TY - JOUR
T1 - Generalized Multivariable Grid-Forming Control Design for Power Converters
AU - Chen, Meng
AU - Zhou, Dao
AU - Tayyebi, Ali
AU - Prieto-Araujo, Eduardo
AU - Dörfler, Florian
AU - Blaabjerg, Frede
PY - 2022
Y1 - 2022
N2 - The grid-forming converter is an important unit in the future power system with more inverter-interfaced generators. However, improving its performance is still a key challenge. This paper proposes a generalized architecture of the grid-forming converter from the view of multivariable feedback control. As a result, many of the existing popular control strategies, i.e., droop control, power synchronization control, virtual synchronous generator control, matching control, dispatchable virtual oscillator control, and their improved forms are unified into a multivariable feedback control transfer matrix working on several linear and nonlinear error signals. Meanwhile, unlike the traditional assumptions of decoupling between AC and DC control, active power and reactive power control, the proposed configuration simultaneously takes all of them into consideration, which therefore can provide better performance. As an example, a new multi-input-multi-output-based grid-forming (MIMO-GFM) control is proposed based on the generalized configuration. To cope with the multivariable feedback, an optimal and structured H∞ synthesis is used to design the control parameters. At last, simulation and experimental results show superior performance and robustness of the proposed configuration and control.
AB - The grid-forming converter is an important unit in the future power system with more inverter-interfaced generators. However, improving its performance is still a key challenge. This paper proposes a generalized architecture of the grid-forming converter from the view of multivariable feedback control. As a result, many of the existing popular control strategies, i.e., droop control, power synchronization control, virtual synchronous generator control, matching control, dispatchable virtual oscillator control, and their improved forms are unified into a multivariable feedback control transfer matrix working on several linear and nonlinear error signals. Meanwhile, unlike the traditional assumptions of decoupling between AC and DC control, active power and reactive power control, the proposed configuration simultaneously takes all of them into consideration, which therefore can provide better performance. As an example, a new multi-input-multi-output-based grid-forming (MIMO-GFM) control is proposed based on the generalized configuration. To cope with the multivariable feedback, an optimal and structured H∞ synthesis is used to design the control parameters. At last, simulation and experimental results show superior performance and robustness of the proposed configuration and control.
KW - Capacitors
KW - Frequency control
KW - Grid-forming
KW - H∞ synthesis.
KW - MIMO communication
KW - Power system dynamics
KW - Power system stability
KW - Synchronous generators
KW - Voltage control
KW - feedback control
KW - multiple-input-multiple-output system
KW - power converter
UR - http://www.scopus.com/inward/record.url?scp=85127058237&partnerID=8YFLogxK
U2 - 10.1109/TSG.2022.3161608
DO - 10.1109/TSG.2022.3161608
M3 - Journal article
JO - I E E E Transactions on Smart Grid
JF - I E E E Transactions on Smart Grid
SN - 1949-3053
ER -