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A novel numerical approach for imposing a temperature boundary condition at the borehole wall in borehole fields

机译:在井眼场中对井壁施加温度边界条件的新数值方法

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The design of a borehole field should be based on a long-term simulation of its thermal response for the intended energy loads. A well-known method to evaluate the response is based on a pre-calculated dimensionless function, the g-function. When calculating g-functions, there are two commonly used approaches for treating the boundary condition at the borehole wall: a constant heat flux at every instant of time, or a uniform temperature at a constant total heat flow to the borehole field. This paper is focused on a new approach-to model the thermal process of borehole fields; in particular with a precise representation of a uniform temperature boundary condition at the borehole wall. The main purpose of this model is to be used as a research tool to either generate g-functions for particular cases or handle situations that cannot be addressed by others methods. First, the almost constant temperature along the borehole heat exchanger in operation requires a boundary condition of essentially isothermal boreholes along the depth. In a common case, the borehole heat exchangers are connected in parallel, thus all boreholes should have the same temperature. Also, the total heat flow to the borehole field should be constant over time. For this purpose, a numerical model in which the boreholes are filled with a hypothetical highly conductive material has been built, reproducing the isothermal condition. By thermally interconnecting the boreholes, the equal temperature condition is satisfied. Finally, the specified total heat flow is fed into one spot at the highly conductive material. The model is validated by generating g-functions of some simple borehole field configurations. The g-functions present, in general, a good agreement with the existing solutions for a similar boundary condition. Moreover, the model is also tested against real experimental data from a 2 x 3 borehole field at an office building. The simulated daily fluid temperatures are compared with measured daily fluid temperatures for the sixth year of operation. The simulated values present, in general, a good agreement with the measured data. The results show that there are no significant differences with regard to the boundary conditions at the borehole wall, which for this specific case is due to the fact that the system is thermally balanced. (C) 2015 Elsevier Ltd. All rights reserved.
机译:井眼场的设计应基于对预期能量负荷的热响应的长期模拟。评估响应的一种众所周知的方法是基于预先计算的无量纲函数g函数。在计算g函数时,有两种常用的方法来处理井壁的边界条件:在每个时刻都保持恒定的热通量,或者在恒定的总热流向井场的温度下保持均匀的温度。本文着眼于一种新的方法来模拟井眼的热过程。特别是精确地表示井壁处均匀的温度边界条件。该模型的主要目的是用作研究工具,以针对特定情况生成g函数或处理其他方法无法解决的情况。首先,沿运行中的井眼热交换器的几乎恒定的温度需要沿深度基本等温的井眼的边界条件。在通常情况下,井眼热交换器是并联连接的,因此所有井眼应具有相同的温度。而且,流向井场的总热量应随时间保持恒定。为此,已经建立了一种数值模型,其中用一种假定的高导电性材料填充了钻孔,从而再现了等温条件。通过使孔热互连,可以满足相同温度条件。最后,将规定的总热流馈入高导热材料的一个点。通过生成一些简单井眼场配置的g函数来验证该模型。通常,对于类似的边界条件,g函数与现有解决方案具有很好的一致性。此外,还针对来自办公大楼2 x 3钻孔场的真实实验数据对模型进行了测试。在运行的第六年,将模拟的每日流体温度与测得的每日流体温度进行比较。通常,模拟值与测量数据非常吻合。结果表明,井壁的边界条件没有显着差异,在这种情况下,这是由于系统是热平衡的。 (C)2015 Elsevier Ltd.保留所有权利。

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