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A High-Performance Indirect Torque Control Strategy for Switched Reluctance Motor Drives
Author(s) -
Cunhe Li,
Cunshan Zhang,
Jian Liu,
Dun-xin Bian
Publication year - 2021
Publication title -
mathematical problems in engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.262
H-Index - 62
eISSN - 1026-7077
pISSN - 1024-123X
DOI - 10.1155/2021/6618539
Subject(s) - control theory (sociology) , switched reluctance motor , torque ripple , direct torque control , stall torque , torque , controller (irrigation) , torque motor , damping torque , engineering , reluctance motor , copper loss , computer science , control (management) , induction motor , physics , agronomy , voltage , artificial intelligence , biology , electrical engineering , thermodynamics
This paper proposes a high-performance indirect control scheme for torque ripple minimization in the switched reluctance motor (SRM) drive system. Firstly, based on the nonlinear torque-angle characteristic of SRM, a novel torque sharing function is developed to obtain the optimal current profiles such that the torque ripple is minimized with reduced copper losses. Secondly, in order to track current accurately and indirectly achieve high-performance torque control, a robust current controller is derived through the Lyapunov stability theory. The proposed robust current controller not only considers the motor parameter modeling errors but also realizes the fixed frequency current control by introducing the pulse width modulation method. Further, a disturbance-observer-based speed controller is derived to regulate the motor speed accurately, and the load torque is considered an unknown disturbance. The simulations and experiments on a 1.5 kW SRM prototype are carried out to demonstrate the effectiveness of the proposed high-performance indirect torque control strategy. Results verify the superiority of the proposed strategy with respect to the torque ripple suppression, system efficiency, and antidisturbance.

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