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A numerical study into effects of soil compaction and heat storage on thermal performance of a Horizontal Ground Heat Exchanger

机译:土壤压实和蓄热对水平地面热交换器热性能影响的数值研究

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The good capacity of the numerical simulations makes possible to bring some further responses on the backfill soil selection and its installation depth in the Horizontal Ground Heat Exchanger (HGHE). Therefore, a well-known backfill soil was considered to be used as substitutive material. The hydro thermal properties of the backfill material were estimated in laboratory and then injected in a numerical framework considering the atmosphere-soil-HGHE interaction. Numerical simulations were performed for a HGHE installed in the compacted backfill soil and the local natural soil. The simulation results showed that the compacted backfill soil improves by 8.5% the HGHE performance compared to local uncompacted soil. Two heat storage scenarios at three different installation depths were also investigated. The results showed that an inlet fluid temperature of 50 degrees C in summer increased highly the system performance by 13.7%-41.4%, while the improvement was less significant (0%-4.8%) for the ambient inlet temperature scenario. A deeper installation depth of HGHE increased also the system performance, the more energy could be stored and extracted. (c) 2021 Elsevier Ltd. All rights reserved.
机译:数值模拟的良好容量使得可以在水平地面热交换器(HGHE)中对回填土壤选择及其安装深度带来一些进一步的回应。因此,认为众所周知的回填土被用作替代材料。在实验室中估计回填材料的水力热性能,然后在考虑到大气 - 土壤 - HGHE相互作用的数值框架中注射。对安装在压实回填土壤和局部天然土壤中的HGHE进行了数值模拟。仿真结果表明,与局部未换行的土壤相比,压实的回填土壤增强了8.5%的HGHE性能。还调查了三种不同安装深度的两个热存储场景。结果表明,夏季50摄氏度的入口流体温度高,系统性能高度增加13.7%-41.4%,而环境入口温度方案的改善不太显着(0%-4.8%)。更深的安装深度的HGHE也增加了系统性能,能量越多,可以存储和提取更多。 (c)2021 elestvier有限公司保留所有权利。

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