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Dynamic current sharing, voltage and SOC regulation for HESS based DC microgrid using CPISMC technique

机译:基于CPISMC技术的HESS基于DC微电网的动态电流共享,电压和SOC调节

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摘要

To cope with uncertainties and intermittent nature of renewable energy resources (RER) such as wind energy and PV needed energy storage systems with higher reliable and robust control techniques. Because of the variable characters of RER to maintain the power demand and generation, voltage stability and also increase the energy storage system lifetime is a challenging task. Therefore, in this paper, a combined PI and sliding mode control technique (CPISMC) is proposed to improve the current sharing between battery and supercapacitor to suit the demand- generation disparity, maintain SOC within boundaries and thereby to regulate the dc bus voltage. The key benefits are that, in the proposed strategy, unwaged battery currents are redirected to the supercapacitor forward with high-frequency current elements resulting in improved battery life. The effectiveness of the proposed control strategy has been investigated through simulations including comparison with conventional control strategy. The advantage of the proposed control strategy over existing conventional control strategy are better dc bus voltage regulation, improved current-sharing among HESS and improved battery life. The results have been experimentally validated through hardware-in -loop (HIL) on FPGA-based real-time simulator.
机译:为了应对可再生能源(RER)的不确定性和间歇性,如风能和PV所需的能量存储系统,具有较高可靠和鲁棒的控制技术。由于RER的可变特征,以维持电力需求和产生,电压稳定性以及增加能量存储系统寿命是一个具有挑战性的任务。因此,在本文中,提出了一种组合的PI和滑动模式控制技术(CPISMC)来改善电池和超级电容器之间的电流共享,以适应所需的视差,维护边界内的SOC,从而调节DC总线电压。关键好处是,在所提出的策略中,随后的电池电流被重定向到超级电容器,高频电流元件导致电池寿命改善。通过模拟研究了所提出的控制策略的有效性,包括与传统控制策略的比较。所提出的控制策略对现有的传统控制策略的优点是更好的直流总线电压调节,改善了HESS之间的电流共享和改善的电池寿命。通过基于FPGA的实时模拟器在FPGA的实验中通过硬件 - 遍布(HIL)进行了实验验证。

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