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首页> 外文期刊>Applied Energy >Large-scale living laboratory of seasonal borehole thermal energy storage system for urban district heating
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Large-scale living laboratory of seasonal borehole thermal energy storage system for urban district heating

机译:城市区季节钻孔热能储能系统大规模生活实验室

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摘要

To obtain a better understanding of the characteristics of large-scale seasonal borehole thermal energy storage (BTES), a living laboratory was developed in Chifeng, China. In the living laboratory, combined heat sources of industrial waste heat and solar energy were adopted for 500000 m(3) borehole thermal energy storage. The concept and design of the system, as well as the first operation results of the system, are presented herein. First, critical considerations for developing a large-scale borehole thermal energy storage system were briefly reviewed. The living laboratory was developed to be an experimental platform to conduct long-term field tests of major system operation options while working as an actual running application simultaneously. The flexibility of the system was enhanced using changeable system integration modes and a modular design for each subsystem. According to the monitoring results of the first heat injection period, a total of 33458.6 GJ of thermal energy was injected into the storage. The average soil temperature increased from 10.0 to 35.6 degrees C, and the core temperature increased to approximately 40.2 degrees C. The increase in soil temperature 5 m outside the storage was approximately 2 degrees C. No obvious temperature increase was observed 10 m outside the storage. The results indicate the potential of large-scale borehole thermal energy storage to be integrated into the district heating network to improve the flexibility, robustness, and energy efficiency of the overall energy system.
机译:为了更好地理解大规模季节性钻孔热能储存(BTES)的特点,中国赤峰开发了一种生活实验室。在生活实验室,采用500000米(3)井热能储存的工业废热和太阳能的组合热源。系统的概念和设计以及系统的第一操作结果。首先,简要回顾了开发大型钻孔热能存储系统的批判考虑因素。生活实验室是为一个实验平台进行了一个实验平台,在同时使用实际运行的应用程序时进行主要系统操作选项的长期现场测试。使用可变的系统集成模式和每个子系统的模块化设计,系统的灵活性得到了增强。根据第一热注射期的监测结果,将总共33458.6GJ的热能注入储存。平均土壤温度从10.0增加到0.0至35.6℃,核心温度增加到大约40.2℃。储存外部5米的土壤温度增加约为2℃。在储存外未观察到明显的温度增加10米。结果表明,大型钻孔热能存储的潜力集成到地区加热网络中,以提高整体能源系统的灵活性,稳健性和能效。

著录项

  • 来源
    《Applied Energy 》 |2020年第15期| 114763.1-114763.17| 共17页
  • 作者单位

    Tsinghua Univ Dept Bldg Sci Beijing 10084 Peoples R China;

    Tsinghua Univ Dept Bldg Sci Beijing 10084 Peoples R China;

    Chifeng Heran Energy Saving Sci & Technol Co Ltd Chifeng 024000 Inner Mongolia Peoples R China;

    Tsinghua Univ Dept Bldg Sci Beijing 10084 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Borehole thermal energy storage; BTES; District heating;

    机译:钻孔热能存储;BTES;区供暖;

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