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Droop-Control-Based State-of-Charge Balancing Method for Charging and Discharging Process in Autonomous DC Microgrids

机译:基于下垂控制的自然直流微电网充放电过程的充电状态平衡方法

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摘要

In this paper, a droop control based state-of-charge (SoC) balancing method in autonomous DC microgrids is proposed. Both charging and discharging process have been considered. In particular, in the charging process, the droop coefficient is set to be proportional to SoCn, and in the discharging process, the droop coefficient is set to be inversely proportional to SoCn. Since the injected/output power is in inverse-proportion to the droop coefficient, with the proposed method, the energy storage unit (ESU) with higher SoC absorbs less power in the charging process and delivers more power in the discharging process. Meanwhile, the ESU with lower SoC absorbs more power in the charging process and delivers less power in the discharging process. Eventually, the SoC and injected/output power in each ESU are equalized. The exponent n for SoC is employed to regulate the balancing speed of the SoC and injected/output power. It is demonstrated that with higher exponent n, the balancing speed is higher. Simulation model comprised of three ESUs is implemented by using MATLAB/Simulink. The proposed method is verified by the simulation results.
机译:本文提出了一种在自主直流微电网中基于下垂控制的荷电状态(SoC)平衡方法。已经考虑了充电和放电过程。特别地,在充电过程中,下垂系数被设置为与SoCn成正比,在放电过程中,下垂系数被设置为与SoCn成反比。由于注入/输出功率与下垂系数成反比,因此采用所提出的方法,具有较高SoC的储能单元(ESU)在充电过程中吸收的功率较小,而在放电过程中传递的功率更大。同时,具有较低SoC的ESU在充电过程中会吸收更多的功率,而在放电过程中会传递更少的功率。最终,每个ESU中的SoC和注入/输出功率均相等。 SoC的指数n用于调节SoC的平衡速度和注入/输出功率。结果表明,指数n越高,平衡速度越快。使用MATLAB / Simulink实现了由三个ESU组成的仿真模型。仿真结果验证了该方法的有效性。

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