Claims
- 1. A device for producing or storing electrical energy by way of electrochemical reactions comprising:
a cathode structure having one of more first-type cathode elements supported on a cathode support structure, and one or more second-type cathode elements supported on said cathode support structure, each said first-type cathode element and each said second-type cathode element being connected to a cathode terminal; an anode structure having one of more anode contacting electrodes, each said anode contacting electrode being connected to an anode terminal; an ionically conductive medium disposed between each said first-type cathode structure and said anode structure, as well as each said second-type cathode structure and said anode structure, wherein a first-type energy cell is formed between each said first-type cathode element and said anode structure, and a second-type energy cell is formed between each said first-type cathode element and said anode structure, each said first-type energy cell having one said cathode terminal and one said anode terminal, and each said second-type energy cell having one said cathode terminal and one said anode terminal.
- 2. The device of claim 1, wherein each said anode contacting electrode is
spatially aligned with one of said first-type and second-type cathode elements supported on said cathode support structure.
- 3. The device of claim 1, wherein said anode structure comprises a non segmented sheet of metal-fuel.
- 4. The device of claim 1, wherein said anode structure comprises a plurality of metal-fuel sheets, each being in sectional isolation from each other metal-fuel element.
- 5. The device of claim 1, wherein said first-type cathode elements and said second-type cathode elements are disposed in substantially the same plane.
- 6. The device of claim 1, wherein each said first-type cathode element is optimized for use during discharging operations, and each said second-type second cathode element is optimized for use during recharging operations.
- 7. The device of claim 1, wherein, said first-type cathode elements and said second-type cathode elements are spatially arranged in alternating rows of first and second cathodes.
- 8. The device of claim 1, wherein said anode structure comprises a plurality of anode elements, each said anode element spatially registratable with either one said first-type cathode element or one said second-type cathode element.
- 9. The device of claim 6, wherein said first-type cathode element and each said second-type cathode element is realized as an air-type cathode element, and said anode structure is made from zinc material.
- 10. The device of claim 6, wherein said first-type cathode element a is realized as an air-type cathode element, each said second-type cathode element is realized said an air-NiOOH type cathode element, and said anode structure is made from zinc material.
- 11. A metal-air FCB system, comprising:
different types of cathode elements embodied within an integrated support structure for use in carrying out discharging and/or recharging operations.
- 12. An electrical power generating module comprising:
an integrated cathode structure including a plurality of cathode elements of relatively small size spatially arranged on a cathode support structure; and a plurality of anode-contacting elements spatially arranged on an anode-contacting element support plate, wherein each said cathode element is in spatial registration with one of said anode-contacting elements so as to form either a discharging and/or recharging cell that is independently activatable (i.e. enabled) using a switching device operated under the control of a cell switching system controller.
- 13. The electrical power generating module of claim 11, wherein control over each said cell can be achieved by monitoring the cell voltage during discharging or recharging using a scanning method, and then measuring the voltages and comparing the same with reference measures to ensure that a particularly selected power control method is being carried out.
- 14. A metal-air FCB system comprising:
a hybrid discharging/recharging head assembly having a first array of cathode elements (i.e. segments) that are a disposed on a common support substrate and optimized for discharging operations, and a second array of recharging cathode structures also disposed on the common support substrate but optimized for recharging operations.
- 15. The metal-air FCB system of claim 14, which further comprises:
a first array of anode-contacting elements are provided in spatial registration with the first array of cathode elements (i.e. segments) so as to produce a first plurality of discharging cells for loading metal-fuel material therewithin and generating electrical power therefrom during discharging operations; and a second array of anode-contacting elements are provided in spatial registration the second array of cathode elements (i.e. segments) so as to produce a second plurality of discharging cells for loading discharged metal-fuel material therewithin and supplying electrical power thereto during recharging operations.
- 16. The metal-air FCB system of claim 14, wherein said first and second plurality of discharging and recharging cells are realized within a unity support structure or subassembly, and each said discharging cell and/or said recharging cell is electronically-controllable in order to carry out any one of a number of power, voltage and/or current control methods under microprocessor control.
- 17. The metal-air FCB system of claim 14, wherein said first plurality of discharging cells and said second plurality of recharging cells are spatially arranged in the form of a mosaic-like structure.
- 18. The metal-air FCB system of claim 14, wherein each said discharging-optimized cathode element and each said recharging-optimized cathode element is switched into operation (i.e. activated) by a programmed microprocessor.
- 19. The metal-air FCB system of claim 14, wherein said metal-fuel card can be manually or electro-mechanically translated into its discharging configuration as well as its recharging position, for operation during discharging and recharging operations, respectively.
- 20. The metal-air FCB system of claim 14, wherein said metal-fuel card is electro-mechanically forced to undergo micro-displacements, relative to said recharging-optimized cathode elements, along the longitudinal direction of said recharging cells during recharging operations, in order to inhibit growth of dendrite formations along the metal fuel elements or regions being recharged.
- 21. The metal-air FCB system of claim 14, for insertion and use within one or more electrical power consuming devices selected from the group consisting of cellular phones, laptop computer systems, power tools, and automobiles.
- 22. The metal-air FCB system of claim 14, wherein said recharging-optimized cathode elements are positioned and vibrated relative to the anode elements along the metal-fuel card during recharging operations in order to cause the anode elements to have a different direction of redeposition, thereby reducing dendrite growth and anode shape change during recharging operations.
- 23. The metal-air FCB system of claim 14, which further comprises
a metal-fuel management subsystem for automatically managing the amount of metal-fuel remaining on each indexed region of the metal-fuel structure (e.g. metal-fuel card) being discharged so that, during recharging operations, only the recharging-optimized cathode structures associated with discharged metal-fuel regions are electrically-switched into operation to enable recharging of such metal-fuel regions.
- 24. The metal-air FCB system of claim 21, wherein said metal-fuel management subsystem automatically manages the amount of metal-oxide remaining on each region of the metal-fuel structure (e.g. metal-fuel card) being recharged so that, during discharging operations, only the discharging-optimized cathode structures associated with recharged metal-fuel regions are electrically-switched into operation to enable discharging of such metal-fuel regions.
- 25. The metal-air FCB system of claim 14, wherein said recharging-optimized cathode elements are realized using gas permeable structures having a microstructure provided with micro-pores of a very small size.
- 26. The metal-air FCB system of claim 14, wherein said discharging-optimized cathode elements have a microstructure that is optimized for discharging operations.
- 27. The metal-air FCB system of claim 14, wherein each said discharging-optimized cathode element can produce non-DC output using low power rating semiconductor elements, so as to increase the output voltage level using switching power circuits.
- 28. A metal-air FCB system comprising:
a first array of anode-contacting elements arrangeable in spatial registration a first array of cathode elements so as to produce a plurality of low-power discharging cells for loading metal-fuel material therewithin and generating a first quantity of electrical power therefrom during discharging operations; and a second array of anode-contacting elements arrangeable in spatial registration a second array of cathode elements so as to produce a plurality of high-power discharging cells for loading metal-fuel material therewithin and generating a second quantity of electrical power therefrom during discharging operations.
- 29. The metal-air FCB system of claim 28, wherein said low-power and high-power discharging cells are realized within a unity support structure or subassembly, and each said discharging cell is electronically-controllable in order to carry out any one of a number of output power, voltage and/or current control methods under microprocessor control during discharging operations.
- 30. A metal-air FCB system comprising:
a first array of anode-contacting elements arrangeable in spatial registration a first array of cathode elements so as to produce a plurality of low-power recharging cells for loading discharged metal-fuel material therewithin and supplying a first quantity of electrical power thereto during recharging operations, and a second array of anode-contacting elements are provided in spatial registration a second array of cathode elements so as to produce a plurality of high-power recharging cells for loading discharging metal-fuel material therewithin and supplying a second quantity of electrical power thereto during recharging operations.
- 31. A metal-air FCB system of claim 30, wherein said low-power and high-power recharging cells are realized within a unity support structure or subassembly, and each said recharging cell is electronically-controllable in order to carry out any one of a number of input power, voltage and/or current control methods under microprocessor control during recharging operations.
- 32. The metal-air FCB system of claim 29, wherein each said discharging-optimized cathode element and each said recharging-optimized cathode element is switched into operation (i.e. activated) by a programmed microprocessor.
- 33. The metal-air FCB system of claim 29, wherein said metal-fuel card can be manually or electro-mechanically translated into its discharging configuration as well as its recharging position, for operation during discharging and recharging operations, respectively.
- 34. The metal-air FCB system of claim 29, wherein said metal-fuel card is electro-mechanically forced to undergo micro-displacements, relative to said recharging-optimized cathode elements, along the longitudinal direction of said recharging cells during recharging operations, in order to inhibit growth of dendrite formations along the metal fuel elements or regions being recharged.
- 35. The metal-air FCB system of claim 29, in combination with more electrical power consuming devices selected from the group consisting of cellular phones, laptop computer systems, power tools, and automobiles.
- 36. The metal-air FCB system of claim 29, wherein said recharging-optimized cathode elements are positioned and vibrated relative to the anode elements along the metal-fuel card during recharging operations in order to cause the anode elements to have a different direction of redeposition, thereby reducing dendrite growth and anode shape change during recharging operations.
- 37. The metal-air FCB system of claim 29, which further comprises
a metal-fuel management subsystem for automatically managing the amount of metal-fuel remaining on each indexed region of the metal-fuel structure (e.g. metal-fuel card) being discharged so that, during recharging operations, only the recharging-optimized cathode structures associated with discharged metal-fuel regions are electrically-switched into operation to enable recharging of such metal-fuel regions.
- 38. The metal-air FCB system of claim 36, wherein said metal-fuel management subsystem automatically manages the amount of metal-oxide remaining on each region of the metal-fuel structure (e.g. metal-fuel card) being recharged so that, during discharging operations, only the discharging-optimized cathode structures associated with recharged metal-fuel regions are electrically-switched into operation to enable discharging of such metal-fuel regions.
- 39. The metal-air FCB system of claim 30, wherein said recharging-optimized cathode elements are realized using gas permeable structures having a microstructure provided with micro-pores of a very small size.
- 40. The metal-air FCB system of claim 30, wherein said discharging-optimized cathode elements have a microstructure that is optimized for discharging operations.
- 41. The metal-air FCB system of claim 30, wherein each said discharging-optimized cathode element can produce non-DC output using low power rating semiconductor elements, so as to increase the output voltage level using switching power circuits.
- 42. A FCB power generation module comprising:
a plurality of discharging cells; a plurality of transistor-based power switches, each being connected to one said discharging cell and being controlled by a switch controller; and an inductive element configured with at least one said discharging cell and at least one said transistor-based power switches, for producing a stepped-up output voltage having a DC voltage component and high-frequency signal components; and a low-pass filtering circuit for filtering out said high-frequency signal components from said stepped-up output voltage.
- 43. A method of supplying electrical power to an electrical load from a battery-type electrical power generation module having a plurality of discharging cells, said method comprising the steps:
(a) generating electrical current pulses from each said discharging cell; (b) supplying said electrical current pulses to the primary coil of a step-up type voltage transformer to produce a voltage thereacross; (c) generating a stepped up output voltage across the secondary coil of said voltage transformer; and (d) regulating said stepped-up output voltage by rectifying and low pass-filtering the output current generated therefrom.
- 44. The method of claim 43, wherein each said discharging cell comprises a discharging cathode structure, an anode structure formed from a metal-fuel material, and an ionically-conducting material disposed between said discharging cathode structure and said anode structure, wherein said anode structures of the discharging cells are realized by an unpatterned or patterned sheet of conductive material maintained at a common electrical potential (e.g. electrical ground); and wherein said ionically conductive medium is a shared medium among said discharging cells, not requiring ionic-isolation therebetween.
- 45. A battery-type electrical power generation module for supplying electrical power to an electrical load, comprising:
a plurality of discharging cells provided along a support substrate; a plurality of power switching elements for generating electrical current pulses from each said discharging cell; a step-up type output voltage transformer having at least one primary coil and at least one secondary coil; a plurality of electrical conductors for conducting said electrical current pulses to said at least one primary coil of said step-up type output voltage transformer to produce a stepped up output voltage across said at least one secondary coil, said stepped up output voltage having time-varying signal components; a rectifier for rectifying electrical current produced from said said at least one secondary coil; and a low pass-filtering capacitor for substantially removing said time-varying signal components from said stepped up output voltage while being applied across an electrical load connected in electrical parallel with said low pass filtering capacitor.
- 46. The battery-type electrical power generation module of claim 45, wherein each said discharging cell comprises a discharging cathode structure, an anode structure formed from a metal-fuel material, and an ionically-conducting material disposed between said discharging cathode structure and said anode structure, wherein said anode structures of the discharging cells are realized by an unpatterned or patterned sheet of conductive material maintained at a common electrical potential (e.g. electrical ground); and wherein said ionically conductive medium is a shared medium among said discharging cells, not requiring ionic-isolation therebetween.
- 47. A method of supplying electrical power to an electrical load from a battery-type electrical power generation module having a plurality of discharging cells, said method comprising the steps:
(a) generating electrical current pulses from each said discharging cell; (b) supplying said electrical current pulses to an inductive element to produce a stepped-up output voltage across said inductive element; (c) rectifying the output current generated from said inductive element to produce a rectified output current having time-varying signal components; (d) using a low pass-filtering capacitor to remove a significant portion of said time-varying signal components from said rectified output current, while maintaining a substantially constant output voltage across an electrical load connected in electrical parallel with said low pass-filtering capacitor.
- 48. The method of claim 47, wherein each said discharging cell comprises a discharging cathode structure, an anode structure formed from a metal-fuel material, and an ionically-conducting material disposed between said discharging cathode structure and said anode structure, wherein said anode structures of the discharging cells are realized by an unpatterned or patterned sheet of conductive material maintained at a common electrical potential (e.g. electrical ground); and wherein said ionically conductive medium is a shared medium among said discharging cells, not requiring ionic-isolation therebetween.
- 49. A battery-type electrical power generation module for supplying electrical power to an electrical load, comprising:
a plurality of discharging cells provided along a support substrate; a plurality of power switching elements for generating electrical current pulses from each said discharging cell; a plurality of inductive elements connected in electrical series with said plurality of discharging cells, each said inductive element producing a stepped-up voltage across each said inductive element in response to said electrical current pulses being supplied therethrough by said discharging cell, each said stepped up voltage having time-varying signal components; at least one rectifier for rectifying electrical current produced from said inductive elements; and a low pass-filtering capacitor for receiving said rectified electrical current and substantially removing said time-varying signal components from said stepped up voltages while an electrical load is connected in electrical parallel with said low pass filtering capacitor.
- 50. The battery-type electrical power generation module of claim 49, wherein each said discharging cell comprises a discharging cathode structure, an anode structure formed from a metal-fuel material, and an ionically-conducting material disposed between said discharging cathode structure and said anode structure, wherein said anode structures of the discharging cells are realized by an unpatterned or patterned sheet of conductive material maintained at a common electrical potential (e.g. electrical ground); and wherein said ionically conductive medium is a shared medium among said discharging cells, not requiring ionic-isolation therebetween.
- 51. A method of supplying electrical power to an electrical load from a battery-type electrical power generation module having a plurality of discharging cells, said method comprising the steps:
(a) generating electrical current pulses from each said discharging cell; (b) supplying said electrical current pulses to an inductive element configured in electrical series with said discharging cell so as to produce a stepped-up voltage across each said inductive element; (c) rectifying the output current generated from said inductive element to produce a rectified output current having time-varying signal components; and (d) low pass-filtering said rectified output current to remove a substantial portion of said time-varying signal components while maintaining a substantially constant output voltage across an electrical load.
- 52. The method of claim 51, wherein each said discharging cell comprises a discharging cathode structure, an anode structure formed from a metal-fuel material, and an ionically-conducting material disposed between said discharging cathode structure and said anode structure, wherein said anode structures of the discharging cells are realized by an unpatterned or patterned sheet of conductive material maintained at a common electrical potential (e.g. electrical ground); and wherein said ionically conductive medium is a shared medium among said discharging cells, not requiring ionic-isolation therebetween.
- 53. A battery-type electrical power generation module for supplying electrical power to an electrical load, comprising:
a plurality of discharging cells provided along a support substrate; a plurality of power switching elements for generating electrical current pulses from each said discharging cell; an inductive element for producing an stepped up output voltage in response to said electrical current pulses supplied therethrough; a plurality of electrical conductors for conducting said electrical current pulses to said inductive element to produce said stepped up voltage across said inductive element, said stepped up voltage having time-varying signal components; at least one rectifier for rectifying electrical current produced from each said inductive element; and a low pass-filtering capacitor for substantially removing said time-varying signal components from said stepped up voltage while being applied across an electrical load connected in electrical parallel with said low pass filtering capacitor.
- 54. The battery-type electrical power generation module of claim 53, wherein each said discharging cell comprises a discharging cathode structure, an anode structure formed from a metal-fuel material, and an ionically-conducting material disposed between said discharging cathode structure and said anode structure, wherein said anode structures of the discharging cells are realized by an unpatterned or patterned sheet of conductive material maintained at a common electrical potential (e.g. electrical ground); and wherein said ionically conductive medium is a shared medium among said discharging cells, not requiring ionic-isolation therebetween.
RELATED CASES
[0001] This Application is a Continuation of U.S. patent application Ser. No. 09/632,329 entitled “Fuel Cell Battery Systems Having Arrays of Different Type Meatl-Air Fuel Cells” by Tsepin Tsai and Sadeg M. Faris filed Aug. 3, 2000, which is a Continuation of patent application Ser. No. 09/414,874 entitled “Electro-Chemical Power Generation Systems Employing Arrays Of Electronically-Controllable Discharging And/Or Recharging Cells Within A Unity Support Structure” by Tsepin Tsai and Sadeg M. Faris filed Oct. 8, 1999, which is a Continuation-in-Part of: application Ser. No. 09/167,148 entitled “Metal-Air FCB-Based Power Producing Modules And Metal-Fuel Card And Cathode Cartridges For Use Therewith” by Sadeg M. Faris and Tsepin Tsai filed Oct. 6, 1998 now U.S. Pat. No. 6,348,277; application Ser. No. 09/143,895, entitled “Metal-Air Fuel Cell Battery System Employing Metal Fuel Cards” now U.S. Pat. No. 6,309,777, and Ser. No. 09/143,889 entitled “Metal-Fuel Card Construction, For Use In Metal-Air Fuel Cell Battery Systems” now U.S. Pat. No. 6,383,673, each filed Aug. 31, 1998 and a Continuation of application Ser. No. 08/944,507 entitled “System And Method For Producing Electrical Power Using Metal-Air Fuel Cell Battery Technology” by Sadeg Faris, et al. filed Oct. 6, 1997 now U.S. Pat. No. 6,296,960; application Ser. No. 09/112,596 entitled “Metal-Air Fuel Cell Battery System Having Mechanism For Extending The Path-Length Of Metal-Fuel Tape During Discharging And Recharging Modes Of Operation” by Sadeg M. Faris and Tsepin Tsai filed Jul. 9, 1998 now U.S. Pat. No. 6,228,519; application Ser. No. 09/232,328 entitled “Ionically Conductive Belt Structure For Use In A Metal-Air Fuel-Cell Battery System And Method Of Fabricating The Same” by Sadeg M. Faris et al. filed Aug. 10, 1998, now U.S. Pat. No. 6,190,792, and application Ser. No. 09/232,327 entitled “Cathode Cylinder For Use In Metal-Air Fuel Cell Battery Systems And Method Of Fabricating The Same” by Sadeg M. Faris filed Aug. 10, 1998, now U.S. Pat. No. 6,218,034, and application Ser. No. 09/232,326 entitled “Cathode Belt Structure For Use In A Metal-Air Fuel-Cell Battery System And Method Of Fabricating The Same” by Sadeg M. Faris et al., filed Aug. 10, 1999, now U.S. Pat. No. 6,365,292 each being a Continuation of application Ser. No. 09/110,762 entitled “Metal-Air Fuel Cell Battery System Employing Metal-Fuel Tape And Low-Friction Cathode Structures” by Sadeg M. Faris et al., filed Jul. 3, 1998 now U.S. Pat. No. 6,299,997; application Ser. No. 09/126,213 entitled “Metal-Air Fuel-Cell Battery System Having Means For Discharging And Recharging Metal-Fuel Cards Supplied From A Cassette-Type Storage Device” by Sadeg M. Faris, filed Jul. 30, 1998, now U.S. Pat. No. 6,312,844, which is a Continuation of copending application Ser. No. 09/074,337 entitled “Metal-Air Fuel-Cell Battery Systems” by Sadeg M. Faris and Le Li, filed May 7, 1998; application Ser. No. 09/130,341 entitled “Metal-Air Fuel Cell Battery System Having Means For Means For Managing Controlling Discharging And Recharging Parameters In Real-Time For Improved Operating Efficiency” by Sadeg M. Faris and Tsepin Tsai filed Aug. 6, 1998 now U.S. Pat. No. 6,287,715; application Ser. No. 09/130,325 entitled “Metal-Air Fuel Cell Battery System With Means For Recording And Reading Operating Parameters During Discharging And Recharging Modes Of Operation” by Sadeg M. Faris and Tsepin Tsai, filed Aug. 6, 1998; application Ser. No. 09/116,643 entitled “Metal-Air Fuel Cell Battery System Having Means For Simultaneously Discharging And Recharging A Plurality Of Metal-Fuel Cards” by Sadeg M. Faris et al., filed on Jul. 16, 1998 now U.S. Pat. No. 6,306,534; copending application Ser. No. 09/120,583 entitled “Metal-Air Fuel Cell Battery System Having Bi-Directional Transport for Metal-Fuel Tape And Management Of Metal-Fuel Tape Therealong” by Sadeg M. Faris filed Jul. 22, 1998 now U.S. Pat. No. 6,410,174; application Ser. No. 09/164,063 entitled “Electrical Power Generation System Having Means For Managing The Availability Of Metal-Fuel Among A Network Of Metal-Air Fuel Cell Battery Systems” by Sadeg M. Faris, filed Sep. 30, 1998 now U.S. Pat. No. 6,239,508; copending application Ser. No. 09/133,166 entitled “Metal-Air Fuel Cell battery System Employing Hydrostatic Forces To Enable Simultaneous Transport Of Metal-Fuel Tape, Moveable Cathode Structure, And ionically-Conductive Medium Therethrough During System Operation” by Sadeg M. Faris et al., filed Aug. 12, 1998 now U.S. Pat. No. 6,403,244, which is a Continuation of application Ser. No. 09/110,761 entitled “Metal-Air Fuel Cell Battery System Employing A Plurality Of Moving Cathodes Structures For Improved Volumetric Power Density” by Sadeg M. Faris et al., filed Jul. 3, 1998 now U.S. Pat. No. 6,335,111; application Ser. No. 09/167,148 entitled “Metal-Air FCB-Based Power Producing Modules And Metal-Fuel Cards And Cathode Cartridges For Use Therewith” by Sadeg M. Faris et al., filed Oct. 6, 1998 now U.S. Pat. No. 6,348,277; each said application being assigned to Reveo, Inc. and incorporated herein by reference in its entirely.
Continuations (4)
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Continuation in Parts (2)
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