Hardware-in-the-Loop (HIL) to reduce the development cost of power electronic converters

This paper proposes a validation methodology for implementing solutions to challenges involved with power electronic converter design. Typically, the design process consists of first simulating the converter and then implementing it on hardware. Here, an intermediate step is added where the controller is connected to a real-time simulator before being connected to real hardware. This allows for virtual testing of scenarios that cannot be conducted with physical hardware without risking damage to the hardware. This technique will be demonstrated by implementing a new method of control, the drifting PWM, for a multilevel packed U-cell (PUC) converter. The drifting PWM allows for a slight variation in the switching state so that regulation of the auxiliary capacitor can be achieved. This method will be simulated offline and in real-time to demonstrate its long term reliability. Once fully functional, the controller is implemented on an FPGA board, from which it will control the real converter. Simulation results, as well as experimental results, are presented and compared. It is demonstrated that the HIL technique is a very effective tool for designing multilevel converter controllers.

[1]  A. M. Leite da Silva,et al.  Monte Carlo Simulation to Assess the Optimum Number of Distribution Spare Transformers , 2008 .

[2]  Kamal Al-Haddad,et al.  A new high power efficiency cascaded U cells multilevel converter , 2009, 2009 IEEE International Symposium on Industrial Electronics.

[3]  J. C. Balda,et al.  A versatile laboratory test bench for developing powertrains of electric vehicles , 2002, Proceedings IEEE 56th Vehicular Technology Conference.

[4]  Wei Li,et al.  Monte-carlo study on a large-scale power system model in real-time using eMEGAsim , 2009, 2009 IEEE Energy Conversion Congress and Exposition.

[5]  K. Al-Haddad,et al.  A new method of control for multilevel converter implemented on FPGA , 2009, 2009 IEEE Electrical Power & Energy Conference (EPEC).

[6]  K. Al-Haddad,et al.  A novel high energetic efficiency multilevel topology with reduced impact on supply network , 2008, 2008 34th Annual Conference of IEEE Industrial Electronics.

[7]  Youssef Ounejjar,et al.  A novel high efficient fifteen level power converter , 2009, 2009 IEEE Energy Conversion Congress and Exposition.