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Performance of open borehole thermal energy storage system under cyclic flow regime

机译:循环流态下裸眼储热系统的性能

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Thermal energy storage can be accomplished through the installation of an array of vertical boreholes. Coupled hydrogeological-thermal simulation of the storage system is essential to provide an optimized configuration of boreholes and operation schedule for the thermal storage system on the site. This paper presents numerical investigations and thermohydraulic evaluation of open borehole thermal energy storage (BTES) system operating under cyclic flow regime. A three-dimensional numerical model for groundwater flow and heat transport is used to determine the annual variation of recovery temperature from the borehole thermal energy storage. The model includes the effects of convection and conduction heat transfer, heat loss to the adjacent confining strata, and hydraulic anisotropy. The operation scenario consists of cyclic injection and recovery after holding interval and four periods per year to simulate the seasonal temperature conditions. For different parameters of the system, performances were compared in terms of extraction temperature. The calculated water temperature at the producing pipe remains relatively constant within a certain range through the year. Heat loss, injection/production rate, and geometrical configuration of boreholes and aquifer used in the model are shown to impact the predicted temperature profiles at each stage and the recovery water temperature. However, injection temperature and hydraulic anisotropy have a less significant effect on the performance of BTES systems. Absolute permeability does not affect the temperature, but is inversely proportional to the injection pressure.
机译:可以通过安装一系列垂直井眼来实现热能存储。储水系统的水文地质热模拟耦合对于为现场的储热系统提供最佳的井眼配置和作业时间表至关重要。本文介绍了在循环流状态下运行的裸眼井热能存储(BTES)系统的数值研究和热工水​​力评估。利用地下水流动和热传导的三维数值模型,确定井眼热能储存的回收温度的年变化。该模型包括对流和传导热传递,到相邻约束层的热损失以及水力各向异性的影响。操作方案包括在保持间隔后进行循环注入和恢复,以及每年四个时段来模拟季节性温度条件。对于系统的不同参数,根据萃取温度比较了性能。在一年中的某个时间范围内,在生产管道处计算出的水温保持相对恒定。模型中使用的热损失,注入/生产速率以及井眼和含水层的几何构型显示出会影响每个阶段的预测温度曲线和回收水温度。但是,注射温度和水力各向异性对BTES系统的性能影响较小。绝对渗透率不影响温度,但与注入压力成反比。

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