Claims
- 1. A passive thermal control enclosure comprising:
an inner enclosure having a plurality of walls joined together to form a generally box-shaped configuration, the inner enclosure having an opening at one end thereof, the walls of the inner enclosure comprising a rigid structural material and at least some of the walls also including a thermally insulating material; an outer enclosure having a plurality of walls joined together to form a generally box-shaped configuration surrounding the inner enclosure such that there is a space between each wall of the inner enclosure and a corresponding wall of the outer enclosure, the outer enclosure having an opening at one end thereof in registration with the opening in the inner enclosure for inserting items into and removing items from the inner enclosure; an inner door releasably engaged with the inner enclosure for closing the opening therein, and an outer door releasably engaged with the outer enclosure for closing the opening therein; a thermally insulating body disposed in the space between each wall of the inner enclosure and the corresponding wall of the outer enclosure, each thermally insulating body comprising a plurality of insulators stacked together to provide redundancy such that if one insulator loses its insulating ability there is at least one other insulator for insulating the corresponding wall of the inner enclosure; and at least one sealed pack of phase change material disposed inside the inner enclosure.
- 2. The passive thermal control enclosure of claim 1, wherein the insulators between the inner and outer enclosures each comprises a vacuum-sealed flexible package filled with an insulating material.
- 3. The passive thermal control enclosure of claim 2, wherein the insulating material in the insulators comprises an aerogel.
- 4. The passive thermal control enclosure of claim 3, wherein the aerogel comprises a carbon and silica aerogel.
- 5. The passive thermal control enclosure of claim 1, wherein the inner enclosure and outer enclosure each has a top wall and a bottom wall parallel to and spaced from each other, opposite side walls, and a rear wall.
- 6. The passive thermal control enclosure of claim 5, wherein the walls of the inner enclosure comprise fiber-matrix composite material.
- 7. The passive thermal control enclosure of claim 6, wherein the top, bottom, and side walls of the inner enclosure each comprises a sandwich structure having fiber-matrix composite skins between which a core of thermally insulating material is disposed.
- 8. The passive thermal control enclosure of claim 7, wherein the core of thermally insulating material comprises a honeycomb material.
- 9. The passive thermal control enclosure of claim 5, wherein the inner enclosure includes a latch assembly for latching the inner door closed.
- 10. The passive thermal control enclosure of claim 9, wherein the latch assembly comprises a pair of sliding latches that slide in opposite directions from each other for latching the inner door.
- 11. The passive thermal control enclosure of claim 1, wherein the outer enclosure includes a pressure equalization vent allowing gases to pass into and out from the space between the inner and outer enclosures.
- 12. The passive thermal control enclosure of claim 11, wherein the pressure equalization vent prevents liquids from passing therethrough.
- 13. The passive thermal control enclosure of claim 1, wherein the at least one pack of phase change material comprises a quantity of phase change material contained within a sealed first package, and a sealed second package that contains the first package.
- 14. The passive thermal control enclosure of claim 13, wherein there are a plurality of packs of phase change material configured to interface with the inner enclosure and with one another such that the packs of phase change material create a self-supporting structure defining an interior space therein for containing items to be temperature-controlled.
- 15. The passive thermal control enclosure of claim 14, further comprising a layer of thermal insulation disposed inside the interior space created by the packs of phase change material for surrounding items so as to regulate the items to a temperature higher than a phase transition temperature for the phase change material.
- 16. The passive thermal control enclosure of claim 1, wherein the phase change material comprises water to which a nucleating agent is added to prevent supercooling of the water during a freezing cycle.
- 17. The passive thermal control enclosure of claim 1, further comprising a plurality of packs of a first phase change material, and a plurality of packs of a second phase change material, the first and second phase change materials having different predetermined phase transition temperatures, whereby different temperatures can be maintained in the passive thermal control enclosure by appropriate selection of phase change materials.
- 18. The passive thermal control enclosure of claim 1, further comprising an elastic seal for sealing between the outer door and the outer enclosure.
- 19. A passive thermal control enclosure comprising:
an inner enclosure; an outer enclosure surrounding the inner enclosure such that a space exists between the inner enclosure and the outer enclosure; and insulators disposed between the inner and outer enclosures, the insulators each comprising an aerogel material contained within a vacuum-sealed flexible package.
- 20. The passive thermal control enclosure of claim 19, wherein each side of the inner enclosure is insulated by at least two of the insulators stacked together for redundancy.
- 21. The passive thermal control enclosure of claim 19, wherein each side of the inner enclosure is insulated by at least three of the insulators stacked together for redundancy.
- 22. The passive thermal control enclosure of claim 19, wherein the aerogel material comprises carbon nanoparticles.
- 23. A passive thermal control enclosure for use in microgravity, comprising:
an inner enclosure of generally box-shaped configuration having an opening at one end thereof; an outer enclosure of generally box-shaped configuration having an opening at one end thereof, the inner enclosure being disposed inside the outer enclosure such that the openings of the two enclosures are in registration with each other; thermal insulators disposed between the inner and outer enclosures; an inner door releasably engageable with the inner enclosure for closing the opening thereof, and an outer door releasably engageable with the outer enclosure for closing the opening thereof; and latches for at least one of the inner and outer doors, the latches being configured such that the latches are movable between latched and unlatched positions by application of force pairs exerted in opposite directions such that substantially no net reaction force is exerted on the person applying the force pairs.
- 24. The passive thermal control enclosure of claim 23, wherein the latches comprise a pair of first latch members slidably mounted on the inner door and slidable toward and away from each other, the first latch members having projections that engage corresponding receptacles in structure that surrounds the inner door when the inner door is positioned to close the opening in the inner enclosure and the first latch members are slid away from each other.
- 25. The passive thermal control enclosure of claim 24, wherein the inner door is generally rectangular having four edges, and wherein the first latch members are mounted adjacent each of two of the edges that are opposite from each other.
- 26. The passive thermal control enclosure of claim 25, further comprising a pair of second latches having projections that engage receptacles in the structure surrounding the inner door, the second latches being mounted to slide in directions perpendicular to that in which the first latches slide.
- 27. The passive thermal control enclosure of claim 24, wherein the projections on the first latch members define cam surfaces configured such that when the first latch members are slid away from each other to engage the receptacles, the cam surfaces engage surfaces in the receptacles such that a force is exerted on the latch members in a direction urging the inner door inwardly toward the interior of the inner enclosure so as to facilitate sealing of the inner door.
- 28. A passive thermal control enclosure comprising:
an inner enclosure; an outer enclosure surrounding the inner enclosure such that a space exists between the inner enclosure and the outer enclosure; insulators disposed between the inner and outer enclosures; and sealed packs of phase change material disposed within the inner enclosure for surrounding a payload to be temperature-controlled, the phase change material comprising deuterium oxide.
- 29. A method for transporting a temperature-sensitive payload between earth and a spacecraft in orbit about earth and for storing the payload on the spacecraft, comprising:
placing the payload in a passive thermal control enclosure containing sealed packs of phase change material having a phase transition temperature generally corresponding to a temperature at which the payload is to be maintained; transporting the passive thermal control enclosure containing the packs of phase change material and the payload to the spacecraft and transferring the passive thermal control enclosure to a storage area in the spacecraft; and when a substantial fraction of the phase change material has changed phase, removing the packs of phase change material from the passive thermal control enclosure and inserting fresh packs of the phase change material into the enclosure.
- 30. The method of claim 29, wherein the packs of phase change material are initially placed into the thermal control enclosure in a frozen state and are removed when a substantial fraction of the phase change material has melted, and further comprising re-freezing the melted packs of phase change material onboard the spacecraft.
- 31. The method of claim 30, wherein the step of re-freezing the packs of phase change material comprises cooling each pack such that the phase change material freezes along a freeze front that travels in substantially only one direction.
- 32. The method of claim 31, wherein the step of re-freezing each pack of phase change material comprises cooling one face of the pack at one end thereof and thermally insulating all other faces of the pack such that the freeze front travels from the one end of the pack toward an opposite end thereof.
- 33. The method of claim 30, wherein the phase change material is packaged in flexible packages to accommodate expansion of the phase change material during re-freezing.
- 34. The method of claim 30, wherein the packs of phase change material placed into the passive thermal control enclosure comprise packs of water to which a nucleating agent is added to prevent supercooling of the water during re-freezing.
- 35. The method of claim 34, wherein the water is degassed and is then packaged in the packs, and the packs are sealed and formed of a material selected to prevent infiltration of gas back into the water.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of the filing date of U.S. Provisional Patent Application Serial No. 60/304,373 filed Jul. 10, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60304373 |
Jul 2001 |
US |