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Performance Enhancement of Shunt APFs Using Various Topologies, Control Schemes and Optimization Techniques

机译:使用各种拓扑,控制方案和优化技术增强并联APF的性能

摘要

Following the advent of solid-state power electronics technology, extensive usage of nonlinear loads has lead to severe disturbances like harmonics, unbalanced currents, excessive neutral current and reactive power burden in three-phase power systems. Harmonics lower down the efficiency and power factor, increase losses, and result in electromagnetic interference with neighbouring communication lines and other harmful consequences. Over the years, active power filter (APF) has been proven to be a brilliant solution among researchers and application engineers dealing with power quality issues. Selection of proper reference compensation current extraction scheme plays the most crucial role in APF performance. This thesis describes three time-domain schemes viz. Instantaneous active and reactive power (p-q), modified p-q, and Instantaneous active and reactive current component (i_d-i_q) schemes. The objective is to bring down the source current THD below 5%, to satisfy the IEEE-519 Standard recommendations on harmonic limits. Comparative evaluation shows that, i_d-i_q is the best APF control scheme irrespective of supply and load conditions. Results are validated with simulations, followed by real-time analysis in RT-Lab.In view of the fact that APFs are generally comprised of voltage source inverter (VSI) based on PWM, undesirable power loss takes place inside it due to the inductors and switching devices. This is effectively minimized with inverter DC-link voltage regulation using PI controller. The controller gains are determined using optimization technique, as the conventional linearized tuning of PI controller yield inadequate results for a range of operating conditions due to the complex, nonlinear and time-varying nature of power system networks. Developed by hybridization of Particle swarm optimization (PSO) and Bacterial foraging optimization (BFO), an Enhanced BFO technique is proposed here so as to overcome the drawbacks of both PSO and BFO, and accelerate the convergence of optimization problem. Extensive simulation studies and RT-Lab real-time investigations are performed for comparative assessment of proposed implementation of PSO, BFO and Enhanced BFO on APF. This validates that, the APF employing Enhanced BFO offers superior harmonic compensation compared to other alternatives, by lowering down the source current THD to drastically small values.Another indispensable aspect of APF is its topology, which plays an essential role in meeting harmonic current requirement of nonlinear loads. APFs are generally developed with current-source or voltage-source inverters. The latter is more convenient as it is lighter, cheaper, and expandable to multilevel and multistep versions for improved performance at high power ratings with lower switching frequencies. There can be different topologies of VSI depending on the type of supply system. With each topology, constraints related to DC-link voltage regulation change. For effective compensation, irrespective of the number and rating of DC-link capacitors used in any particular topology, voltages across them must be maintained constant with optimal regulation of DC-link voltage. Various topologies for three-phase three-wire systems (conventional two-level and multilevel VSIs) and four-wire systems (split-capacitor (2C), four-leg (4L), three H-bridges (3HB) and three-level H-bridge (3L-HB) VSIs) are analyzed and compared based on component requirements, effectiveness in harmonic compensation, cost and area of application.
机译:随着固态电力电子技术的出现,非线性负载的广泛使用已导致三相电源系统中的严重干扰,例如谐波,不平衡电流,过大的中性电流和无功功率负担。谐波会降低效率和功率因数,增加损耗,并导致对相邻通信线路的电磁干扰和其他有害后果。多年来,有源功率滤波器(APF)已被证明是解决电源质量问题的研究人员和应用工程师的绝佳解决方案。选择适当的参考补偿电流提取方案对APF性能起着至关重要的作用。本文描述了三种时域方案。瞬时有功和无功功率(p-q),修改后的p-q以及瞬时有功和无功电流分量(i_d-i_q)方案。目的是将源电流THD降低到5%以下,以满足有关谐波极限的IEEE-519标准建议。对比评估表明,不管供电和负载条件如何,i_d-i_q是最佳的APF控制方案。通过仿真验证结果,然后在RT-Lab中进行实时分析。鉴于APF通常由基于PWM的电压源逆变器(VSI)组成,由于电感和开关设备。通过使用PI控制器的逆变器直流母线电压调节,可以有效地减小这种情况。控制器增益是使用优化技术确定的,因为由于电力系统网络的复杂,非线性和时变特性,PI控制器的常规线性调整无法在一定范围的运行条件下获得足够的结果。通过粒子群优化(PSO)和细菌觅食优化(BFO)的混合开发,提出了一种增强型BFO技术,以克服PSO和BFO两者的弊端,并加速优化问题的收敛。进行了广泛的仿真研究和RT-Lab实时调查,以比较评估在APF上实施的PSO,BFO和Enhanced BFO。这证明,与其他替代方案相比,采用增强型BFO的APF通过将源电流THD降低到极小的值而提供了出色的谐波补偿。非线性负载。 APF通常使用电流源或电压源逆变器开发。后者更方便,因为它更轻,更便宜,并且可以扩展到多级和多步版本,从而在较高的额定功率下以较低的开关频率提高性能。根据供应系统的类型,VSI可能有不同的拓扑。对于每种拓扑,与直流母线电压调节相关的约束都会改变。为了进行有效补偿,无论在任何特定拓扑中使用的直流母线电容器的数量和额定值如何,都必须通过最佳调节直流母线电压的方式将其两端的电压保持恒定。三相三线系统(常规的两级和多级VSI)和四线系统(分体电容器(2C),四脚(4L),三个H桥(3HB)和三级的各种拓扑根据组件要求,谐波补偿的有效性,成本和应用领域,对H桥(3L-HB)VSI进行了分析和比较。

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    Patnaik Sushree Sangita;

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  • 年度 2015
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