Claims
- 1. A primary alkaline cell comprising a negative and a positive terminal, and an outer housing having a closed end and opposing open end, said cell further comprising an anode comprising zinc and a cathode comprising nickel oxyhydroxide within said housing, a separator between said anode and cathode, an alkaline electrolyte solution contacting 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 at least 1 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 200 mesh sieve having square openings of 0.075 mm.
- 2. The alkaline cell of claim 1 wherein said cell has a performance index of between about 0.65 and 0.78 wherein the performance index is calculated using the formula:
- 3. The alkaline cell of claim 1 wherein said cell is an AA size cell having an actual energy output between about 1.31 and 1.78 Watt-hours when drained at a constant power drain of 1 Watt to a cut off voltage of 0.9 Volts, and said cell having a performance index of between about 0.65 and 0.78 wherein the performance index is calculated using the formula:
- 4. The alkaline cell of claim 1 wherein said nickel oxyhydroxide is in the form of a powder and at least a portion of the surface of said Nickel oxyhydroxide particles is coated with cobalt oxyhydroxide.
- 5. The alkaline cell of claim 1 wherein said said cathode further comprises conductive carbon particles, said carbon particles comprising between about 10 and 100% of an oxidation resistant graphite.
- 6. The alkaline cell of claim 1 wherein the inside surface of said outer housing faces said cathode and said inside surface has a coating thereon comprising an oxidation-resistant graphite.
- 7. A primary alkaline cell comprising a negative and a positive terminal, and an outer housing having a closed end and opposing open end, said cell further comprising an anode comprising zinc and a cathode comprising nickel oxyhydroxide within said housing, a separator between said anode and cathode, an alkaline electrolyte solution contacting 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 at least 1 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 325 mesh sieve having square openings of 0.045 mm; wherein the cathode comprises at least one cathode pellet having an opening defined therethrough devoid of cathode material, with at least a portion of the outer surface of said cathode contacting the inside surface of said housing.
- 8. The alkaline cell of claim 7 wherein said cell has a performance index of between about 0.65 and 0.78 wherein the performance index is calculated using the formula:
- 9. The alkaline cell of claim 7 wherein said cell is an AA size cell having an actual energy output between about 1.31 and 1.78 Watt-hours when drained at a constant power drain of 1 Watt to a cut off voltage of 0.9 Volts, and said cell having a performance index of between about 0.65 and 0.78 wherein the performance index is calculated using the formula:
- 10. The alkaline cell of claim 7 wherein the cathode comprises a plurality of cathode pellets; wherein each of said pellets has a central opening devoid of cathode material; wherein said cathode pellets 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.
- 11. The alkaline cell of claim 7 wherein said outer housing is of cylindrical shape.
- 12. The alkaline cell of claim 7 wherein said nickel oxyhydroxide is in the form of a powder having a mean average particle size between about 2 and 50 microns.
- 13. The alkaline cell of claim 7 wherein said zinc is in the form of a powder having a mean average particle size between about 1 and 250 micron.
- 14. The alkaline cell of claim 7 wherein at least 5 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 200 mesh screen having square openings of 0.075 mm.
- 15. The alkaline cell of claim 7 wherein at least 10 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 200 mesh screen having square openings of 0.075 mm, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 75 and 340 micron.
- 16. The alkaline cell of claim 7 wherein at least 10 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 200 mesh screen having square openings of 0.075 mm, wherein the average particle size of said zinc fines is between about 1 and 75 micron; and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 75 and 340 micron.
- 17. The alkaline cell of claim 7 wherein at least 50 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 200 mesh screen having square openings of 0.075 mm, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 75 and 200 micron.
- 18. The alkaline cell of claim 7 wherein at least 50 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 200 mesh screen having square openings of 0.075 mm, wherein said zinc fines have an average particle size of between about 1 and 75 micron, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 75 and 200 micron.
- 19. The alkaline cell of claim 7 wherein at least 5 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm.
- 20. The alkaline cell of claim 7 wherein at least 10 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 35 and 314 micron.
- 21. The alkaline cell of claim 7 wherein at least 10 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, wherein said zinc fines have a average particle size between about 1 and 35 micron, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the mean average particle size of said total zinc is between about 35 and 314 micron.
- 22. The alkaline cell of claim 7 wherein at least 50 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 35 and 125 micron.
- 23. The alkaline cell of claim 7 wherein at least 50 percent by weight of the total zinc in the anode comprises zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, wherein said zinc fines has a mean average particle size between about 1 and 35 micron, and said total zinc in the anode further comprises zinc particles of larger size than said zinc fines so that the average particle size of said total zinc is between about 35 and 125 micron.
- 24. The alkaline cell of claim 7 wherein the total zinc in the anode comprises at least 10 percent by weight zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, and said total zinc in the anode further comprises zinc particles of larger size being unable to pass through a 325 mesh screen, said larger size zinc particles comprising at least about 10 percent by weight of the total zinc.
- 25. The alkaline cell of claim 7 wherein the total zinc in the anode comprises at least 10 percent by weight zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, wherein said zinc fines has an average particle size between about 1 and 35 micron, and said total zinc in the anode further comprises zinc particles of larger size being unable to pass through a 325 mesh screen, said larger size zinc particles comprising at least about 10 percent by weight of the total zinc.
- 26. The alkaline cell of claim 7 wherein the total zinc in the anode comprises between about 10 and 90 percent by weight zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, and the remainder of said total zinc in the anode comprises zinc particles of larger size being unable to pass through a 325 mesh screen.
- 27. The alkaline cell of claim 7 wherein the total zinc in the anode comprises between about 10 and 90 percent by weight zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, wherein said zinc fines has an average particle size between about 1 and 35 micron, and the remainder of said total zinc in the anode comprises zinc particles of larger size being unable to pass through a 325 mesh screen.
- 28. The alkaline cell of claim 7 wherein the total zinc in the anode comprises between about 35 and 70 percent by weight zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, and the remainder of said total zinc in the anode comprises zinc particles of larger size being unable to pass through a 325 mesh screen.
- 29. The alkaline cell of claim 7 wherein the total zinc in the anode comprises between about 35 and 70 percent by weight zinc fines of dimensions suitable to pass through a standard 325 mesh screen having square openings of 0.045 mm, wherein said zinc fines has an average particle size between about 1 and 35 micron, and the remainder of said total zinc in the anode comprises zinc particles of larger size being unable to pass through a 325 mesh screen.
- 30. The alkaline cell of claim 7 wherein said cathode further comprises conductive carbon particles comprising an oxidation-resistant graphite.
- 31. The alkaline cell of claim 7 wherein said inside surface of the outer housing has a coating thereon comprising an oxidation-resistant graphite.
- 32. The alkaline cell of claim 30 wherein said oxidation resistant graphite has a total ash content of less than 0.1 percent by weight.
- 33. The alkaline cell of claim 32 wherein said oxidation resistant graphite is in a particulate form having a B.E.T. specific surface area of less than 15 m2/g.
- 34. The alkaline cell of claim 33 wherein said oxidation-resistant graphite has an average particle size ranging between about 3 and 30 microns.
- 35. The alkaline cell of claim 33 wherein said oxidation-resistant graphite has an average particle size ranging between about 5 and 20 microns.
- 36. The alkaline cell of claim 30 wherein said oxidation-resistant graphite has a total ash content of less than 0.1 percent by weight, a B.E.T. specific surface area of less than 10 m2/g, and an average particle size ranging between about 5 and 20 microns.
- 37. The alkaline cell of claim 34, wherein the oxidation-resistant graphite has a high degree of crystallinity, characterized by having a value for crystallite size, in the “c” crystal axis direction, Lc, of greater than 1500 Angstroms and a d002 lattice constant of less than 3.356 Angstroms.
- 38. The alkaline cell of claim 34 wherein the oxidation-resistant graphite has a value for the crystal lattice defect ratio of less than 0.15, wherein said lattice defect ratio is defined as the ratio of the intensity of the “D” absorption band centered between 1330 and 1360 cm−1 to the intensity of the “G” absorption band centered between 1570 and 1580 cm−1 in the first order laser Raman absorption spectrum.
- 39. The alkaline cell of claims 7 wherein said nickel oxyhydroxide further comprises a bulk dopant selected from the group consisting of aluminum, manganese, cobalt, zinc, gallium, indium, and any mixture thereof.
- 40. The alkaline cell of claim 7 wherein said nickel oxyhydroxide is selected from the group consisting of beta-nickel oxyhydroxide, gamma-nickel oxyhydroxide, and mixtures thereof.
- 41. The alkaline cell of claim 7 wherein said nickel oxyhydroxide is in the form of a powder comprising particles wherein at least a portion of the surfaces of said particles is coated with cobalt oxyhydroxide.
- 42. The alkaline cell of claim 7 wherein said cathode comprises between about 80 and 95 percent by weight nickel oxyhydroxide.
- 43. The alkaline cell of claim 7 wherein said electrolyte solution comprises an aqueous solution of an alkali metal hydroxide salt selected from the group consisting of potassium hydroxide, sodium hydroxide, lithium hydroxide, and mixtures thereof.
- 44. An alkaline battery comprising:
a cathode comprising an active cathode material including a nickel oxyhydroxide; an anode comprising zinc or zinc alloy particles, at least 5 wt % of the particles being of 200 mesh size or smaller; a separator between the anode and the cathode; and an alkaline electrolyte solution contacting said anode and cathode.
- 45. The battery of claim 44, wherein the anode includes at least 10 wt % of the particles of 200 mesh size or smaller.
- 46. The battery of claim 44, wherein the anode includes at least 15 wt % of particles of 200 mesh size or smaller.
- 47. 45. The battery of claim 44, wherein the anode includes between 35 and 75 wt. % of the particles of 200 mesh size or smaller.
- 48. The battery of claim 44, wherein the anode comprises zinc alloy particles including at least one metal selected from indium, bismuth, tin, or aluminum.
- 49. The battery of claim 44, wherein the nickel oxyhydroxide is a beta-nickel oxyhydroxide, a cobalt oxyhydroxide-coated beta nickel oxyhydroxide, a gamma-nickel oxyhydroxide, or a cobalt oxyhydroxide-coated gamma-nickel oxyhydroxide.
- 50. The battery of claim 44, wherein the nickel oxyhydroxide includes particles having outer surfaces that approximate spheres, spheroids or ellipsoids.
- 51. The battery of claim 50, wherein the nickel oxyhydroxide particles have an average particle size ranging from 5 to 30 microns.
- 52. The battery of claim 50, wherein the nickel oxyhydroxide particles have an average particle size ranging from 10 to 25 microns.
- 53. The battery of claim 50, wherein the nickel oxyhydroxide particles have an average particle size ranging from 15 to 20 microns.
- 54. The battery of claim 44, wherein the cathode includes a mixture of nickel oxyhydroxide and gamma-manganese dioxide.
- 55. The battery of claim 44, wherein the cathode includes conductive carbon particles.
- 56. The battery of claim 55, wherein the cathode includes between 2 wt % and 12 wt % conductive carbon particles.
- 57. The battery of claim 55, wherein the cathode includes between 4 wt % and 10 wt % conductive carbon particles.
- 58. The battery of claim 55, wherein the conductive carbon particles are selected from the group of graphites consisting of expanded graphite, natural graphite, synthetic graphite, oxidation resistant graphite, and mixtures thereof.
- 59. The battery of claim 55, wherein said carbon particles comprise an oxidation-resistant graphite.
- 60. The battery of claim 59 wherein the oxidation-resistant graphite has an average particle size in a range between about 5 and 20 microns.
- 61. The battery of claim 55, wherein the conductive carbon particles include natural graphite particles having an average particle size ranging between 3 and 30 microns.
- 62. The battery of claim 55, wherein the conductive carbon particles include synthetic graphite having an average particle size ranging between 3 and 30 microns.
- 63. The battery of claim 60, wherein said oxidation-resistant graphite has a high degree of crystallinity, characterized by having a value for crystallite size, in the “c” crystal axis direction, Lc, of greater than 1500 Angstrom and a d002 lattice constant of less than 3.356 Angstrom.
- 64. The alkaline cell of claim 63 wherein said oxidation-resistant graphite has a total ash content of less than 0.1 percent by weight.
- 65. The alkaline cell of claim 63 wherein said oxidation resistant graphite is in a particulate form having a B.E.T. specific surface area of less than 10 m2/g.
- 66. The alkaline cell of claim 63 wherein the oxidation-resistant graphite has a value for the crystal lattice defect ratio of less than 0.15, wherein said lattice defect ratio is defined as the ratio of the intensity of the “D” absorption band centered between 1330 and 1360 cm−1 to the intensity of the “G” absorption band centered between 1570 and 1580 cm−1 in the first order laser Raman absorption spectrum.
- 67. The battery of claim 44, wherein the anode includes at least 15 wt % of the particles are of 200 mesh size or smaller.
- 68. The battery of claim 44, wherein the anode includes at least 305wt % of the particles are of 200 mesh size or smaller.
- 69. The battery of claim 44, wherein the anode includes between 35 and 75 wt % of the particles are of 200 mesh size or smaller.
- 70. The battery of claim 44, wherein at least 10 wt % of the particles are of 325 mesh size or smaller.
- 71. The battery of claim 44, wherein at least 45 wt % of the particles are of 325 mesh size or smaller.
- 72. The battery of claim 44, wherein at least 80 wt % of the particles are of 325 mesh size or smaller.
- 73. The battery of claim 44, wherein at least 25 wt % of the particles are between 20 and 200 mesh size.
- 74. The battery of claim 44, wherein at least 50 wt % of the particles are between 20 and 200 mesh size.
- 75. The battery of claim 44, wherein the zinc or zinc alloy particles are generally acicular, having a length along a major axis at least two times a length along a minor axis.
- 76. The battery of claim 44, wherein the zinc or zinc alloy particles are generally flakes, each flake generally having a thickness of no more than 20 percent of the maximum linear dimension of the particle.
- 77. An alkaline battery comprising:
a cathode comprising graphite and an active cathode material including a nickel oxyhydroxide; an anode comprising a multi-modal distribution of zinc or zinc alloy particles; a separator between the anode and the cathode; and an alkaline electrolyte contacting the anode and cathode.
- 78. The battery of claim 77, wherein the anode includes at least 10 wt % of the zinc or zinc alloy particles of 200 mesh size or smaller.
- 79. The battery of claim 77, wherein the anode includes at least 80 wt % of the zinc or zinc alloy particles of 200 mesh size or smaller.
- 80. The battery of claim 77, wherein the anode includes between 35 and 75 wt % of the zinc or zinc alloy particles of 200 mesh size or smaller.
- 81. The battery of claim 77, wherein the cathode includes between 2 wt. % and 12 wt. % of oxidation-resistant graphite.
- 82. The battery of claim 77, wherein the cathode includes between 4 wt. % and 10 wt. % of oxidation-resistant graphite.
- 83. The battery of claim 77, wherein the cathode includes between 6 wt. % and 8 wt. % of oxidation-resistant graphite.
- 84. The battery of claim 77, wherein said graphite includes from 10 to 100% by weight oxidation-resistant graphite.
- 85. The battery of claim 77, wherein at least 10 wt % of the particles are of 325 mesh size or smaller.
- 86. The battery of claim 77, wherein at least 45 wt % of the particles are of 325 mesh size or smaller.
- 87. The battery of claim 77, wherein at least 80 wt % of the particles are of 325 mesh size or smaller.
- 88. The battery of claim 77, wherein at least 25 wt % of the particles are between 20 and 200 mesh size.
- 89. The battery of claim 77, wherein at least 50 wt % of the particles are between 20 and 200 mesh size.
- 90. The battery of claim 77, wherein the particles are generally acicular, having a length along a major axis at least two times a length along a minor axis.
- 91. The battery of claim 77, wherein the particles are generally flakes, each flake generally having a thickness of n more than 20 percent of the maximum linear dimension of the particle.
- 92. A method of improving discharge performance after high temperature storage of an alkaline battery comprising:
providing a positive electrode comprising an active cathode material including nickel oxyhydroxide and a conductive additive including graphite; providing a negative electrode comprising zinc or zinc alloy particles, at least 5 wt % of the zinc or zinc alloy particles being of 200 mesh size or smaller; and forming a battery including the positive electrode and the negative electrode.
- 93. The method of claim 92, wherein said negative electrode includes at least 15 wt. % of zinc or zinc alloy particles of 200 mesh size or smaller.
- 94. The method of claim 92, wherein said negative electrode includes between 35 and 75 wt. % of zinc or zinc alloy particles of 200 mesh size or smaller.
- 95. The method of claim 92, wherein said positive electrode includes between 2 wt. % and 12 wt. % of graphite.
- 96. The method of claim 92, wherein said positive electrode includes between 4 wt. % and 10 wt. % of graphite.
- 97. The method of claim 92, wherein said graphite includes from 10 to 100% by weight of an oxidation-resistant graphite.
- 98. The method of claim 92, wherein said negative electrode includes at least 10 wt. % of zinc or zinc alloy particles are of 325 mesh size or smaller.
- 99. The method of claim 92, wherein said negative electrode includes at least 80 wt. % of the zinc or zinc alloy particles of 325 mesh size or smaller.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation in part of application Ser. No. 10/228,957 filed Aug. 28, 2002.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10228957 |
Aug 2002 |
US |
Child |
10831899 |
Apr 2004 |
US |