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Enhancing Microgrid Resilience and Survivability under Static and Dynamic Islanding Constraints

机译:在静态和动态孤岛约束下提高微电网的弹性和生存能力

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Microgrids (MGs) are usually characterised by reduced inertia that can lead to large transients after an unintentional islanding event. These transients can result in cascaded device disconnections, triggered by protections, leading to partial of full loss of load in the MG. In this paper, we propose a MG operational planning model for grid-connected operation, enhanced with fault-triggered islanding conditions that ensure the MG survivability (both transient and steady-state) after islanding. We consider the dynamic frequency behaviour after islanding using a non-linear frequency response model and incorporating the associated constraints in the multi-stage, mixed-integer, linear model of the planning problem. Specifically, we include limits on the maximum rate of change of frequency, frequency nadir, and the steady-state frequency deviation. Moreover, to solve this operational planning problem, we propose an iterative solution algorithm that ensures reliable frequency response, selfsufficiency, and optimal operation. Finally, we employ the CIGRE low-voltage distribution network to demonstrate the effectiveness of the proposed method and its suitability in ensuring the reliability, survivability, and resilience of a MG.
机译:微电网(MGs)通常的特点是惯性降低,这可能导致意外的孤岛事件后发生较大的瞬变。这些瞬变可导致由保护触发的级联设备断开连接,从而导致MG中的全部负载部分丢失。在本文中,我们提出了用于并网运行的MG运营计划模型,并通过故障触发的孤岛条件进行了增强,以确保孤岛后MG的生存能力(瞬态和稳态)。我们考虑使用非线性频率响应模型并在规划问题的多阶段,混合整数,线性模型中纳入相关约束的孤岛后的动态频率行为。具体来说,我们包括对最大频率变化率,频率最低点和稳态频率偏差的限制。此外,为解决此运营计划问题,我们提出了一种迭代求解算法,可确保可靠的频率响应,自给自足和最佳运行。最后,我们使用CIGRE低压配电网络来证明所提出方法的有效性及其在确保MG的可靠性,生存性和弹性方面的适用性。

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