Effects of Groundwater Flow on a Ground Source Heat Pump System

被引:3
|
作者
Funabiki, Ayako [1 ]
Oguma, Masahito [1 ]
机构
[1] Nihon Univ, Dept Mech Engn, Coll Engn, 1 Nakagawara,Tamura Machi, Koriyama, Fukushima 9638642, Japan
关键词
D O I
10.1115/1.4035502
中图分类号
O414.1 [热力学];
学科分类号
摘要
Heat advection by groundwater flow is known to improve the performance of ground heat exchangers (GHEs), but the effect of groundwater advection on performance is not yet fully understood. This numerical study examined how parameters related to groundwater flow, such as aquifer thickness, porosity, lithology, and groundwater flow velocity, affected the performance of a borehole GHE. Under a thin-aquifer condition (10 m, or 10% of the entire GHE length in this study), groundwater flow velocity had the greatest effect on heat flux. At a groundwater flow velocity of at least 10(-4) m/s through a low-porosity aquifer filled with granite gravel with high thermal conductivity, the heat flux of a GHE was as much as 60% higher than that of a GHE in a setting without an aquifer. If the aquifer was as thick as 50 m, the high thermal conductivity of granite gravel doubled the heat flux of the GHE at a groundwater flow velocity of at least 10(-5) m/s. Thus, not only groundwater flow velocity but also aquifer thickness and thermal conductivity were important factors. However, groundwater seldom flows at such high velocities, and porosity, gravel size and composition, and aquifer thickness vary regionally. Thus, in the design of ground source heat pump systems, it is not appropriate to assume a large groundwater effect.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] In situ measurement of the undisturbed ground temperature for ground source heat pump system
    Department of Building Envirownent and Equipment Engineerings, Donghua University, Shanghai 201620, China
    J. Donghua Univ., 2008, 1 (73-77):
  • [42] Simulation Tool for Ground-Source Heat Pump System with Multiple Ground Heat Exchangers
    Katsura, Tako
    Nagano, Katsunori
    ASHRAE TRANSACTIONS 2018, VOL 124, PT 2, 2018, 124 : 92 - 101
  • [43] Analysis of Groundwater Advection and Ground-Heat Exchanger Spacing on Intermittent Ground-Source Heat Pump Operation
    Lines, Scott Harold
    Llano-Serna, Marcelo A.
    Williams, David J.
    ENERGY GEOTECHNICS, SEG-2018, 2019, : 19 - 26
  • [44] Operation characteristics and experience of a ground source heat pump system with a vertical ground heat exchanger
    Michopoulos, A.
    Zachariadis, T.
    Kyriakis, N.
    ENERGY, 2013, 51 : 349 - 357
  • [45] Research of Ground Heat Balance of Ground Source Heat Pump
    Meng, Tao
    Di, Yanqing
    Liu, Li
    Ma, Fei
    Zhao, Yu
    ICEET: 2009 INTERNATIONAL CONFERENCE ON ENERGY AND ENVIRONMENT TECHNOLOGY, VOL 1, PROCEEDINGS, 2009, : 777 - 781
  • [46] Applicability of the pipe structure and flow velocity of vertical ground heat exchanger for ground source heat pump
    Zhou, Hong
    Lv, Jian
    Li, Tailu
    ENERGY AND BUILDINGS, 2016, 117 : 109 - 119
  • [47] Study on the influence of borehole spacing considering groundwater flow and freezing factors on the annual performance of the ground source heat pump
    Zhang, Hongzhi
    Han, Zongwei
    Li, Xiuming
    Ji, Mingzhen
    Zhang, Xueping
    Li, Gui
    Yang, Lingyan
    APPLIED THERMAL ENGINEERING, 2021, 182
  • [48] Efficiency of Vertical Geothermal Heat Exchangers in the Ground Source Heat Pump System
    Heyi Zeng Nairen Diao Zhaohong FangThe Ground Source Heat Pump Research Center
    Journal of Thermal Science, 2003, (01) : 77 - 81
  • [49] Research Progress of Pile Heat Exchangers in Ground Source Heat Pump System
    Liu, Wenbo
    Xu, Minghai
    10TH INTERNATIONAL SYMPOSIUM ON HEATING, VENTILATION AND AIR CONDITIONING, ISHVAC2017, 2017, 205 : 3775 - 3781
  • [50] Efficiency of Vertical Geothermal Heat Exchangers in the Ground Source Heat Pump System
    Zeng, Heyi
    Diao, Nairen
    Fang, Zhaohong
    JOURNAL OF THERMAL SCIENCE, 2003, 12 (01) : 77 - 81