Claims
- 1. A heat insulation blanket for reducing heat transfer between adjacent spaces, comprising:
four plies of thermoplastic sheet material in superposed relationship, including a pair of outer plies and a pair of inner plies, said inner plies positioned between said pair of outer plies, thermally formed heat seals formed in a lattice connecting all of said plies of sheet material in an array of sealed cells, said pair of inner plies and said heat seals forming inner cells between said pair of inner plies, each of said outer plies forming outer cells with one of said inner plies, said inner cells filled with phase change material, and said outer cells filled with gas.
- 2. The heat insulation blanket of claim 1, wherein:
at least one ply of said sheet material is formed of heat reflective material.
- 3. The heat insulation blanket of claim 1, wherein:
said outer cells include a first array of cells on one side of said inner cells and a second array of cells on the other side of said inner cells, and said cells of said first and second arrays of cells are substantially equal in volume.
- 4. The heat insulation blanket of claim 1, wherein:
said outer cells include a first array of cells on one side of said inner cells and a second array of cells on the other side of said inner cells, and the cells of said first array of cells being of larger volume than the volume of said cells of said second array of cells.
- 5. The heat insulation blanket of claim 1, wherein said phase change material is selected from the group consisting essentially of: calcium chloride hexahydrate, sodium sulfate, paraffin, Na2SO4.10H2O, CaCl2.6H2O, Na2S2O3.5H2O, NaCO3.10H2O, NaHPO4.12H2O.
- 6. The heat insulation blanket of claim 1, wherein said gas is selected from the group consisting essentially of: air, carbon dioxide, nitrogen, argon, Freon, krypton, and xenon.
- 7. A heat insulation blanket for reducing heat transfer between adjacent areas comprising:
at least three sheets of material positioned in adjacent superposed relationship, a lattice of seams connecting adjacent sheets of said material and forming multiple layers of superposed sealed cells between adjacent ones of said sheets, at least one of said multiple layers of sealed cells containing phase change material, and another one of the multiple layers of sealed cells containing a gas.
- 8. The heat insulation blanket of claim 7, wherein said gas is selected from the group consisting essentially of: air, nitrogen, carbon dioxide, argon, and Freon.
- 9. The heat insulation blanket of claim 7, wherein said phase change material is selected from the group consisting essentially of: Na2SO4.10H2O, CaCl2.6H2O, Na2S2O3.5H2O, NaCO3.10H2O, NaHPO4.12H2O.
- 10. A heat insulation blanket for reducing heat transfer between adjacent surfaces, comprising:
a plurality of superposed plies of sheet material, said plies of sheet material connected together with a lattice of seams forming layers of cells between said plies, one layer of said cells containing phase change material, and another layer of cells containing heat reflective material.
- 11. The heat insulation blanket of claim 10, wherein said another layer of cells includes a gas filled space adjacent said heat reflective material.
- 12. The heat insulation blanket of claim 10, wherein:
said plurality of superposed plies of sheet material include at least four plies of sheet material, said layer of cells containing heat reflective material includes cells positioned on opposite sides of said cells containing phase change material.
- 13. A method of forming insulation blanket having multiple layers of cells containing different heat insulation materials, comprising:
advancing four plies of sheet material into superposed relationship and along a processing path with the plies of sheet material including a pair of juxtaposed inner sheets and a pair of outer sheets, with the inner sheets positioned between the outer sheets, progressively connecting the sheets together with a plurality of parallel seams in the sheets that extend along the processing path and define inner channels between the inner sheets and outer channels positioned on opposed sides of the inner channels, placing phase change material in the inner channels, placing gas in the outer channels, forming lateral seams in the sheets that extend across the channels and divide the channels into an array of cells with cells containing the phase change material positioned between the cells containing gas.
- 14. The method of claim 13, wherein:
the steps of advancing four plies of sheet material comprises advancing thermoplastic sheet material, and the step of progressively connecting the sheets together with a plurality of parallel seams and forming lateral seams in the sheet material comprise forming heat seals in the sheet material.
- 15. The method of claim 13, wherein:
the step of placing gas in the outer channels comprises filling the outer channels with air.
- 16. The method of claim 13, wherein:
the step of placing gas in the outer channels comprises drawing the outer sheets away from the inner sheets.
- 17 The method of claim 13, wherein:
the step of placing phase change material in the inner channels comprises placing phase change material in its solid state in the inner channels.
- 18. The method of claim 13, wherein:
the step of placing phase change material in the inner channels comprises filling the channels with phase change material in its liquid state.
- 19. The method of claim 13, wherein the step of advancing four plies of sheet material into superposed relationship and along a processing path comprises:
advancing at least one sheet of heat reflective material.
- 20. The method of forming an insulation blanket having multiple layers of cells containing different heat insulation materials, comprising:
advancing several plies of sheet material into superposed relationship and along a processing path with a pair of juxtaposed inner sheets and at least one outer sheet positioned adjacent an inner sheet, progressively connecting the sheets together with a plurality of parallel seams in the sheets that define inner channels between the inner sheets and outer channels positioned outside of the inner channels, placing a first insulation material in the inner channels, placing a second insulation material in the outer channels, forming lateral seams in the sheets that extend across the channels and dividing the channels into an array of cells with the inner cells containing the first insulation material and the outer cells containing the second insulation material.
- 21. The method of claim 20, wherein:
the step of advancing several plies of sheet material comprises advancing at least three plies of material.
- 22. The method of claim 20, wherein the step of placing a first insulation material in the inner channels comprises:
placing phase change material in the inner channels.
- 23. A method of forming an insulation blanket having multiple layers of cells containing heat insulation materials comprising:
placing multiple sheets of material in superposed relationship, forming a lattice of seams connecting the multiple sheets into a multiple layered array of closed cells, placing an insulation material in one layer of cells, and placing gas in another layer of cells.
- 24. The method of claim 23, wherein:
the step of placing an insulation material in one layer of cells comprises placing phase change material in one layer of cells.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 10/056,730, filed Jan. 25, 2002, entitled “Reflective Heat Insulation.” Also, applicant claims the benefit of U.S. patent application serial No. 60/345,770, entitled “Blanket Insulation with Reflective Sheet and Air Space,” filed in the U.S. Patent and Trademark Office on Jan. 4, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60345770 |
Jan 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10056730 |
Jan 2002 |
US |
Child |
10103636 |
Mar 2002 |
US |