Claims
- 1. An electrical cell comprising an elemental metal composition and a pair of spaced apart electrodes operatively coupled with said composition for generation of electrical current, said composition including a metal fraction having respective quantities of elemental magnesium and elemental iron, with an alkali metal salt and water in contact with the metal fraction.
- 2. The cell of claim 1, said elemental magnesium and elemental iron being in particulate form.
- 3. The cell of claim 2, said particulate elemental magnesium and particulate elemental iron being compressed together to form a self-sustaining body.
- 4. The cell of claim 2, said magnesium and iron being in the form of powders.
- 5. The cell of claim 4, said powders being approximately the size of pyrotechnic particles.
- 6. The cell of claim 1, said metal fraction of said composition including from about 30-90% by weight magnesium and from about 10-70% by weight iron.
- 7. The cell of claim 6, said metal fraction of said composition including from about 40-80% by weight magnesium and from about 30-70% by weight iron.
- 8. The cell of claim 6, said metal fraction of said composition including about 80% by weight magnesium and about 20% by weight iron.
- 9. The cell of claim 6, said metal fraction of said composition including about 50% by weight magnesium and about 50% by weight iron.
- 10. The cell of claim 1, said alkali metal salt being present at a level of from about 0.01-10% by weight.
- 11. The cell of claim 10, said alkali metal salt being present at a level of from about 0.01-1% by weight.
- 12. The cell of claim 1, said water being present at a level of from about 0.01-1 cm3 water per gram of said metal fraction of said composition.
- 13. The cell of claim 12, said level being from about 0.08-0.15 cm3 water per gram of said metal fraction of said composition.
- 14. The cell of claim 1, said metal fraction further including an elemental metal selected from the group consisting of zinc and aluminum and mixtures thereof.
- 15. The cell of claim 1, including a container for said composition, said container including a moisture-permeable barrier therein dividing the container into adjacent sections, said composition divided into two quantities, each of said container sections housing one of said composition quantities.
- 16. The cell of claim 1, said water derived from ambient atmosphere.
- 17. The cell of claim 1, said water being added to said cell for contacting said metal fraction and alkali metal salt.
- 18. The cell of claim 1, said alkali metal salt being sodium chloride.
- 19. The cell of claim 1, said electrodes being coupled with a load.
- 20. The cell of claim 1, said cell further comprising a water absorbent polymer in fluid communication with said metal fraction.
- 21. The cell of claim 20, said polymer comprising a polymer selected from the group consisting of sodium or potassium based cross-linked polymers.
- 22. The cell of claim 21, said polymer comprising a potassium based cross-linked polymer.
- 23. The cell of claim 1, said cell further comprising respective layers selected from the group consisting of polyaniline doped with I2 crystals, plastic mylar, plastic mylar with a metal coating, copper oxide, and yttrium barium oxide, each of said respective layers having therebetween a layer selected from the group consisting of carbon dust, graphite, and combinations thereof.
- 24. The cell of claim 23, said respective layers including at least one polyaniline layer, one copper oxide layer, and one yttrium barium oxide layer.
- 25. The cell of claim 23, said respective layers being in particulate form.
- 26. The cell of claim 20, said cell further comprising at least one collector layer selected from the group consisting of carbon powder and graphite.
- 27. The cell of claim 26, said polymer being centrally located in said cell, said composition being on both sides of said polymer and one of said collectors being located adjacent said composition and in electrical contact with said electrodes.
- 28. The cell of claim 1, said cell being re-chargable.
- 29. An electrical cell comprising:
a container comprising a generally flat non-conductive body presenting a recess; a first segment of conductive metallic foil disposed over at least a portion of said container; a quantity of a metal composition within said recess and operatively coupled with said foil, said composition including a metal fraction having respective quantities of elemental magnesium and elemental iron, with an alkali metal salt and water in contact with the metal fraction; a non-conductive barrier sheet disposed over said composition and adjacent portions of said first segment of metallic foil; and a second segment of conductive metallic foil adjacent said barrier sheet, said container, first segment, barrier sheet and second segment being joined together with said composition captively retained within said recess, said first and second segments operatively coupled with said composition and defining respective electrodes.
- 30. The cell of claim 29, said elemental magnesium and elemental iron being in particulate form.
- 31. The cell of claim 30, said particulate elemental magnesium and particulate elemental iron being compressed together to form a self-sustaining body.
- 32. The cell of claim 30, said magnesium and iron being in the form of powders.
- 33. The cell of claim 32, said powders being approximately the size of pyrotechnic particles.
- 34. The cell of claim 29, said metal fraction of said composition including from about 30-90% by weight magnesium and from about 10-70% by weight iron.
- 35. The cell of claim 34, said metal fraction of said composition including from about 40-80% by weight magnesium and from about 30-70% by weight iron.
- 36. The cell of claim 34, said metal fraction of said composition including about 80% by weight magnesium and about 20% by weight iron.
- 37. The cell of claim 34, said metal fraction of said-composition including about 50% by weight magnesium and about 50% by weight iron.
- 38. The cell of claim 29, said alkali metal salt being present at a level of from about 0.01-10% by weight.
- 39. The cell of claim 38, said alkali metal salt being present at a level of from about 0.01-1% by weight.
- 40. The cell of claim 29, said water being present at a level of from about 0.01-1 cm3 water per gram of said metal fraction of said composition.
- 41. The cell of claim 40, said level being from about 0.08-0.15 cm3 water per gram of said metal fraction of said composition.
- 42. The cell of claim 29, said metal fraction further including an elemental metal selected from the group consisting of zinc and aluminum and mixtures thereof.
- 43. The cell of claim 29, said water being added to said cell for contacting said metal fraction and alkali metal salt.
- 44. The cell of claim 29, said alkali metal salt being sodium chloride.
- 45. The cell of claim 29, said electrodes being coupled with a load.
- 46. The cell of claim 29, said cell further comprising a water absorbent polymer in fluid communication with said metal fraction.
- 47. The cell of claim 46, said polymer comprising a polymer selected from the group consisting of sodium or potassium based cross-linked polymers.
- 48. The cell of claim 47, said polymer comprising a potassium based cross-linked polymer.
- 49. The cell of claim 29, said cell further comprising respective layers selected from the group consisting of polyaniline doped with I2 crystals, plastic mylar, plastic mylar coated with metal, copper oxide, and yttrium barium oxide, each of said respective layers having therebetween a layer selected from the group consisting of carbon dust, graphite, and combinations thereof.
- 50. The cell of claim 49, said respective layers including at least one polyaniline layer, one copper oxide layer, and one yttrium barium oxide layer.
- 51. The cell of claim 49, said respective layers being in particulate form.
- 52. The cell of claim 46, said cell further comprising at least one collector layer selected from the group consisting of carbon powder and graphite.
- 53. The cell of claim 52, said polymer being centrally located in said cell, said composition being on both sides of said polymer and one of said collectors being located adjacent said composition and in electrical contact with said electrodes.
- 54. The cell of claim 29, said cell being re-chargable.
- 55. A method of generating electrical current comprising the steps of:
providing an elemental metal composition including a metal fraction having respective quantities of elemental magnesium and elemental iron, with an alkali metal salt and water in contact with the metal fraction; coupling a pair of electrodes to said composition in electrically separate relationship to each other; connecting said electrodes to, a load; and allowing said composition to react to generate an electrical current.
- 56. The method of claim 55, said elemental magnesium and elemental iron being in particulate form.
- 57. The method of claim 56, said particulate elemental magnesium and particulate elemental iron being compressed together to form a self-sustaining body.
- 58. The method of claim 56, said magnesium and iron being in the form of powders.
- 59. The method of claim 58, said powders being approximately the size of pyrotechnic particles.
- 60. The method of claim 55, said metal fraction of said composition including from about 30-90% by weight magnesium and from about 10-70% by weight iron.
- 61. The method of claim 60, said metal fraction of said composition including from about 40-80% by weight magnesium and from about 30-70% by weight iron.
- 62. The method of claim 60, said metal fraction of said composition including about 80% by weight magnesium and about 20% by weight iron.
- 63. The method of claim 60, said metal fraction of said composition including about 50% by weight magnesium and about 50% by weight iron.
- 64. The method of claim 55, said alkali metal salt being present at a level of from about 0.01-10% by weight.
- 65. The method of claim 64, said alkali metal salt being present at a level of from about 0.01-1% by weight.
- 66. The method of claim 55, said water being present at a level of from about 0.01-1 cm3 water per gram of said metal fraction of said composition.
- 67. The method of claim 66, said level being from about 0.08-0.15 cm3 water per gram of said metal fraction of said composition.
- 68. The method of claim 55, said metal fraction further including an elemental metal selected from the group consisting of zinc and aluminum and mixtures thereof.
- 69. The method of claim 55, including a container for said composition, said container including a moisture-permeable barrier therein dividing the container into adjacent sections, said composition divided into two quantities, each of said container sections housing one of said composition quantities.
- 70. The method of claim 55, said water derived from ambient atmosphere.
- 71. The method of claim 55, said water being added to said cell for contacting said metal fraction and alkali metal salt.
- 72. The method of claim 55, said alkali metal salt being sodium chloride.
- 73. The method of claim 55, said electrodes being coupled with a load.
- 74. The method of claim 55, said cell further comprising a water absorbent polymer in fluid communication with said metal fraction.
- 75. The method of claim 74, said polymer comprising a polymer selected from the group consisting of sodium or potassium based cross-linked polymers.
- 76. The method of claim 75, said polymer comprising a potassium based cross-linked polymer.
- 77. The method of claim 74, said cell further comprising respective layers selected from the group consisting of polyaniline doped with I2 crystals, plastic mylar, plastic mylar with a metal coating, copper oxide, and yttrium barium oxide, each of said respective layers having therebetween a layer selected from the group consisting of carbon dust, graphite, and combinations thereof.
- 78. The method of claim 77, said respective layers including at least one polyaniline layer, one copper oxide layer, and one yttrium barium oxide layer.
- 79. The method of claim 77, said respective layers being in particulate form.
- 80. The method of claim 74, said cell further comprising at least one collector layer selected from the group consisting of carbon powder and graphite.
- 81. The method of claim 80, said polymer being centrally located in said cell, said composition being on both sides of said polymer and one of said collectors being located adjacent said composition and in electrical contact with said electrodes.
- 82. The method of claim 55, said cell being re-chargable.
RELATED APPLICATION
[0001] This is a continuation of U.S. application Ser. No. 09/630,860 filed Aug. 2, 2000.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09630860 |
Aug 2000 |
US |
Child |
10159673 |
May 2002 |
US |