IP Library Granted Patent US 12,627,156
Granted Patent B2
US 12,627,156 · App. 18/947,486 · Granted May 12, 2026

Method and controller for controlling a power converter connected to a grid

Inventors: Philip Joseph Hart (Niskayana, NY); Hanchao Liu (Niskayana, NY); Atinuke Ademola-Idowu (Niskayana, NY); Matias Uolevi Berg (Pirkanmaa, FI); Krishnakumar Raman Vasudevan (Bengaluru, IN)
Assignee: GE VERNOVA INFRASTRUCTURE TECHNOLOGY LLC
H02J3/44H02J3/381
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Quick Facts
Patent No.
US 12,627,156
App. No.
18/947,486
Granted
May 12, 2026
Kind
B2
Abstract

A method for controlling a power converter connected to a grid, wherein the power converter is initially controlled in a grid-forming mode to output current at a nominal voltage, based on control data provided by a controller. The method includes determining that a first parameter exceeds a first threshold. Then: controlling the power converter in a first limiting mode, by limiting the power converter output current based on a present value and/or a reference value; and determining the output current of the power converter. Responsive to determining that the output current is reaching an equilibrium condition: determining a virtual impedance for the power converter; modifying the control system based on the virtual impedance; and controlling the power converter in a constrained grid-forming mode, including the modified control system determining the control data based on measured signals indicative of currents and/or voltages downstream from the power converter, and a reference signal.

Claims (83)

1 . A method for controlling a power converter connected to a grid, wherein the power converter is initially controlled in a grid-forming mode to output current at a nominal voltage, based on control data provided by a controller, the controller comprising a control system which determines the control data based on measured signals indicative of currents and/or voltages downstream from the power converter, and a reference signal; the method comprising:

determining, by the controller, that a first parameter related to the controller and/or the power converter exceeds a first threshold;

responsive to determining that the first parameter exceeds the first threshold:

controlling, by the controller, the power converter in a first limiting mode, by limiting the power converter output current based on a present value and/or a reference value;

determining, by the controller, the output current of the power converter;

responsive to determining that the output current is at or is close to an equilibrium condition:

determining, by the controller, a virtual impedance for the power converter based on the output current of the power converter;

modifying, by the controller, the control system based on the virtual impedance; and

controlling, by the controller, the power converter in a first constrained grid-forming mode, comprising the modified control system determining the control data based on measured signals indicative of currents and/or voltages downstream from the power converter, and a reference signal.

2 . The method of claim 1 , further comprising:

determining, by the controller, that a second parameter related to the controller and/or the power converter exceeds a second threshold;

responsive to determining that the second parameter exceeds the second threshold:

controlling, by the controller, the power converter in a second limiting mode, by limiting the power converter output current based on an updated present value and/or an updated reference value;

determining, by the controller, an updated output current of the power converter;

responsive to determining that the updated output current is at or is close to an equilibrium condition:

determining, by the controller, an updated virtual impedance for the power converter based on the updated output current of the power converter;

further modifying, by the controller, the control system based on the updated virtual impedance; and

controlling, by the controller, the power converter in a second constrained grid-forming mode, comprising the further modified control system determining the control data based on the measured signals indicative of currents and/or voltages downstream from the power converter, and the reference signal.

3 . The method of claim 1 , wherein the control system is a cascaded control system including a voltage controller and a current controller; wherein

the voltage controller uses a voltage control system to produce first data, based on the reference signal and the measured signals, and outputs the first data to the current controller;

the current controller uses a current control system to produce second data, based on the first data and the measured signals;

the controller determines the control data based on the second data; and

the controller controls the power converter in the first limiting mode by setting the first data to be equal to the present value and/or the reference value, thereby limiting the power converter output current.

4 . The method of claim 1 , wherein

the control system is a direct voltage controller;

the controller comprises a limiting controller; and

the controller controls the power converter in the first limiting mode by the limiting controller restricting the output current of the power converter from increasing past the present value or the reference value, thereby limiting the power converter output current.

5 . The method of claim 1 , wherein

the determining, by the controller, the virtual impedance for the power converter further comprises determining, by the controller, the virtual impedance and a fixed virtual voltage offset for the power converter based on the output current of the power converter; and

the modifying, by the controller, the control system based on the virtual impedance further comprises modifying, by the controller, the control system based on the virtual impedance and the fixed virtual voltage offset.

6 . The method of claim 1 , wherein the modifying of the control system based on the virtual impedance comprises:

determining, by the controller, an adjustment term for the control system by calculating a virtual voltage or a virtual current as a function of the virtual impedance and the output current; and

implementing, by the controller, the adjustment term into the control system.

7 . The method of claim 1 , wherein the controller determines the virtual impedance by:

calculating, whilst the power converter is in the first limiting mode, a virtual voltage defined as a voltage difference between an internal voltage phasor reference for the power converter and a node voltage at a node between an output of the power converter and the grid; and

based on a Thevenin equivalent circuit of the power converter connected to the grid, including the virtual voltage, the output current of the power converter in the equilibrium condition, and the virtual impedance, using circuit analysis methods to resolve the Thevenin equivalent circuit for the virtual impedance.

8 . The method of claim 7 , further comprising:

reducing, by the controller, the virtual impedance, as a result of the voltage difference between the internal voltage phasor reference for the power converter and the node voltage at the node reducing in magnitude, and thereby returning to control the power converter in the initial grid-forming mode.

9 . The method of claim 1 , wherein a time period from determining that the first parameter related to the controller and/or the power converter exceeds the first threshold, to the controller completing the step of controlling the power converter in the first liming mode, is less than or equal to 50 ms.

10 . The method of claim 1 , wherein the determining that the first parameter related to the controller and/or power converter exceeds the first threshold comprises one or more of:

determining that a current reference of a dq-frame current regulator using commanded angle or Phase Locked Loop, PLL, angle has saturated; and/or

determining that a d or q current reference inputted into a Proportional Integral, PI, controller in a current controller has saturated; and/or

determining that a d or q current reference to be inputted, following an inverse reference frame transformation, into a Proportional Resonant, PR, controller in a current controller has saturated; and/or

determining that a d or q current reference to be inputted, following an inverse reference frame transformation, into a deadbeat controller in a current controller has saturated; and/or

determining that a phasor current limit has been reached; and/or

determining that an active power limit has been reached; and/or

determining that an energy limit has been reached; and/or

determining that a component is pulse dropping or blocking; and/or

determining that a voltage reference has saturated; and/or

determining that a voltage output has reached a limit; and/or

determining that a modulation index has saturated.

11 . A controller for controlling a power converter connected to a grid, the controller comprising:

a control system arranged to determine control data based on measured signals indicative of currents and/or voltages downstream from the power converter, and a reference signal;

wherein the controller is arranged to control the power converter in a grid-forming mode to output current at a nominal voltage, based on the control data; and

wherein the controller is configured to:

determine that a first parameter related to the controller and/or the power converter exceeds a first threshold;

responsive to determining that the first parameter exceeds the first threshold:

control the power converter in a first limiting mode, wherein the controller is configured to limit the power converter output current based on a present value and/or a reference value;

determine the output current of the power converter;

responsive to determining that the output current is at or is close to an equilibrium condition:

determine a virtual impedance for the power converter based on the output current of the power converter;

modify the control system based on the virtual impedance; and

control the power converter in a first constrained grid-forming mode, wherein the modified control system is configured to determine the control data based on measured signals of currents and/or voltages downstream from the power converter, and a reference signal.

12 . The controller of claim 11 , wherein the controller is further configured to:

determine that a second parameter related to the controller and/or the power converter exceeds a second threshold;

responsive to determining that the second parameter exceeds the second threshold:

control the power converter in a second limiting mode, wherein the controller is configured limit the power converter output current based on an updated present value and/or an updated reference value;

determine an updated output current of the power converter;

responsive to determining that the updated output current is at or is close to an equilibrium condition:

determine an updated virtual impedance for the power converter based on the updated output current of the power converter;

further modify the control system based on the updated virtual impedance; and

control the power converter in a second constrained grid-forming mode, wherein the further modified control system is configured to determine the control data based on the measured signals and the reference signal.

13 . The controller of claim 11 , wherein the control system is a cascaded control system comprising a voltage controller and a current controller; wherein

the voltage controller is configured to use a voltage control system to produce first data, based on the reference signal and the measured signals, and is further configured to output the first data to the current controller;

the current controller is configured to use a current control system to produce second data, based on the first data and the measured signals;

the controller is further configured to determine the control data based on the second data; and

the controller is further configured to control the power converter in the first limiting mode by setting the first data to be equal to the present value or the reference value, thereby limiting the power converter output current.

14 . The controller of claim 11 , wherein

the controller is configured to modify the control system based on the virtual impedance comprises that the controller is configured to determine an adjustment term for the control system by calculating a virtual voltage or a virtual current as a function of the virtual impedance and the output current, and implement the adjustment term into the control system.

15 . A power converter comprising:

a DC side for connection to a DC source;

an AC side for connection to a grid; and

the controller of claim 11 .

Assignments (2)
CORRECTIVE ASSIGNMENT TO UP DATE THE INVENTORS ATINUKE ADEMOLA IDOWU WAS INADVERTENTLY OMITTED ON THE ORIGINAL FILING OF THIS ASSIGNMENT. PREVIOUSLY RECORDED ON REEL 69260 FRAME 507. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Nov 26, 2024
From: HART, PHILIP JOSEPH; BERG, MATIAS UOLEVI; LIU, HANCHAO; KRISHNAKUMAR, RAMAN VASUDEVAN; IDOWU, ATINUKE ADEMOLA
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 069468/0771 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 14, 2024
From: HART, PHILIP JOSEPH; BERG, MATIAS UOLEVI; LIU, HANCHAO; KRISHNAKUMAR, RAMAN VASUDEVAN
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 069260/0507 →
Priority Claims (1)
EP 23212105 · Nov 24, 2023 · regional
Continuity (1)
Related Publication 20250175010A1 · May 29, 2025
References Cited (10)
US 10756536B2 · Kral · 2020 [cited by examiner]
US 20230369865A1 · Hart et al. · 2023 [cited by applicant]
US 20240204533A1 · Ferdowsi · 2024 [cited by examiner]
US 20240305226A1 · Gross · 2024 [cited by examiner]
CN 115459292A · 2022 [cited by applicant]
CN 116436091A · 2023 [cited by applicant]
CN 117096944A · 2023 [cited by applicant]
WO 2021029313A1 · 2021 [cited by applicant]
WO 2023117004A1 · 2023 [cited by applicant]
Extended European Search Report issued in EP Application No. 23212105.3 dated Jun. 27, 2024, 9 pages. [cited by applicant]