Finite-Element Modeling of Heat Transfer in Ground Source Energy Systems with Heat Exchanger Pipes

被引:12
作者
Gawecka, Klementyna A. [1 ]
Taborda, David M. G. [1 ]
Potts, David M. [1 ]
Sailer, Eleonora [1 ]
Cui, Wenjie [1 ]
Zdravkovic, Lidija [1 ]
机构
[1] Imperial Coll London, Dept Civil & Environm Engn, London SW7 2AZ, England
基金
英国工程与自然科学研究理事会;
关键词
Heat transfer; Ground source energy system; Heat exchanger pipe; Finite-element modeling; Thermal response test; PETROV-GALERKIN METHODS; STEADY-STATE; FORMULATION; TRANSIENT; FLOWS;
D O I
10.1061/(ASCE)GM.1943-5622.0001658
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Ground source energy systems (GSES) utilize low enthalpy geothermal energy and have been recognized as an efficient means of providing low carbon space heating and cooling. This study focuses on GSES where the exchange of heat between the ground and the building is achieved by circulating a fluid through heat exchanger pipes. Although numerical analysis is a powerful tool for exploring the performance of such systems, simulating the highly advective flows inside the heat exchanger pipes can be problematic. This paper presents an efficient approach for modeling these systems using the finite-element method (FEM). The pipes are discretized with line elements and the conductive-advective heat flux along them is solved using the Petrov-Galerkin FEM instead of the conventional Galerkin FEM. Following extensive numerical studies, a modeling approach for simulating heat exchanger pipes, which employs line elements and a special material with enhanced thermal properties, is developed. The modeling approach is then adopted in three-dimensional simulations of two thermal response tests, with an excellent match between the computed and the measured temperatures being obtained.
引用
收藏
页数:14
相关论文
共 50 条
[31]   Finite Element Computation Method for Heat Transfer [J].
Sun, Shuxia ;
Sun, Gangcun ;
Tang, Le ;
Zhang, Xiaonan .
ADVANCED MANUFACTURING TECHNOLOGY, PTS 1, 2, 2011, 156-157 :766-+
[32]   Finite element modeling of heat and mass transfer during steaming of cowpea seeds [J].
Fang, C ;
Chinnan, MS ;
Thai, C .
JOURNAL OF FOOD SCIENCE, 2003, 68 (05) :1702-1712
[33]   Modeling of heat transfer for interlock knitted fabric using finite element method [J].
Hasani, Hossein ;
Ajeli, Saeed ;
Nouri, Navid .
INDIAN JOURNAL OF FIBRE & TEXTILE RESEARCH, 2013, 38 (04) :415-419
[34]   Multiscale Finite Element Method for heat transfer problem during artificial ground freezing [J].
Vasilyeva, Maria ;
Stepanov, Sergei ;
Spiridonov, Denis ;
Vasil'ev, Vasiliy .
JOURNAL OF COMPUTATIONAL AND APPLIED MATHEMATICS, 2020, 371
[35]   Study of Heat Transfer and Fluid Flow in Heat Exchanger and Improve Their Energy Efficiency [J].
Koosha, Nasir .
JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2016, 138 (03)
[36]   Exergy transfer effectiveness on heat exchanger for finite pressure drop [J].
Wu, Shuang-Ying ;
Yuan, Xiao-Feng ;
Li, You-Rong ;
Xiao, Lan .
ENERGY, 2007, 32 (11) :2110-2120
[37]   Finite Element Modeling of Geothermal Source of Heat Pump in Long-Term Operation [J].
Halaj, Elzbieta ;
Pajak, Leszek ;
Papiernik, Bartosz .
ENERGIES, 2020, 13 (06)
[38]   Numerical heat transfer comparison study of hybrid and non-hybrid ground source heat pump systems [J].
Kuzmic, Nikola ;
Law, Ying Lam E. ;
Dworkin, Seth B. .
APPLIED ENERGY, 2016, 165 :919-929
[39]   Numerical Simulation of Heat Transfer Characteristics of Horizontal Ground Heat Exchanger in Frozen Soil Layer [J].
王华军 ;
赵军 .
Transactions of Tianjin University, 2007, (03) :200-204
[40]   Evaluation of stainless steel pipe performance as a ground heat exchanger in ground-source heat-pump system [J].
Yoon, Seok ;
Lee, Seung-Rae ;
Kim, Min-Jun ;
Kim, Woo-Jin ;
Kim, Geon-Young ;
Kim, Kyungsu .
ENERGY, 2016, 113 :328-337