考虑到与周围小气候相互作用的峰谷调节空调响应能力分配

IF 10.1 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Smart Grid Pub Date : 2024-10-17 DOI:10.1109/TSG.2024.3482361
Zhenwei Zhang;Hongxun Hui;Yonghua Song
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引用次数: 0

摘要

空调的普及使其成为城市电力系统中重要的需求响应资源。空调的能耗直接决定于周围的小气候,而相应的余热会提高环境温度。本文研究了考虑与周围小气候相互作用的空调需求响应容量分配问题。首先,建立了结合空调和城市小气候的统一热模型,分析了微尺度的热通量传递。该热模型可以量化空调的额外能源需求与建筑砌块温度上升之间的相互作用。其次,建立了两阶段最优响应容量分配模型,以提供峰谷调节服务。在第一阶段,考虑响应收益和室内外温度偏差惩罚,负载聚合器(lag)参与合作博弈以最大化响应收益。在第二阶段,这些设施将实行平衡状态,以分配第一阶段的容量,使个别建筑物保持一致的舒适水平。此外,我们还设计了一种参数等价和微分线性化算法来有效地求解模型。最后,我们在澳门半岛所有4,739栋独立建筑上验证了所提出的方法。数值结果表明,该策略能有效提高响应效益,满足个体舒适性要求。
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Response Capacity Allocation of Air Conditioners for Peak-Valley Regulation Considering Interaction With Surrounding Microclimate
The proliferation of air conditioners (ACs) has established them as vital demand response resources in urban power systems. The energy consumption of ACs is directly determined by the surrounding microclimate, while the corresponding waste heat raises the ambient temperature. In this paper, we study the capacity allocation of ACs for demand response considering interaction with surrounding microclimate. First, a unified thermal model integrated with ACs and urban microclimate is established to analyze the micro-scale heat flux transfer. This thermal model can quantify the interactions between extra energy demand of ACs and rising temperature of building blocks. Second, we formulate a two-stage optimal response capacity allocation model of ACs for providing peak-valley regulation services. In the first stage, load aggregators (LAGs) engage in a cooperative game to maximize response benefits considering response revenues as well as indoor and outdoor temperature deviation penalties. In the second stage, the LAGs implement state-of-charge equalization to allocate the first-stage capacity, enforcing consistent comfort levels for individual buildings. Additionally, we design a parameter equivalence and differential linearization algorithm to solve model efficiently. Finally, we validate the proposed method on all 4,739 individual buildings in the Macau Peninsula. Numerical results show that the proposed strategy can effectively increase the response benefits and satisfy individual comfort requirements.
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来源期刊
IEEE Transactions on Smart Grid
IEEE Transactions on Smart Grid ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
22.10
自引率
9.40%
发文量
526
审稿时长
6 months
期刊介绍: The IEEE Transactions on Smart Grid is a multidisciplinary journal that focuses on research and development in the field of smart grid technology. It covers various aspects of the smart grid, including energy networks, prosumers (consumers who also produce energy), electric transportation, distributed energy resources, and communications. The journal also addresses the integration of microgrids and active distribution networks with transmission systems. It publishes original research on smart grid theories and principles, including technologies and systems for demand response, Advance Metering Infrastructure, cyber-physical systems, multi-energy systems, transactive energy, data analytics, and electric vehicle integration. Additionally, the journal considers surveys of existing work on the smart grid that propose new perspectives on the history and future of intelligent and active grids.
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