电动汽车分层能量管理与最优无功响应的无功DLMP

Bhavana Jangid, Parul Mathuria, Vikas Gupta
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引用次数: 0

摘要

总需求侧灵活性已成为提供电网支持服务的一种有前景的途径。一些管理研究侧重于通过电动汽车聚合器(EVA)进行主动需求响应和主动价格信号设计,但忽略了被动响应和定价的提供。提出了主动配电网中配电系统运营商(DSO)和电动汽车聚合器(EVA)的分层能量管理策略。采用双层规划方法,EVA向配电网提供无功需求响应。EVA是由DSO提供的无功分配位置边际价格(DLMP)驱动的。下层的目标是在考虑系统安全性的情况下,使ADN的运营成本最小化,上层的目标是减少EVA的总支付。利用Karush-Kuhn-Tucker (KKT)最优性条件将双层模型转化为单层优化问题,并利用拉格朗日函数的推导计算主动/被动DLMPs。以IEEE 33总线径向配电系统为例,对所提出的分层优化问题进行了说明。结果分析了节点电压,无功定价对系统经济和主动dlmp的影响。案例分析表明,由于在配电层面引入无功定价,所提出的方法可以改善系统的经济和物理性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reactive DLMP for Hierarchical Energy Management and Optimal Reactive Power Response from EVs
The aggregated demand-side flexibility has become a promising pathway to provide grid support services. Several management studies focusing on active demand response through Electric Vehicle Aggregator (EVA) and active price signal design are presented but the provision of reactive response and pricing is neglected. This paper presents a hierarchical energy management strategy for Distribution System Operator (DSO) and Electric Vehicle Aggregator (EVA) in an Active Distribution Network (ADN). Bilevel programming approach is adopted, where the EVA provides reactive demand response to the distribution grid. The EVA is motivated by reactive Distribution Location Marginal Price (DLMP) provided by the DSO. The lower-level aims to minimize the operational cost of ADN considering system security, and the upper-level aims to reduce the total payment of EVA. The Karush-Kuhn-Tucker (KKT) optimality conditions are used to convert the bilevel model into a single-level optimization problem, and active/reactive DLMPs are computed using the lagrangian function’s derivation. A case study of IEEE 33-bus radial distribution system is considered to illustrate the proposed hierarchical optimization problem. The results are analyzed in terms of nodal voltages, impact of reactive pricing on the system economics and, on active DLMPs. The analysis of the case study indicates the proposed approach can improve the economic and physical system performance due to the introduction of reactive power pricing at the distribution level.
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