IP Library Granted Patent US 12,549,005
Granted Patent B2
US 12,549,005 · App. 18/006,833 · Granted Feb 10, 2026

Flicker prevention device and flicker prevention control method

Inventors: Takayuki Yachida (Chuo-ku, JP); Naoki Morishima (Chuo-ku, JP); Kenichi Kondoh (Chuo-ku, JP); Akihiro Teguri (Chuo-ku, JP); Tatsuya Takahashi (Chiyoda-ku, JP); Naoki Tani (Chiyoda-ku, JP)
Assignees: TMEIC Corporation; Mitsubishi Electric Corporation
H02J3/002H02J3/16
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Quick Facts
Patent No.
US 12,549,005
App. No.
18/006,833
Granted
Feb 10, 2026
Kind
B2
Abstract

A frequency detector detects a system frequency from an AC voltage on an AC power line to which a power conditioner performing system interconnection of a distributed power supply is connected. A power converter is configured to inject lead reactive power or delay reactive power into the AC power line. A controller controls reactive power output from the power converter to output the lead reactive power in response to an increase in the system frequency while outputting the delay reactive power in response to a decrease in the system frequency.

Claims (37)

1 . A flicker prevention device for a power system to which a power conditioner performing system interconnection of a distributed power supply is connected, the flicker prevention device comprising:

a power converter to inject delay reactive power or lead reactive power into the power system;

a frequency detector to detect a system frequency of an AC voltage on the power system;

a frequency change amount calculator to calculate a change amount of the detected system frequency; and

a controller configured to control, when a first control characteristic is selected, the power converter to output the lead reactive power in response to an increase in the system frequency and to output the delay reactive power in response to an decrease in the system frequency, and, when a second control characteristic is selected, to control the power converter to output the delay reactive power in response to the increase in the system frequency and to output the lead reactive power in response to the decrease in the system frequency, wherein the controller, when increase of the change amount of the system frequency is detected while controlling the power converter according to selected one of the first control characteristic and the second control characteristic, switches the selected one of the first control characteristic and the second control characteristic to the other control characteristic.

2 . The flicker prevention device according to claim 1 , further comprising:

a voltage detector to detect a system voltage effective value of an AC voltage on the power system; and

a voltage change amount calculator to calculate a change amount of the system voltage effective value,

wherein the controller selects one of the first control characteristic and the second control characteristic according to a phase relationship between a temporal change according to a flicker period in the change amount of the system voltage effective value and a temporal change according to the flicker period in the change amount of the system frequency.

3 . The flicker prevention device according to claim 1 , further comprising:

a voltage detector to detect a system voltage effective value of an AC voltage on the power system; and

a voltage change amount calculator to calculate a change amount of the system voltage effective value,

wherein the controller selects one control characteristic from the first control characteristic and the second control characteristic according to a phase relationship between a temporal change according to a flicker period in the change amount of the system voltage effective value and a temporal change according to the flicker period in the change amount of the system frequency in a non-output period of the reactive power by the power converter, and controls the reactive power output from the power converter according to the one control characteristic when the output of the reactive power is started from the power converter.

4 . The flicker prevention device according to claim 2 , wherein the controller selects the first control characteristic when a phase difference between a temporal change in the change amount of the system voltage effective value and a temporal change in the change amount of the system frequency with the flicker period set to 360 degrees is closer to 180 degrees than 0 degrees, and selects the second control characteristic when the phase difference is closer to 0 degrees than 180 degrees.

5 . The flicker prevention device according to claim 1 , wherein the controller reduces a ratio of magnitude of the reactive power to the change amount of the system frequency during a given period set when switching between the first control characteristic and the second control characteristic so as to avoid sudden change of the reactive power output from the power converter.

6 . The flicker prevention device according to claim 1 , wherein

the controller includes:

a control arithmetic unit that calculates a reactive power instruction value according to a predetermined control operation with the change amount calculated by the frequency change amount calculator as input; and

a power converter controller that generates a control instruction for the power converter to output the reactive power according to the reactive power instruction value,

the control operation is performed such that the reactive power instruction value is set such that magnitude of the reactive power and an absolute value of the change amount are proportional to each other according to a product of a proportional gain and the change amount, and

a polarity of the proportional gain is different between the first control characteristic and the second control characteristic.

7 . The flicker prevention device according to claim 6 , wherein an absolute value of the proportional gain is set to a smaller value in a region where an absolute value of the change amount is smaller than a determination value as compared with a region where an absolute value of the change amount is larger than the determination value.

8 . The flicker prevention device according to claim 7 , wherein the proportional gain is set to zero in a region where an absolute value of the change amount is smaller than the determination value.

9 . The flicker prevention device according to claim 1 , wherein the frequency change amount calculator calculates the change amount according to a difference between a moving average value of the system frequency in a first period before a current point of time and a moving average value of the system frequency in a second period before the first period.

10 . The flicker prevention device according to claim 1 , wherein the frequency change amount calculator calculates the change amount according to a difference between a reference value of the system frequency and a moving average value of the system frequency in a first period before a current point of time.

11 . A flicker prevention control method for a power system to which a power conditioner performing system interconnection of a distributed power supply is connected, the flicker prevention control method comprising:

detecting a system frequency that is a frequency of an AC voltage on the power system;

calculating a change amount of the detected system frequency; and

controlling, when a first control characteristic is selected, the power converter to output a lead reactive power in response to an increase in the system frequency and to output a delay reactive power in response to an decrease in the system frequency, and controlling, when a second control characteristic is selected, the power converter to output the delay reactive power in response to the increase in the system frequency and to output the lead reactive power in response to the decrease in the system frequency,

wherein when increase of the change amount of the system frequency is detected while controlling the power converter according to selected one of the first control characteristic and the second control characteristic, the selected one of the first control characteristic and the second control characteristic is switched to the other control characteristic.

12 . The flicker prevention control method according to claim 11 , wherein

the controlling includes:

generating a reactive power instruction value by a control operation according to a selected one control characteristic of the first and second control characteristics with the calculated change amount as input; and

generating a control instruction for the power converter to output reactive power according to the reactive power instruction value, and

the reactive power instruction value is generated such that

while the first control characteristic is selected, the power converter outputs the lead reactive power to compensate for the change amount when the change amount has a polarity indicating an increase in the system frequency, and the power converter outputs the delay reactive power to compensate for the change amount when the change amount has a polarity indicating a decrease in the system frequency, and

while the second control characteristic is selected, the power converter outputs the delay reactive power to compensate for the change amount when the change amount has the polarity indicating the increase in the system frequency, and the power converter outputs the lead reactive power to compensate for the change amount when the change amount has the polarity indicating the decrease in the system frequency.

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 25, 2023
From: YACHIDA, TAKAYUKI; MORISHIMA, NAOKI; KONDOH, KENICHI; TEGURI, AKIHIRO; TAKAHASHI, TATSUYA; TANI, NAOKI
To: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION; MITSUBISHI ELECTRIC CORPORATION
Reel/Frame 062487/0234 →
Priority Claims (1)
WO PCT/JP2021/003265 · Jan 29, 2021 · international
Continuity (1)
Related Publication 20230275429A1 · Aug 31, 2023
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