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Recycling construction and industrial landfill waste material for backfill in horizontal ground heat exchanger systems

机译:水平地面热交换器系统中用于回填的建筑和工业垃圾填埋场回收材料

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摘要

This research experimentally and numerically investigates the possibility of recycling some low cost construction and industrial waste landfills materials as potential backfills in horizontal ground heat exchangers (HGHE). The aim of this study was to compare the temperature distribution development in different backfill materials with respect to time. The tested materials include sand, crushed basalt, broken brick, crushed concrete, and metallic by-products including copper slag, aluminium slag, mill scale and iron ores (fine and pellets). Initial thermal testing on these materials in an environmental climatic chamber indicated concrete and crushed brick had similar performance to sand, whereas metallic materials had better performance by up to 77% improvement compared to sand. Various percentages of the backfill material (20, 40, 60, 80 and 100%) blended with the remaining percentage of sand showed that the higher the percentage addition of the waste material, the better the heat storage of the enhanced sand. Particle size distribution was also a significant parameter in backfill selection, where medium sized particle sizes (1.18-2 mm) performed 92% better compared to course and fine gradations of the same material. An experimental set-up of a HGHE system was then constructed and filled with the best performing backfill materials to determine the heat storage and release processes on the thermal performance of the system. The paper also reports results from a transient three-dimensional finite volume model developed in ANSYS Fluent 17.2 computational fluid dynamic (CFD) software of a thin section of a HGHE. The experimental and numerical model were used to predict and analyze the temperature distribution developing within the surrounding backfill material with respect to charging (heating) and discharging (extracting heat) modes of the HGHE. Results obtained from both experimental and numerical studies show the temperature range and duration of hot water produced from the system were in line with low temperature space heating guidelines and that mill-scale, copper slag and aluminium slag were the best backfill materials, where the thermal capacity of the HGHE system can be doubled using these materials, compared to the use of sand alone. Congruence between the numerical simulations and experimental data was found. Crown Copyright (C) 2018 Published by Elsevier Ltd. All rights reserved.
机译:这项研究通过实验和数值研究,探讨了将一些低成本建筑和工业垃圾填埋场材料作为水平地面热交换器(HGHE)中潜在的回填物进行回收的可能性。这项研究的目的是比较不同回填材料随时间变化的温度分布。被测试的材料包括沙子,碎玄武岩,碎砖,碎混凝土以及金属副产品,包括铜渣,铝渣,轧机鳞片和铁矿石(细粉和颗粒)。在环境气候室内对这些材料进行的初步热测试表明,混凝土和碎砖的性能与沙子相似,而金属材料的性能比沙子更好,提高了77%。各种百分比的回填材料(20%,40%,60%,80%和100%)与其余百分比的沙子混合,表明废料的添加百分比越高,增强型沙子的储热效果越好。粒度分布也是回填选择中的重要参数,与相同材料的粗细级配相比,中等粒度(1.18-2 mm)的性能要好92%。然后构建了HGHE系统的实验装置,并填充了性能最佳的回填材料,以确定系统热性能的热量存储和释放过程。本文还报告了在HGHE薄截面的ANSYS Fluent 17.2计算流体力学(CFD)软件中开发的瞬态三维有限体积模型的结果。实验和数值模型用于预测和分析围绕HGHE的充电(加热)和放电(排热)模式在周围回填材料内形成的温度分布。通过实验和数值研究获得的结果表明,该系统产生的热水的温度范围和持续时间符合低温空间加热准则,并且工厂规模,铜渣和铝渣是最佳的回填材料,其中与仅使用沙子相比,使用这些材料可以使HGHE系统的产能提高一倍。发现数值模拟与实验数据之间的一致性。 Crown版权所有(C)2018,由Elsevier Ltd.出版。保留所有权利。

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