Design of matrix converter topology and modulation algorithms with shorted and opened failure tolerance

This paper proposes a matrix converter structure and modulation techniques for fault-tolerant operations in case of single-switch short-circuit failures as well as single-switch open-circuit faults and single-phase open-circuit failures. The fault tolerant topology is achieved by redefining the matrix converter configuration with the help of auxiliary devices including connecting devices and fast-acting fuses. Based on the reconfigured converter structure, fault-tolerant control schemes are individually developed to produce output currents for obtaining continuous operation, depending on the types of occurred failures. The proposed fault-tolerant topology and associated pulsewidth modulation algorithms require only minimum hardware modifications to the conventional off-the-shelf three-phase matrix converter, by including electronic components such as triacs/SCRs and fast-acting fuses. In addition, the developed approach offers the potential of mitigating not only semiconductor device faults also drive related faults such as motor insulation failures. The added fault-tolerant capability can greatly improve reliability of the overall matrix converter system even after shorted switch or opened switch/phase losses, with minimal system cost increase. Simulation and experimental results are shown to demonstrate the feasibility of the proposed fault-tolerant scheme to the matrix converter drives.

[1]  K. Bradley,et al.  Reliability comparison of matrix and other converter topologies , 2006, IEEE Transactions on Aerospace and Electronic Systems.

[2]  T.A. Lipo,et al.  Fault tolerant three-phase AC motor drive topologies: a comparison of features, cost, and limitations , 2003, IEEE Transactions on Power Electronics.

[3]  D. Borojevic,et al.  Space vector modulated three-phase to three-phase matrix converter with input power factor correction , 1995 .

[4]  A. Alesina,et al.  Analysis and design of optimum-amplitude nine-switch direct AC-AC converters , 1989 .

[5]  T.A. Lipo,et al.  A strategy for improving reliability of field oriented controlled induction motor drives , 1991, Conference Record of the 1991 IEEE Industry Applications Society Annual Meeting.

[6]  P. Jacob,et al.  Thermal reliability of power insulated gate bipolar transistor (IGBT) modules , 1996, Twelfth Annual IEEE Semiconductor Thermal Measurement and Management Symposium. Proceedings.

[7]  T. F. Podlesak,et al.  Matrix Converters for Hybrid Vehicle Applications , 1998 .

[8]  Olaf Simon,et al.  Modern solutions for industrial matrix-converter applications , 2002, IEEE Trans. Ind. Electron..

[9]  Silverio Bolognani,et al.  Experimental fault-tolerant control of a PMSM drive , 1998, IECON '98. Proceedings of the 24th Annual Conference of the IEEE Industrial Electronics Society (Cat. No.98CH36200).