垂直双u型管地耦合热泵的三维数值热分析

A. Tarrad
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引用次数: 0

摘要

地面换热器对地联热泵的热工性能和经济性优化起着重要的作用。研究了钻孔尺寸、泥浆和土壤热性质对换热器热性能评价的影响。采用COMSOL Multiphysics 5.4软件对双u型管换热器进行了三维离散化数值模拟。双u型管作为平行流动布置进行循环,并位于井眼深处的平行结构(PFPD)中。浆液和地面导热系数选择在(0.73-2.0)W/m范围内。K和(1.24-2.8)W/m。K分别。结果表明:地面导热系数对地下换热器热性能的影响较为显著,对注浆换热器热性能的影响较小;灌浆导热系数由(0.73)W/m提高。K到(2.0)W/m。K在固定的地面导热系数为(2.4)W/m时。K使传热速率增加了(10)%。当地面导热系数由(1.24)W/m增加到(1.24)W/m时,换热器的换热速率显著提高了一倍。K至(2.8)W/m。K固定时浆液导热系数范围为(0.78 ~ 2.0)W/m.K。已经证实,当在测试的配置范围内使用具有高导热性的浆液时,增加钻孔尺寸对地面热交换器热性能的影响可以忽略不计。本文稳态数值分析模型的结果可用于地下换热器的初步钻孔设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A 3-Dimensional Numerical Thermal Analysis for A Vertical Double U-Tube Ground-Coupled Heat Pump
The ground heat exchanger plays a major role in the thermal performance and economic optimization of the ground-coupled heat pump. The present study focuses on the effect of the borehole size and the grout and soil thermal properties on the thermal assessment of these heat exchangers. A double U-tube heat exchanger was studied numerically by the COMSOL Multiphysics 5.4 software in a 3-dimensional discretization model. The double U-tube was circuited as a parallel flow arrangement and situated in a parallel configuration (PFPD) deep in the borehole. The grout and ground thermal conductivities were selected in the range of (0.73-2.0) W/m.K and (1.24-2.8) W/m.K respectively. The results revealed that the ground thermal conductivity showed a more pronounced influence on the thermal performance of the ground heat exchanger and with less extent for the grouting one. Increasing the grout filling thermal conductivity from (0.73) W/m.K to (2.0) W/m.K at a fixed ground thermal conductivity of (2.4) W/m.K has augmented the heat transfer rate by (10) %. The heat transfer rate of the ground heat exchanger exhibited marked enhancement as much as double when the ground thermal conductivity was increased from (1.24) W/m.K to (2.8) W/m.K at fixed grout thermal conductivity range of (0.78-2.0) W/m.K. It has been verified that increasing the borehole size has a negligible effect on the ground heat exchanger thermal performance when a grout with a high thermal conductivity was utilized in the ranged of examined configurations. The steady-state numerical analysis model outcomes of the present work could be implemented for the preliminary borehole design for a ground heat exchanger.
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