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Long time performance analysis of ground source heat pump for space heating and cooling applications based on thermo-economic optimization criteria

机译:基于热经济优化准则的空间供热和制冷应用的地源热泵的长期性能分析

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A ground heat exchanger is the essential part of a ground source heat pump system. The soil temperature profile strongly influences soil properties and ground heat exchanger, which vary with time and space. The soil temperature profile is also a function of the heat transfer rate extracted from/or transferred to soil. Although there are several studies on the sizing and selection of ground heat exchangers, they either use the unchanged soil temperature obtained from meteorological data or do not run for long time periods to obtain a steady periodic soil temperature profile and, thus, over-predict the ground heat exchanger performance. The aim of this study is to obtain transient soil temperature profile of a parallel pipe horizontal ground heat exchanger by considering various system parameters with realistic boundary and operating conditions using meteorological and hourly building data. Experimental results have been obtained from a GSHP system established at Yildiz Technical University and compared with the results of numerical analysis. For a case study, the hourly required heating and cooling loads of a 200 m(2) office in Istanbul all year round are calculated by using HAP software. The fluid inlet temperatures equivalent to the hourly need for heating and cooling loads of office throughout the year have been simulated for a ten-year period in accordance with the different heat amounts extracted from soil or transferred to soil per unit pipe length. The effects of burial depth, pipe spacing and surface effects on soil temperature are also investigated. The horizontal and vertical temperature distribution in soil at the beginning, middle and end of heating and cooling seasons of first, fifth and tenth years are represented. Considering initial and operating costs, a reference function is defined as an optimization parameter. The effects of the increase rate in electricity prices, number of parallel pipes (NPT), burial depth, pipe spacing, pipe diameter and pipe length on reference function are investigated. (C) 2018 Elsevier B.V. All rights reserved.
机译:地面热交换器是地面源热泵系统的重要组成部分。土壤温度曲线强烈影响土壤性质和地面热交换器,它们随时间和空间而变化。土壤温度曲线也是从/从土壤中传出或传给土壤的传热速率的函数。尽管对地面换热器的尺寸和选择进行了多项研究,但它们要么使用从气象数据获得的不变的土壤温度,要么不长时间运行以获得稳定的周期性土壤温度曲线,因此对土壤换热器进行了过度预测。地面热交换器的性能。这项研究的目的是通过使用气象和每小时建筑数据考虑具有现实边界和运行条件的各种系统参数,来获得平行管道水平地面热交换器的瞬时土壤温度分布。实验结果是从耶尔迪兹工业大学建立的GSHP系统获得的,并与数值分析结果进行了比较。对于案例研究,使用HAP软件计算了伊斯坦布尔200 m(2)办事处全年的每小时所需供暖和制冷负荷。根据每单位管道长度从土壤中提取的热量或转移到土壤中的热量不同,模拟了十年中相当于全年办公室每小时供热和制冷负荷所需的流体入口温度,为期十年。还研究了埋藏深度,管道间距和表面效应对土壤温度的影响。显示了第一,第五和第十年供暖和降温季节开始,中期和结束时土壤的水平和垂直温度分布。考虑初始成本和运营成本,参考函数定义为优化参数。研究了电价上涨率,平行管数(NPT),埋深,管距,管径和管长对参考函数的影响。 (C)2018 Elsevier B.V.保留所有权利。

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