IP Library › Granted Patent US 12,726,112
Granted Patent B2
US 12,726,112 · App. 19/132,707 · Granted Sep 1, 2026

Method for energizing a modular multilevel converter

Inventors: Ying Jiang Häfner (Ludvika, SE); Jimmy Öhman (Ludvika, SE); Andreas Vinnberg (Orsa, SE)
Assignee: HITACHI ENERGY LTD
H02M1/36H02M1/0067H02M7/219H02M7/4835H02M7/483
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Quick Facts
Patent No.
US 12,726,112
App. No.
19/132,707
Filed
May 23, 2025
Granted
Sep 1, 2026
Kind
B2
Art Unit
2838
USPC
363/49
Abstract

The present disclosure relates to a method for energizing a modular multilevel converter comprising converter valves that each have interconnected cells. Each cell comprises power electronic switches in a full-bridge arrangement, a chargeable element, and gate drive units, one gate drive unit for each power electronic switch. The method includes: providing power to the modular multilevel converter from an external power supply; powering the cells, thereby charging the chargeable elements; generating, when a cell voltage caused by said charging exceeds a first threshold voltage level, a cell sub-ready signal for that cell; generating, when at least a predetermined minimum number of cells have generated the sub-ready signal, a subready_for_operation signal; and running a deblocking sequence that electrically configures the cells to be continuously charged as half-bridge cells, and keep the first power electronic switch closed until the cell voltage has reached a converter operable voltage.

Claims (14)

1 . A method for energizing a modular multilevel converter comprising converter valves, each converter valve having a plurality of interconnected cells, wherein each cell comprises a plurality of power electronic switches in a full-bridge arrangement, a chargeable element, and a plurality of gate drive units, one gate drive unit for each power electronic switch, the method comprising:

providing power to the modular multilevel converter from an external power supply;

powering the cells, thereby charging the chargeable elements of the cells;

generating, when a cell voltage caused by said charging exceeds a first threshold voltage level, a cell sub-ready signal for that cell;

generating, when at least a predetermined minimum number of cells have generated the sub-ready signal, a sub-ready for operational signal;

running a deblocking sequence comprising closing a first power electronic switch in all cells to electrically configure the cells to be continuously charged as a half-bridge cells, and keep the first power electronic switch closed until the cell voltage has reached a converter operable voltage, which is higher than a second threshold voltage, said powering the cells comprising initially powering only a first gate drive unit of said plurality of gate drive units of each cell, the first gate drive unit being connected with the first power electronic switch; and

powering, when the second threshold voltage has been reached, the rest of the gate drive units in each cell.

2 . The method of claim 1 , said generating a cell sub-ready signal being followed by sending the cell sub-ready signal to a valve control unit controlling the valves, which valve control unit is included in the modular multilevel converter.

3 . The method according to claim 2 , said deblocking sequence comprising opening the first power electronic switch and setting the modular multilevel converter in an operation mode.

4 . The method according to claim 1 , said deblocking sequence comprising opening the first power electronic switch and setting the modular multilevel converter in an operation mode.

5 . A modular multilevel converter comprising converter valves, each converter valve having a plurality of interconnected cells, wherein each cell comprises a plurality of power electronic switches in a full-bridge arrangement, a chargeable element, and a plurality of gate drive units, one gate drive unit for each power electronic switch, the modular multilevel converter being configured to, at an initial power up, receive power from an external power supply and power the cells, thereby charging the chargeable elements of the cells;

wherein each cell is configured to, when a cell voltage caused by said charging exceeds a first threshold voltage level, generate a cell sub-ready signal; and

wherein the modular multilevel converter is configured to, when at least a predetermined minimum number of cells have generated the sub-ready signal, run a deblocking sequence comprising closing a first power electronic switch in all cells to electrically configure the cells to be continuously charged as a half-bridge cells, and keep the first power electronic switch closed until the cell voltage has reached a converter operable voltage, which is higher than a second threshold voltage, wherein each cell comprises control logic configured to, at the beginning of the initial power up, merely provide power to a first gate drive unit of said plurality of gate drive units of each cell, the first gate drive unit being connected with the first power electronic switch, and, when the second threshold voltage has been reached, provide power to the rest of the gate drive units in each cell.

6 . The modular multilevel converter of claim 5 , further comprising a valve control unit, which is configured to control the converter valves and to receive the sub-ready signals from the cells.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 13, 2026
From: JIANG HÄFNER, YING
To: HITACHI ENERGY LTD
Reel/Frame 076065/0350 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2025
From: HAFNER, YING-JIANG; ÖHMAN, JIMMY; VINNBERG, ANDREAS
To: HITACHI ENERGY SWITZERLAND AG
Reel/Frame 071223/0626 →
MERGER Recorded May 27, 2025
From: HITACHI ENERGY SWITZERLAND AG
To: HITACHI ENERGY LTD
Reel/Frame 071223/0652 →
Priority Claims (1)
EP 22212176 · Dec 8, 2022 · regional
Continuity (1)
Related Publication 20260005600A1 · Jan 1, 2026
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