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Holistic modeling framework of demand response considering multi-timescale uncertainties for capacity value estimation

机译:考虑到电容价值估计的多时间尺度不确定性的多时间尺度不确定度的整体建模框架

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摘要

Demand response (DR) is regarded as an effective tool to mitigate the operational uncertainties and enhance the reliability of power supply in smart grids. However, with the time-varying attribute, to what extent DR could be committed is a major concern for utilities. This paper proposes a new approach to assess the capacity value (CV) of DR with a methodological framework developed for the uncertainty modeling of DR. The novelty of this framework is its inclusion of both physical and human-related analyses in DR programs, which allows the characterization of DR variability to be accurate for the CV estimation. To achieve this, the demand-side activities in DR are disaggregated into several modules as load usage, contract selection and actual performance. Based on their intrinsic properties, different parametric models are proposed to represent the impact of each technical/social factor on the availability of DR. The parameters of these models are determined using learning based algorithms to adapt to various behavior patterns of consumers. The outputs of the framework will serve as the quantifiers of DR capability and are integrated into reliability-based CV evaluation. The results of case studies verify the effectiveness of the proposed methodology.
机译:需求响应(DR)被认为是减轻操作不确定性的有效工具,并提高智能电网供电可靠性。但是,随着时变的属性,博士可以致力于多大程度上是公用事业的主要问题。本文提出了一种评估博士的能力值(CV)的新方法,该方法具有为博士的不确定性建模开发的方法论框架。该框架的新颖性是将物理和人性相关分析纳入DR程序,这允许对CV估计进行准确的DR可变性的表征。为此,DR中的需求侧活动被分解为多个模块,作为负载使用,合同选择和实际性能。基于其内在特性,提出了不同的参数模型来代表每个技术/社会因素对DR的可用性的影响。使用基于学习的算法确定这些模型的参数,以适应消费者的各种行为模式。框架的输出将用作DR功能的量词,并集成到基于可靠性的CV评估中。案例研究结果验证了提出的方法的有效性。

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