IP Library Granted Patent US 10,454,417
Granted Patent B2
US 10,454,417 · App. 16/091,594 · Granted Oct 22, 2019

Solar power generation system

Inventors: Yuji Matsuoka (Chuo, JP); Eiichi Ikawa (Chuo, JP)
Assignee: TOSHTBA MITSUBISHI-ELECTRTIC INDUSTRIAL SYSTEMS CORPORATION
H02S50/00H02J3/385H02M7/48H02M7/537H02M7/53871H02S40/32
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Quick Facts
Patent No.
US 10,454,417
App. No.
16/091,594
Granted
Oct 22, 2019
Kind
B2
Abstract

A solar power generation system includes an inverter configured to convert DC power inputted from a solar battery to AC power, a MPPT control section configured to perform maximum power point tracking control on the inverter, an input power measurement section configured to measure the DC power inputted to the inverter at a time of avoiding a transient state due to variation in DC voltage of the inverter by the maximum power point tracking control, an output power measurement section configured to measure the AC power outputted from the inverter at the time of avoiding the transient state, and a conversion efficiency computation section configured to compute conversion efficiency of the inverter based on the DC power measured by the input power measurement section and the AC power measured by the output power measurement section.

Claims (37)

1. A solar power generation system comprising:

an inverter configured to convert DC power inputted from a solar battery to AC power;

a maximum power point tracking control section configured to perform maximum power point tracking control on the inverter;

an input power measurement section configured to measure the DC power inputted to the inverter at a time of avoiding a transient state due to variation in DC voltage of the inverter by the maximum power point tracking control;

an output power measurement section configured to measure the AC power outputted from the inverter at the time of avoiding the transient state;

a conversion efficiency computation section configured to compute conversion efficiency of the inverter based on the DC power measured by the input power measurement section and the AC power measured by the output power measurement section; and

a transient state avoidance signal output section configured to output a transient state avoidance signal for performing measurement at a time of avoiding the transient state each time the transient state avoidance signal output section outputs an instruction for varying the DC voltage of the inverter by the maximum power point tracking control, wherein

the input power measurement section measures the DC power based on the transient state avoidance signal outputted from the transient state avoidance signal output section, and

the output power measurement section measures the AC power based on the transient state avoidance signal outputted from the transient state avoidance signal output section.

2. The system according to claim 1 , further comprising:

a measurement synchronization section configured to perform control for synchronization so that measurement by the input power measurement section and measurement by the output power measurement section are made simultaneous.

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

a measurement synchronization section configured to perform control for synchronization so that measurement by the input power measurement section and measurement by the output power measurement section are made simultaneous.

4. A control device for a solar power generation system including an inverter configured to convert DC power inputted from a solar battery to AC power, the device comprising:

a maximum power point tracking control section configured to perform maximum power point tracking control on the inverter;

an input power measurement section configured to measure the DC power inputted to the inverter at a time of avoiding a transient state due to variation in DC voltage of the inverter by the maximum power point tracking control;

an output power measurement section configured to measure the AC power outputted from the inverter at the time of avoiding the transient state;

a conversion efficiency computation section configured to compute conversion efficiency of the inverter based on the DC power measured by the input power measurement section and the AC power measured by the output power measurement section; and

a transient state avoidance signal output section configured to output a transient state avoidance signal for performing measurement at a time of avoiding the transient state each time the transient state avoidance signal output section outputs an instruction for varying the DC voltage of the inverter by the maximum power point tracking control, wherein

the input power measurement section measures the DC power based on the transient state avoidance signal outputted from the transient state avoidance signal output section, and

the output power measurement section measures the AC power based on the transient state avoidance signal outputted from the transient state avoidance signal output section.

5. The device according to claim 4 , further comprising:

a measurement synchronization section configured to perform control for synchronization so that measurement by the input power measurement section and measurement by the output power measurement section are made simultaneous.

6. The device according to claim 4 , further comprising:

a measurement synchronization section configured to perform control for synchronization so that measurement by the input power measurement section and measurement by the output power measurement section are made simultaneous.

7. A control method for a solar power generation system including an inverter configured to convert DC power inputted from a solar battery to AC power, the control method comprising:

performing maximum power point tracking control on the inverter;

measuring the DC power inputted to the inverter at a time of avoiding a transient state due to variation in DC voltage of the inverter by the maximum power point tracking control;

measuring the AC power outputted from the inverter at the time of avoiding the transient state;

computing conversion efficiency of the inverter based on the measured DC power and the measured AC power; and

outputting a transient state avoidance signal for performing measurement at a time of avoiding the transient state each time an instruction for varying the DC voltage of the inverter by the maximum power point tracking control is outputted, wherein

measurement of the DC power is performed based on the transient state avoidance signal, and

measurement of the AC power is performed based on the transient state avoidance signal.

8. The method according to claim 7 , further comprising:

performing control for synchronization so that measurement of the DC power and measurement of the AC power are made simultaneous.

9. The method according to claim 7 , further comprising:

performing control for synchronization so that measurement of the DC power and measurement of the AC power are made simultaneous.

Assignments (2)
CHANGE OF NAME Recorded Apr 26, 2024
From: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
To: TMEIC CORPORATION
Reel/Frame 067244/0359 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2019
From: MATSUOKA, YUJI; IKAWA, EIICHI
To: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
Reel/Frame 047927/0521 →
Continuity (1)
Related Publication 20190089300A1 · Mar 21, 2019
Cited By (1)
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