IP Library › Granted Patent US 11,495,966
Granted Patent B2
US 11,495,966 · App. 16/775,324 · Granted Nov 8, 2022

Solar power generation system and power conditioner

Inventor: Kenzou Oomori (Nagaokakyo, JP)
Assignee: MURATA MANUFACTURING CO., LTD.
H02J3/007H02J3/381H02J2300/26H02S40/32
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Quick Facts
Patent No.
US 11,495,966
App. No.
16/775,324
Granted
Nov 8, 2022
Kind
B2
Abstract

A power conditioner includes a PV converter that generates an output voltage, which is obtained by boosting a direct-current voltage input from a solar panel, an inverter that converts the output voltage of the PV converter into an alternating-current voltage, and a first relay connected between the inverter and a commercial power system. A controller includes a control circuit that controls the entire power conditioner, a control circuit that controls the PV converter, and a control circuit that controls the inverter. In a start process, the control circuit controls activation and deactivation of a DC-DC converter and causes the impedance of a DC-DC converter to change. The control circuit detects an input voltage and an input current of the PV converter and determines whether or not the first relay is to be in a close state according to those values.

Claims (46)

1. A solar power generation system comprising:

a solar panel;

a PhotoVoltaic (PV) converter connected to the solar panel;

an inverter that converts a direct-current voltage output from the PV converter to an alternating-current voltage;

a first relay that connects and disconnects the inverter to and from a first alternating-current load, to which the alternating-current voltage is supplied;

a controller that controls the PV converter and the inverter; and

a DC-DC converter that converts the direct-current voltage output from the PV converter into a drive voltage of the controller; wherein

in a start process, the controller causes an impedance of the DC-DC converter to change, detects an input voltage and an input current of the PV converter or an output voltage and an output current of the PV converter, and at least determines whether or not the first relay is to be in a close state according to those values;

the controller includes a primary control circuit that performs the start process, a first control circuit that controls the PV converter, and a second control circuit that controls the inverter;

the DC-DC converter includes a primary converter that generates a drive voltage of the primary control circuit, a first converter that generates a drive voltage of the first control circuit, and a second converter that generates a drive voltage of the second control circuit; and

the primary control circuit controls activation and deactivation of the first converter and the second converter, the primary control circuit causing the impedance of the DC-DC converter to change in the start process by at least controlling activation and deactivation of the first converter.

2. The solar power generation system according to claim 1 , wherein the first alternating-current load is connected to a power system.

3. The solar power generation system according to claim 1 , further comprising:

a second relay that connects and disconnects the inverter to and from a second alternating-current load, to which the alternating-current voltage is supplied.

4. The solar power generation system according to claim 3 , wherein the controller estimates a generated power of the solar panel from the input voltage and the input current of the PV converter or the output voltage and the output current of the PV converter, compares the estimated generated power with an operational power, and determines whether or not the first relay or the second relay is to be in the close state.

5. The solar power generation system according to claim 4 , further comprising:

a bidirectional DC-DC converter, a first terminal of the bidirectional DC-DC converter being connected to a direct-current voltage bus arranged between the PV converter and the inverter; and

an electric storage device connected to a second terminal of the bidirectional DC-DC converter; wherein

when the generated power of the solar panel is less than the operational power, the controller deactivates the PV converter and outputs, to the direct-current voltage bus, a direct-current voltage based on a storage voltage of the electric storage device by activating the bidirectional DC-DC converter.

6. The solar power generation system according to claim 3 , wherein the first relay and the second relay are both normally open electromagnetic relays.

7. The solar power generation system according to claim 1 , further comprising:

a bidirectional DC-DC converter, a first terminal of the bidirectional DC-DC converter being connected to a direct-current voltage bus arranged between the PV converter and the inverter; and

an electric storage device connected to a second terminal of the bidirectional DC-DC converter.

8. The solar power generation system according to claim 1 , wherein the PV converter is a step-up chopper circuit that operates based on a control signal received from the controller.

9. The solar power generation system according to claim 1 , wherein the DC-DC converter is defined by a step-down circuit.

10. A power conditioner that converts a direct-current voltage input from a solar panel into an alternating-current voltage and outputs to a first alternating-current load, the power conditioner comprising:

a PhotoVoltaic (PV) converter connected to the solar panel;

an inverter that converts a direct-current voltage output from the PV converter to the alternating-current voltage;

a first relay that connects and disconnects the inverter to and from the first alternating-current load;

a controller that controls the PV converter and the inverter; and

a DC-DC converter that converts the direct-current voltage output from the PV converter into a drive voltage of the controller; wherein

in a start process, the controller causes an impedance of the DC-DC converter to change, detects an input voltage and an input current of the PV converter or an output voltage and an output current of the PV converter, and at least determines whether or not the first relay is to be in a close state according to those values;

the controller includes a primary control circuit that performs the start process, a first control circuit that controls the PV converter, and a second control circuit that controls the inverter;

the DC-DC converter includes a primary converter that generates a drive voltage of the primary control circuit, a first converter that generates a drive voltage of the first control circuit, and a second converter that generates a drive voltage of the second control circuit; and

the primary control circuit controls activation and deactivation of the first converter and the second converter, the primary control circuit causing the impedance of the DC-DC converter to change in the start process by at least controlling activation and deactivation of the first converter.

11. The power conditioner according to claim 10 , wherein the first alternating-current load is connected to a power system.

12. The power conditioner according to claim 10 , further comprising:

a second relay that connects and disconnects the inverter to and from a second alternating-current load, to which the alternating-current voltage is supplied.

13. The power conditioner according to claim 10 , further comprising:

a bidirectional DC-DC converter, a first terminal of the bidirectional DC-DC converter being connected to a direct-current voltage bus arranged between the PV converter and the inverter, a second terminal of the bidirectional DC-DC converter being connected to an electric storage device.

14. The power conditioner according to claim 10 , further comprising:

a first voltage sensor connected between input terminals of the PV converter and outputs a signal associated with an input voltage of the PV converter to the controller; and

a second voltage sensor connected to the DC-DC converter.

15. The power conditioner according to claim 14 , further comprising:

a first current sensor installed between a positive-electrode terminal of the solar panel and the PV converter; and

a second current sensor installed after the PV converter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 29, 2020
From: OOMORI, KENZOU
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 051650/0836 →
Priority Claims (1)
JP JP2017-166748 · Aug 31, 2017 · national
Continuity (2)
Continuation PCTJP2018029444 · Aug 6, 2018
Related Publication 20200169217A1 · May 28, 2020
Cited By (1)
US 12,266,964