Claims
- 1. A charging system for charging a plurality of batteries using power from a utility at a power level not exceeding a maximum power level, comprising:
a plurality of battery ports, each battery port being configured to electrically connect to at least one of the plurality of batteries; a utility port configured to electrically connect to the utility, and to provide power from the utility to the plurality of battery ports; and a system controller configured to control the power distribution between the utility port and the plurality of battery ports, wherein the controller controls the power distribution such that the plurality of batteries are charged using power from the utility at a power level not exceeding the maximum power level.
- 2. The charging system of claim 1, wherein the utility port is a poly-phase utility port.
- 3. The charging system of claim 1, wherein the utility port is configured to receive power from utilities at a plurality of power levels.
- 4. The charging system of claim 1, wherein the utility port is configured to provide power to the plurality of battery ports via a distribution bus, and wherein the distribution bus is configured to carry power being transferred between the plurality of battery ports.
- 5. The charging system of claim 1, and further comprising a first charging module, wherein the plurality of battery ports include a first battery port and a second battery port that receive power from the utility port via the first charging module, the first charging module comprising:
a first power converter connecting to the first battery port; a second power converter connecting to the second battery port; a crossover switch switchably connecting the first power converter to the second battery port; and a module controller configured to control the operation of the crossover switch and establish the power distribution between the first and second battery ports.
- 6. The charging system of claim 5, wherein:
the first power converter of the first charging module connects to the first battery port through a first connecting switch of the first charging module; the second power converter of the first charging module connects to the second battery port through a second connecting switch of the first charging module; and the module controller of the first charging module is configured to control the operation of the first and second connecting switches and establish the power distribution between the first and second battery ports.
- 7. The charging system of claim 5, wherein
the first charging module is configured to receive DC power from the utility port; the first power converter of the first charging module is a DC-DC power converter; and the second power converter of the first charging module is a DC-DC power converter.
- 8. The charging system of claim 5, wherein the module controller for the first charging module is separate from the system controller, and wherein the system controller and the module controller for the first charging module communicate to determine the operation of the crossover switch and the first and second connecting switches.
- 9. The charging system of claim 5, and further comprising a second charging module, wherein the utility port is configured to provide power to a third battery port and a fourth battery port of the plurality of battery ports via the second charging module, the second charging module including:
a first power converter connecting to the third battery port; a second power converter connecting to the fourth battery port; a first switch switchably connecting the first power converter to the fourth battery port; and a module controller configured to control the operation of the first switch and establish the power distribution between the first and second battery ports.
- 10. The charging system of claim 9, wherein:
the utility port is configured to provide DC power to each of the charging modules via a distribution bus; the first power converter of the first charging module is a DC-DC power converter; the second power converter of the first charging module is a DC-DC power converter; the first power converter of the second charging module is a DC-DC power converter; and the second power converter of the second charging module is a DC-DC power converter.
- 11. The charging system of claim 10, and further comprising an AC rectifier configured to receive AC current from the utility port and configured to provide DC current to the distribution bus.
- 12. The charging system of claim 1, wherein the plurality of battery ports include a first battery port, a second battery port, a third battery port and a fourth battery port, and further comprising:
a distribution bus; an AC rectifier configured to receive AC power from the utility port and configured to provide DC power to the distribution bus; and a first charging module and a second charging module, each charging module receiving power from the distribution bus, wherein
each charging module includes a first DC-DC power converter, a second DC-DC power converter, a first crossover switch, and a module controller, the first power converter of the first charging module is connected to the first battery port, the second power converter of the first charging module is connected to the second battery port, the first crossover switch of the first charging module switchably connects the first power converter of the first charging module to the second battery port, the first power converter of the second charging module is connected to the third battery port, the second power converter of the second charging module is connected to the fourth battery port, and the first crossover switch of the second charging module switchably connects the first power converter of the second charging module to the fourth battery port.
- 13. A method of charging a plurality of batteries using power from a utility at a power level not exceeding a maximum power level, comprising:
electrically connecting the plurality of batteries to a plurality of battery ports, wherein the plurality of battery ports connect to a utility port configured to electrically connect to the utility and provide power from the utility to the plurality of battery ports; and controlling the power distribution between the utility port and the plurality of battery ports such that the plurality of batteries are charged using power from the utility at a power level not exceeding the maximum power level.
Parent Case Info
[0001] The present application claims priority from a U.S. provisional patent application, Serial No. 60/212,066, filed Jun. 14, 2000, which is incorporated herein by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60212066 |
Jun 2000 |
US |