An Investigation of Power Converters Fed BLDC Motor for Adjustable Speed
- 1 Department of Electrical and Electronics Engineering, Kumaraguru College of Technology, Coimbatore, India
- 2 Department of Electrical and Electronics Engineering, Government College of Technology, Coimbatore, India
Abstract
This paper reports the converter topologies which are employed for better Power Factor Correction at the input side. The Power Factor Correction is an important factor when considering the Power Quality. Based on the converter topologies, the Bridgeless converters are preferred in order to reduce the number of switching devices, losses associated with it and improve the Power Quality further more. This paper investigates about the Power Factor performances and conduction losses of the Bridgeless Power Factor Corrector Converters which see through the benefits and limitations by analyzing the Bridgeless Buck-Boost Converter, Bridgeless SEPIC converter and Bridgeless CUK converter. The resultant voltage is fed to the BLDC motor which is rapidly replacing the Induction motor for its better operating characteristics. These strategies are being analyzed using the MATLAB/Simulink software and the results are verified through the experimental analysis. The converter choice is preferred through the performance characteristics and Power Factor Correction at the supply. The Power Factor obtained should be within the acceptable limits under IEC 61000-3-2 standards.
- Fardoun, A.A., Ismail, E.H., Sabzali, A.J. and Al-Saffar, M.A. (2012) New Efficient Bridgless Cuk Rectifiers for PFC Applications. IEEE Transactions on Power Electronics, 27, 3292-3301. http://dx.doi.org/10.1109/TPEL.2011.2182662
- Wei, H. and Batarseh, I. (1998) Comparison of Basic Converter Topologies for Power Factor Correction. Proceedings of IEEE ‘98 Southeastcon, Orlando, 24-26 April 1998, 348-353. http://dx.doi.org/10.1109/SECON.1998.673368
- Singh, B., Singh, B.N., Chandra, A., Al-Haddad, K., Pandey, A. and Kothari, D.P. (2003) A Review of Single-Phase Improved Power Quality Ac—Dc Converters. IEEE Transactions on Industrial Electronics, 50, 962-981. http://dx.doi.org/10.1109/TIE.2004.825341
- Chen, J., Maksimovic, D. and Erickson, R.W. (2006) Analysis and Design of a Low-Stress Buck-Boost Converter in Universal Input PFC Applications. IEEE Transactions on Power Electronics, 21, 320-329. http://dx.doi.org/10.1109/TPEL.2005.869744
- Gopalarathnam, T. and Toliyat, H.A. (2003) A New Topology for Unipolar Brushless Dc Motor Drive with High Power Factor. IEEE Transactions on Power Electronics, 18, 1397-1404. http://dx.doi.org/10.1109/TPEL.2003.818873
- Shao, J. (2006) An Improved Microprocessor-Based Sensor Less Brushless DC (BLDC) Motor Drive for Automotive Applications. IEEE Transactions on Industrial Electronics, 42, 1216-1221. http://dx.doi.org/10.1109/TIA.2006.880888
- Yang, J.-W. and Do, H.-L. (2013) Bridgeless SEPIC Converter with a Ripple-Free Input Current. IEEE Transactions on Power Electronics, 28, 3388-3393. http://dx.doi.org/10.1109/TPEL.2012.2226607
- Singh, S. and Singh, B. (2012) A Voltage-Controlled PFC Cuk Converter-Based BLDCM Drive for Air-Conditioner. IEEE Transactions on Industry Applications, 48, 832-838. http://dx.doi.org/10.1109/TIA.2011.2182329
- Singh, S. and Singh, B. (2011) Power Quality Improved PMBLDCM Drive for Adjustable Speed Application with Reduced Sensor Buck-Boost PFC Converter. The 4th ICETET Proceedings, 18, 180-184. http://dx.doi.org/10.1109/ICETET.2009.111
- Wu, T.-F. and Chen, Y.-K. (1998) Modeling PWM DC/DC Converters out of Basic Converter Units. IEEE Transactions on Power Electronics, 13, 870-881. http://dx.doi.org/10.1109/63.712294
- Bist, V. and Singh, B. (2014) A Adjustable-Speed PFC Bridgeless Buck-Boost Converter-Fed BLDC Motor Drive. IEEE Transactions on Industrial Electronics, 61, 2665-2677. http://dx.doi.org/10.1109/TIE.2013.2274424