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Stabilization of Microgrid with Multiple Inverters

机译:用多个逆变器稳定微电网

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Due to rapid penetration of renewable energy sources, power conversion devices such as inverters increase in power system. Multiple inverters in a small scale network can constitute an islanded microgrid in case that they are disconnected from the bulk power system. Although the islanded microgrid operation contributes to enhance resilience of the power system, microgrid consisted of typical inverters with no inertia faces a serious problem from the viewpoint of frequency and synchronization stability. Since the inertia-less inverters synchronize with the grid based on detected phase angle, they cannot generate stable reference frequency independently. In order to achieve reliable microgrid operation by multiple inverters, the inertia indispensable for stable frequency and synchronization should be implemented to the microgrid. We have developedsynchronous inverterthat has the inertia and plays a quite significant role to realize the stable microgrid operation. The single-phase synchronous inverter (SSI) has flexibility to install additional functions to operate the islanded small scale grid as the single-phase microgrid. In this paper, the frequency stabilization effect of the multiple SSIs on the islanded microgrid is compared with the inertia-less inverters. Numerical simulations verify that the microgrid with the single-phase synchronous inverters can be operated stably.
机译:由于可再生能源的快速渗透,功率转换装置如逆变器的电力系统增加。在小规模网络中的多个逆变器可以构成与散装电力系统断开连接的岛状微电网。虽然岛状的微电网运行有助于提高电力系统的弹性,但微电网由典型的逆变器组成,从频率和同步稳定性的观点来看,没有惯性面临严重问题。由于惯性逆变器基于检测到的相位角与网格同步,因此它们不能独立地产生稳定的参考频率。为了通过多个逆变器实现可靠的微电网操作,惯性对于稳定频率和同步的惯性应该是将实现的。我们开发了同步逆端,具有惯性,并发挥了相当重大的作用来实现稳定的微电网运行。单相同步逆变器(SSI)具有灵活性,可以安装额外的功能以将岛状小刻度网格运行为单相微电网。在本文中,与惯性逆变器比较了孤岛微电网的多个SSIS的频率稳定效应。数值模拟验证了具有单相同步逆变器的微电网可以稳定地操作。

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