4.8 Article

Fault-Tolerant Sequential MPC for Vertical Switch Open-Circuit Fault and ZSCC Suppression for Parallel T-Type Converters

Journal

IEEE TRANSACTIONS ON POWER ELECTRONICS
Volume 37, Issue 10, Pages 11787-11802

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TPEL.2022.3175736

Keywords

Switches; Circuit faults; Modulation; Predictive control; Power harmonic filters; Fault tolerant systems; Capacitors; Fault-tolerant control (FTC); sequential model predictive control (SMPC); vertical switch open-circuit fault; zero-sequence circulating current (ZSCC)

Funding

  1. Fundamental Research Funds for the Central Universities of China [ZYGX2019J033]
  2. State Key Laboratory of Control and Simulation of Power System Generation Equipment, China [SKLD20M11]
  3. Tsinghua University, China
  4. Guangdong Basic and Applied Basic Research Foundation [2021A1515010666]
  5. Velux Foundations under the VILLUM Investigator Grant Center for Research on Microgrids [25920, FB0008, 1210208]

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This paper proposes a fault-tolerant control (FTC) technique to enhance the reliability of power electronic systems. It investigates the suppression of zero-sequence circulating current (ZSCC) induced by a vertical switch open-circuit fault using software-based FTC. The paper develops a simplified sequential model predictive control (SSMPC) technique for fault-tolerant control and provides two methods for controlling the faulty condition.
A fault-tolerant control (FTC) is proposed for enhancing the reliability of power electronic systems. The software-based FTC of parallel-connected three-level T-type converters (3LT(2)Cs) for suppressing zero-sequence circulating current (ZSCC) induced by a vertical switch open-circuit fault is investigated. A simplified sequential model predictive control (SSMPC)-based FTC technique is developed. Parallel-3LT(2)Cs and their prediction models are introduced, followed by an SSMPC for the no-fault condition. The model inaccuracies under vertical switch faults are elaborated. For the faulty 3LT(2)C, two fault-tolerant SSMPC (FT-SSMPC) methods are provided by creating a sequential predictive controller that considers ZSCC suppression and grid current tracking. The control policies for the ZSCC are changed from the standard feedback-free to feedback-based cost function (CF) optimization using the unimproved FT-SSMPC. Furthermore, an improved FT-SSMPC is proposed using a phase-deficient CF, which increases the accuracy of the mathematical relation of the fault condition. After fault diagnosis, the proposed method achieves neutral-point voltage balance and excellent point-of-common-coupling current, effectively suppresses the ZSCC, and increases the control reliability. Finally, experiments demonstrate the effectiveness of the proposed FT-SSMPC under various conditions.

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