Two new analytical models for heat transport in ground-coupled heat pump system with heat loss at ground surface: A new meshless treatment of ground heat exchanger for reflecting heat capacity effect

IF 3.5 2区 工程技术 Q3 ENERGY & FUELS
Chenyang Tang , Hund-Der Yeh , Ching-Sheng Huang
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Abstract

Existing boundary conditions or source terms specified at cylindrical ground heat exchangers (GHEs) in ground-coupled heat pump (GCHP) systems neglect the effect of GHE heat capacity. This study modifies a governing equation as a new meshless GHE treatment reflecting the effect by the product of a coefficient and temperature time derivative. Two new analytical models are developed for depicting heat transport in a GCHP system with heat loss at the ground surface. The two-zone model adopts two coupled governing equations describing heat transport in the GHE and soil formation zones. The single-zone model applies the new GHE treatment for the GHE zone with the governing equation for the formation zone. Analytical solutions of the models are derived; finite element solutions are built to release analytical solutions’ assumption of the same thermal property of the GHE and formation below the GHE. Results suggest the coefficient equals the half product of the GHE density, specific heat, and square of its radius divided by its thermal conductivity. Both analytical solutions agree to temperature within 6.2 % relative difference and 5 % for most time of a heating or cooling season, applicable to most GHEs. One finite element solution with the new meshless GHE treatment takes about 1 % of the computing time of acquiring the other finite element solution based on the governing equation and fine GHE discretization. The assumption causes 10.6 % relative error in temperature at the GHE bottom, but the error dramatically decreases below 5 % elsewhere. The present solution applies to a field GCHP experiment. In conclusion, this study may provide a better understanding of GCHP systems and useful approach for field applications.
考虑地表热损失的两种新的地面耦合热泵系统传热分析模型:一种新的地表换热器无网格处理方法,以反映热容量效应
在地面耦合热泵(GCHP)系统中,圆柱式地热交换器(GHEs)的现有边界条件或源项忽略了地热交换器热容的影响。本研究修改了一个控制方程,作为一种新的无网格GHE处理,反映了系数和温度时间导数的乘积的影响。建立了两个新的分析模型,用于描述地表热损失的GCHP系统中的热传输。双区模型采用两个耦合控制方程来描述GHE和土壤形成区的热传递。单层模型对GHE层采用新的GHE处理方法,对地层层采用控制方程。导出了模型的解析解;有限元解的建立是为了释放解析解的假设,即GHE和GHE以下地层的热性质相同。结果表明,该系数等于GHE密度、比热、半径平方除以导热系数的一半。两种解析解的相对温差均在6.2%以内,在供暖或制冷季节的大部分时间内均在5%以内,适用于大多数温室气体。与基于控制方程和精细GHE离散化的另一个有限元解相比,采用新的无网格GHE处理的一个有限元解的计算时间约为1%。该假设导致GHE底部温度的相对误差为10.6%,但其他地方的误差急剧减小到5%以下。该方案适用于现场GCHP实验。总之,本研究可以为GCHP系统提供更好的理解,并为现场应用提供有用的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Geothermics
Geothermics 工程技术-地球科学综合
CiteScore
7.70
自引率
15.40%
发文量
237
审稿时长
4.5 months
期刊介绍: Geothermics is an international journal devoted to the research and development of geothermal energy. The International Board of Editors of Geothermics, which comprises specialists in the various aspects of geothermal resources, exploration and development, guarantees the balanced, comprehensive view of scientific and technological developments in this promising energy field. It promulgates the state of the art and science of geothermal energy, its exploration and exploitation through a regular exchange of information from all parts of the world. The journal publishes articles dealing with the theory, exploration techniques and all aspects of the utilization of geothermal resources. Geothermics serves as the scientific house, or exchange medium, through which the growing community of geothermal specialists can provide and receive information.
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