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Assessing capacity credit of demand response in smart distribution grids with behavior-driven modeling framework

机译:使用行为驱动的建模框架评估智能分发网格需求响应的能力学分

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摘要

In smart grid, demand response (DR) provides the utilities with a new alternative to mitigate the operational uncertainties and achieve the power balance target However, unlike conventional generation units, the performance of DR is strongly dependent on behavioral pattern of customers. As such, to what extent DR programs could be utilized to provide capacity support and contribute to the adequacy of the supply turns out to be an important concern for the utilities. In order to resolve this issue, this paper presents a new methodological framework for assessing the reliability value of DR in a context of distribution grid. The proposed approach is developed on the generation-oriented concept of capacity credit (CC) and it extends the CC application to a DR setting. As the major contribution of this work, the proposed framework accounts for the impacts of both physical and human-related factors on the availability of DR; furthermore, the uncertainty issue that associated with demand-side performances is also explicitly considered in our study. To properly handle the ambiguities of customers' willingness for DR participation, a novel Z-number-based technique is introduced. Through such an approach, not only the inherent randomness accruing from the demand-side could be captured, but the impact of information creditability would also be accounted for, which could allow a more realistic characterization of DR as compared with existing studies. By jointly using fuzzy-expectation technique and the centroid method, the different types of uncertain variables (probabilistic and Z-numbers) involved in our analysis can be normalized into comparable quantities and then used for the CC evaluation of DR. The proposed framework is illustrated based on both a small test race and a real distribution system, and the obtained results verify the significant role of DR in enhancing the reliability of supply, as well as its sensitivity to different influencing factors.
机译:在智能电网中,需求响应(DR)为实用程序提供了新的替代方案来减轻操作不确定性并实现电力平衡目标,然而,与传统的生成单位不同,DR的性能强烈依赖客户的行为模式。因此,在多大程度上可以利用DR程序提供能力支持,并有助于供应的充分性成为公用事业的重要关注。为了解决这个问题,本文提出了一种用于评估分布网格背景下的DR的可靠性值的新方法框架。所提出的方法是在面向生成的容量信用(CC)的概念上开发的,并且它将CC应用程序扩展到DR设置。作为这项工作的主要贡献,拟议的框架占了物理和人类相关因素对博士的可用性的影响;此外,在我们的研究中也明确考虑了与需求方表现相关的不确定性问题。为了正确处理客户对DR参与愿意的含糊的含量,介绍了一种基于新的Z-Number的技术。通过这种方法,不仅可以捕获需求侧的固有随机性,而且还可以占据信息信用率的影响,这可能允许与现有研究相比,允许对DR的更现实的表征。通过共同使用模糊期望技术和质心方法,我们分析中涉及的不同类型的不确定变量(概率和Z字母)可以标准化为可比量,然后用于DR的CC评估。所提出的框架是基于小型测试种族和实际分配系统的说明,而获得的结果验证了DR在提高供应可靠性方面的重要作用,以及对不同影响因素的敏感性。

著录项

  • 来源
    《International journal of electrical power and energy systems》 |2020年第6期|105745.1-105745.16|共16页
  • 作者单位

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    State Grid Beijing Elect Power Co Beijing 100031 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Capacity credit; Demand response; Smart distribution grid; Reliability; Z-number;

    机译:能力信用;需求响应;智能配电网格;可靠性;Z-Number;

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