IP Library › Granted Patent US 12,645,188
Granted Patent B2
US 12,645,188 · App. 19/236,582 · Granted Jun 2, 2026

Arrangement and a method for balancing power in an AC power transmission system

Inventors: Jon Rasmussen (Västra Frölunda, SE); Richard Rivas (Västerås, SE); Haofeng Bai (Västerås, SE); Jean-Philippe Hasler (Västerås, SE)
Assignee: HITACHI ENERGY LTD
G05B13/0205H02J3/32
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Quick Facts
Patent No.
US 12,645,188
App. No.
19/236,582
Granted
Jun 2, 2026
Kind
B2
Abstract

An arrangement, which is connectable to an alternating current (AC) power transmission system, comprising a static synchronous compensator device having a converter unit and an energy storage unit connected with the converter unit; a power absorption device; and a control device connected with the static synchronous compensator device and with the power absorption device. The control device is configured to control the static synchronous compensator device to exchange power with the AC power transmission system, and to control the power absorption device in dependence of a state of charge of the energy storage unit and a state of the power transmission system. The control device is configured to determine whether there is a need to absorb active power from the AC power transmission system in excess of what the static synchronous compensator device is absorbing and, in case of a need, control the power absorption device to absorb active power.

Claims (23)

1 . An arrangement which is connectable to an alternating current (AC) power transmission system, the arrangement comprising: a static synchronous compensator device having a converter unit and an energy storage unit connected with the converter unit; a power absorption device; and a control device connected with the static synchronous compensator device and with the power absorption device,

wherein the control device is configured to control the static synchronous compensator device to exchange power with the AC power transmission system, and to control the power absorption device in dependence of a state of charge of the energy storage unit and a state of the power transmission system, and

wherein the control device is configured to

determine whether or not there is a need to absorb active power from the AC power transmission system in excess of what the static synchronous compensator device is currently absorbing, and

when determining that there is the need, control the power absorption device to dissipate active power, and

wherein the power absorption device comprises a resistor unit and a current control unit connected in series with the resistor unit, wherein the control device, when controlling the power absorption device to dissipate active power, is configured to control the current control unit to provide current to the resistor unit.

2 . The arrangement according to claim 1 , wherein the power absorption device comprises a separate branch for each phase that it is configured to be connected to, wherein the current control unit comprises a separate current control module for each branch, and the resistor unit comprises a separate resistor module for each branch, wherein the current control module and the resistor module of each branch are connected in series.

3 . The arrangement according to claim 1 , wherein the control device is configured to determine that there is a need to absorb active power from the AC power transmission system in excess of what the static synchronous compensator device is currently absorbing, where the need results from at least one of the state of charge of the energy storage unit having reached an upper limit, and the need for power absorption raising faster than the energy storage unit is able to handle.

4 . The arrangement according to claim 1 , wherein the power absorption device is configured to be connected to the AC power transmission system in parallel with the static synchronous compensator device.

5 . The arrangement according to claim 1 , wherein the power absorption device is configured to act as a backup device, with regard to power absorption, for the static synchronous compensator device.

6 . The arrangement according to claim 1 , wherein the power absorption device is configured to be connected to merely one or two phases of the AC power transmission system.

7 . The arrangement according to claim 1 , wherein the power absorption device is connected to a direct current side of the static synchronous compensator device in parallel with the energy storage unit.

8 . The arrangement according to claim 1 , wherein the current control unit comprises semiconductor elements.

9 . A method of controlling an arrangement which is connected to an alternating current (AC) power transmission system, the arrangement comprising a static synchronous compensator device having a converter unit and an energy storage unit connected with the converter unit, and a power absorption device, the method comprising:

controlling the static synchronous compensator device to exchange power with the AC power transmission system, and

controlling the power absorption device in dependence of a state of charge of the energy storage unit and a state of the power transmission system, including determining whether or not there is a need to absorb active power from the AC power transmission system in excess of what the static synchronous compensator device is currently absorbing, and

when determining that there is the need, controlling the power absorption device to dissipate active power,

wherein the power absorption device includes a resistor unit and a current control unit connected in series with the resistor unit; and

wherein the arrangement further includes a control device connected with the static synchronous compensator device and with the power absorption device, said controlling the power absorption device to dissipate active power comprising controlling, by means of the control device, the current control unit to provide a current to the resistor unit.

10 . The method according to claim 9 , said determining comprising at least one of determining that the state of charge of the energy storage unit has reached an upper limit, and detecting that the need for power absorption is raising faster than the energy storage unit is able to handle.

11 . The method according to claim 9 , said controlling the static synchronous compensator device to exchange power with the AC power transmission system comprising controlling the state of charge of the energy storage unit to be between a state of fully discharged and a state of fully charged when there is no need for exchanging power with the AC power transmission system.

12 . The method according to claim 9 , wherein the power absorption device is connected to merely one or two phases of the AC power transmission system and is connected in parallel with the static synchronous compensator device, said controlling the static synchronous compensator device to exchange power with the AC power transmission system comprising balancing asymmetrical currents caused by the power absorption device.

13 . The method according to claim 9 , wherein the method stabilizes the frequency of the AC power transmission system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 12, 2025
From: RASMUSSEN, JON; RIVAS, RICHARD; BAI, HAOFENG; HASLER, JEAN-PHILIPPE
To: HITACHI ENERGY LTD
Reel/Frame 071402/0348 →
Priority Claims (1)
EP 24181595 · Jun 12, 2024 · regional
Continuity (1)
Related Publication 20250383633A1 · Dec 18, 2025
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