Open Access Open Access  Restricted Access Subscription Access

Implementation of Bi-directional Capabilities of Batteries for using Quadratic Buck-Boost Converter

Vinoth Kumar K., K. Ranjith Kumar, R. Vishnu

Abstract


Energy storage devices are essential to provide voltage and frequency stability in renewable energy sources, such as solar and wind. In this paper is used to distribute generating system like batteries super capacitors or discharging mode operating condition. In this paper, a new non- isolated bidirectional quadratic converter characterized by high voltage gain in both step-down (Buck) and step-up (Boost) operation modes is proposed. It is used to reduce ripple in distributed system. All these types permit an optimized operation among the DC bus and the storage devices. The bidirectional converter proposed in both condition modes step up and step down. The controller design as the fuzzy logic condition and performance of the proposed converter through simulation and experimental results.

 

Keywords: Energy storage devices, quadratic converter, high voltage gain


Full Text:

PDF

References


Lin, C. C., Yang, L. S., & Wu, G. W. (2013). Study of a non-isolated bidirectional DC–DC converter. IET Power Electronics, 6(1), 30-37.

Wu, T. F., Chen, Y. C., Yang, J. G., & Kuo, C. L. (2010). Isolated bidirectional full-bridge DC–DC converter with a flyback snubber. IEEE Transactions on Power Electronics, 25(7), 1915-1922.

Wu, T. F., Sun, K. H., Kuo, C. L., & Chang, C. H. (2010). Predictive current controlled 5-kW single-phase bidirectional inverter with wide inductance variation for DC-microgrid applications. IEEE Transactions on Power Electronics, 25(12), 3076-3084.

Zhou, H., Xiao, S., Yang, G., & Geng, H. (2011). Modeling and control for a bidirectional buck–boost cascade inverter. IEEE Transactions on power electronics, 27(3), 1401-1413.

Duan, R. Y., & Lee, J. D. (2012). High-efficiency bidirectional DC-DC converter with coupled inductor. IET Power Electronics, 5(1), 115-123.

Wai, R. J., Duan, R. Y., & Jheng, K. H. (2012). High-efficiency bidirectional dc–dc converter with high-voltage gain. IET Power Electronics, 5(2), 173-184.

Zhao, B., Song, Q., & Liu, W. (2012). Power characterization of isolated bidirectional dual-active-bridge DC–DC converter with dual-phase-shift control. IEEE Transactions on Power Electronics, 27(9), 4172-4176.

Dong, D., Luo, F., Boroyevich, D., & Mattavelli, P. (2012). Leakage current reduction in a single-phase bidirectional AC–DC full-bridge inverter. IEEE Transactions on Power Electronics, 27(10), 4281-4291.

Onar, O. C., Kobayashi, J., Erb, D. C., & Khaligh, A. (2012). A bidirectional high-power-quality grid interface with a novel bidirectional noninverted buck–boost converter for PHEVs. IEEE Transactions on Vehicular Technology, 61(5), 2018-2032.

Arafat, M. N., Palle, S., Sozer, Y., & Husain, I. (2012). Transition control strategy between standalone and grid-connected operations of voltage-source inverters. IEEE Transactions on Industry Applications, 48(5), 1516-1525.

Hsieh, Y. P., Chen, J. F., Yang, L. S., Wu, C. Y., & Liu, W. S. (2013). High-conversion-ratio bidirectional dc–dc converter with coupled inductor. IEEE Transactions on Industrial Electronics, 61(1), 210-222.

Wu, T. F., Kuo, C. L., Sun, K. H., Chen, Y. K., Chang, Y. R., & Lee, Y. D. (2013). Integration and operation of a single-phase bidirectional inverter with two buck/boost MPPTs for DC-distribution applications. IEEE transactions on power electronics, 28(11), 5098-5106.

Lee, J. H., Yu, D. H., Kim, J. G., Kim, Y. H., Shin, S. C., Jung, D. Y., ... & Won, C. Y. (2013). Auxiliary switch control of a bidirectional soft-switching dc/dc converter. IEEE transactions on power electronics, 28(12), 5446-5457.


Refbacks

  • There are currently no refbacks.