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A Voltage Control Strategy of VSG Based on Self-Adaptive Inertia Coefficient and Droop Coefficient

机译:基于自适应惯性系数和下垂系数的VSG电压控制策略

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With the increasing penetration rate of distributed renewable energy in power systems, the control strategy of virtual synchronous generator (VSG) is widely used for several years. Some existing VSG control strategies have been able to solve the stability problems caused by the abnormal grid voltage, but the effects of the inertia coefficient and the droop coefficient on the voltage stability are not taken into account. In order to further improve the voltage stability of the microgrid system, a voltage control strategy of VSG based on self-adaptive inertia coefficient and droop coefficient is proposed in this paper. When the voltage is far from the steady state, the increase of the inertia coefficient can decrease the voltage deviation. On the contrary, when it is close to the steady state, the decrease of the inertia coefficient can make the system response speed accelerate. According to the real-time voltage deviation, the droop coefficient can change adaptively to decrease the adjusting time and the voltage deviation during the disturbance. Finally, the simulation model of VSG is built by MATLAB/Simulink for conducting simulation experiments. Compared with other strategies, the correctness and effectiveness of the proposed control strategy are validated.
机译:随着电力系统中分布式可再生能源的渗透率越来越多,虚拟同步发电机(VSG)的控制策略已广泛使用了几年。一些现有的VSG控制策略已经能够解决由异常电网电压引起的稳定性问题,但惯性系数和下垂系数对电压稳定性的影响不会考虑。为了进一步提高微电网系统的电压稳定性,本文提出了基于自适应惯性系数和下垂系数的VSG电压控制策略。当电压远离稳定状态时,惯性系数的增加可以降低电压偏差。相反,当它接近稳定状态时,惯性系数的降低可以使系统响应速度加速。根据实时电压偏差,下垂系数可以自适应地改变以降低干扰期间的调节时间和电压偏差。最后,Matlab / Simulink构建了VSG的仿真模型,用于进行仿真实验。与其他策略相比,验证了拟议控制策略的正确性和有效性。

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