An Improved Hybrid Space Vector PWM Technique for IM Drives
- 1 Sree Sastha Institute of Engineering and Technology, Chennai, India
- 2 VV College of Engineering, Tisaiyanvilai, India
- 3 Pondicherry Engineering College, Pondicherry University, India
- 4 Anna University, Chennai, India
Abstract
In this paper, an improved hybrid space vector pulse width modulation (HSVPWM) technique is proposed for IM (induction motor) drives. The basic principle involved in the proposed random pulse width modulation (RPWM) cuddled SVPWM is amalgamating the pre-calculated switching timings for various sections of hexagonal space vector boundary and the random selection of carrier between two triangular signals, in order to disband acoustic switching noise spectrum with improved fundamental component. The arbitrary selection between triangular carriers, which is decided by digital signal states (Low or High) of the linear feedback shift register (LFSR) based pseudo random binary sequence (PRBS) generator. The SVPWM offers a control degree of freedom in terms of positioning of vectors inside every sampling interval and hence it has six possible variants of the voltage vectors arrangements in each sector. The developed HSVPWM is thoroughly analyzed in using the MATLAB? based simulation for all SVPWM variants. From the simulation and experimental results viz. harmonic spectrum, harmonic spread factor (HSF), total harmonic distortion (THD) etc., and the superiority of the proposed scheme such as better utilization of DC bus and the randomization of the harmonic power are evidenced. For the practical implementation, Xilinx XC3S500E FPGA device has been used.
- Bose, B.K. (2002) Modern Power Electronics and AC Drives. Prentice-Hall PTR, Upper Saddle River, 210-224.
- Hmidet, A., Dhifaoui, R. and Hasnaoui, O. (2010) Development, Implementation and Experimentation on a DSPACE DS1104 of a Direct Voltage Control Scheme. Journal of Power Electronics, 10, 468-476. http://dx.doi.org/10.6113/JPE.2010.10.5.468
- Ursaru, O., Aghion, C., Lucanu, M. and Tigaeru, L. (2009) Pulse Width Modulation Command Systems Used for the Optimization of Three Phase Inverters. Advances in Electrical and Computer Engineering, 9, 22-27. http://dx.doi.org/10.4316/aece.2009.01004
- Trzynadlowski, A.M., Bech, M.M., Blaabjerg, F. and Pedersen, J.K. (1999) An Integral Space-Vector PWM Technique for DSP-Controlled Voltage-Source Inverters. IEEE Transactions on Industry Applications, 35, 1091-1097. http://dx.doi.org/10.1109/28.793370
- Ohnuma, Y. and Itoh, J.I. (2010) Space Vector Modulation for a Single Phase to Three Phase Converter Using an Active Buffer. International Power Electronics Conference, Sapporo, 21-24 June 2010, 574-580. http://dx.doi.org/10.1109/ipec.2010.5543304
- Hariram, B. and Marimuthu, N.S. (2005) Space Vector Switching Patterns for Different Applications—A Comparative Analysis. IEEE International Conference on Industrial Technology, Hong Kong, 14-17 December 2005, 1444-1449. http://dx.doi.org/10.1109/icit.2005.1600862
- Boopathi, R., Muthukumar, P., Melbamary, P. and Jeevananthan, S. (2012) Investigations on Harmonic Spreading Effects of SVPWM Switching Patterns in VSI Fed AC Drives. IEEE International Conference on Advances in Engineering, Science and Management, Nagapattinam, 30-31 March 2012, 651-656.
- Soumitra, D.A.S. and Narayanan, G. (2012) Noval Switching Sequences for a Space-Vector-Modulated Three-Level Inverter. IEEE Transactions on Industrial Electronics, 59, 1477-1487. http://dx.doi.org/10.1109/TIE.2011.2163373
- Krishnakumar, C., Muhilan, P., Sathiskumar, M. and Sakthivel, M. (2015) A New Random PWM Technique for Conducted-EMI Mitigation on Cuk Converter. Journal of Electrical Engineering & Technology, 10, 916-924. http://dx.doi.org/10.5370/JEET.2015.10.3.916
- Kim, K.-S., Jung, Y.-G. and Lim, Y.-C. (2009) A New Hybrid Random PWM Scheme. IEEE Transactions on Power Electronics, 24, 192-200. http://dx.doi.org/10.1109/TPEL.2008.2006613
- Lim, Y.-C., Wi, S.-O., Kim, J.-N. and Jung, Y.-G. (2010) A Pseudo Random Carrier Modulation Scheme. IEEE Transactions on Power Electronics, 25, 797-805. http://dx.doi.org/10.1109/TPEL.2009.2035699