Grid-Connected Photovoltaic LVRT Strategy Based on Improved DDSRF-PLL and Reactive Power Control

W. Ma, Houlei Gao, Haoran Song, Yunchi Zhang
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Abstract

When the grid voltage contains high harmonics, decouple double synchronous reference frame phase lock loop (DDSRF-PLL) will not extract the synchronizing information accurately. And conventional grid-connected control strategy makes insufficient use of photovoltaic (PV) inverter's reactive power output capacity when grid is faulty. For above problem, this paper proposes a low voltage riding through control strategy based on improved DDSRF-PLL and reactive current control. After analyzing the structure of DDSRF-PLL module, high-order harmonic filters are introduced before decoupling calculation, so that the module can extract grid synchronizing information and positive/negative sequence value more accurately. Furthermore, by establishing relationship between voltage drop and output reactive current, PV inverter can provide reactive power support required from grid during LVRT, and provide active power as much as possible. When bus capacitor voltage rises due to power imbalance between front and rear stage of system, the crowbar circuit is used to ensure DC voltage stability. Finally, A simulation model is build in MATLAB/simulink to verify the effectiveness of this LVRT strategy.
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基于改进DDSRF-PLL和无功控制的并网光伏LVRT策略
当电网电压含有高次谐波时,解耦双同步参考帧锁相环(DDSRF-PLL)不能准确提取同步信息。而传统的并网控制策略在电网故障时未能充分利用光伏逆变器的无功输出容量。针对上述问题,本文提出了一种基于改进DDSRF-PLL和无功电流控制的低电压穿越控制策略。在分析DDSRF-PLL模块结构的基础上,在解耦计算前引入高阶谐波滤波器,使模块能够更准确地提取电网同步信息和正负序值。此外,通过建立电压降与输出无功电流的关系,光伏逆变器可以在LVRT期间提供电网所需的无功支持,并尽可能提供有功功率。当系统前后级功率不平衡导致母线电容电压升高时,采用撬棍电路保证直流电压稳定。最后,在MATLAB/simulink中建立了仿真模型,验证了LVRT策略的有效性。
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