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Development of energy textile to use geothermal energy in tunnels

机译:开发能源纺织品以在隧道中利用地热能

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A novel textile-type ground heat exchanger, a so-called "energy textile", is introduced in this paper. The energy textile to be assembled in a tunnel lining is devised to function as a ground-coupled heat exchanger (GHE) to operate a ground source heat pump (GSHP) system in tunnels. A test bed of six pilot energy textile modules with various configurations was constructed in an abandoned railroad tunnel in South Korea. Long-term field monitoring was performed to measure the heat exchange capacity of each energy textile module by applying artificial heating and cooling loads on it. In the course of monitoring, the inlet and outlet fluid temperatures of the energy textile, the pumping rate, the ground temperature, and the air temperature inside the tunnel were measured continuously. Each type of energy textile modules was compared in terms of its heat exchange efficiency, which appears to be sensitive to fluctuation of air temperature in the tunnel. In addition, three-dimensional computational fluid dynamic (CFD) analyses were carried out, employing FLUENT, to simulate the field test for each energy textile module. After verification of the numerical model with the field measurement, the influence of a drainage layer on the performance of the energy textile was parametrically examined. A conventional design procedure for horizontal GHEs was used in a preliminary design of an energy textile module, taking into consideration the air temperature variation inside the tunnel over the course of one year. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了一种新型的纺织品型地面热交换器,即所谓的“能源纺织品”。待组装在隧道衬砌中的能源纺织品被设计用作地面耦合热交换器(GHE),以操作隧道中的地源热泵(GSHP)系统。在韩国一个废弃的铁路隧道中建造了六个具有各种配置的试验性能源纺织模块的测试台。进行了长期的现场监测,通过在其上施加人为的加热和冷却负荷来测量每个能量纺织模块的热交换能力。在监测过程中,连续测量能量纺织品的入口和出口流体温度,抽速,地面温度和隧道内的空气温度。对每种类型的能量纺织模块的热交换效率进行了比较,这似乎对隧道内空气温度的波动很敏感。此外,使用FLUENT进行了三维计算流体动力学(CFD)分析,以模拟每个节能纺织模块的现场测试。在通过现场测量验证了数值模型之后,以参数方式检查了排水层对能量纺织品性能的影响。考虑到隧道内部空气温度在一年的过程中的变化,在能量纺织品模块的初步设计中使用了用于水平GHE的常规设计程序。 (C)2016 Elsevier Ltd.保留所有权利。

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