应用无限线源法进行非典型钻孔热交换器结构热响应试验的新准则

IF 3.5 2区 工程技术 Q3 ENERGY & FUELS
C. Millar, M.F. Lightstone, J.S. Cotton
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引用次数: 0

摘要

本研究探讨了无限线源在评价一系列钻孔热响应试验的温度响应时的应用。这可能发生在实际应用中,当现场作业持续多年,现场进行了修改,或者需要加强对控制策略的热特性的了解时,需要对现有井眼进行重新表征。在这项研究中,对热响应测试的开始时间和持续时间的新见解表明,在至少75小时的持续时间内,用于评估的数据应该在第一个50小时之后开始。与钻孔相连的水平管道的影响也被评估,并根据钻孔热交换器的有效长度进行表征。然后,对串联钻孔进行热响应测试,发现对于傅里叶数小于0.06的无限线源是适用的。最后,将案例研究的结果应用于具有水平集管的井眼串联试验trt模型。该模型使用实验入口质量流量和温度来研究单个钻孔之间的传热和热相互作用,以捕获出口温度。沿钻孔深度的热相互作用对ILS输出的影响最大。对于这些独特的井眼布置,ILS能够在输入值的5%内估计热导率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New guidelines for the application of the infinite line source method for thermal response tests on atypical borehole heat exchanger configurations
This study explores the application of the infinite line source when used to evaluate the temperature response of a thermal response test on a series of boreholes. This can occur in practical applications in which existing borehole fields need recharacterization when: field operation has persisted over multiple years, field modifications have been made, or enhanced understanding of the thermal properties are required for control strategies. In this study new insights towards the start time and duration of the thermal response test indicate that at a minimum duration of 75 h, the data for evaluation should begin after the first 50 h. The effect of horizontal piping connected to a borehole is also evaluated and characterised with respect to the effective length of the borehole heat exchanger. Next, thermal response tests performed on boreholes connected in series are evaluated and it was found that for a Fourier number less than 0.06 the infinite line source is applicable. Finally, the results from the case study are then applied to the model of experimental TRTs performed on boreholes in series with horizontal header pipes. The model uses the experimental inlet mass flow rate and temperature to investigate the heat transfer and thermal interaction between the individual boreholes to capture the outlet temperature. Thermal interaction along the depth of the boreholes are shown to have the majority of the impact on the ILS output. The ILS is able to estimate the thermal conductivity within 5% of the input value for these unique borehole arrangements.
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来源期刊
Geothermics
Geothermics 工程技术-地球科学综合
CiteScore
7.70
自引率
15.40%
发文量
237
审稿时长
4.5 months
期刊介绍: Geothermics is an international journal devoted to the research and development of geothermal energy. The International Board of Editors of Geothermics, which comprises specialists in the various aspects of geothermal resources, exploration and development, guarantees the balanced, comprehensive view of scientific and technological developments in this promising energy field. It promulgates the state of the art and science of geothermal energy, its exploration and exploitation through a regular exchange of information from all parts of the world. The journal publishes articles dealing with the theory, exploration techniques and all aspects of the utilization of geothermal resources. Geothermics serves as the scientific house, or exchange medium, through which the growing community of geothermal specialists can provide and receive information.
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