IP Library Granted Patent US 12,289,063
Granted Patent B2
US 12,289,063 · App. 18/026,111 · Granted Apr 29, 2025

Modular multilevel power converter and variable speed generator-motor

Inventors: Akira Bando (Tokyo, JP); Takahiko Kikui (Tokyo, JP); Kenta Watanabe (Tokyo, JP); Tomomichi Ito (Tokyo, JP); Yasuhiro Kiyofuji (Tokyo, JP); Masakazu Ishikawa (Tokyo, JP); Yosuke Nakaide (Tokyo, JP)
Assignees: HITACHI MITSUBISHI HYDRO CORPORATION; HITACHI, LTD.
H02M7/4835H02M1/0048H02M1/32
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Quick Facts
Patent No.
US 12,289,063
App. No.
18/026,111
Granted
Apr 29, 2025
Kind
B2
Abstract

A modular multilevel power converter includes: a capacitor voltage adjuster that calculates an active current component command to make an average voltage of capacitors match a command value; an active power detector that receives an AC current signal and an AC voltage signal and calculates an active power; an active power adjuster that calculates a DC current command value to make the active power match a command value; a first active power command suppressor that suppresses an absolute value of an active power command value; and a second active power command suppressor that adjusts an absolute value of an active power command value.

Claims (48)

1. A modular multilevel power converter connected between a positive-side terminal (P terminal) and a negative-side terminal (N terminal) of a DC power supply and three-phase AC terminals (U terminal, V terminal, and W terminal) of an AC system, including:

three two-terminal arms (UP arm, VP arm, and WP arm) between the positive-side terminal and the three-phase AC terminals and three two-terminal arms (UN arm, VN arm, and WN arm) between the negative-side terminal and the three-phase AC terminals, the two-terminal arms each including K (K is a natural number of 1 or more) two-terminal unit converters connected in series each are capable of outputting any voltage via an energy storage element having a voltage source characteristic;

an inductive element including two-terminal coils between the three two-terminal arms on a side of the positive-side terminal, the three two-terminal arms on a side of the negative-side terminal, and the three-phase AC terminals;

six arm current transformers that detect currents of the three arms on the side of the positive-side terminal and the three arms on the side of the negative-side terminal;

an AC current transformer that detects or calculates AC currents (IU, IV, and IW) flowing through the three-phase AC terminals;

a voltage transformer of the three-phase AC terminals;

a DC current transformer that detects or calculates a current (IDC) flowing through the positive-side terminal of the DC power supply;

an AC current calculator that calculates and outputs an active current component and a reactive current component from a signal of the AC current transformer;

an AC current adjuster that calculates an AC voltage command for each of AC three phases to make calculation outputs of the active current component and the reactive current component match a command value, divides the AC voltage command into two components, and outputs the components;

a DC current adjuster that calculates one DC voltage command to make a current signal from the DC current transformer match a command value, divides the DC voltage command into six components, and outputs the components; and

a modulation factor calculator that performs addition or subtraction of the AC voltage command and the DC voltage command and outputs a modulation factor to pulse width modulation devices included in the three arms on the side of the positive-side terminal and the three arms on the side of the negative-side terminal,

the modular multilevel power converter comprising:

a capacitor average voltage detector that detects or calculates an average voltage of (6×k) capacitors included in the modular multilevel power converter;

a capacitor voltage adjuster that calculates an active current component command to make the capacitor average voltage detection value match a command value and outputs the active current component command to the AC current adjuster;

an active power detector that receives a current signal from the AC current transformer and a voltage signal from an AC voltage transformer, and calculates and outputs an active power;

an active power adjuster that calculates and outputs a DC current command value to the DC current adjuster to make the active power detection value match an active power command value;

a positive-phase voltage detector that calculates a positive-phase voltage amplitude from a three-phase voltage signal of the AC voltage transformer;

a first level detector that switches an output level from 0 to 1 when the positive-phase voltage amplitude becomes equal to or less than a first set value and switches an output level from 1 to 0 when the positive-phase voltage amplitude becomes equal to or more than a second set value;

a first active power command suppressor that suppresses an absolute value of an active power command value to the DC current adjuster to 0 or a first limit value that is 0.2 times a rated DC current or less in a period in which the output level of the first level detector is 1;

a negative-phase voltage detector that calculates a negative-phase voltage amplitude from a three-phase voltage signal of the AC voltage transformer;

a second level detector that switches an output level from 0 to 1 when the negative-phase voltage amplitude becomes equal to or more than a third set value and switches an output level from 1 to 0 when the negative-phase voltage amplitude becomes equal to or less than a fourth set value; and

a second active power command suppressor that suppresses an absolute value of an active power command value to the DC current adjuster to a second limit value that is 0.3 times a rated DC current or more and 0.7 times the rated DC current or less in a period in which the output level of the second level detector is 1.

2. A modular multilevel power converter connected between a positive-side terminal (P terminal) and a negative-side terminal (N terminal) of a DC power supply and three-phase AC terminals (U terminal, V terminal, and W terminal) of an AC system, including:

three two-terminal arms (UP arm, VP arm, and WP arm) between the positive-side terminal and the three-phase AC terminals and three two-terminal arms (UN arm, VN arm, and WN arm) between the negative-side terminal and the three-phase AC terminals, the two-terminal arms each including K (K is a natural number of 1 or more) two-terminal unit converters connected in series each are capable of outputting any voltage via an energy storage element having a voltage source characteristic;

an inductive element including two-terminal coils between the three two-terminal arms on a side of the positive-side terminal, the three two-terminal arms on a side of the negative-side terminal, and the three-phase AC terminals;

six arm current transformers that detect currents of the three arms on the side of the positive-side terminal and the three arms on the side of the negative-side terminal;

an AC current transformer that detects or calculates AC currents (IU, IV, and IW) flowing through the three-phase AC terminals;

a voltage transformer of the three-phase AC terminals;

a DC current transformer that detects or calculates a current (IDC) flowing through the positive-side terminal of the DC power supply;

an AC current calculator that calculates and outputs an active current component and a reactive current component from a signal of the AC current transformer;

an AC current adjuster that calculates an AC voltage command for each of AC three phases to make calculation outputs of the active current component and the reactive current component match a command value, divides the AC voltage command into two components, and outputs the components;

a DC current adjuster that calculates one DC voltage command to make a current signal from the DC current transformer match a command value, divides the DC voltage command into six components, and outputs the components; and

a modulation factor calculator that performs addition or subtraction of the AC voltage command and the DC voltage command and outputs a modulation factor to pulse width modulation devices included in the three arms on the side of the positive-side terminal and the three arms on the side of the negative-side terminal,

the modular multilevel power converter comprising:

a capacitor average voltage detector that detects or calculates an average voltage of (6×k) capacitors included in the modular multilevel power converter;

a capacitor voltage adjuster that calculates an active current component command to make the capacitor average voltage detection value match a command value and outputs the active current component command to the AC current adjuster;

an active power detector that receives a current signal from the AC current transformer and a voltage signal from an AC voltage transformer, and calculates and outputs an active power;

an active power adjuster that calculates and outputs a DC current command value from the DC current adjuster to make the active power detection value match an active power command value;

a positive-phase voltage detector that calculates a positive-phase voltage amplitude from a three-phase voltage signal of the AC voltage transformer;

a first level detector that switches an output level from 0 to 1 when the positive-phase voltage amplitude becomes equal to or less than a first set value and switches an output level from 1 to 0 when the positive-phase voltage amplitude becomes equal to or more than a second set value;

a first DC current command suppressor that suppresses an absolute value of a DC current command value to the DC current adjuster to 0 or a first limit value that is 0.2 times a rated DC current or less in a period in which the output level of the first level detector is 1;

a negative-phase voltage detector that calculates a negative-phase voltage amplitude from a three-phase voltage signal of the AC voltage transformer;

a second level detector that switches an output level from 0 to 1 when the negative-phase voltage amplitude becomes equal to or more than a third set value and switches an output level from 1 to 0 when the negative-phase voltage amplitude becomes equal to or less than a fourth set value; and

a second DC current command suppressor that suppresses an absolute value of a DC current command value to the DC current adjuster to a second limit value that is 0.3 times a rated DC current or more and 0.7 times the rated DC current or less in a period in which the output level of the second level detector is 1.

3. The modular multilevel power converter according to claim 1 , wherein a voltage pulsation factor of an AC system frequency of the capacitor is defined by (maximum voltage value-minimum voltage value)/(maximum voltage value+minimum voltage value), and the voltage pulsation factor exceeds 10% when rated active power is output.

4. A variable speed generator-motor comprising the modular multilevel power converter according to claim 1 as a first modular multilevel power converter, wherein AC rotary electric machine is connected to an AC end of a second modular multilevel power converter connected back-to-back to a DC end of the first modular multilevel power converter.

5. The modular multilevel power converter according to claim 2 , wherein a voltage pulsation factor of an AC system frequency of the capacitor is defined by (maximum voltage value-minimum voltage value)/(maximum voltage value+minimum voltage value), and the voltage pulsation factor exceeds 10% when rated active power is output.

6. A variable speed generator-motor comprising the modular multilevel power converter according to claim 2 as a first modular multilevel power converter, wherein AC rotary electric machine is connected to an AC end of a second modular multilevel power converter connected back-to-back to a DC end of the first modular multilevel power converter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2023
From: BANDO, AKIRA; KIKUI, TAKAHIKO; WATANABE, KENTA; ITO, TOMOMICHI; KIYOFUJI, YASUHIRO; ISHIKAWA, MASAKAZU; NAKAIDE, YOSUKE
To: HITACHI MITSUBISHI HYDRO CORPORATION; HITACHI, LTD.
Reel/Frame 063363/0652 →
Continuity (1)
Related Publication 20230369988A1 · Nov 16, 2023
References Cited (25)
US 7960871B2 · Dommaschk et al. · 2011 [cited by applicant]
US 8144489B2 · Dommaschk et al. · 2012 [cited by applicant]
US 8233300B2 · Dommaschk et al. · 2012 [cited by applicant]
US 10164435B2 · Chung · 2018 [cited by examiner]
US 10536104B2 · Bando et al. · 2020 [cited by applicant]
US 10784808B2 · Bando et al. · 2020 [cited by applicant]
US 11223310B2 · Bando · 2022 [cited by examiner]
US 20140078796A1 · Inoue et al. · 2014 [cited by applicant]
US 20170047860A1 · Fujii et al. · 2017 [cited by applicant]
US 20180034399A1 · Bando · 2018 [cited by examiner]
EP 3264583A1 · 2018 [cited by applicant]
JP 4999930B2 · 2012 [cited by applicant]
JP 5189105B2 · 2013 [cited by applicant]
JP 5197623B2 · 2013 [cited by applicant]
JP 5993675B2 · 2016 [cited by applicant]
JP 2017143626A · 2017 [cited by applicant]
JP 6243083B2 · 2017 [cited by applicant]
WO 2015178376A1 · 2015 [cited by applicant]
Extended European Search Report issued in the corresponding European patent Application No. 20954196.0 dated May 27, 2024. [cited by applicant]
A. Moawwad, et al., “Novel Configuration and Transient Management Control Strategy for VSC-HVDC,” IEEE Transactions on Power Systems, vol. 29, No. 5, pp. 2478-2488, Sep. 2014, doi: 10.1109/TPWRS.2014.2305984. [cited by applicant]
Wen, Hao & Fazeli, Meghdad, “A new control strategy for low-voltage ride-through of three-phase grid-connected PV systems”, The Journal of Engineering, 2019. vol. 2019, Issue 18, pp. 4900-4905. [cited by applicant]
D. Jovcic. et al., “Low-Energy Protection System for DC Grids Based on Full-Bridge MMC Converters,” IEEE Transactions on Power Delivery, vol. 33, No. 4, pp. 1934-1943, Aug. 2018, doi: 10.1109/TPWRD.2018.2791635. [cited by applicant]
W. Han et al., “A Three-Terminal Hybrid HVDC System based on LCC and Hybrid MMC with DC Fault Clearance Capability,” 2019 10th International Conference on Power Electronics and ECCE Asia (ICPE 2019—ECCE Asia), Busan, Ko… [cited by applicant]
International Search Report issued in corresponding International Patent Application No. PCT/JP2020/035637, dated Dec. 1, 2020. [cited by applicant]
Ahmed Zama, “Modeling and Control of Modular Multilevel Converters (MMCs) for HVDC applications,” Nov. 2018, Figure III-40, p. 111. [cited by applicant]
Cited By (1)
US 12,542,437