Optimal sizing of microgrid DERs for specialized critical load resilience

Shreya Agarwal, D. Black
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Abstract

Distributed energy resources (DER) microgrids, especially photovoltaic (PV) and battery energy storage systems (BESS) are being more widely deployed behind the meter for decarbonizing the grid. This paper studies their impact on providing resilience to critical infrastructure, particularly which have a flat daily load profile such as hospitals and data centers. The study models load data from Lawrence Berkeley National Lab (LBNL) which has a flat critical load profile. The authors model a single and multi-day outage using the Distributed Energy Resources Customer Adoption Model (DERCAM) to optimize the configuration of DER based microgrids to support these outages. The authors expand these microgrid configurations to determine the microgrid DER sizes for other critical load levels which have a similar flat profile. The economic analysis presented here includes savings from cost of lost load due to outages, utility bill savings and carbon emission savings to compute a more complete accounting of costs and benefits. These results are then compared to the cost of resilience support traditionally provided by diesel generators. Finally, the net economic benefits are summarized suggesting that including resilience costs from lost load and other economic factors supports investments in DER microgrids for resilience support.
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面向特殊临界负荷弹性的微电网der优化尺寸
分布式能源(DER)微电网,特别是光伏(PV)和电池储能系统(BESS)正在更广泛地部署在电表后,以实现电网的脱碳。本文研究了它们在为关键基础设施提供弹性方面的影响,特别是医院和数据中心等具有固定日负载概况的基础设施。该研究模拟了来自劳伦斯伯克利国家实验室(LBNL)的载荷数据,该实验室具有平坦的临界载荷剖面。作者使用分布式能源客户采用模型(DERCAM)对单天和多日停电进行建模,以优化基于分布式能源客户采用模型的微电网配置,以支持这些停电。作者扩展了这些微电网配置,以确定具有类似扁平轮廓的其他关键负载水平的微电网DER大小。这里提供的经济分析包括因停电而损失的负载成本节省、公用事业费用节省和碳排放节省,以计算更完整的成本和收益核算。然后将这些结果与传统上由柴油发电机提供的弹性支持成本进行比较。最后,总结了净经济效益,表明包括损失负荷和其他经济因素的弹性成本支持对DER微电网的投资以支持弹性。
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