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Power capacity based bus voltage region partition and online droop coefficient tuning for real-time operation of DC microgrids

机译:基于功率容量的总线电压区域划分和在线下垂系数调整,用于直流微电网的实时运行

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Multiple-voltage-region control, in which the bus voltage range is divided into several regions, is usually implemented for DC microgrid operation in distributed manner. Voltage/power droop relationships are imposed for active power sharing among slack terminals. Conventionally, threshold voltages for voltage region partition are determined with fixed percentage of variation around the nominal value, which may result in unevenness of droop coefficients in different regions. If system droop coefficient is too high, significant bus voltage step change due to load variation will occur. On the other hand, significant power sharing error among slack terminals will be induced if the droop coefficient is too low. In this paper, a compromised solution with power capacity based bus voltage region partition is proposed to equalize the droop coefficients in different regions. However, the droop coefficients are determined based on the rated power capacity of system units. Bus voltage discontinuity appears when the power capacity reduces in actual implementation. To eliminate the voltage discontinuity, online droop coefficient tuning according to the real-time power capacity is implemented. Algorithms for local power capacity estimation of solar PV and battery energy storage have been proposed. A lab-scale DC microgrid has been developed for verification of the proposed methods.
机译:多电压区域控制,其中汇流电压范围被分成若干区域,通常以分布式方式实现DC微电网操作。施加电压/功率下垂关系,以便在松弛终端之间的有效电力共享。通常,围绕标称值的固定百分比确定电压区域分区的阈值电压,这可能导致不同区域中的下垂系数的不均匀性。如果系统下垂系数太高,则会发生由于负载变化引起的大型总线电压步长。另一方面,如果下垂系数太低,将引起松弛终端之间的显着的功率共享误差。本文提出了一种具有基于功率容量的总线电压区域分区的受损解决方案,以均衡不同区域中的下垂系数。然而,垂直系数基于系统单元的额定功率容量来确定。当电源容量在实际实现中减少时,出现总线电压不连续性。为了消除电压不连续性,实现了根据实时功率容量的在线下垂系数调谐。已经提出了用于局部功率容量估计太阳能光伏和电池能量存储的算法。已经开发了实验室规模的DC MicroGrid用于验证所提出的方法。

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