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首页> 外文期刊>Hydrogeology journal >Effect of thermal-hydrogeological and borehole heat exchanger properties on performance and impact of vertical closed-loop geothermal heat pump systems
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Effect of thermal-hydrogeological and borehole heat exchanger properties on performance and impact of vertical closed-loop geothermal heat pump systems

机译:水文地质和井眼换热器特性对立式闭环地热热泵系统性能和影响的影响

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摘要

Ground-source geothermal systems are drawing increasing attention and popularity due to their efficiency, sustainability and being implementable worldwide. Consequently, design software and regulatory guidelines have been developed. Interaction with the subsurface significantly affects the thermal performance, sustainability, and impacts of such systems. Reviewing the related guidelines and the design software, room for improvement is evident, especially in regards to interaction with groundwater movement. In order to accurately evaluate the thermal effect of system and hydrogeological properties on a borehole heat exchanger, a fully discretized finite-element model is used. Sensitivity of the loop outlet temperatures and heat exchange rates to hydrogeological, system and meteorological factors (i.e. groundwater flux, thermal conductivity and volumetric heat capacity of solids, porosity, thermal dispersivity, grout thermal conductivity, background and inlet temperatures) are analyzed over 6-month and 25-year operation periods. Furthermore, thermal recovery during 25 years after system decommissioning has been modeled. The thermal plume development, transport and dissipation are also assessed. This study shows the importance of subsurface thermal conductivity, groundwater flow (flux>10~(?7) m/ s), and background and inlet temperature on system performance and impact. It also shows the importance of groundwater flow (flux>10~(?8) m/s) on thermal recovery of the ground over other factors.
机译:地源地热系统由于其效率,可持续性和在全球范围内的可实施性而日益引起人们的关注和欢迎。因此,开发了设计软件和法规指南。与地下的相互作用会严重影响此类系统的热性能,可持续性和影响。回顾相关指南和设计软件,有明显的改进空间,尤其是在与地下水运动的相互作用方面。为了准确地评估系统和水文地质特性对井筒换热器的热效应,使用了完全离散的有限元模型。分析了6-以下情况下环路出口温度和热交换率对水文地质,系统和气象因素的敏感性(即地下水通量,固体的导热系数和体积热容,孔隙度,热分散系数,灌浆导热系数,背景温度和入口温度)。一个月和25年的运营期。此外,已经对系统退役后25年的热回收进行了建模。还评估了热羽的发育,运输和消散。这项研究表明地下导热系数,地下水流量(流量> 10〜(?7)m / s)以及背景温度和入口温度对系统性能和影响的重要性。它还显示了地下水流量(通量> 10〜(?8)m / s)对地面热回收的重要性。

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