基于多维度聚类算法的重庆住宅空调使用特征分析
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国家重点研发计划(2018YFD1100704)


Characteristics of occupants' behavior in Chongqing residential air-conditioning based on multi-dimensional clustering algorithm
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    摘要:

    长江流域夏季炎热、冬季阴冷,全年高湿,室内热环境恶劣,多样化的空调使用习惯对住宅供暖空调能耗有重要影响。大数据技术发展为更大样本、更高精度、更多维度的空调行为监测提供了基础,弥补了现有研究方法误差大和分类指标单一的不足。选取重庆市作为长江流域典型城市的代表,随机抽取2 000台住宅房间空调器样本,从空调使用时长、温度需求及能耗角度,构建空调运行的5个特征参数,采用多维度聚类算法识别出重庆地区空调使用习惯的典型类别,通过深入分析不同使用习惯类别的特征差异,总结出三类典型群体。

    Abstract:

    With a hot summer, cold winter and high humidity climate, residential energy consumption in the Yangtze River Basin is strongly affected by diverse air-conditioning behaviors in such a harsh indoor thermal environment. The development of big data technology provides a basis for larger samples, higher accuracy, and more dimensions of air-conditioning behavior monitoring, which can make up for the current situation of large errors in existing research methods and single classification indicators. By selecting 2 000 samples of residential room air conditioners (RACs) in Chongqing as the representative city: First, five characteristic parameters of air-conditioning operation are constructed from the perspective of air-conditioning using period, temperature demand and energy consumption; Then, a multi-dimensional clustering algorithm was used to identify the typical categories of air-conditioning behavior;Finally,through in-depth analysis of the characteristic differences among the clustering results, three typical air-conditioning behavior groups are summarized for residential buildings in Chongqing.

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薛凯,刘猛,晏璐,何昱洁.基于多维度聚类算法的重庆住宅空调使用特征分析[J].土木与环境工程学报(中英文),2022,44(4):167-175. XUE Kai, LIU Meng, YAN Lu, HE Yujie. Characteristics of occupants' behavior in Chongqing residential air-conditioning based on multi-dimensional clustering algorithm[J]. JOURNAL OF CIVIL AND ENVIRONMENTAL ENGINEERING,2022,44(4):167-175.10.11835/j. issn.2096-6717.2021.242

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  • 收稿日期:2021-08-11
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  • 在线发布日期: 2022-05-06
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