Restoration Strategy for Active Distribution Systems Considering Endogenous Uncertainty in Cold Load Pickup

Yujia Li, Wei Sun, Wenqian Yin, Shunbo Lei, Yunhe Hou
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Abstract

Cold load pickup (CLPU) phenomenon is identified as the persistent power inrush upon a sudden load pickup after an outage. Under the active distribution system (ADS) paradigm, where distributed energy resources (DERs) are extensively installed, the decreased outage duration can induce a strong interdependence between CLPU pattern and load pickup decisions. In this paper, we propose a novel modelling technique to tractably capture the decision-dependent uncertainty (DDU) inherent in the CLPU process. Subsequently, a two-stage stochastic decision-dependent service restoration (SDDSR) model is constructed, where first stage searches for the optimal switching sequences to decide step-wise network topology, and the second stage optimizes the detailed generation schedule of DERs as well as the energization of switchable loads. Moreover, to tackle the computational burdens introduced by mixed-integer recourse, the progressive hedging algorithm (PHA) is utilized to decompose the original model into scenario-wise subproblems that can be solved in parallel. The numerical test on modified IEEE 123-node test feeders has verified the efficiency of our proposed SDDSR model and provided fresh insights into the monetary and secure values of DDU quantification.
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考虑内生不确定性的主动配电系统冷载恢复策略
冷负载拾取(CLPU)现象是指在停电后突然负载拾取时产生的持续的功率涌流。在主动配电系统(ADS)模式下,分布式能源(DERs)被广泛安装,减少的停电持续时间可以在CLPU模式和负载拾取决策之间产生强烈的相互依赖性。在本文中,我们提出了一种新的建模技术来跟踪捕获CLPU过程中固有的决策依赖不确定性(DDU)。随后,构建了两阶段随机决策依赖服务恢复(SDDSR)模型,其中第一阶段搜索最优切换序列,确定分步网络拓扑结构,第二阶段优化可切换负载的详细发电计划和可切换负载的通电。此外,为了解决混合整数资源带来的计算负担,利用渐进式对冲算法(PHA)将原始模型分解为可并行求解的场景子问题。在改进的IEEE 123节点测试馈线上的数值测试验证了我们提出的SDDSR模型的有效性,并为DDU量化的货币和安全价值提供了新的见解。
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