IP Library Granted Patent US 12,438,443
Granted Patent B2
US 12,438,443 · App. 17/754,463 · Granted Oct 7, 2025

Controller for power conversion system

Inventors: Issei Fukasawa (Tokyo, JP); Masahiro Kinoshita (Tokyo, JP)
Assignee: TMEIC Corporation
H02M1/327H02J3/381H02J2300/24
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Quick Facts
Patent No.
US 12,438,443
App. No.
17/754,463
Granted
Oct 7, 2025
Kind
B2
Abstract

A controller for a power conversion system includes a determination unit configured to determine whether a current time is in nighttime in an environment of a power converter that is connected to one or both of a direct-current power supply and an alternating-current power supply, and a control unit configured, in a case that the determination unit determines that the current time is in the nighttime, to maintain a switch in a closed state, the switch being provided between the power converter and one of the alternating-current power supply and the direct-current power supply, and to maintain power consumption by a resistor provided in a main circuit inside a housing of the power converter. The power conversion system can suppress lowering of temperature inside a housing without separately including a space heater.

Claims (24)

1. A controller for a power conversion system, the controller comprising:

determination circuitry configured to determine whether a current time is in nighttime in an environment of a power converter that is connected between a solar cell and an alternating-current power supply; and

control circuitry configured, in a case that the determination circuitry determines that the current time is in the nighttime, to maintain a switch in a closed state, the switch being provided between the power converter and one of the alternating-current power supply and the solar cell, and to maintain power consumption by the power converter by operating the power converter,

wherein the power converter includes:

a direct-current capacitor connected between the solar cell and the power converter, and a direct-current discharge resistor connected in parallel with the direct-current capacitor, which are provided on a direct-current side, and

an alternating-current capacitor connected between the solar cell and the power converter, and an alternating-current discharge resistor connected in parallel with the alternating-current capacitor, which are provided on an alternating-current side,

wherein the power converter outputs reactive power so that the alternating-current capacitor cancels reactive power flowing out to a system side and generates heat by a loss of power conversion in a state where heat is generated by power consumption of the direct-current discharge resistor and the alternating-current discharge resistor by power from the alternating-current power supply in the nighttime, and

wherein the control circuitry includes means for noticing temperature, and closes the switch provided between the power converter and one of the alternating-current power supply and the solar cell in the nighttime only when the temperature is low.

2. A controller for a power conversion system, the controller comprising:

determination circuitry configured to determine whether a current time is in nighttime in an environment of a power converter that is connected between a solar cell and an alternating-current power supply; and

control circuitry configured, in a case that the determination circuitry determines that the current time is in the nighttime, to maintain a switch in a closed state, the switch being provided between the power converter and one of the alternating-current power supply and the solar cell, and to maintain power consumption by the power converter by operating the power converter,

wherein the power converter is connected to a system through a transformer, and includes:

a direct-current capacitor connected between the solar cell and the power converter, and a direct-current discharge resistor connected in parallel with the direct-current capacitor, which are provided on a direct-current side, and

an alternating-current capacitor connected between the solar cell and the power converter, and an alternating-current discharge resistor connected in parallel with the alternating-current capacitor, which are provided on an alternating-current side, and

wherein the power converter outputs reactive power so that the transformer cancels reactive power flowing out to a system side and generates heat by a loss of power conversion in a state where heat is generated by power consumption of the direct-current discharge resistor and the alternating-current discharge resistor by power from the alternating-current power supply in the nighttime, and

wherein the control circuitry includes means for noticing temperature, and closes the switch provided between the power converter and one of the alternating-current power supply and the solar cell in the nighttime only when the temperature is low.

3. A controller for a power conversion system, the controller comprising:

determination circuitry configured to determine whether a current time is in nighttime in an environment of a power converter that is connected between a solar cell and an alternating-current power supply; and

control circuitry configured, in a case that the determination circuitry determines that the current time is in the nighttime, to maintain a switch in a closed state, the switch being provided between the power converter and one of the alternating-current power supply and the solar cell, and to maintain power consumption by the power converter by operating the power converter,

wherein the power converter includes:

a direct-current capacitor connected between the solar cell and the power converter, and a direct-current discharge resistor connected in parallel with the direct-current capacitor, which are provided on a direct-current side, and

an alternating-current capacitor connected between the solar cell and the power converter, and an alternating-current discharge resistor connected in parallel with the alternating-current capacitor, which are provided on an alternating-current side,

wherein the controller is configured to generate heat by conversion losses of the power converter having current flow in the alternating current discharge resistor and having current flow in the direct current discharge resistor, and

wherein the control circuitry includes a sensor for detecting temperature, and closes the switch provided between the power converter and one of the alternating-current power supply and the solar cell only when the temperature is low.

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 Apr 1, 2022
From: FUKASAWA, ISSEI; KINOSHITA, MASAHIRO
To: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
Reel/Frame 059477/0287 →
Continuity (1)
Related Publication 20220385171A1 · Dec 1, 2022
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