Claims
- 1. An article comprising:
at least two adjacent sheets forming a space between said adjacent sheets; a container capable of containing a fluid-forming composition attached to at least one of said adjacent sheets; and wherein said container sealed about at least one of said adjacent sheets to provide fluid communication between the interior of said container and said space.
- 2. The article defined in claim 1 wherein said space comprises an enclosed space.
- 3. The article defined in claim 1 wherein said container comprises an enclosed container.
- 4. The article defined in claim 2 wherein said container contains a fluid-forming composition.
- 5. The article defined in claim 4 wherein said fluid-forming composition is capable of generating a gas when heated.
- 6. The article defined in claim 1 wherein said fluid-forming composition is selected from the group consisting of ammonium carbonate, calcium carbonate, copper carbonate, calcium magnesium carbonate, iron carbonate, magnesium carbonate, manganese carbonate, zinc carbonate calcium hydride, lithium hydride, titanium hydride, calcium hydroxide, lithium hydroxide, lithium nitrate, potassium nitrate, silver nitrate copper nitride, magnesium nitride, magnesium nitride, erbium oxalate, magnesium oxalate, manganese oxalate, azobisforamide, raw kyanite, calcium titanate, boron nitride, bisphenol A-epichlorohydrin, epoxy ink, black polyester and aromatic polyimide polymer.
- 7. The article defined in claim 1 wherein at least one of said adjacent sheets is selected from the group consisting of metallics, intermetallics, ceramics, and composites thereof.
- 8. The article defined in claim 1 wherein at least one of said adjacent sheets exhibits superplasticity.
- 9. The article defined in claim 1 wherein at least one of said adjacent sheets contains a superplastic metallic or superplastic metallic alloy.
- 10. The article defined in claim 1 wherein at least one of said adjacent sheets contains a metallic selected from the group consisting of titanium, aluminum, copper, nickel, iron, magnesium, titanium-based alloys including Ti—6Al—4V, aluminum-based alloys including AA 5083, nickel-based alloys including Inconel 718, and microduplex stainless steel alloys including Nitronic 19D and Superdux 65.
- 11. The article defined in claim 1 wherein said adjacent sheets are weldable with a laser.
- 12. An article comprising:
at least two adjacent sheets forming an enclosed space between said adjacent sheets, except for at least one opening to said enclosed space; at least one of said two adjacent sheets attached to at least one container capable of containing a fluid-forming composition in its interior; and wherein said interior of said container is in fluid communication with said enclosed space through said opening.
- 13. The article defined in claim 12 comprising a closable container and an enclosed pathway providing said fluid communication.
- 14. The article defined in claim 13 comprising said fluid-forming composition sealed within said container.
- 15. The article defined in claim 14 wherein said fluid-forming composition is capable of generating a gas when heated.
- 16. The article defined in claim 12 wherein said fluid-forming composition is selected from the group consisting of ammonium carbonate, calcium carbonate, copper carbonate, calcium magnesium carbonate, iron carbonate, magnesium carbonate, manganese carbonate, zinc carbonate calcium hydride, lithium hydride, titanium hydride, calcium hydroxide, lithium hydroxide, lithium nitrate, potassium nitrate, silver nitrate copper nitride, magnesium nitride, magnesium nitride, erbium oxalate, magnesium oxalate, manganese oxalate, azobisforamide, raw kyanite, calcium titanate, boron nitride, bisphenol A-epichlorohydrin, epoxy ink, black polyester and aromatic polyimide polymer.
- 17. The article defined in claim 12 wherein at least one of said adjacent sheets is selected from the group consisting of metallics, intermetallics, ceramics, and composites thereof.
- 18. The article defined in claim 12 wherein at least one of said adjacent sheets exhibits superplasticity.
- 19. The article defined in claim 12 wherein at least one of said adjacent sheets contains a superplastic metallic or superplastic metallic alloy.
- 20. The article defined in claim 12 wherein at least one of said adjacent sheets contains a metallic selected from the group consisting of titanium, aluminum, copper, nickel, iron, magnesium, titanium-based alloys including Ti—6Al—4V, aluminum-based alloys including AA 5083, nickel-based alloys including Inconel 718, and microduplex stainless steel alloys including Nitronic 19D and Superdux 65.
- 21. A method for inflating at least one of two adjacent sheets, said method comprising:
sealing a space between said adjacent sheets except for at least one fluid communication opening from said space; sealing a container containing a fluid-forming composition about said fluid communication opening; concurrently heating said adjacent sheets and said container to generate sufficient internal fluid pressure from said fluid-forming composition to alter a shape of at least one of said adjacent sheets.
- 22. The method defined in claim 21 wherein said fluid-forming composition is selected from the group consisting of ammonium carbonate, calcium carbonate, copper carbonate, calcium magnesium carbonate, iron carbonate, magnesium carbonate, manganese carbonate, zinc carbonate calcium hydride, lithium hydride, titanium hydride, calcium hydroxide, lithium hydroxide, lithium nitrate, potassium nitrate, silver nitrate copper nitride, magnesium nitride, magnesium nitride, erbium oxalate, magnesium oxalate, manganese oxalate, azobisforamide, raw kyanite, calcium titanate, boron nitride, bisphenol A-epichlorohydrin, epoxy ink, black polyester and aromatic polyimide polymer.
- 23. The method defined in claim 21 wherein at least one of said adjacent sheets is selected from the group consisting of metallics, intermetallics, ceramics, and composites thereof.
- 24. The method defined in claim 21 wherein at least one of said adjacent sheets exhibits superplasticity.
- 25. The method defined in claim 21 wherein at least one of said adjacent sheets contains a superplastic metallic or superplastic metallic alloy.
- 26. The method defined in claim 21 wherein at least one of said adjacent sheets contains a metallic selected from the group consisting of titanium, aluminum, copper, nickel, iron, magnesium, titanium-based alloys including Ti—6Al—4V, aluminum-based alloys including AA 5083, nickel-based alloys including Inconel 718, and microduplex stainless steel alloys including Nitronic 19D and Superdux 65.
- 27. The method defined in claim 21 further comprising trimming an excess portion of at least one of said adjacent sheets after initiation of said heating.
- 28. The method defined in claim 21 further comprising trimming said container from at least one of said adjacent sheets after initiation of said heating.
- 29. A method for altering the shape of at least one superplastic sheet, said method comprising:
(1) enclosing a space between at least two adjacent sheets, except for an opening capable of fluid communication with said space, at least one of said adjacent sheets having at least one superplastic property; (2) attaching a container to at least one of said adjacent sheets; (3) supplying an interior portion of said container with a gas-forming composition; (4) sealing said container except for a container opening capable of fluid communication with said interior portion of said container; (5) sealing said container opening about said opening; (6) concurrently heating said sheets and said container to generate sufficient gas from said gas-forming composition to alter a shape of said adjacent sheet having at least one superplastic property; and (5) removing said container.
- 30. The method defined in claim 29 wherein said space is sealed by laser welding.
- 31. The method defined in claim 29 wherein the geometric dimensions of said opening and said container opening are predetermined to provide controlled gas rate to said space.
- 32. The method defined in claim 31 wherein said fluid-forming composition is selected from the group consisting of ammonium carbonate, calcium carbonate, copper carbonate, calcium magnesium carbonate, iron carbonate, magnesium carbonate, manganese carbonate, zinc carbonate calcium hydride, lithium hydride, titanium hydride, calcium hydroxide, lithium hydroxide, lithium nitrate, potassium nitrate, silver nitrate copper nitride, magnesium nitride, magnesium nitride, erbium oxalate, magnesium oxalate, manganese oxalate, azobisforamide, raw kyanite, calcium titanate, boron nitride, bisphenol A-epichlorohydrin, epoxy ink, black polyester and aromatic polyimide polymer.
- 33. The method defined in claim 29 wherein at least one of said adjacent sheets contains a metallic selected from the group consisting of titanium, aluminum, copper, nickel, iron, magnesium, titanium-based-alloys including Ti—6Al—4V, aluminium-based alloys including AA 5083, nickel-based alloys including Inconel 718, and microduplex stainless steel alloys including Nitronic 19D and Superdux 65.
- 34. A method for forming a metallic sheet, said method comprising:
(1) applying a fluid-forming composition to a surface of said first metallic sheet; (2) covering said surface of said metallic sheet with a second metallic sheet; (3) sealing at least a portion of said surface between said first metallic sheet and said second metallic sheet to form a closed space between said sheets except for at least one opening from said closed space; (4) attaching a container having a container opening and a solid or liquid fluid-forming composition to said sheets and sealing said container opening; and (5) generating sufficient fluid from said fluid-forming composition to alter a shape of said metallic sheet.
- 35. The method of claim 34 wherein a shape of said second metallic sheet is altered.
- 36. The method of claim 34 wherein gas is generated from said solid or liquid fluid-forming composition in said container.
- 37. A method for forming an article of claim 1 Comprising:
forming a space between at least two adjacent sheets; attaching a container capable of containing a fluid-forming composition to at least one of said adjacent sheets; forming an enclosed pathway for fluid communication between said container and said space.
- 38. A method for forming an article of claim 12 comprising:
forming an enclosed space between at least two adjacent sheets, except for at least one opening to said enclosed space; attaching a container having an interior capable of containing a fluid-forming composition to at least one of said adjacent sheets; forming a closed pathway for fluid communication between said interior of said container and said endorsed space.
- 39. An article produced by the method of claim 21.
- 40. An article produced by the method of claim 29.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09120762 |
Jul 1998 |
US |
Child |
09798729 |
Mar 2001 |
US |