Utilizing shallow geothermal energy to develop an energy efficient HVAC system

被引:34
|
作者
Lyu, Weihua
Li, Xianting
Yan, Shuai
Jiang, Sihang
机构
基金
中国国家自然科学基金;
关键词
Shallow geothermal energy; Free-running temperature; Pipe-embedded envelope; Fresh air pre-handling; Building energy efficiency; HEAT-PUMP SYSTEM; EMBEDDED BUILDING ENVELOPE; PERFORMANCE ANALYSIS; THERMAL PERFORMANCE; EXCHANGER; REDUCTION; MODEL; WATER;
D O I
10.1016/j.renene.2019.09.032
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Traditionally, shallow geothermal energy is utilized by a ground source heat pump. In fact, the temperature of shallow geothermal energy is typically quite suitable for the cooling/heating of building envelopes and fresh air. To utilize shallow geothermal energy more efficiently, an integrated system is proposed that combines pipe-embedded walls, pipe-embedded windows, and fresh air pre-handling system with the conventional ground source heat pump system. This proposal is based on the temperature comparison among indoor air, envelopes, fresh air and undisturbed soil. A simulation model of the integrated system is developed on the platform of TRNSYS. The free-running temperature and energy consumption of the integrated system applied in an office building in Beijing are investigated. The results show that the free-running temperature of the integrated system is always below 28 degrees C throughout the year, and the non-air conditioning period is extended by 34% compared with the conventional GSHP system. Moreover, the integrated system can greatly reduce the peak load, and the heat pump system capacity can be reduced by as much as 30%. The annual cumulated load for the building is reduced by approximately 43%. Consequently, the energy saving rate is approximately 29% compared with that of the conventional GSHP system. The emission reduction of CO2 is more than 7 kg per square meter. Therefore, the integrated system can fully utilize shallow geothermal energy to build an energy efficient HVAC system. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:672 / 682
页数:11
相关论文
共 50 条
  • [41] Shallow geothermal energy-current legal situation
    Haehnlein, Stefanie
    Blum, Philipp
    Bayer, Peter
    GRUNDWASSER, 2011, 16 (02) : 69 - 75
  • [42] Use rights markets for shallow geothermal energy management
    Alcaraz, Mar
    Garcia-Gil, Alejandro
    Vazquez-Sune, Enric
    Velasco, Violeta
    APPLIED ENERGY, 2016, 172 : 34 - 46
  • [43] Development and Utilization of Shallow Geothermal Energy at Home and Abroad
    马学鹏
    科技视界, 2016, (01) : 191 - 191
  • [44] Energy Efficient HVAC System with Spot Cooling in an Automobile - Design and CFD Analysis
    Ghosh, Debashis
    Wang, Mingyu
    Wolfe, Edward
    Chen, Kuo-huey
    Kaushik, Shailendra
    Han, Taeyoung
    SAE INTERNATIONAL JOURNAL OF PASSENGER CARS-MECHANICAL SYSTEMS, 2012, 5 (02): : 885 - 903
  • [45] Prospects of underground engineering in the use of shallow geothermal energy
    Kovacevic, Meho Sasa
    Bacic, Mario
    Arapov, Ivan
    GRADEVINAR, 2012, 64 (12): : 1019 - 1028
  • [46] Energy Efficient and Effective Control Strategy of HVAC System in Large Shopping Complex
    Mondal, Ashoke
    Bhattacharya, Shilpi
    2014 3RD INTERNATIONAL CONFERENCE ON ECO-FRIENDLY COMPUTING AND COMMUNICATION SYSTEMS (ICECCS 2014), 2014, : 116 - 120
  • [47] Comprehensive review of hydrogen generation utilizing geothermal energy
    Om, Hari
    Sircar, Anirbid
    Gautam, Tejaswini
    Yadav, Kriti
    Bist, Namrata
    UNCONVENTIONAL RESOURCES, 2025, 5
  • [48] UTILIZING GEOTHERMAL-ENERGY FOR POWER-GENERATION
    YOSHIHIRO, N
    BUSINESS JAPAN, 1979, 24 (07): : 136 - 136
  • [49] AHP-Based Evaluation of the Suitability of Shallow Geothermal Energy Utilization in GSHP System
    Dong, Jie
    He, Peng
    Liu, Honghua
    Guan, Yong
    Liu, Haisong
    Xia, Weiqiang
    Dong, Jierui
    FRONTIERS IN ENERGY RESEARCH, 2022, 10
  • [50] Heat energy from a shallow geothermal system in Glasgow, UK: performance evaluation design
    Ninikas, Konstantinos
    Hytiris, Nicholas
    Emmanuel, Rohinton
    Aaen, Bjorn
    ENVIRONMENTAL GEOTECHNICS, 2020, 7 (04) : 274 - 281