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Chebyshev Functional Expansion Based Artificial Neural Network Controller for Shunt Compensation

机译:基于Chebyshev功能扩展的神经网络并联补偿控制器。

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摘要

Three-phase four-wire (TPFW) distribution systems are prone to various power quality (PQ) issues, such as voltage fluctuations, poor power factor, unbalanced load conditions, and the presence of harmonics in current. Mitigation of these PQ problems using appropriate shunt compensator requires advanced control algorithms for control of three-phase voltage source converters (VSC) in a distribution system. In this paper, Chebyshev functional expansion based artificial neural network (nChANNn) algorithm for shunt compensation using distribution static compensator (DSTATCOM) is proposed. The parameters ofnChANNnare trained in real time. Implementation results with linear and nonlinear loads are demonstrated on a prototype hardware designed and developed using dSPACE 1104, current and voltage sensors for the realization of DSTATCOM for TPFW system. A zigzag transformer is used along with conventional three-phase, three-wire (TPTW) DSTATCOM to reduce its overall rating. Suitable comparisons with conventional control techniques are also mentioned.
机译:三相四线(TPFW)配电系统易于出现各种电能质量(PQ)问题,例如电压波动,功率因数不佳,负载条件不平衡以及电流中存在谐波。使用适当的并联补偿器来缓解这些PQ问题,需要先进的控制算法来控制配电系统中的三相电压源转换器(VSC)。本文采用基于Chebyshev函数展开的人工神经网络(n ChANN n)算法,利用分布静态补偿器进行分流补偿(DSTATCOM)。 n ChANN 的参数是实时训练的。在使用dSPACE 1104,电流和电压传感器为TPFW系统实现DSTATCOM而设计和开发的原型硬件上,演示了线性和非线性负载的实现结果。之字形变压器与常规的三相三线(TPTW)DSTATCOM一起使用可降低其总体额定值。还提到了与常规控制技术的适当比较。

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