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Optimization of geothermal energy extraction from abandoned oil well with a novel well bottom curvature design utilizing Taguchi method

机译:利用Taguchi方法的井底曲率设计优化废弃油井的地热能提取

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Abandoned oil wells have a great potential to be converted into geothermal energy extraction wells. However, these wells have low energy conversion rates as compared to conventional geothermal open loop wells. Therefore, increasing the heat transfer is one of the major concerns in the utilization of abandoned oil well for geothermal energy extraction. This study is conducted to evaluate the heat transfer enhancement of a novel well bottom curvature design installed inside the wellbore using a computational fluid dynamics approach. Various well bottom curvature designs were evaluated, along with the effects of working fluid inlet temperature and flow rate. For optimization, Taguchi Statistical Method was adopted to determine the optimum parameter combination and their interactions. From the study, it is found that 0.5 m well bottom curvature is preferred for higher output temperature and heat transfer rate, whereas 0.8 m well bottom curvature is recommended for lowering pressure drop and producing higher CoP. On the other hand, lower injection temperature (288K) and lower injection rate (10 m(3)/h) produces better overall wellbore performance, except for higher outlet temperature purposes, where a higher injection temperature (298K) is favoured and higher heat transfer rate applications, where a higher injection rate (30 m(3)/h) is preferred. Crown Copyright (C) 2019 Published by Elsevier Ltd. All rights reserved.
机译:废弃的油井有很大的潜力转化为地热能开采井。但是,与常规的地热开环井相比,这些井的能量转化率低。因此,增加热传递是利用废弃油井开采地热能的主要问题之一。进行这项研究以评估使用计算流体动力学方法安装在井眼内部的新型井底曲率设计的传热增强效果。评估了各种井底曲率设计,以及工作流体入口温度和流速的影响。为了优化,采用了Taguchi统计方法来确定最佳参数组合及其相互作用。从研究中发现,对于较高的输出温度和传热速率,最好使用0.5 m的井底曲率,而建议使用0.8 m的井底曲率来降低压降和产生更高的CoP。另一方面,较低的注入温度(288K)和较低的注入速率(10 m(3)/ h)会产生更好的整体井筒性能,除了较高的出口温度用途外,在这种情况下,较高的注入温度(298K)是有利的,而热量较高传输速率应用,其中较高的注入速率(30 m(3)/ h)是首选。 Crown版权所有(C)2019,由Elsevier Ltd.出版。保留所有权利。

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