sub.2, CoCl.sub.2, CoBr.sub.2, BaCl.sub.2, BaBr.sub.2, MgCl.sub.2, MgBr.sub.2, FeCl.sub.2, FeBr.sub.2, FeI.sub.2, NiCl.sub.2, ZnCl.sub.2, SnCl.sub.2, MnCl.sub.2, MnBr.sub.2 or CrCl.sub.2 or mixtures thereof.
- 148. The apparatus of claim 147 wherein said heat transfer fluid is ammonia.
- 149. The apparatus of claim 10 including a reservoir for receiving condensed polar gas from said condenser means and conduits for directing condensed polar gas from said condenser means to said reservoir and for directing liquid polar gas from said reservoir to said evaporator means.
- 150. The apparatus of claim 149 comprising a single reactor, wherein said condenser means comprises a condenser, and wherein said liquid holding reservoir is located above said reactor and below said condenser, whereby condensed polar gas is gravitationally directed from said condenser to said reservoir.
- 151. The apparatus of claim 150 wherein said reactor includes a reactor heat exchanger in heat exchange exposure to said complex compound therein, said apparatus including a conduit extending between said reactor heat exchanger and said reservoir and a selectively operated valve for opening and closing said conduit for controlling the flow of condensed polar gas from said reservoir to said reactor heat exchanger to cool said reactor for adsorption.
- 152. The apparatus of claim 10 including a float control device cooperating with a conduit and said evaporator means for feeding condensed polar gas to said evaporator means.
- 153. The apparatus of claim 152 wherein said float control device comprises a float chamber having a float therein and a valve actuated by movement of said float for directing condensed polar gas to said evaporator means in response to the position of said float in said float chamber.
- 154. The apparatus of claim 10 wherein said condenser means comprises one or more condensers and said evaporator means comprises one or more evaporators.
- 155. The apparatus of claim 94 including a reservoir for receiving condensed polar gas from said heat exchanger and including conduits for directing said condensed polar gas between said reservoir and said heat exchanger.
- 156. The apparatus of claim 10 wherein said polar gas is ammonia, and wherein said complex compounds are capable of adsorbing and/or desorbing at least 0.02 gram of ammonia per minute per cc of complex compound at reaction times of 30 minutes or less.
- 157. The apparatus of claim 10 wherein said polar gas is ammonia, and wherein said complex compounds are capable of adsorbing and/or desorbing at least 0.01 gram of ammonia per minute per cc of total reaction chamber volume at reaction times of 30 minutes or less.
- 158. A method of operating the cooling apparatus of claim 10 wherein said polar gas is ammonia, said method comprising repeatedly alternately adsorbing and desorbing ammonia on said complex compound at adsorption and desorption reactions at cycle time periods of less than about 30 minutes, respectively.
- 159. The method of claim 158 wherein said reaction rates are carried out to adsorb and/or desorb at least 0.01 gram of ammonia per minute per cc of total reaction chamber volume.
- 160. The method of claim 158 wherein said reaction rates are carried out to adsorb and/or desorb at least 0.02 gram of ammonia per minute per cc of complex compound.
- 161. The method of claim 158 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of up to 4.5 moles/mole, and wherein the minimum value of k is 0.0004.
- 162. The method of claim 158 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of between 4.5 and 6 moles/mole, and wherein the minimum value of k is 0.0003.
- 163. The method of claim 158 wherein rates of reaction are determined by the formula
- .DELTA.N =.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N =reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of above 6 moles/mole, and wherein the minimum value of k is 0.0002.
- 164. A method of operating the cooling apparatus of claim 10 comprising two of said reactors said method comprising repeatedly alternately adsorbing and desorbing said polar gas on said complex compound wherein the desorption cycle is carried out at least 10% faster than said adsorption cycle.
- 165. The apparatus of claim 16 wherein said heating means comprises electrical resistance heating means.
- 166. The apparatus of claim 16 wherein said heating means comprises hot gases of combustion for heating said complex compounds.
- 167. The apparatus of claim 16 wherein said heating means comprises a heat transfer fluid for heating said complex compounds.
- 168. The apparatus of claim 16 wherein said heating means comprises one or more heat pipes for heating said complex compounds.
- 169. The apparatus of claim 16 wherein said apparatus comprises at least one cooling chamber having a volume of up to 1000 liters.
- 170. The apparatus of claim 16 wherein said apparatus comprises at least one cooling and/or freezing compartment having a volume of between about 1000 and about 30,000 liters.
- 171. The apparatus of claim 16 wherein said apparatus includes a freezer compartment.
- 172. The apparatus of claim 165 comprising a portable cooler and/or freezer.
- 173. The apparatus of claim 172 including a transformer for converting AC to DC for heating said electrical resistance heating means.
- 174. The apparatus of claim 16 comprising a dispensing or vending machine for products cooled in said cooling chamber.
- 175. The apparatus of claim 16 wherein said cooling chamber comprises separate refrigeration and freezer compartments, wherein said evaporator means is capable of cooling the freezer compartment to a temperature below about -10.degree. C., and wherein said apparatus includes heat exchanger means for directing cooling from said evaporator means for cooling the refrigeration compartment to a temperature below about 10.degree. C.
- 176. The apparatus of claim 177 wherein said condenser means comprises a natural convection condenser capable of condensing said polar gas at between about 10.degree. C. and 45.degree. C. above ambient temperature.
- 177. The apparatus of claim 16 wherein said cooling chamber comprises a refrigeration compartment and wherein said evaporator means is capable of cooling said refrigeration compartment to a temperature below about 10.degree. C.
- 178. The apparatus of claim 177 wherein the complex compound in said one or more reactors is capable of providing evaporator temperatures of between about -35.degree. C. and about -8.degree. C.
- 179. The apparatus of claim 177 wherein the complex compound in said one or more reactors is capable of providing a temperature differential between the temperature of said complex compound and the evaporator temperature during adsorption of at least about 450.degree. C.
- 180. The apparatus of claim 179 wherein said complex compound comprises CACl.sub.2.2-4 (NH.sub.3), CACl.sub.2.4-8 (NH.sub.3), or mixtures thereof, SrCl.sub.2.1-8 (NH.sub.3) or SrBr.sub.2.2-8 (NH.sub.3).
- 181. The apparatus of claim 16 wherein said cooling chamber comprises a freezing compartment and wherein said evaporator means is capable of cooling said freezing compartment to a temperature below about -10.degree. C.
- 182. The apparatus of claim 181 wherein the complex compound in said one or more reactors is capable of providing evaporator temperatures of between about -25.degree. C. and about -45.degree. C.
- 183. The apparatus of claim 181 wherein the complex compound in said one or more reactors is capable of providing a temperature differential between the temperature of said complex compound and the evaporator temperature during adsorption of at least about 60.degree. C.
- 184. The apparatus of claim 183 wherein said complex compound comprises CaCl.sub.2. X (NH.sub.3) complexes, SrCl.sub.2.1-8 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CaI.sub.2.2-6 (NH.sub.3 ), FeCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), FeI.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), or mixtures thereof.
- 185. The cooling apparatus of claim 16 comprising two or more of said reactors each having a different complex compound therein and including means for supplying a heat transfer fluid to and from said reactors and for directing the heat transfer fluid from an exothermic adsorption reaction to a reactor for driving an endothermic desorption reaction.
- 186. A cooling apparatus of claim 185 comprising three or more reactors, said complex compounds having an ascending order of gaseous reactant vapor pressure wherein the adsorption temperature of a lower vapor pressure complex compound at adsorption pressure is at least 8.degree. C. higher than the desorption temperature of the next successive higher vapor pressure complex compound at desorption pressure.
- 187. The cooling apparatus of claim 185 wherein a high vapor pressure complex compound is selected from the group consisting of CACl.sub.2.4-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3) and mixtures thereof, SRCl.sub.2.1-8 (NH.sub.3), BaCl.sub.2.0-8 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), CuSO.sub.4.2-4(NH.sub.3), NaBF.sub.4.0.5-2.5 (NH.sub.3), and NaBr.0-5.25 (NH.sub.3), and mixtures thereof.
- 188. The cooling apparatus of claim 185 wherein a lower vapor pressure complex compound is selected from the group consisting of SrCl.sub.2.1-8 (NH.sub.3), CaCl.sub.2.2-4 (NH.sub.3), LiCl.0-3 (NH.sub.3), SrBr.sub.2.2-8 (NH.sub.3), CaBr.sub.2.2-6 (NH.sub.3), FeCl.sub.2.2-6 (NH.sub.3), CoCl.sub.2.2-6 (NH.sub.3), FeBr.sub.2.2-6 (NH.sub.3), NiCl.sub.2.2-6 (NH.sub.3), CoBr.sub.2.2-6 (NH.sub.3), MgCl.sub.2.2-6 (NH.sub.3), MgBr.sub.2.2-6 (NH.sub.3), MnCl.sub.2.2-6 (NH.sub.3), MnBr.sub.2.2-6 (NH.sub.3), SnCl.sub.2.0-2.5 (NH.sub.3), CuSO.sub.4.2-4 (NH.sub.3), and CaCl.sub.2.0-1 (NH.sub.3), CACl.sub.2.1-2 (NH.sub.3) and mixtures thereof.
- 189. The apparatus of claim 16 comprising a plurality of said reactors, said evaporator means including a first evaporator for providing cooling to a first cooling compartment and a second evaporator for providing cooling to a second cooling compartment.
- 190. The apparatus of claim 191 comprising one or more first reactors and one or more second reactors, said one or more first reactors containing a complex compound having a lower vapor pressure than the complex compound in said one or more second reactors.
- 191. The apparatus of claim 190 wherein said first evaporator is operatively connected to said one or more first reactors, and wherein said second evaporator is operatively connected to said one or more second reactors.
- 192. The apparatus of claim 191 including heat transfer components for directing a heat transfer fluid between said first and said second reactors for directing heat of adsorption from said first reactors for driving desorption reactions in said second reactors.
- 193. The cooling apparatus of claim 185 comprising one or more first reactors and one or more second reactors, said reactors including reactor heat exchange components for directing the heat transfer fluid in heat exchange exposure to the complex compound therein,
- a heat rejection conduit loop communicating with said reactor heat exchange components for rejecting heat from said one or more first and second reactors during adsorption therein, said loop including a first portion for directing vaporized heat transfer fluid from an adsorbing reactor to said condenser means, and a second portion for directing condensed heat transfer fluid from said condenser means to an adsorbing reactor,
- a heat transfer fluid located in said heat rejection conduit loop capable of a phase change from liquid to gas at a temperature at or below the temperature of adsorption in an adsorbing reactor, and
- vapor operated fluid displacement means cooperating with said second portion of said heat rejection conduit loop for displacing liquid phase heat transfer fluid therefrom to reactor heat exchange means.
- 194. The apparatus of claim 193 wherein said heat transfer fluid is the same composition as said polar gas.
- 195. The apparatus of claim 193 wherein said fluid displacement means comprises a pump.
- 196. A cooling apparatus of claim 16 comprising one or more first reactors and one or more second reactors, said reactors including reactor heat exchange means for directing the heat transfer fluid in heat exchange exposure to the complex compound therein, said apparatus including a heat rejection conduit loop communicating with said reactor heat exchange means for rejecting heat from said one or more first and second reactors during adsorption therein, said loop including a first portion for directing vaporized heat transfer fluid from an adsorbing reactor to said condenser means, and a second portion for directing condensed heat transfer fluid from said condenser means to an adsorbing reactor,
- a heat transfer fluid located in said heat rejection conduit loop capable of a phase change from liquid to gas at a temperature at or below the temperature of adsorption in an adsorbing reactor, and
- vapor operated fluid displacement means cooperating with said second portion of said heat rejection conduit loop for displacing liquid phase heat transfer fluid therefrom to reactor heat exchange means.
- 197. The apparatus of claim 196 wherein said heat transfer fluid is the same composition as said polar gas.
- 198. The apparatus of claim 196 wherein said fluid displacement means comprises a pump.
- 199. The apparatus of claim 198 wherein said pump comprises a gas operated pump having a generally vertical pipe containing liquid phase heat transfer fluid communicating with said reactor heat exchange means and with a second pipe for directing vaporized heat transfer fluid or desorbed polar gas to drive said liquid phase heat exchange fluid along said vertical pipe.
- 200. The apparatus of claim 196 wherein said fluid displacement means comprises a reservoir for holding liquid heat transfer fluid and includes one or more ejectors for pumping liquid refrigerant from said reservoir to said reactors.
- 201. The apparatus of claim 196 wherein said fluid displacement means comprises a heater cooperating with said second portion of said heat rejection conduit loop for heating liquid heat transfer fluid or condensed polar gas therein for pumping liquid heat transfer fluid or condensed polar gas to reactor heat exchange means for cooling an adsorbing reactor.
- 202. The apparatus of claim 201 including first one-way valves for preventing back flow of heated liquid heat transfer fluid or condensed polar gas along said second portion of said heat rejection conduit loop.
- 203. The apparatus of claim 196 including passageway means for directing desorbed polar gas from said solid adsorbent to said reactor heat exchange means.
- 204. The apparatus of claim 203 including a selectively operated valve cooperating with said passageway means and said first portion of said heat rejection conduit loop for selectively directing desorbed polar gas to said reactor heat exchange means during reactor desorption, and selectively directing polar gas from a reactor to a condenser during reactor adsorption.
- 205. The apparatus of claim 203 including pressure operated valves cooperating with said first portion of said heat rejection conduit loop and said passageway means and responsive to desorbed polar gas pressure for closing during reactor desorption thereby directing desorbed polar to said reactor heat exchange means during reactor desorption, and for opening during reactor adsorption thereby directing polar gas from a reactor to a condenser.
- 206. The apparatus of claim 202 wherein said condenser means comprises first and second condensers, said first condenser communicating with said heat rejection conduit loop for condensing said heat transfer fluid, and said second condenser communicating with said first and second reactors for condensing desorbed polar gas therefrom.
- 207. The apparatus of claim 206 including selectively operated valve means cooperating with said heat rejection conduit loop for selectively directing vaporized heat transfer fluid from a reactor to said first condenser during reactor adsorption and for directing heat transfer fluid from reactor heat exchange means to said fluid displacement means during reactor desorption.
- 208. The apparatus of claim 207, wherein said fluid displacement means comprises a reservoir communicating with said reactors for receiving desorbed polar gas therefrom, and communicating with said second condenser for receiving condensed polar gas therefrom.
- 209. The apparatus of claim 208 wherein said reservoir includes a heater cooperating therewith for heating refrigerant for displacing condensed refrigerant liquid from said reservoir to said reactor heat exchange means.
- 210. The apparatus of claim 196 wherein said first reactors contain a complex compound different from the complex compound in said second reactors.
- 211. The apparatus of claim 196 comprising a plurality of three or more reactors, each containing a different complex compound said complex compounds having an ascending order of gaseous reactant vapor pressure with the adsorbing temperature of a lower vapor pressure compound at a low reaction pressure being higher than the desorption temperature of the next successive higher vapor pressure compound at a high reaction pressure, and including means for directing heat transfer fluid between said reactors for rejecting heat of adsorption from the highest temperature reactor to the next lower temperature reactor.
- 212. The apparatus of claim 196 wherein said polar gas is ammonia and said metal salt comprises SrCl.sub.2, SrBr.sub.2, CaCl.sub.2, CaBr.sub.2, CaI.sub.2, CoCl.sub.2, CoBr.sub.2, BaCl.sub.2, BaBr.sub.2, MgCl.sub.2, MgBr.sub.2, FeCl.sub.2, FeBr.sub.2, FeI.sub.2, NiCl.sub.2, ZnCl.sub.2, SnCl.sub.2, MnCl.sub.2, MnBr.sub.2 or CrCl.sub.2 or mixtures thereof.
- 213. The apparatus of claim 212 wherein said heat transfer fluid is ammonia.
- 214. The apparatus of claim 16 including a reservoir for receiving condensed polar gas from said condenser means and conduits for directing condensed polar gas from said condenser means to said reservoir and for directing liquid polar gas from said reservoir to said evaporator means.
- 215. The apparatus of claim 214 comprising a single reactor, wherein said condenser means comprises a condenser, and wherein said liquid holding reservoir is located above said reactor and below said condenser, whereby condensed polar gas is gravitationally directed from said condenser to said reservoir.
- 216. The apparatus of claim 215 wherein said reactor includes a reactor heat exchanger in heat exchange exposure to said complex compound therein, said apparatus including a conduit extending between said reactor heat exchanger and said reservoir and a selectively operated valve for opening and closing said conduit for controlling the flow of condensed polar gas from said reservoir to said reactor heat exchanger to cool said reactor for adsorption.
- 217. The apparatus of claim 16 including a float control device cooperating with a conduit and said evaporator means for feeding condensed polar gas to said evaporator means.
- 218. The apparatus of claim 217 wherein said float control device comprises a float chamber having a float therein and a valve actuated by movement of said float for directing condensed polar gas to said evaporator means in response to the position of said float in said float chamber.
- 219. The apparatus of claim 16 wherein said condenser means comprises one or more condensers and said evaporator means comprises one or more evaporators.
- 220. The apparatus of claim 95 including a reservoir for receiving condensed polar gas from said heat exchanger and including conduits for directing said condensed polar gas between said reservoir and said heat exchanger.
- 221. The apparatus of claim 16 wherein said polar gas is ammonia, and wherein said complex compounds are capable of adsorbing and/or desorbing at least 0.02 gram of ammonia per minute per cc of complex compound at reaction times of 30 minutes or less.
- 222. The apparatus of claim 16 wherein said polar gas is ammonia, and wherein said complex compounds are capable of adsorbing and/or desorbing at least 0.01 gram of ammonia per minute per cc of total reaction chamber volume at reaction times of 30 minutes or less.
- 223. A method of operating the cooling apparatus of claim 16 wherein said polar gas is ammonia, said method comprising repeatedly alternately adsorbing and desorbing ammonia on said complex compound at adsorption and desorption reactions at cycle time periods of less than about 30 minutes, respectively.
- 224. The method of claim 223 wherein said reaction rates are carried out to adsorb and/or desorb at least 0.01 gram of ammonia per minute per cc of total reaction chamber volume.
- 225. The method of claim 223 wherein said reaction rates are carried out to adsorb and/or desorb at least 0.02 gram of ammonia per minute per cc of complex compound.
- 226. The method of claim 223 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of up to 4.5 moles/mole, and wherein the minimum value of k is 0.0004.
- 227. The method of claim 223 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of between 4.5 and 6 moles/mole, and wherein the minimum value of k is 0.0003.
- 228. The method of claim 223 wherein rates of reaction are determined by the formula
- .DELTA.N=.DELTA.N.sub.max (1-e.sup.-kt)
- where:
- .DELTA.N=reaction extent (moles/mole)
- .DELTA.N.sub.max =maximum reaction extent (moles/mole)
- t=time (sec)
- k=reaction kinetics value (sec.sup.-1)
- wherein the reaction is carried out to a reaction extent of above 6 moles/mole, and wherein the minimum value of k is 0.0002.
- 229. A method of operating the cooling apparatus of claim 16 comprising two of said reactors said method comprising repeatedly alternately adsorbing and desorbing said polar gas on said complex compound wherein the desorption cycle is carried out at least 10% faster than said adsorption cycle.
Parent Case Info
This application is a continuation-in-part of U.S. patent application Ser. No. 08/104,427 filed Aug. 9, 1993, (U.S. Pat. No. 5,441,716, which is a continuation-in-part of Ser. No. 07/931,036 filed Aug. 14, 1992, (U.S. Pat. No. 5,328,671) and Ser. No. 07/975,973 filed Nov. 13, 1992, (U.S. Pat. No. 5,298,231) which is a continuation of Ser. No. 07/320,562 filed Mar. 8, 1989, abandoned, and is a continuation-in-part of application Ser. No. 08/327,150 filed Oct. 21, 1994 (U.S. Pat. No. 5,477,706) which is a continuation of Ser. No. 08/059,548 filed May 11, 1993 (abandoned) and is a continuation-in-part of application Ser. No. 08/149,453 filed Nov. 9, 1993, (U.S. Pat. No. 5,396,775) which is a divisional of Ser. No. 794,501, filed Nov. 19, 1991 (U.S. Pat. No. 5,271,239), which is a continuation-in-part of Ser. No. 07/732,652 filed Jul. 19, 1991, (U.S. Pat. No. 5,186,020), which is a continuation-in-part of Ser. No. 07/644,833 filed Jan. 23, 1991, abandoned.
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Related Publications (3)
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Date |
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327150 |
Oct 1994 |
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149453 |
Nov 1993 |
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975973 |
Nov 1992 |
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Divisions (1)
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Date |
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Parent |
794501 |
Nov 1991 |
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Continuations (2)
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Number |
Date |
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Parent |
320562 |
Mar 1989 |
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Parent |
59548 |
May 1993 |
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Continuation in Parts (4)
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Number |
Date |
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Parent |
104427 |
Aug 1993 |
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Parent |
732652 |
Jul 1991 |
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Parent |
644833 |
Jan 1991 |
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Parent |
931036 |
Aug 1992 |
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