A multi-parameter estimation of layered rock-soil thermal properties of borehole heat exchanger in a stratified subsurface

IF 9 1区 工程技术 Q1 ENERGY & FUELS
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Abstract

The high initial investment of borehole heat exchanger (BHE) prevents the popularization and application of ground-coupled heat pump system (GCHPs). As the premise of designing BHE, ground thermal properties are usually obtained using thermal response test (TRT), and parameter estimation method are applied based on homogeneous BHE model independent of geological stratification. In this paper, a multi-parameter estimation method using Bat algorithm (BA) is firstly proposed to obtain the layered rock-soil thermal properties based on the numerical layered BHE model, considering the characteristics of geological stratification. Then, a TRT experimental platform of three-layer BHE is developed to measure thermal responses of different stratified subsurface. Finally, the six thermal properties are obtained by the proposed multi-parameter estimation method based on BA, and their accuracy is validated using the experimental data in TRT. The five temperatures obtained from the numerical layered BHE model using the estimated results are compared with the corresponding experimental data, the results show that the maximum error of the inlet and outlet water temperatures of the BHE is respectively 3.32 % and 3.59 %, and it is 3.31 %, 2.38 % and 2.7 % for the coarse sand, fine sand and brown soil, respectively.

分层地下钻孔换热器的层状岩土热特性多参数估算
钻孔换热器(BHE)的初始投资较高,阻碍了地耦合热泵系统(GCHPs)的推广和应用。作为设计 BHE 的前提,通常采用热响应测试(TRT)获得地层热特性,并基于独立于地质分层的均质 BHE 模型应用参数估计方法。本文首先提出了一种使用蝙蝠算法(BA)的多参数估计方法,在数值分层 BHE 模型的基础上,考虑地质分层的特点,获得分层岩土热特性。然后,开发了三层 BHE 的 TRT 实验平台,以测量不同地层地下的热响应。最后,基于 BA 提出的多参数估计方法得到了六种热特性,并利用 TRT 实验数据验证了其准确性。将利用估算结果建立的分层 BHE 数值模型得到的五个温度与相应的实验数据进行比较,结果表明,BHE 的入口和出口水温的最大误差分别为 3.32% 和 3.59%,粗砂、细砂和棕壤的入口和出口水温的最大误差分别为 3.31%、2.38% 和 2.7%。
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来源期刊
Renewable Energy
Renewable Energy 工程技术-能源与燃料
CiteScore
18.40
自引率
9.20%
发文量
1955
审稿时长
6.6 months
期刊介绍: Renewable Energy journal is dedicated to advancing knowledge and disseminating insights on various topics and technologies within renewable energy systems and components. Our mission is to support researchers, engineers, economists, manufacturers, NGOs, associations, and societies in staying updated on new developments in their respective fields and applying alternative energy solutions to current practices. As an international, multidisciplinary journal in renewable energy engineering and research, we strive to be a premier peer-reviewed platform and a trusted source of original research and reviews in the field of renewable energy. Join us in our endeavor to drive innovation and progress in sustainable energy solutions.
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