具有谐波滤波能力的三相单级VSC控制太阳能光伏发电系统应用于DG

N. Patel, Ajay Kumar, N. Gupta
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引用次数: 4

摘要

提出了一种基于单位矢量模板(UVT)控制的单级三相四线并网太阳能光伏(SPV)系统。所提出的控制方法的主要优点是,与传统控制方法相比,它需要更少的计算时间。在这种方法中,通过结合谐波滤波能力,SPV系统被唯一地控制为作为多功能逆变器运行。因此,采用本文提出的控制方法的SPV系统可以作为多功能逆变器,将SPV系统产生的有功功率注入电网;可以作为具有谐波滤波能力的有源电源滤波器(APF),实现源电流谐波衰减、负载无功电流补偿、源电流平衡以及功率因数校正(PFC)等功能。由于SPV系统是基于uvb的方法,它可以准确地估计电压源变换器(VSC)的参考电流。本文利用3P4W拓扑结构来解决配电网中性点电流问题,因为该拓扑结构具有固有的中性点电流缓解能力。采用一种基于摄动观察的跟踪器来识别和跟踪最大功率点(MPP)。通过MATLAB/Simulink仿真研究,验证了该控制系统的实用性。最后,通过实验室开发的样机进行了全面的实验研究,验证了所提出的VSC控制SPV系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Three-Phase Single-Stage VSC Controlled Solar Photovoltaic System with Harmonic Filtering Capability Applied to DG
This paper presents a single-stage three-phase four-wire (3P4W) grid-connected solar photovoltaic (SPV) system controlled with a unit vector template (UVT) based approach. The key advantage of the presented control approach is that it takes less computational time compared to its conventional counterpart. In this approach, the SPV system is uniquely controlled to operate as a multifunctional inverter by incorporating harmonic filtering capability. The SPV system with presented control can, therefore, be utilized i) as multifunctional inverter to inject the active power generated from SPV system to the utility grid, and ii) as active power filter (APF) with harmonic filtering capability to acquire various features including source current harmonic attenuation, load reactive current compensation, source currents balancing, in addition to, power factor correction (PFC). Since the SPV system is based on the UVT-based approach, it accurately estimates the reference currents for the voltage-sourced converter (VSC). The 3P4W topology is utilized in this paper in order to confront the neutral current issue in the power distribution network, as this topology has inherent neutral current mitigation capability. A perturb and observe (P&O) based tracker is employed to identify and track the maximum power point (MPP). The practicality of SPV system with presented control is tested and elucidated using MATLAB/Simulink simulation studies. Finally, the proposed VSC controlled SPV system is validated through a comprehensive set of experimental studies on laboratory developed prototype.
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