IP Library › Granted Patent US 12,633,851
Granted Patent B2
US 12,633,851 · App. 18/699,694 · Granted May 19, 2026

Power conversion apparatus, motor drive unit, and refrigeration cycle application apparatus

Inventors: Haruka Matsuo (Tokyo, JP); Tomohiro Kutsuki (Tokyo, JP); Takaaki Takahara (Tokyo, JP); Koichi Arisawa (Tokyo, JP); Yuki Taniyama (Tokyo, JP)
Assignee: Mitsubishi Electric Corporation
H02P21/05F25B31/02H02P21/22H02P27/12
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Quick Facts
Patent No.
US 12,633,851
App. No.
18/699,694
Granted
May 19, 2026
Kind
B2
Abstract

A power conversion apparatus includes a converter that rectifies a first AC voltage supplied from an AC source, a capacitor that is connected to an output end of the converter and smooths a first DC voltage rectified by the converter into a second DC voltage including a first ripple, an inverter that is connected across the capacitor and converts the second DC voltage into a second AC voltage corresponding to a desired frequency, and a voltage detection unit that acquires a physical quantity correlated with the second DC voltage, and controls the second AC voltage to superimpose a second ripple correlated with the first ripple on an output voltage of the inverter.

Claims (48)

1 . A power conversion apparatus, comprising:

a converter rectifying a first AC voltage supplied from an AC source;

a capacitor connected to an output end of the converter, the capacitor smoothing a first DC voltage rectified by the converter into a second DC voltage including a first ripple;

an inverter connected across the capacitor, the inverter converting the second DC voltage into a second AC voltage corresponding to a desired frequency;

a detection unit acquiring a physical quantity correlated with the second DC voltage, wherein the second AC voltage is controlled to superimpose a second ripple correlated with the first ripple on an output voltage of the inverter, and

a pulsating component extraction unit extracting at least one specific frequency component from the physical quantity detected by the detection unit, wherein the output voltage of the inverter is controlled such that the extracted frequency component approaches zero,

wherein a frequency of the first ripple is a frequency that is twice a fundamental frequency of the first AC voltage.

2 . The power conversion apparatus according to claim 1 , comprising

one or more pulsating component extraction units extracting at least one specific frequency component from the physical quantity detected by the detection unit, wherein the pulsating component extraction units extracting the frequency component are changed depending on a period of a pulsating component of the extracted frequency component.

3 . The power conversion apparatus according to claim 1 , wherein

the inverter is connected to a motor, the detection unit is a first detection unit, and the physical quantity is a first physical quantity,

the power conversion apparatus further comprises a second detection unit acquiring a second physical quantity including a third ripple correlated with a rotational speed generated by the motor, and

the second AC voltage is controlled to superimpose a fourth ripple correlated with the third ripple on the output voltage from the inverter.

4 . The power conversion apparatus according to claim 3 , wherein

proportions of the second ripple and the fourth ripple to be superimposed on the output voltage from the inverter are changed at a specified ratio.

5 . The power conversion apparatus according to claim 1 , wherein

a frequency of the first ripple is a sum of a frequency component that is twice a fundamental frequency of the first AC voltage, and a frequency component that is a multiple of the fundamental frequency of the first AC voltage.

6 . The power conversion apparatus according to claim 1 , wherein

the detection unit detects the physical quantity at periods shorter than a frequency of the first ripple.

7 . The power conversion apparatus according to claim 1 , wherein

the detection unit detects the physical quantity in synchronization with a timing of change in conduction or nonconduction of switching elements included in the inverter.

8 . The power conversion apparatus according to claim 1 , wherein

the converter includes at least one switching element.

9 . The power conversion apparatus according to claim 8 , wherein

the detection unit detects the physical quantity in synchronization with a timing of change in conduction or nonconduction of the switching element included in the converter.

10 . The power conversion apparatus according to claim 1 , wherein

either an analog filter including electronic components and attenuating a specific frequency component, or a digital filter attenuating a specific frequency component by calculation is used to attenuate a specific frequency component of the physical quantity.

11 . The power conversion apparatus according to claim 10 , wherein

a cutoff frequency of the analog filter or the digital filter is a frequency two or more times a frequency of the first ripple.

12 . The power conversion apparatus according to claim 1 , wherein

the detection unit is a first detection unit, and the physical quantity is a first physical quantity,

the power conversion apparatus further comprises a third detection unit detecting a third physical quantity correlated with a voltage value of the first AC voltage, and

a fundamental frequency of the first AC voltage is periodically calculated from the third physical quantity.

13 . The power conversion apparatus according to claim 1 , wherein

the detection unit is a first detection unit,

the power conversion apparatus further comprises a fourth detection unit detecting that a voltage value of the first AC voltage that changes with a lapse of time exceeds or falls below a specified value, and

a fundamental frequency of the first AC voltage is periodically calculated from an output signal of the fourth detection unit.

14 . The power conversion apparatus according to claim 13 , wherein

a value is calculated from the output signal of the fourth detection unit two or more times, and an average value of the values is set as the fundamental frequency of the first AC voltage.

15 . A motor drive unit, comprising the power conversion apparatus according to claim 1 .

16 . A refrigeration cycle application apparatus, comprising the power conversion apparatus according to claim 1 .

17 . A power conversion apparatus, comprising:

a converter rectifying a first AC voltage supplied from an AC source;

a capacitor connected to an output end of the converter, the capacitor smoothing a first DC voltage rectified by the converter into a second DC voltage including a first ripple;

an inverter connected across the capacitor, the inverter converting the second DC voltage into a second AC voltage corresponding to a desired frequency;

a detection unit acquiring a physical quantity correlated with the second DC voltage, wherein the second AC voltage is controlled to superimpose a second ripple correlated with the first ripple on an output voltage of the inverter, and

one or more pulsating component extraction units extracting at least one specific frequency component from the physical quantity detected by the detection unit, wherein pulsating component extraction units extracting the frequency component are changed depending on a period of a pulsating component of the extracted frequency component,

wherein a frequency of the first ripple is a sum of a frequency component that is twice a fundamental frequency of the first AC voltage, and a frequency component that is a multiple of the fundamental frequency of the first AC voltage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2024
From: MATSUO, HARUKA; KUTSUKI, TOMOHIRO; TAKAHARA, TAKAAKI; ARISAWA, KOICHI; TANIYAMA, YUKI
To: MITSUBISHI ELECTRIC CORPORATION
Reel/Frame 067047/0113 →
Continuity (1)
Related Publication 20250219559A1 · Jul 3, 2025
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