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首页> 外文期刊>Photovoltaics, IEEE Journal of >Local Reactive Power Control Methods for Overvoltage Prevention of Distributed Solar Inverters in Low-Voltage Grids
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Local Reactive Power Control Methods for Overvoltage Prevention of Distributed Solar Inverters in Low-Voltage Grids

机译:低压电网中分布式太阳能逆变器过压保护的局部无功控制方法

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摘要

The main objective of this study is to increase the penetration level of photovoltaic (PV) power production in low-voltage (LV) grids by means of solar inverters with reactive power control capability. This paper underlines weak points of standard reactive power strategies which are already imposed by certain grid codes, and then, the study introduces a new reactive power control method that is based on sensitivity analysis. The sensitivity analysis shows that the same amount of reactive power becomes more effective for grid voltage support if the solar inverter is located at the end of a feeder. Based on this fundamental knowledge, a location-dependent power factor set value can be assigned to each inverter, and the grid voltage support can be achieved with less total reactive power consumption. In order to prevent unnecessary reactive power absorption from the grid during admissible voltage range or to increase reactive power contribution from the inverters that are closest to the transformer during grid overvoltage condition, the proposed method combines two droop functions that are inherited from the standard cos ϕ(P) and Q(U) strategies. Its performance comparison in terms of grid losses and voltage variation with different reactive power strategies is provided by modeling and simulating a real suburban LV network.
机译:这项研究的主要目的是通过具有无功功率控制功能的太阳能逆变器来提高光伏(PV)发电在低压(LV)电网中的渗透水平。本文着重指出了某些电网规范已经施加的标准无功功率策略的弱点,然后,本研究介绍了一种基于灵敏度分析的新型无功功率控制方法。敏感性分析表明,如果太阳能逆变器位于馈线末端,则相同数量的无功功率对于电网电压支持将变得更加有效。基于此基础知识,可以将位置相关的功率因数设置值分配给每个逆变器,并以更少的总无功功率实现电网电压支持。为了防止在允许的电压范围内电网不必要的无功功率吸收或在电网过压情况下增加最靠近变压器的逆变器的无功功率贡献,建议的方法结合了从标准cos继承的两个下降函数(P)和Q(U)策略。通过对真实的郊区LV网络进行建模和仿真,可以比较不同性能的无功功率在电网损耗和电压变化方面的性能。

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