Boost converter based power factor correction for single phase rectifier using fuzzy logic control

Power Factor which is the ratio between the real or actual power and the apparent power is a very essential parameter in power system. It indicates how effectively the real power of the system has been utilized. In any electrical power system, a load with a low power factor draws more current than a high power factor load, for the same amount of useful power transferred. The most popular topology in Power Factor Correction (PFC) applications is certainly the boost topology. The boost topology is very simple and allows low-distorted input currents and almost unity power factor with different control techniques. A new fuzzy logic control strategy in a boost converter based PFC method for single phase rectifier is presented in this work. The proposed fuzzy logic control system has two inputs and one output. The proposed PFC control is based on boost converter operating at continuous conduction mode and provides a higher switching frequency.

[1]  Yan-Fei Liu,et al.  A digital power factor correction (PFC) control strategy optimized for DSP , 2004, IEEE Transactions on Power Electronics.

[2]  Simone Buso,et al.  Fuzzy control of power factor preregulators , 1995, IAS '95. Conference Record of the 1995 IEEE Industry Applications Conference Thirtieth IAS Annual Meeting.

[3]  Sewan Choi,et al.  Soft-Switched CCM Boost Converters With High Voltage Gain for High-Power Applications , 2010, IEEE Transactions on Power Electronics.

[4]  Pramod Kumar POWER FACTOR CORRECTION WITH BOOST RECTIFIER , 2013 .

[5]  A. K. Behera,et al.  A comparison between hysteretic and fixed frequency boost converters used for power factor correction , 1993, Proceedings Eighth Annual Applied Power Electronics Conference and Exposition,.

[6]  F.H. Martinez S.,et al.  Fuzzy logic controller for boost converter with active power factor correction , 2007, 2007 7th Internatonal Conference on Power Electronics.

[7]  L. H. Dixon,et al.  Average current mode control of switching power supplies , 1990 .