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A Wavelet-Based Unified Power Quality Conditioner to Eliminate Wind Turbine Non-Ideality Consequences on Grid-Connected Photovoltaic Systems

机译:基于小波的统一电能质量调节器,消除了并网光伏系统中风力涡轮机的非理想性后果

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The integration of renewable power sources with power grids presents many challenges, such as synchronization with the grid, power quality problems and so on. The shunt active power filter (SAPF) can be a solution to address the issue while suppressing the grid-end current harmonics and distortions. Nonetheless, available SAPFs work somewhat unpredictably in practice. This is attributed to the dependency of the SAPF controller on nonlinear complicated equations and two distorted variables, such as load current and voltage, to produce the current reference. This condition will worsen when the plant includes wind turbines which inherently produce 3rd, 5th, 7th and 11th voltage harmonics. Moreover, the inability of the typical phase locked loop (PLL) used to synchronize the SAPF reference with the power grid also disrupts SAPF operation. This paper proposes an improved synchronous reference frame (SRF) which is equipped with a wavelet-based PLL to control the SAPF, using one variable such as load current. Firstly the fundamental positive sequence of the source voltage, obtained using a wavelet, is used as the input signal of the PLL through an orthogonal signal generator process. Then, the generated orthogonal signals are applied through the SRF-based compensation algorithm to synchronize the SAPF’s reference with power grid. To further force the remained uncompensated grid current harmonics to pass through the SAPF, an improved series filter (SF) equipped with a current harmonic suppression loop is proposed. Concurrent operation of the improved SAPF and SF is coordinated through a unified power quality conditioner (UPQC). The DC-link capacitor of the proposed UPQC, used to interconnect a photovoltaic (PV) system to the power grid, is regulated by an adaptive controller. Matlab/Simulink results confirm that the proposed wavelet-based UPQC results in purely sinusoidal grid-end currents with total harmonic distortion (THD) = 1.29%, which leads to high electrical efficiency of a grid-connected PV system.
机译:可再生能源与电网的集成提出了许多挑战,例如与电网同步,电能质量问题等。并联有源功率滤波器(SAPF)可以解决该问题,同时抑制电网端电流谐波和失真。尽管如此,可用的SAPF在实践中还是有些无法预测的。这归因于SAPF控制器对非线性复杂方程式的依赖性以及两个失真变量(例如负载电流和电压)以产生电流参考。当工厂中的风力发电机组固有地产生3次,5次,7次和11次电压谐波时,这种情况将恶化。此外,用于将SAPF参考与电网同步的典型锁相环(PLL)的无能也会破坏SAPF的运行。本文提出了一种改进的同步参考框架(SRF),该框架配备了基于小波的PLL,可使用一个变量(例如负载电流)来控制SAPF。首先,通过正交信号发生器过程,将使用小波获得的电源电压的基本正序用作PLL的输入信号。然后,通过基于SRF的补偿算法应用生成的正交信号,以将SAPF的参考与电网同步。为了进一步迫使剩余的未补偿电网电流谐波通过SAPF,提出了一种配备有电流谐波抑制环路的改进的串联滤波器(SF)。改进的SAPF和SF的并发运行通过统一的电能质量调节器(UPQC)进行协调。提议的UPQC的直流链路电容器用于将光伏(PV)系统互连到电网,由自适应控制器调节。 Matlab / Simulink的结果证实,所提出的基于小波的UPQC产生纯正弦波的电网端电流,总谐波失真(THD)= 1.29%,这导致了并网光伏系统的高电效率。

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