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Stability Analysis of Multiple Grid-Connected Inverters Using Different Feedback Currents

机译:不同反馈电流下并网逆变器的稳定性分析

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Distributed generation is gaining greater penetration levels in distribution grids due to government incentives for integrating distributed energy resources (DERs) and DER cost reductions. The frequency response of a grid-connected single inverter changes as other inverters are connected in parallel due to the couplings among grid inductance and/or inverter output filters. The selection of the inverter- or grid-side currents as feedback control signals is then not trivial because each one has tradeoffs. This paper analyses the system stability for multiple parallel- and grid-connected inverters using the inverter- or grid-side currents as feedback signals. Modeling of both feedback signals is performed using the current separation technique. Morover, the stability range for different conditions including active damping is analyzed through the root locus technique. The grid-side current has a wider range of stability, but the inverter-side current allows for higher values of the proportional gain near the critical frequency and no extra sensors are needed since measurement of the inverter current is needed for protection in high-power applications.
机译:由于政府鼓励整合分布式能源(DER)和降低DER成本,因此分布式发电在配电网中的渗透率越来越高。由于电网电感和/或逆变器输出滤波器之间的耦合,并网的单个逆变器的频率响应会随着其他逆变器并联而发生变化。因此,选择逆变器或电网侧电流作为反馈控制信号并不是一件容易的事,因为每个都有权衡。本文使用逆变器或电网侧电流作为反馈信号来分析多个并联和并网逆变器的系统稳定性。使用电流分离技术对两个反馈信号进行建模。 Morover通过根轨迹技术分析了包括主动阻尼在内的不同条件下的稳定性范围。电网侧电流具有更大的稳定性范围,但是逆变器侧电流允许在临界频率附近具有更高的比例增益值,并且不需要额外的传感器,因为需要测量逆变器电流来保护高功率应用程序。

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