Modeling neighborhood-scale shallow geothermal energy utilization: a case study in Berlin

被引:11
作者
Randow, Jakob [1 ,3 ]
Chen, Shuang [2 ,6 ]
Lubashevsky, Katrin [1 ,4 ]
Thiel, Steve [5 ]
Reinhardt, Tom [5 ]
Rink, Karsten [2 ]
Grimm, Rudiger [5 ]
Bucher, Anke [1 ]
Kolditz, Olaf [2 ,3 ]
Shao, Haibing [2 ]
机构
[1] Leipzig Univ Appl Sci HTWK, Fac Engn, Leipzig, Germany
[2] UFZ Helmholtz Ctr Environm Res, Dept Environm Informat, Leipzig, Germany
[3] Tech Univ Dresden, Fac Environm Sci, Freiberg, Germany
[4] Tech Univ Chemnitz, Fac Math, Freiberg, Germany
[5] geoENERGIE Konzept GmbH, Freiberg, Germany
[6] BGR, Fed Inst Geosci & Nat Resources, Hannover, Germany
关键词
Shallow Geothermal Exploitation; Borehole Heat Exchanger; Ground Source Heat Pump; Numerical Modeling; FEFLOW; OpenGeoSys; GROUNDWATER-FLOW; HEAT-TRANSFER; SIMULATION;
D O I
10.1186/s40517-022-00211-9
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Nowadays, utilizing shallow geothermal energy for heating and cooling buildings has received increased interest in the building sector. Among different technologies, large borehole heat exchanger arrays are widely employed to supply heat to various types of buildings. Recently, a 16-borehole array was constructed to extract shallow geothermal energy to provide heat to a newly-developed public building in Berlin. To guarantee the quality of the numerical model and reveal its sensitivity to different subsurface conditions, model simulations were conducted for 25 years with two finite element simulators, namely the open-source code OpenGeoSys and the widely applied commercial software FEFLOW. Given proper numerical settings, the simulation results from OpenGeoSys and FEFLOW are in good agreement. However, further analysis reveals differences with respect to borehole inflow temperature calculation implemented in the two software. It is found that FEFLOW intrinsically uses the outflow temperature from the previous time step to determine the current inflow temperature, which makes it capable of much faster simulation by avoiding iterations within a single time step. In comparison, OpenGeoSys always updates the inflow and outflow temperature based on their current time step values. Because the updates are performed after each iteration, it delivers more accurate results with the expense of longer simulation time. Based on this case study, OpenGeoSys is a valid alternative to FEFLOW for modeling ground source heat pump systems. For modellers working in this field, it is thus recommended to adopt small enough time step size, so that potential numerical error can be avoided.
引用
收藏
页数:26
相关论文
共 40 条
[11]  
BEIMS U, 1983, Z ANGEW GEOL, V29, P482
[12]  
Bennet J., 1987, NOTES HEAT TRANSFER, P1
[13]   Sensitivity analysis on the performance of a ground source heat pump equipped with a double U-pipe borehole heat exchanger [J].
Casasso, Alessandro ;
Sethi, Rajandrea .
EUROPEAN GEOSCIENCES UNION GENERAL ASSEMBLY 2014, EGU DIVISION ENERGY, RESOURCES & THE ENVIRONMENT (ERE), 2014, 59 :301-308
[14]   Numerical investigation on the performance, sustainability, and efficiency of the deep borehole heat exchanger system for building heating [J].
Chen, Chaofan ;
Shao, Haibing ;
Naumov, Dmitri ;
Kong, Yanlong ;
Tu, Kun ;
Kolditz, Olaf .
GEOTHERMAL ENERGY, 2019, 7 (01)
[15]   Long-term thermal imbalance in large borehole heat exchangers array - A numerical study based on the Leicester project [J].
Chen, Shuang ;
Cai, Wanlong ;
Witte, Francesco ;
Wang, Xuerui ;
Wang, Fenghao ;
Kolditz, Olaf ;
Shao, Haibing .
ENERGY AND BUILDINGS, 2021, 231
[16]   Numerical evaluation of the effects of groundwater flow on borehole heat exchanger arrays [J].
Choi, Jung Chan ;
Park, Joonsang ;
Lee, Seung Rae .
RENEWABLE ENERGY, 2013, 52 :230-240
[17]   Finite element modeling of borehole heat exchanger systems Part 2. Numerical simulation [J].
Diersch, H. -J. G. ;
Bauer, D. ;
Heidemann, W. ;
Ruehaak, W. ;
Schaetzl, P. .
COMPUTERS & GEOSCIENCES, 2011, 37 (08) :1136-1147
[18]   Finite element modeling of borehole heat exchanger systems Part 1. Fundamentals [J].
Diersch, H. -J. G. ;
Bauer, D. ;
Heidemann, W. ;
Ruehaak, W. ;
Schaetzl, P. .
COMPUTERS & GEOSCIENCES, 2011, 37 (08) :1122-1135
[19]  
Diersch H.-J.G., 2013, FEFLOW: Finite Element Modeling of Flow, Mass and Heat Transport in Porous and Fractured Media
[20]  
ESKILSON P, 1988, NUMER HEAT TRANSFER, V13, P149, DOI 10.1080/10407788808913609