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Model Predictive Current Control of Switched Reluctance Motors with Inductance Auto-Calibration

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Abstract

This paper investigates application of an unconstrained model predictive controller (MPC) known as a finite horizon linear quadratic regulator (LQR) for current control of a switched reluctance motor (SRM). The proposed LQR can cope with the measurement noise as well as uncertainties within the machine inductance profile. This paper utilizes MPC to generate the optimal duty cycles for drive of SRMs using pulse-width modulation (PWM) in oppose to delta-modulation. In this paper, first a practical MPC scheme for embedded implementation of the system is introduced. Afterward, Kalman filtering is used for state estimation while an adaptive controller is used to dynamically tune and update both MPC and Kalman models. Hence, the overall control structure is considered as a stochastic MPC with adaptive model calibration. Finally, simulation and experimental results are provided to demonstrate the effectiveness of the proposed method.

Original languageAmerican English
JournalIEEE Transactions on Industrial Electronics
Volume63
DOIs
StatePublished - Jun 1 2016

Keywords

  • Adaptive
  • Controllers
  • Counting Circuits
  • Current Control
  • Delta Modulation
  • Electric Current Control
  • Electric Drives
  • Inductance
  • Kalman Filter
  • Kalman Filters
  • Model Predictive Control
  • Model Predictive Controller (MPC)
  • Model Predictive Controllers
  • Modulation
  • Motor Drive
  • Predictive Control
  • Predictive Control Systems
  • Pulse Width Modulation
  • Reluctance Motors
  • Stochastic Models
  • Stochastic Systems
  • Switched Reluctance Motor
  • Switched Reluctance Motor (SRM)
  • Uncertainty Analysis
  • Voltage Control

Disciplines

  • Electrical and Computer Engineering

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