Claims
- 1. A pressure vessel comprising an outer housing; said housing having a closed end and opposing open end; said vessel further comprising an end cap assembly sealing the open end of said housing, said outer housing and said end cap assembly forming a pressure boundary surface around the vessel interior;
wherein said vessel comprises a vent mechanism located on said pressure boundary surface, wherein said vent mechanism activates to release gas pressure from within the vessel, said vent mechanism comprising a first and a second rupture zone on said boundary surface, wherein said first rupture zone ruptures when gas pressure within the cell rises to a first pressure level and said second rupture zone ruptures when gas pressure within the cell rises to a second pressure level higher than said first pressure level.
- 2. The vessel of claim 1 wherein said first and second rupture zones are spaced apart on said boundary surface.
- 3. The vessel of claim 1 wherein said first and second rupture zones are contiguous in that at least a portion of the boundary of the first rupture zone abuts a portion of the boundary of the second rupture zone.
- 4. The vessel of claim 1 wherein said first rupture zone ruptures when gas pressure reaches a threshold design pressure and said second rupture zone ruptures at pressure greater than the threshold design pressure.
- 5. The vessel of claim 1 wherein at least one of said rupture zones forms a groove on said boundary surface, said groove defining an area thinner than the average thickness of said boundary surface.
- 6. The vessel of claim 5 wherein the first rupture zone forms a groove on said boundary surface, said groove defining an area thinner than the average thickness of said boundary surface; and the second rupture zone is formed by a laser weld within a portion of said boundary surface.
- 7. The vessel of claim 5 wherein said groove is formed by stamping said boundary surface.
- 8. The vessel of claim 1 wherein each of said rupture zones form grooves on said boundary surface.
- 9. The vessel of claim 1 wherein at least one of said rupture zones is formed by a laser weld within a portion of said boundary surface.
- 10. The vessel of claim 9 wherein a portion of said laser weld is a weak laser weld forming said first rupture zone and another portion of said laser weld is a strong laser weld forming said second rupture zone.
- 11. The vessel of claim 10 wherein said strong laser weld and said weak laser weld are formed along the edge of a metal member fitted within an aperture cut out of said boundary surface thereby closing said aperture.
- 12. The vessel of claim 10 wherein at least one of said rupture zones is formed by a laser weld between the edge of a metal member and the inside surface of said housing thereby fixing said metal member along a portion of its edge to the inside surface of said outer housing in proximity to the open end of said housing.
- 13. The vessel of claim 12 wherein said metal member is laser welded forming a strong laser weld between said metal member and said outer housing and said same metal member is laser welded forming a weak laser weld between said metal member and another portion of said outer housing so that said weak weld ruptures before said strong weld ruptures as gas pressure within the cell rises.
- 14. The vessel of claim 13 wherein said weak weld ruptures when gas pressure within the cell rises to a level of between about 400 and 800 psig (2758×103 and 5515×103 pascal gage).
- 15. The vessel of claim 14 wherein said strong laser weld ruptures when gas pressure within the cell rises to a level of between about 800 and 2500 psig (5515×103 and 17235×103 pascal gage).
- 16. The vessel of claim 6 wherein the first rupture zone is formed by a groove on the outside surface of said housing and the second rupture zone is formed by a laser weld between the edge of a metal member and said housing thereby fixing said metal member along a portion of its edge to the said outer housing in proximity to the open end of said housing.
- 17. The vessel of claim 1 wherein the first rupture zone on said boundary surface ruptures when gas pressure within the cell interior reaches a pressure level between about 250 and 800 psig (1724×103 and 5515×103 pascal gage) and said second zone on said boundary surface ruptures when gas pressure within the cell interior reaches a pressure level between about 800 and 2500 psig (5515×103 and 17235×103 pascal gage).
- 18. The vessel of claim 6 wherein the first rupture zone formed by said groove ruptures when gas pressure within the cell interior reaches a pressure level between about 250 and 800 psig (1724×103 and 5515×103 pascal gage) and said second rupture zone formed by said laser weld ruptures when gas pressure within the cell interior reaches a pressure level between about 800 and 2500 psig (5515×103 and 17235×103 pascal gage).
- 19. The vessel of claim 13 wherein said metal member is a rectangular metal plate.
- 20. The vessel of claim 13 wherein said metal member is a rectangular plate having an aperture therethrough.
- 21. The vessel cell of claim 13 wherein said metal member is a rectangular metal plate and said weak weld runs along a portion of at least one long edge of said rectangular plate.
- 22. A primary alkaline cell comprising a negative and a positive terminal, and an outer housing of cuboid shape, said housing having a closed end and opposing open end, said cell further comprising an anode comprising zinc and a cathode comprising MnO2 within said housing, a separator between said anode and cathode, and an end cap assembly sealing the open end of said housing thereby forming a boundary surface around the cell interior;
wherein the cathode comprises a plurality of rectangular shaped cathode slabs; wherein each of said slabs has a central opening devoid of cathode material; wherein said cathode slabs are stacked within the housing so that said openings devoid of cathode material form a core, with the outer surface of said cathode contacting the inside surface of said housing; wherein said cell comprises a vent mechanism located on said boundary surface, wherein said vent mechanism activates to release gas pressure from within the cell as said gas pressure rises, said vent mechanism comprising a first rupture zone and a second rupture zone on said boundary surface, said rupture zones having the property that the first zone ruptures when gas pressure within the cell rises to a first pressure level and said second zone ruptures when gas pressure within the cell rises to a second pressure level being higher than said first pressure level allowing gas from within the cell to escape from the cell interior through said ruptures.
- 23. The cell of claim 22 wherein said first and second rupture zones are contiguous in that at least a portion of the boundary of the first rupture zone abuts a portion of the boundary of the second rupture zone.
- 24. The cell of claim 23 wherein at least one of said rupture zones is formed by a laser weld within a portion of said boundary surface.
- 25. The cell of claim 24 wherein a portion of said laser weld is a weak laser weld forming said first rupture zone and another portion of said laser weld is a strong laser weld forming said second rupture zone.
- 26. The alkaline cell of claim 25 wherein said weak laser weld ruptures when gas pressure within the cell reaches a threshold level of between about 400 and 800 psig (2758×103 and 5515×103 pascal gage), thereby releasing gas pressure therethrough.
- 27. The alkaline cell of claim 25 wherein said strong laser weld ruptures when gas pressure within the cell rises to a level of between about 800 and 2500 psig (5515×103 and 17235×103 pascal gage).
- 28. The alkaline cell of claim 25 wherein said weak weld ruptures when gas pressure within the cell rises to a level of between about 400 and 800 psig (2758×103 and 5515×103 pascal gage) and said strong weld ruptures when gas pressure within the cell rises to a level of between about 800 and 2500 psig (5515×103 and 17235×103 pascal gage).
- 29. The alkaline cell of claim 25 wherein said strong and weak welds are formed along the edge of a metal member fitted within an aperture in said boundary surface thereby closing said aperture.
- 30. The alkaline cell of claim 29 wherein said metal member is a rectangular metal plate and said weak weld runs along a portion of at least one long edge of said rectangular plate.
- 31. The alkaline cell of claim 22 wherein at least a portion of said central opening within said cathode slabs forms a cavity for housing said anode.
- 32. The alkaline cell of claim 31 wherein said cavity has an oblong configuration.
- 33. The alkaline cell of claim 22 wherein the cell comprises alkaline electrolyte comprising an aqueous solution of potassium hydroxide.
- 34. The alkaline cell of claim 22 wherein the cell is balanced so that the cathode is in excess such that the ratio of theoretical capacity of the MnO2 based on a theoretical specific value of 370 mAmp-hr per gram MnO2, divided by the mamp-hr capacity of zinc based on a theoretical specific value of 820 mAmp-hr per gram zinc, is between about 1.2 and 2.0.
- 35. The alkaline cell of claim 22 wherein the cell is balanced so that the cathode is in excess such that the ratio of theoretical capacity of the MnO2 based on a theoretical specific value of 370 mAmp-hr per gram MnO2, divided by the 1 amp-hr capacity of zinc based on a theoretical specific value of 820 mAmp-hr per gram zinc, is between about 1.4 and 1.8.
- 36. The alkaline cell of claim 22 wherein said cell has an overall thickness of between about 5 and 10 mm, wherein said overall thickness is defined as the distance between the outside surface of opposing sides of said housing defining the short dimension of said housing.
- 37. The alkaline cell of claim 22 wherein the housing comprises metal having a wall thickness of between about 0.30 mm and 0.50 mm.
- 38. The alkaline cell of claim 22 wherein the housing comprises metal having a wall thickness of between about 0.30 mm and 0.40 mm.
- 39. The alkaline cell of claim 22 wherein said housing comprises steel.
- 40. A primary alkaline cell comprising a negative and a positive terminal, and an outer housing of cuboid shape, said housing having a closed end and opposing open end, said cell further comprising an anode comprising zinc and a cathode comprising MnO2 within said housing, a separator between said anode and cathode, and an end cap assembly sealing the open end of said housing thereby forming a boundary surface around the cell interior;
wherein the cathode comprises a plurality of rectangular shaped cathode slabs; wherein each of said slabs has a central opening devoid of cathode material; wherein said cathode slabs are stacked within the housing along the cell's central longitudinal axis so that said openings devoid of cathode material form a central core along said longitudinal axis, with the outer surface of said cathode contacting the inside surface of said housing; wherein said cell comprises a vent mechanism located on said boundary surface, wherein said vent mechanism activates to release gas pressure from within the cell as said gas pressure rises, said vent mechanism comprising a first and a second rupture zone on said boundary surface, wherein at least one of said rupture zones forms a groove on said boundary surface, wherein said rupture zones have the property that the first zone ruptures when gas pressure within the cell rises to a first pressure level and said second zone ruptures when gas pressure within the cell rises to a second pressure level being higher than said first pressure level allowing gas from within the cell to escape from the cell interior through said ruptures.
- 41. The cell of claim 40 wherein said groove on said boundary surface defines a region thinner than the average thickness of said boundary surface.
- 42. The cell of claim 40 wherein said first and second rupture zones are spaced apart on said boundary surface.
- 43. The cell of claim 41 wherein the first rupture zone forms a groove on said boundary surface, said groove defining an area thinner than the average thickness of said boundary surface; and the second rupture zone is formed by a laser weld with within a portion of said boundary surface.
- 44. The cell of claim 41 wherein said groove is formed by stamping said boundary surface.
- 45. The cell of claim 40 wherein each of said rupture zones forms a groove on said boundary surface, said grooves each defining a region thinner than the average thickness of said boundary surface.
- 46. The cell of claim 40 wherein the first zone on said boundary surface ruptures when gas pressure within the cell interior reaches a pressure level between about 250 and 800 psig (1724×103 and 5515×103 pascal gage) and said second zone on said boundary surface ruptures when gas pressure within the cell interior reaches a pressure level between about 800 and 2500 psig (5515×103 and 17235×103 pascal gage).
- 47. The cell of claim 40 wherein the first rupture zone is formed by a groove on the outside surface of said housing and the second rupture zone is formed by a laser weld between the edge of a metal member and the inside surface of said housing thereby fixing said metal member along a portion of its edge to the inside surface of said outer housing in proximity to the open end of said housing.
- 48. The cell of claim 47 wherein said metal member is a rectangular plate.
- 49. The cell of claim 47 wherein said groove runs parallel to the close end of the cell.
- 50. The cell of claim 47 wherein the first zone on said boundary surface ruptures when gas pressure within the cell interior reaches a pressure level between about 250 and 800 psig (1724×103 and 5515×103 pascal gage) and said second zone on said boundary surface ruptures when gas pressure within the cell interior reaches a pressure level between about 800 and 2500 psig (5515×103 and 1724×103 pascal gage).
- 51. The alkaline cell of claim 50 wherein the housing comprises metal having a wall thickness of between about 0.30 mm and 0.50 mm.
- 52. The alkaline cell of claim 50 wherein said cell has an overall thickness of between about 5 and 10 mm, wherein said overall thickness is defined as the distance between the outside surface of opposing sides of said housing defining the short dimension of said housing.
- 53. A pressure vessel such as a battery comprising a pressure boundary surface,
wherein said vessel comprises a vent mechanism located on said pressure boundary surface, wherein said vent mechanism activates to release gas pressure from within the vessel, said vent mechanism comprising a first and a second rupture zone on said boundary surface, wherein said first rupture zone ruptures when gas pressure within the cell rises to a first pressure level and said second rupture zone ruptures when gas pressure within the cell rises to a second pressure level higher than said first pressure level.
- 54. The vessel of claim 53 wherein said first and second rupture zones are spaced apart on said boundary surface.
- 55. The vessel of claim 53 wherein said first and second rupture zones are contiguous in that at least a portion of the boundary of the first rupture zone abuts a portion of the boundary of the second rupture zone.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation in part of application Ser. No. 10/336,261 filed Jan. 3, 2003.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10336261 |
Jan 2003 |
US |
Child |
10414750 |
Apr 2003 |
US |