CGA-FOPID BASED UPQC FOR MITIGATING HARMONICS AND COMPENSATE LOAD DEMAND IN GRID LINKED HYBRID RENEWABLE ENERGY SOURCES

Samala Nagaraju, Chandramouli Bethi
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Abstract

Power Quality (PQ) explore the issues resulting from current and voltage deviations. Due to an extraordinary rise in nonlinear loads, such as power electronic-based loads, the issues with power quality in distribution systems have become severe. Non-sinusoidal current is drawn from the electric grid by the nonlinear loads. These non-sinusoidal currents contain harmonics and reactive power that lower the system’s overall PQ. Unified Power Quality Conditioner (UPQC) was emerged as a promising compensator to provide a solution for all PQ issues. UPQC generally had two Voltage Source Converters (VSC), one was Shunt, and the second was a Series that act as a current controller and voltage controller, respectively. Yet the controlling strategy of this compensator was still complex to design. Here, an optimization based Fractional Order Proportional Integral Derivative (FOPID) was developed to manage UPQC for improving PQ in a hybrid Renewable Energy System (RES). The optimal problem of the FOPID controller was solved through the use of a novel optimization approach. The pulse signal of UPQC was done using the optimal controller, which analyzes the error value of reference voltage and actual load voltage to generate pulses. The proposed optimal controller based UPQC performance was validated under various conditions such as interruption, swell, harmonics, and sag. The optimal controller offered THD value in sag, swell, and interruption period at current have 10.19%, 9.77%, and 10.09%, at voltage have 0.09%, 0.07%, and 0.30%. Moreover, the issues mitigation performance was compared to another present approaches. The validated outcome demonstrates the proposed model provides a well mitigation performance in all PQ issues conditions, so it was well fit for real-time implementation.
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基于 CGA-FOPID 的 UPQC,用于减轻谐波并补偿并网混合可再生能源的负载需求
电能质量(PQ)探讨的是电流和电压偏差引起的问题。由于非线性负载(如基于电力电子的负载)的急剧增加,配电系统中的电能质量问题变得非常严重。非线性负载从电网中汲取非正弦电流。这些非正弦电流包含谐波和无功功率,会降低系统的整体电能质量。统一电能质量调节器(UPQC)作为一种有前途的补偿器出现,为所有电能质量问题提供了解决方案。统一电能质量调节器一般有两个电压源转换器(VSC),一个是并联式,另一个是串联式,分别作为电流控制器和电压控制器。然而,这种补偿器的控制策略设计起来仍然很复杂。在此,我们开发了一种基于优化的分数阶比例积分微分器(FOPID)来管理 UPQC,以提高混合可再生能源系统(RES)的 PQ。FOPID 控制器的优化问题是通过使用新颖的优化方法解决的。UPQC 的脉冲信号是通过最优控制器分析参考电压和实际负载电压的误差值来产生的。所提出的基于最优控制器的 UPQC 性能在中断、膨胀、谐波和下陷等各种条件下都得到了验证。最佳控制器在下陷、膨胀和中断期间提供的总谐波失真值在电流下分别为 10.19%、9.77% 和 10.09%,在电压下分别为 0.09%、0.07% 和 0.30%。此外,还将问题缓解性能与其他现有方法进行了比较。验证结果表明,所提出的模型在所有 PQ 问题条件下都具有良好的缓解性能,因此非常适合实时实施。
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