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Overloading conditions management in remote networks by coupling neighboring microgrids

机译:通过耦合相邻的微电网进行远程网络中的过载条件管理

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Remote area microgrids (MG) can experience overloading or power deficiency throughout their dynamic operations due to load and generation uncertainties. Under such conditions, load-shedding is traditionally considered as the first successful mechanism to prevent system instability. To minimize load-shedding, islanded neighboring MGs can be connected to each other in remote areas to provide a self-healing capability. For this, extra generation capacity needs to be available in the distributed energy resources (DER) of one of the MGs to supply the extra demand in the other MG. In this way, the total load in the system of interconnected MGs will be shared by all the DERs within those MGs. This process falls within the network tertiary controller functions. Therefore, the tertiary controller should have a self-healing algorithm that needs to be carefully designed to initiate the command for interconnection of the MGs. The self-healing strategy needs to consider the required criteria to prevent system instability. The MGs will then be interconnected through an interconnecting static switch (ISS). This strategy also needs to decide when two interconnected MGs should be isolated. This paper focuses on the self-healing strategy, its criteria and features. The efficacy of the developed strategy in interconnecting and isolating the neighboring MGs is validated through PSCAD/EMTDC simulations.
机译:由于负载和发电的不确定性,偏远地区微电网(MG)在整个动态运行过程中可能会出现过载或功率不足的情况。在这种情况下,传统上将负载减少视为防止系统不稳定的第一个成功机制。为了最大程度地减少甩负荷,孤岛相邻的MG可以在偏远地区相互连接,以提供自愈功能。为此,一个MG的分布式能源(DER)中需要有额外的发电能力,才能满足另一个MG的额外需求。这样,互连的MG的系统中的总负载将由这些MG中的所有DER共享。该过程属于网络第三控制器功能。因此,第三级控制器应具有自我修复算法,需要仔细设计该算法以启动MG互连的命令。自愈策略​​需要考虑必要的标准,以防止系统不稳定。然后,MG将通过互连静态交换机(ISS)互连。该策略还需要确定何时应该隔离两个相互连接的MG。本文重点介绍自我修复策略,其标准和功能。通过PSCAD / EMTDC仿真,可以验证所开发策略在互连和隔离相邻MG之间的功效。

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