IP Library Granted Patent US 10,509,079
Granted Patent B2
US 10,509,079 · App. 15/258,571 · Granted Dec 17, 2019

Inverter test apparatus

Inventors: Naoto Niimura (Tokyo, JP); Toshiaki Oka (Tokyo, JP); Hiromitsu Suzuki (Tokyo, JP)
Assignee: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
G01R31/42H02M7/487H02M5/45
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Quick Facts
Patent No.
US 10,509,079
App. No.
15/258,571
Granted
Dec 17, 2019
Kind
B2
Abstract

An inverter test apparatus includes a DC power supply, a second inverter which is connected to a DC side of the first inverter, an inductor which is connected between an AC side of the first inverter and an AC side of the second inverter, a first controller which controls an AC voltage of the first inverter to be at a constant amplitude and a constant frequency, a current detector which detects a current that flows through the inductor, a phase command value computation module which computes a phase command value of the second inverter so as to control the current detected by the current detector, and a second controller which controls a phase of the second inverter, based on the phase command value computed.

Claims (28)

1. An inverter test apparatus configured to test a first single-phase inverter, the inverter test apparatus comprising:

a DC power supply configured to supply a DC power to the first single-phase inverter;

a second single-phase inverter which is connected to a DC side of the first single-phase inverter;

an inductor which is connected between an AC side of the first single-phase inverter and an AC side of the second single-phase inverter;

a first controller configured to control an AC voltage of the first single-phase inverter to be at a constant amplitude and a constant frequency;

a current detector configured to detect a current which flows through the inductor;

a phase command value computation module configured to compute a phase command value of the second single-phase inverter so as to follow the current detected by the current detector to a current amplitude command value; and

a second controller configured to control a phase of the second single-phase inverter, based on the phase command value computed by the phase command value computation module,

wherein the phase command value computation module computes a root-mean-square value from the current detected by the current detector, computes a conducting current amplitude from the root-mean-square value, subtracts the conducting current amplitude from the current amplitude command value, performs a proportional-plus-integral control such that a result of subtraction becomes zero, and computes the phase command value from a result of the proportional-plus-integral control.

2. The inverter test apparatus of claim 1 , wherein the phase command value computation module is configured to change a polarity of the phase command value at the time of power running and regeneration of the first single-phase inverter.

3. The inverter test apparatus of claim 1 , further comprising a voltage amplitude command value computation module configured to compute a voltage amplitude command value of the second single-phase inverter so as to control a power factor of the first single-phase inverter, based on the current detected by the current detector, wherein

the second controller is configured to control a voltage amplitude of the second single-phase inverter, based on the voltage amplitude command value computed by the voltage amplitude command value computation module.

4. The inverter test apparatus of claim 2 , further comprising a voltage amplitude command value computation module configured to compute a voltage amplitude command value of the second single-phase inverter so as to control a power factor of the first single-phase inverter, based on the current detected by the current detector, wherein

the second controller is configured to control a voltage amplitude of the second single-phase inverter, based on the voltage amplitude command value computed by the voltage amplitude command value computation module.

5. An inverter testing method for testing a first single-phase inverter, the method comprising:

connecting a second single-phase inverter to a DC side of the first single-phase inverter;

connecting an inductor between an AC side of the first single-phase inverter and an AC side of the second single-phase inverter;

controlling an AC voltage of the first single-phase inverter to be at a constant amplitude and a constant frequency;

detecting a current which flows through the inductor;

computing a phase command value of the second single-phase inverter so as to follow the detected current to a current amplitude command value; and

controlling a phase of the second single-phase inverter, based on the computed phase command value,

wherein computing the phase command value includes computing a root-mean-square value from the detected current, computing a conducting current amplitude from the root-mean-square value, subtracting the conducting current amplitude from the current amplitude command value, performing a proportional-plus-integral control such that a result of subtraction becomes zero, and computing the phase command value from a result of the proportional-plus-integral control.

6. A controller for an inverter test apparatus in which a second single-phase inverter is connected to a DC side of a first single-phase inverter, and an inductor is connected between an AC side of the first single-phase inverter and an AC side of the second single-phase inverter, and which tests the first single-phase inverter, the controller comprising:

a first controller configured to control an AC voltage of the first single-phase inverter to be at a constant amplitude and a constant frequency;

a current detector configured to detect a current which flows through the inductor;

a phase command value computation module configured to compute a phase command value of the second single-phase inverter so as to follow the current detected by the current detector to a current amplitude command value; and

a second controller configured to control a phase of the second single-phase inverter, based on the phase command value computed by the phase command value computation module,

wherein the phase command value computation module computes a root-mean-square value from the current detected by the current detector, computes a conducting current amplitude from the root-mean-square value, subtracts the conducting current amplitude from the current amplitude command value, performs a proportional-plus-integral control such that a result of subtraction becomes zero, and computes the phase command value from a result of the proportional-plus-integral control.

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 Sep 7, 2016
From: NIIMURA, NAOTO; OKA, TOSHIAKI; SUZUKI, HIROMITSU
To: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
Reel/Frame 039661/0717 →
Continuity (2)
Continuation PCTJP2014055995 · Mar 7, 2014
Related Publication 20160377687A1 · Dec 29, 2016