TY - JOUR
T1 - An enhanced time-delay-based reference current identification method for single-phase system
AU - Gautam, Samir
AU - Lu, Yuezhu
AU - Taghizadeh, Seyedfoad
AU - Xiao, Weidong
AU - Lu, Dylan Dah-Chuan
PY - 2022/7
Y1 - 2022/7
N2 - This article proposes an enhanced time-delay-based current component identification method for single-phase systems to overcome the absence of filtering and poor grid frequency response of conventional method. The proposed technique integrates a delayed signal cancellation with a time-delay unit, to incorporate a dc offset rejection feature, while maintaining speedy and precise extraction of orthogonal current components. The frequency adaption is also developed through the incorporation of linear interpolation. The dynamic and steady-state performance of the proposed method is analyzed and compared with two advanced second-order generalized integrator (SOGI) based methods, namely, modified SOGI and cascaded SOGI under different operating scenarios. The simulation and experimental results substantiate the advantage of zero steady-state error and lower settling time of the proposed solution while exhibiting comparable overshoot with advanced SOGI-based methods.
AB - This article proposes an enhanced time-delay-based current component identification method for single-phase systems to overcome the absence of filtering and poor grid frequency response of conventional method. The proposed technique integrates a delayed signal cancellation with a time-delay unit, to incorporate a dc offset rejection feature, while maintaining speedy and precise extraction of orthogonal current components. The frequency adaption is also developed through the incorporation of linear interpolation. The dynamic and steady-state performance of the proposed method is analyzed and compared with two advanced second-order generalized integrator (SOGI) based methods, namely, modified SOGI and cascaded SOGI under different operating scenarios. The simulation and experimental results substantiate the advantage of zero steady-state error and lower settling time of the proposed solution while exhibiting comparable overshoot with advanced SOGI-based methods.
U2 - 10.1109/JESTIE.2021.3102436
DO - 10.1109/JESTIE.2021.3102436
M3 - Article
SN - 2687-9735
VL - 3
SP - 683
EP - 693
JO - IEEE Journal of Emerging and Selected Topics in Industrial Electronics
JF - IEEE Journal of Emerging and Selected Topics in Industrial Electronics
IS - 3
ER -