Experimental analysis and model verification of a new earth-to-air heat exchanger system

Zhengxuan Liu, Letizia Roccamena, M. Mankibi, Zhun Jerry Yu, Tingting Yang, Ying Sun, Pengcheng Sun, Shuisheng Li, Guoqiang Zhang
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引用次数: 3

Abstract

Utilizing renewable energy and associated energy-efficient technology has developed a strategy for energy-saving in the most energy consumer sectors, especially for buildings. Geothermal energy as an energy-saving and environment-friendly renewable technology has been widely adopted in the building sector. In this study, a new earth-to-air heat exchanger (EAHE) system with vertically buried tubes utilizing geothermal energy was proposed. Compared to the conventional EAHE systems, its advantages mainly include high geothermal energy utilization efficiency and ease of condensate water discharge. To evaluate the thermal performance of the proposed new EAHE system, an experimental set-up was established and a series of tests were conducted. Meanwhile, a numerical model for this proposed system was developed and then validated by the monitored experimental data. The monitored result show that the outlet air temperature ranges from 22.4°C to 24.2°C as the air flow velocity set at 1 m/s, enabling it to be used as an efficient energy-saving technology for summer cooling of buildings. The validated result show that the developed numerical model has a highly consistent result with the monitored experimental data, and their maximum error for outlet air temperatures is less than 0.74°C with a relative deviation of 3.11%. Based on the developed numerical model, the inlet air velocity is certified with an important influence on the thermal performance of this proposed system.
一种新型地空换热系统的实验分析与模型验证
利用可再生能源和相关的节能技术已经为大多数能源消费部门,特别是建筑物制定了一项节能战略。地热能作为一种节能环保的可再生能源技术,在建筑领域得到了广泛的应用。本文提出了一种利用地热能的地埋管式地空换热系统。与传统的EAHE系统相比,其优点主要是地热能利用效率高,凝结水排放容易。为了评估新提出的EAHE系统的热性能,建立了实验装置并进行了一系列测试。同时,建立了该系统的数值模型,并通过实测数据进行了验证。监测结果表明,当风速为1m /s时,出风温度范围为22.4℃~ 24.2℃,可作为建筑夏季制冷的高效节能技术。验证结果表明,所建立的数值模型与实测数据具有较高的一致性,出风温度的最大误差小于0.74℃,相对偏差为3.11%。基于所建立的数值模型,验证了入口气流速度对系统的热性能有重要影响。
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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