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Coordinated sectional droop charging control for EV aggregator enhancing frequency stability of microgrid with high penetration of renewable energy sources

机译:电动汽车聚合器的分段分段下垂充电控制,通过可再生能源的高渗透率提高微电网的频率稳定性

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摘要

For microgrids with high penetration of renewable energy sources (RESs) and electric vehicles (EVs), the stochastic charging/discharging of the EVs would result in a large impact on the secure and stable operation of the microgrids. Therefore, the coordinated control between EVs and RESs becomes an important challenge for keeping the microgrid stable. In this paper, a coordinated sectional droop charging control (CSDCC) strategy is proposed for an EV aggregator that participates in the frequency regulation of the microgrids with high penetration RESs. All EVs are controlled as grid-friendly loads, and the CSDCC strategy operates as a virtual synchronous generator by only controlling the charging power of the EVs. Because the discharging of an EV is not required, the CSDCC strategy has no detrimental effects on the EV battery life. The inertia damping characteristic of a synchronous generator is modelled as a virtual inertia factor, which can eliminate charging power vibration, and can improve the system inertia. Finally, the validity of the proposed strategy in enhancing frequency regulation is verified by demonstrating a set of comparative cases.
机译:对于具有高渗透率的可再生能源(RES)和电动汽车(EV)的微电网,电动车辆的随机充电/放电将对微电网的安全和稳定运行产生重大影响。因此,EV和RES之间的协调控制成为保持微电网稳定的重要挑战。在本文中,针对参与高渗透率RES的微电网的频率调节的电动汽车聚合器,提出了一种协调的分段下垂充电控制(CSDCC)策略。所有电动汽车均作为对电网友好的负载进行控制,并且CSDCC策略仅通过控制电动汽车的充电功率即可作为虚拟同步发电机运行。由于不需要对EV放电,因此CSDCC策略对EV电池寿命没有不利影响。将同步发电机的惯性阻尼特性建模为虚拟惯性因子,可以消除充电功率振动,并可以改善系统惯性。最后,通过演示一组比较案例,验证了所提出策略在增强频率调节方面的有效性。

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