Title :
Low-Complexity Model Predictive Power Control: Double-Vector-Based Approach
Author :
Yongchang Zhang ; Wei Xie ; Zhengxi Li ; Yingchao Zhang
Author_Institution :
Power Electron. & Motor Drives Eng. Res. Center of Beijing, North China Univ. of Technol., Beijing, China
Abstract :
Conventional model predictive power control (MPPC) achieves good steady-state performance and quick dynamic response by minimizing a cost function relating to the power errors. However, applying single voltage vector during the whole control period fails to reduce the power ripples to a minimal value; particularly in the two-level converter with limited switching states. Recently, the concept of duty cycle control has been introduced in MPPC to achieve further power ripple reduction. Although better steady-state performance is obtained, a lot of calculations are needed when deciding the best voltage vector and its corresponding duration. This paper proposes a low-complexity MPPC with quick voltage selection and fast duty cycle calculation. Different from prior MPPC, the negative conjugate of complex power in synchronous frame is selected as the control variable. As a result, only one prediction is required to select the best voltage vector, and its duration is determined base on the principle of error minimization of both active and reactive power. Further study reveals that the proposed low-complexity MPPC is equivalent to the recently reported MPPC with duty cycle control. Simulation and experimental results obtained from a two-level three-phase ac/dc converter are presented to confirm the theoretical study and the effectiveness of the proposed method.
Keywords :
AC-DC power convertors; dynamic response; minimisation; reactive power control; MPPC; complex power; cost function; double-vector-based approach; duty cycle calculation; duty cycle control; dynamic response; error minimization; low-complexity model; model predictive power control; negative conjugate; power errors; power ripple reduction; reactive power; single voltage vector; steady-state performance; synchronous frame; two-level three-phase ac-dc converter; Complexity theory; Optimized production technology; Reactive power; Steady-state; TV; Vectors; Voltage control; AC/DC converter; double vector; model predictive power control (MPPC);
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2014.2304935