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Nonlinear backstepping controller design for sharing active and reactive power in three-phase grid-connected photovoltaic systems

机译:三相并网光伏系统中有功和无功功率共享的非线性反推控制器设计

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In this paper, a nonlinear backstepping controller is designed for three-phase grid-connected solar photovoltaic (PV) systems to share active and reactive power. A cascaded control structure is considered for the purpose of sharing appropriate amount of power. In this cascaded control structure, the dc-link voltage controller is designed for balancing the power flow within the system and the current controller is designed to shape the grid current into a pure sinusoidal waveform. In order to balance the power flow, it is always essential to maintain a constant voltage across the dc-link capacitor for which an incremental conductance (IC) method is used in this paper. This approach also ensures the operation of solar PV arrays at the maximum power point (MPP) under rapidly changing atmospheric conditions. The proposed current controller is designed to guarantee the current injection into the grid in such a way that the system operates at a power factor other than unity which is essential for sharing active and reactive power. The performance of the proposed backstepping approach is verified on a three-phase grid-connected PV system under different atmospheric conditions. Simulation results show the effectiveness of the proposed control scheme in terms of achieving desired control objectives.
机译:本文针对三相并网太阳能光伏(PV)系统设计了一种非线性反推控制器,以共享有功和无功功率。为了共享适当量的功率,考虑了级联控制结构。在这种级联控制结构中,直流链路电压控制器设计用于平衡系统内的功率流,电流控制器设计用于将电网电流整形为纯正弦波形。为了平衡功率流,在直流链路电容器上保持恒定的电压始终是至关重要的,为此本文采用增量电导(IC)方法。这种方法还可以确保在瞬息万变的大气条件下以最大功率点(MPP)运行太阳能光伏阵列。提出的电流控制器设计为以这种方式保证向电网注入电流,以使系统以除单位以外的功率因数运行,这对于共享有功功率和无功功率是必不可少的。在不同的大气条件下,在三相并网光伏系统上验证了所提出的反推方法的性能。仿真结果表明了所提出的控制方案在实现所需控制目标方面的有效性。

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