Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger

In the present work, a numerical investigation on the coaxial shallow borehole heat exchanger based on Computational Fluid Dynamics (CFD) technique in Hefei city of China has been performed. The effects of design parameters, including inlet flow rate, inlet fluid temperature, inner pipe material and...

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Main Authors: Guichen Li, Jianzhi Yang, Xiaowei Zhu, Zhihe Shen
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2021-09-01
Series:Energy and Built Environment
Subjects:
CFD
Online Access:http://www.sciencedirect.com/science/article/pii/S2666123320301045
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spelling doaj-5022a3133c624e2a94ab0ad86693c8852021-04-24T05:58:29ZengKeAi Communications Co., Ltd.Energy and Built Environment2666-12332021-09-0124445455Numerical study on the heat transfer performance of coaxial shallow borehole heat exchangerGuichen Li0Jianzhi Yang1Xiaowei Zhu2Zhihe Shen3Department of Built Environment, Hefei University of Technology, Hefei, Anhui 230009, ChinaDepartment of Built Environment, Hefei University of Technology, Hefei, Anhui 230009, China; State Key Laboratory of Aerodynamics, China Aerodynamics Research and Development Center, Mianyang, Sichuan 621000, China; Corresponding author at: Department of Built Environment, Hefei University of Technology, Hefei, Anhui 230009, China.Department of Mechanical Engineering, Johns Hopkins University, Baltimore, MD 21218, USADepartment of Built Environment, Hefei University of Technology, Hefei, Anhui 230009, China; Anhui's International Joint Research Center on Hydrogen Safety, Hefei, Anhui 230009, ChinaIn the present work, a numerical investigation on the coaxial shallow borehole heat exchanger based on Computational Fluid Dynamics (CFD) technique in Hefei city of China has been performed. The effects of design parameters, including inlet flow rate, inlet fluid temperature, inner pipe material and outer pipe diameter, on the heat transfer performance were systematically studied. Besides, the thermal behavior along the pipe has been carefully examined with focus on the thermal short-circuiting phenomena. When the fluid inlet velocity is less than the critical value, the turbulence intensity increases and the Nusselt number increases with the inlet flow rate increasing. However, there is sufficient time for heat transfer between the fluid in inner pipe and outer pipe because of low flow rates, leading to large heat loss, i.e., thermal short-circuiting phenomenon. It is found that with the inlet flow rate increasing, the heat transfer increases first and then decreases, and the rate of reduction slows down gradually. When the inlet flow rate increases, the pumping power undergoes exponential growth. As the inlet temperature increasing, the heat transfer decreases almost linearly. Moreover, when the soil temperature at the top of the casing is lower than that of the fluid in the casing, heat is transferred from the fluid in the casing to the soil, and the heat loss increases with the increase of the inlet fluid temperature. The material of inner pipe with high heat conductivity would result in large heat loss under the influence of thermal short-circuiting. The heat load increases while the pumping power required decreases with the increasing of outer pipe diameter. This study is very beneficial for the coaxial shallow borehole exchanger designs and energy conservation of buildings.http://www.sciencedirect.com/science/article/pii/S2666123320301045Coaxial borehole heat exchangerGeothermalHeat transfer performanceCFD
collection DOAJ
language English
format Article
sources DOAJ
author Guichen Li
Jianzhi Yang
Xiaowei Zhu
Zhihe Shen
spellingShingle Guichen Li
Jianzhi Yang
Xiaowei Zhu
Zhihe Shen
Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
Energy and Built Environment
Coaxial borehole heat exchanger
Geothermal
Heat transfer performance
CFD
author_facet Guichen Li
Jianzhi Yang
Xiaowei Zhu
Zhihe Shen
author_sort Guichen Li
title Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
title_short Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
title_full Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
title_fullStr Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
title_full_unstemmed Numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
title_sort numerical study on the heat transfer performance of coaxial shallow borehole heat exchanger
publisher KeAi Communications Co., Ltd.
series Energy and Built Environment
issn 2666-1233
publishDate 2021-09-01
description In the present work, a numerical investigation on the coaxial shallow borehole heat exchanger based on Computational Fluid Dynamics (CFD) technique in Hefei city of China has been performed. The effects of design parameters, including inlet flow rate, inlet fluid temperature, inner pipe material and outer pipe diameter, on the heat transfer performance were systematically studied. Besides, the thermal behavior along the pipe has been carefully examined with focus on the thermal short-circuiting phenomena. When the fluid inlet velocity is less than the critical value, the turbulence intensity increases and the Nusselt number increases with the inlet flow rate increasing. However, there is sufficient time for heat transfer between the fluid in inner pipe and outer pipe because of low flow rates, leading to large heat loss, i.e., thermal short-circuiting phenomenon. It is found that with the inlet flow rate increasing, the heat transfer increases first and then decreases, and the rate of reduction slows down gradually. When the inlet flow rate increases, the pumping power undergoes exponential growth. As the inlet temperature increasing, the heat transfer decreases almost linearly. Moreover, when the soil temperature at the top of the casing is lower than that of the fluid in the casing, heat is transferred from the fluid in the casing to the soil, and the heat loss increases with the increase of the inlet fluid temperature. The material of inner pipe with high heat conductivity would result in large heat loss under the influence of thermal short-circuiting. The heat load increases while the pumping power required decreases with the increasing of outer pipe diameter. This study is very beneficial for the coaxial shallow borehole exchanger designs and energy conservation of buildings.
topic Coaxial borehole heat exchanger
Geothermal
Heat transfer performance
CFD
url http://www.sciencedirect.com/science/article/pii/S2666123320301045
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AT jianzhiyang numericalstudyontheheattransferperformanceofcoaxialshallowboreholeheatexchanger
AT xiaoweizhu numericalstudyontheheattransferperformanceofcoaxialshallowboreholeheatexchanger
AT zhiheshen numericalstudyontheheattransferperformanceofcoaxialshallowboreholeheatexchanger
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