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Scalable model predictive control of demand for ancillary services

机译:可扩展模型预测控制辅助服务需求

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In this paper, we develop an integrated decision making framework for the planning and real-time control decisions made by a Load Serving Entity (LSE) providing ancillary services to the wholesale market. Due to the multi-settlement structure of the energy market, planning decisions by the LSE are naturally made at multiple temporal stages. The tight interdependence among decisions demands an integrated approach to minimize the overall costs of operation. In order to model the dynamics of the load at large-scales when making these decisions, we propose a classification-based model that captures the effect of scheduling decisions made for individual appliances at aggregate levels, with reasonable effort. To provide a tangible example of how this load aggregation technique can be applied, we study the case of Electric Vehicle (EV) charging in detail.
机译:在本文中,我们开发了一种由为批发市场提供辅助服务的负载服务实体(LSE)制定的规划和实时控制决策的综合决策框架。由于能源市场的多结算结构,LSE的规划决策自然是在多个时间阶段进行的。决策之间的紧张相互依存要求综合方法,以最大限度地减少运营的总成本。为了在制定这些决策时在大尺度上模拟负载的动态,我们提出了一种基于分类的模型,捕获了在聚合水平上为各个设备进行的调度决策的效果,具有合理的努力。为了提供如何应用这种负载聚合技术的切实示例,我们研究了电动车辆(EV)充电的情况。

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