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Optimizing Nodal Demand Response in the Day-Ahead Electricity Market within a Smart Grid Infrastructure

机译:在智能电网基础设施内优化现代电力市场的节点需求响应

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Developments of the smart grid infrastructure can facilitate the upsurge of Demand Response (DR) share in power system resources. This paper models the effects of Demand Response Programs (DRPs) on the behavior of the electricity market in the Day-Ahead (DA) session. Decision makers look for the best DR tariff to employ it as a tool to obtain a flexible and sustainable energy market. Employing the most effective DRP is of crucial importance. An optimized DR model and the optimum rates for each DRP are found to meet the decision makers’ requirements. optimizing the nodal tariff and incentive values of different DRPs are proposed in the electricity market. In such environment, market interactions are considered by means of a security constrained unit commitment problem. Both types of Price-Based Demand Response (PBDR) and Incentive-Based Demand Response (IBDR) are modeled. The numerical results presented indicate the effectiveness of the proposed model.
机译:智能电网基础设施的开发可以促进需求响应的升高(DR)在电力系统资源中共享。本文模拟了需求响应计划(DRPS)对现代电力市场行为的影响(DA)会议。决策者寻找最好的关税博士,以雇用它作为获得灵活和可持续的能源市场的工具。雇用最有效的DRP至关重要。发现优化的DR模型和每个DRP的最佳速率符合决策者的要求。在电力市场中提出了优化不同DRP的节点关税和激励价值。在这种环境中,通过安全受限的单位承诺问题考虑市场互动。模拟了两种基于价格的需求响应(PBDR)和基于激励的需求响应(IBDR)。显示的数值结果表明了所提出的模型的有效性。

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