Claims
- 1. A metal-air fuel cell battery (FCB) system, wherein one or more recharge parameters are automatically controlled in order to optimally recharge oxidized metal-fuel material (i.e. anodes) for reuse in metal-air FCB systems.
- 2. A metal-air fuel cell battery (FCB) system, wherein one or more discharge parameters are automatically controlled in order to optimally discharge metal-fuel material (i.e. anodes) for use in generating electrical power within metal-air FCB systems.
- 3. A metal-air fuel cell battery system comprising:
a subsystem for controlling the recharging of metal-oxide along oxidized metal-fuel tape so as to completely reduce metal-oxide on said metal-fuel tape without destroying the porous structure of the metal-fuel tape.
- 4. The metal-air fuel cell battery system of claim 3, wherein said metal-fuel anodes to be recharged (i.e. electro-chemically reduced) are either stationary and/or moving cathode structures.
- 5. A metal-air fuel cell battery system, wherein metal-fuel structures to be recharged are realized in the form of oxidized metal-fuel tape which, during discharging operations, is transported across a cathode structure associated with the discharging head of a metal-air FCB system.
- 6. A metal-air fuel cell battery system, wherein the path-length of oxidized metal-fuel tape is substantially extended during recharging operations in order that a supply of oxidized metal-fuel tape contained within a cassette device or on a supply reel can be rapidly recharged.
- 7. A metal-air fuel cell battery system, wherein oxidized metal-fuel tape to be recharged is contained within a cassette-type device insertable in the storage bay of a compact FCB discharging unit.
- 8. A metal-air fuel cell battery system, wherein oxidized metal-fuel tape to be recharged comprises multiple metal-fuel tracks for use in generating different output voltages from a metal-air FCB system.
- 9. A metal-air fuel cell battery system, wherein the path-length of oxidized metal-fuel tape is significantly extended within the recharging bay of the system using a tape path-length extension mechanism.
- 10. A metal-air fuel cell battery system, wherein the recharging head assembly comprises a plurality of cathode and anode structures which are selectively arranged about the extended path-length of oxidized metal-fuel tape during recharging operations.
- 11. A metal-air fuel cell battery system, wherein a system, wherein a recharging power regulating subsystem is provided for regulating operating parameters during recharging of metal-oxide during recharging operations.
- 12. A metal-air fuel cell battery system, wherein oxygen, generated from within cathode elements with the recharging head of the system during recharging, is evacuated under the control of the recharging power regulation subsystem thereof.
- 13. A metal-air fuel cell battery system, wherein the relative humidity within the cathode elements of the recharging head of the system is controlled by the recharging power regulation subsystem thereof.
- 14. A metal-air fuel cell battery system, wherein the speed of the oxidized fuel tape transported over the recharging heads is regulated under the control of the recharging power regulation subsystem thereof.
- 15. A metal-air fuel cell battery system, wherein the voltage applied across and current driven through oxidized metal-fuel tape during recharging operations is regulated under the control of the recharging power control subsystem thereof.
- 16. A metal-air fuel cell battery system, wherein an metal-oxide sensing head is provided up-stream for sensing which fuel tracks along a length of multi-tracked metal-fuel tape have been discharged (i.e. oxidized), and a recharging head is disposed downstream having multiple pairs of electrically-isolated cathode and anode structures for selectively recharging only those metal-fuel tracks that have been sufficiently oxidized (i.e. consumed).
- 17. A metal-air fuel cell battery system, wherein supply of metal-fuel cards or plates is contained within a cassette storage cartridge.
- 18. A metal-air fuel cell battery system, wherein each metal-fuel card or plate is automatically loaded from the cassette cartridge into the recharging bay of the system.
- 19. A metal-air fuel cell battery system, comprising a subsystem for recharging metal-fuel cards or plates that have been oxidized during the discharging mode of operation.
- 20. A metal-air fuel cell battery system, wherein each oxidized metal-fuel card or plate is manually loaded into the recharging bay of the system, and after recharging (i.e. reducing) is completed, the card is ejected from the recharging bay in a semi-automatic manner.
- 21. A metal-air fuel cell battery system, wherein each oxidized metal-fuel card or plate is automatically loaded into the recharging bay of the system, and after recharging is completed, the card is automatically ejected from the recharging bay, and another oxidized metal-fuel card is automatically loaded thereinto for recharging.
- 22. A metal-air fuel cell battery system, wherein each zone or subsection of metal fuel along the length of metal-fuel tape track is labelled with a digital code, through optical or magnetic means, for enabling the recording of discharging-related data during discharging mode of operation, for future access and use in carrying out various types of managment operations, including rapid and efficient recharging operations.
- 23. A metal-air fuel cell battery system, wherein metal-fuel tape can be transported through its discharging head assembly and recharging head assemmbly in a bi-directional manner while the availablity of metal-fuel therealong is automatically managed in order to improve the performance of the system.
- 24. A metal-air fuel cell battery system, wherein the recharging bay contains an assembly of recharging heads, each of which comprises an electrically conductive cathode structure, an ionically conductive medium, and an anode contacting structure.
- 25. A metal-air fuel cell battery system, wherein a plurality of oxidized metal-fuel cards or plates are automatically transported into the system for high-speed recharging.
- 26. A metal-air fuel cell battery system, wherein during discharging cycles, multiple discharging heads are employed to discharge metal-fuel tape at controlled anode-cathode current levels in order to control the formation of optimally-reducible metal-oxide patterns therealong during discharge cycles.
- 27. A metal-air fuel cell battery system, wherein during discharging cycles, the use of multiple discharging heads enables each discharging head to be “lightly loaded”, thus permitting improved control over the formation of metal oxide during discharging cycles so that complete conversion thereof into its primary metal can be achieved in an optimal manner.
- 28. A metal-air fuel cell battery system, wherein information regarding the instanteous loading conditions along each zone (i.e. frame) of the metal-fuel tape are recorded in memory by the system controller.
- 29. A metal-air fuel cell battery system, comprising:
means for acquiring idenitification data for each metal-fuel zone along a spool of metal-fuel tape to determine the indentity thereof; means for sensing loading condition data associated with each said identified metal-fuel zone; and means for recording said loading condition data for future use during subsequent tape recharging operations.
- 30. A metal-air fuel cell battery system, wherein during tape recharging operations, such recorded loading condition information is read from memory and used to set current and voltage levels maintained at the recharging heads of the system.
- 31. A metal-air fuel cell battery system, wherein metal-fuel tape discharging conditions are recorded at the time of discharge and used to optimally recharge discharged metal-fuel tape during tape recharging operations.
- 32. A metal-air fuel cell battery system, wherein during tape discharging operations, optical sensing of bar code data along each zone of metal-fuel tape is carried out using a minaturized bar code symbol reader embedded with the cathode structure of each discharging head of the system.
- 33. A metal-air fuel cell battery system, wherein during tape recharging operations, optical sensing of bar code data along each zone of discharged metal-fuel tape is carried out using a minaturized bar code symbol reader embedded with the cathode structure of each recharging head of the system.
- 34. A metal-air fuel cell battery system, wherein the subsystems thereof are remotely controllable through an input/output subsystem operably connected to a system controller.
- 35. A metal-air fuel cell battery system, wherein a plurality of metal-fuel cards can be loaded within a metal-fuel card discharging bay and simultaneously discharged within its metal-fuel card discharging subsystem in order to generate and deliver electrical power across an electrical load connected thereto.
- 36. A metal-air fuel cell battery system, wherein a plurality of metal-fuel cards can be loaded within a metal-fuel card recharging bay and simultaneously recharged within its Metal-Fuel Card Recharging Subsystem in order to convert metal-oxide along the metal-fuel card into its primary metal fuel for reuse in discharging operations.
- 37. A metal-air fuel cell battery system, comprising metal-fuel card discharging and recharging subsystems which can be operated simultaneously as well as under the management of a system controller associated with a resultant system, such as an electrical power management system.
- 38. A metal-air fuel cell battery system comprising:
a Metal-Fuel Tape Discharging Subsystem; a Metal-Fuel Tape Recharging Subsystem integrated with said Metal-Fuel Tape Discharging Subsystem; and a tape path-length extension mechanism employed in said Metal-Fuel Tape Recharging Subsystem for extending oxidized metal-fuel tape over a path-length which is substantially greater than the path-length maintained by the tape path-length extension mechanism in said Metal-Fuel Tape Discharging Subsystem (i.e. ARecharge>>Adischarge).
- 39. A metal-air fuel cell battery system comprising:
means for discharging and recharging metal-fuel tape in a single hybrid-type subsystem, wherein a tape path-length extension mechanism is employed therein for extending metal-fuel tape to be recharged over a path which is substantially greater than the path maintained for metal-fuel tape to be discharged.
- 40. A metal-air fuel cell battery system comprising:
means for discharging and recharging metal-fuel tape in a single hybrid-type subsystem, wherein the discharging heads and recharging heads of said subsystem are arranged about the extended path-length of metal-fuel tape to enable simultaneous discharging and recharging operations.
- 41. A metal-air fuel cell battery system comprising:
a number of subsystems for enabling data capture, processing and storage of discharge and recharge parameters as well as metal-fuel and metal-oxide indicative data for use during discharging and recharging modes of operation.
- 42. A metal-air fuel cell battery system comprising:
means for storing a supply of metal-fuel cards (or sheets) within a cassette cartridge-like device having a partitioned interior volume for storing (re)charged and discharged metal-fuel cards in seperate storage compartments formed within the same cassette cartridge-like device.
RELATED CASES
[0001] This is a Continuation-in-Part of: copending application Ser. No. 08/944,507 entitled “High-Power Density Metal-Air Fuel Cell Battery System” by Sadeg Faris, et al. filed Oct. 6, 1997, said application being assigned to Reveo, Inc. and incorporated herein by reference in its entirely.