Method and apparatus for converting a DC voltage to an AC voltage
First Claim
1. An inverter that receives DC power and provides AC power having an AC voltage level to a load having a capacitive element, the inverter comprising:
- first and second output nodes to provide AC power to the load having the capacitive element;
first and second input nodes to receive DC power from a DC voltage source;
a resonant element having a first terminal and a second terminal, the second terminal being electrically coupled to the first output node;
a first switch electrically coupled between the first terminal of the resonant element and the first input node, wherein during a first time period, the first switch is selected to enable an electrical current path from the resonant element to the capacitive element, an electrical current of the path storing energy in the resonant element and charging the capacitive element to a first voltage level, and during a second time period, the first switch is selected to block the electrical current path to cause the stored energy in the resonant element to further charge the capacitive element to a second voltage level during the second time period; and
a set of switches operatively coupled between the first and second output nodes and the first and second input nodes and controlled to generate AC power from the DC power.
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Abstract
Embodiments of the present invention are directed to an uninterruptible power supply for providing AC power to a load. In embodiments of the present invention, the uninterruptible power supply includes an input to receive AC power from an AC power source, an output that provides AC power, a DC voltage source that provides DC power, the DC voltage source having an energy storage device, an inverter operatively coupled to the DC voltage source to receive DC power and to provide AC power. The inverter includes first and second output nodes to provide AC power to the load, first and second input nodes to receive DC power from the DC voltage source, a resonant element having a first terminal and a second terminal, the second terminal being electrically coupled to the first output node, a first switch electrically coupled between the first terminal of the resonant element and the first input node, wherein during a first time period, the first switch is controlled to allow an electrical current path to connect the resonant element to the capacitive element, an electrical current of the path storing energy in the resonant element and charging the capacitive element to a first voltage level, and during a second time period, the first switch is controlled to block the current path to cause the stored energy in the resonant element to further charge the capacitive element to a second voltage level during the second time period. The uninterruptible power supply further includes a transfer switch constructed and arranged to select one of the AC power source and the DC voltage source as an output power source for the uninterruptible power supply.
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Citations
14 Claims
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1. An inverter that receives DC power and provides AC power having an AC voltage level to a load having a capacitive element, the inverter comprising:
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first and second output nodes to provide AC power to the load having the capacitive element;
first and second input nodes to receive DC power from a DC voltage source;
a resonant element having a first terminal and a second terminal, the second terminal being electrically coupled to the first output node;
a first switch electrically coupled between the first terminal of the resonant element and the first input node, wherein during a first time period, the first switch is selected to enable an electrical current path from the resonant element to the capacitive element, an electrical current of the path storing energy in the resonant element and charging the capacitive element to a first voltage level, and during a second time period, the first switch is selected to block the electrical current path to cause the stored energy in the resonant element to further charge the capacitive element to a second voltage level during the second time period; and
a set of switches operatively coupled between the first and second output nodes and the first and second input nodes and controlled to generate AC power from the DC power. - View Dependent Claims (2, 3, 4, 5, 6, 7)
a second switch electrically coupled between the second output node and the second input node;
a third switch electrically coupled between the second output node and the first input node;
a fourth switch electrically coupled between the first output node and the first input node; and
a fifth switch electrically coupled between the first output node and the second input node.
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4. The inverter of claim 3, further comprising:
a sixth switch electrically coupled between the first terminal of the resonant element and the second input node.
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5. The inverter of claim 4, wherein the resonant element includes an inductor.
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6. The inverter of claim 5, wherein each of the switches includes a transistor.
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7. The inverter of claim 1, wherein each of the switches includes a transistor.
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8. An inverter for receiving DC power from a DC voltage source and providing AC power to a load having a capacitive element, the inverter comprising:
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an input to receive DC power and an output to provide AC power;
means for charging the capacitive element to a first voltage level by creating an electrical current path to the load through a resonant element, wherein the resonant element stores energy from an electrical current of the path; and
means for blocking the electrical current path after the capacitive element has been charged to the first voltage level to cause energy from the resonant element to be transferred to the capacitive element to further charge the capacitive element to a second voltage level. - View Dependent Claims (9, 10, 11)
means for supplying load current from the DC voltage source to the load after the capacitive element has been charged to the second voltage level, for blocking the load current from the DC voltage source to the load after a predetermined period, for discharging the capacitive element through the resonant element, and for transferring energy from the resonant element to the DC voltage source.
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12. A method of supplying AC voltage to a load having a capacitive element, the method comprising:
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receiving a DC voltage from a DC voltage source;
charging the capacitive element to a first voltage level by supplying electrical current from the DC voltage source to the load through a resonant element, storing energy in the resonant element from the electrical current;
blocking the electrical current from the DC voltage source to the load through the resonant element after the capacitive element has been charged to the first voltage level; and
transferring the stored energy from the resonant element to the capacitive element to further charge the capacitive element to a second voltage level.- View Dependent Claims (13, 14)
supplying load current from the DC voltage source to the load after the capacitive element has been charged to the second voltage level;
blocking the load current from the DC voltage to the load after a predetermined period;
discharging the capacitive element through the resonant element; and
transferring energy from the resonant element to the DC voltage source.
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14. The method of claim 12, wherein the resonant element includes an inductor.
Specification