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Fast Fluid And Ground Temperature Computation For Geothermal Ground-loop Heat Exchanger Systems

机译:地热地回路换热器系统的快速流体和地面温度计算

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Heat pumps (HPs) coupled to ground-loop heat exchangers (GLHEs) have become increasingly popular for heating and cooling purposes in the context of growing energy costs. Precise design of GLHEs requires the computation of hourly fluid and ground temperatures, especially when the geothermal system is coupled to another system (e.g. boiler, cooling tower). However, because of the computational burden, hourly computation is often simplified in actual designs by rules of thumb or approximations that can cause over-or under-design of the GLHE system. The hourly temperature computation can be seen as a convolution in the time domain that is most efficiently evaluated by fast Fourier transform (FFT). An additional substantial reduction in computing time is obtained by subsampling the analytical function at a few selected times according to a geometric sequence and then using a good quality interpolant such as the cubic spline. This combined "FFT-S approach" enables one to obtain a 30-year hourly simulation in less than a second on a standard laptop computer, even for the computationally intensive finite line-source model. This reduction of one to two orders of magnitude in computing time compared to time-domain approaches with load aggregation should help promote the use of hourly temperature simulation for GLHE design purposes.
机译:在能源成本不断增长的背景下,与地面回路换热器(GLHE)相连的热泵(HP)在供暖和制冷方面越来越受欢迎。 GLHE的精确设计需要计算每小时的流体和地面温度,尤其是在地热系统与另一个系统(例如锅炉,冷却塔)耦合时。但是,由于计算量大,在实际设计中通常通过经验法则或近似法简化每小时的计算,这可能会导致GLHE系统的设计过度或设计不足。每小时温度计算可以看作是时域中的卷积,可以通过快速傅里叶变换(FFT)对其进行最有效的评估。通过根据几何序列在几个选定的时间对采样函数进行二次采样,然后使用高质量的插值器(例如三次样条),可以大大减少计算时间。这种组合的“ FFT-S方法”使一个人能够在不到一秒钟的时间内在标准便携式计算机上获得30年的每小时模拟,即使对于计算密集型的有限线源模型也是如此。与采用负载聚合的时域方法相比,计算时间减少了一两个数量级,应该有助于促进将每小时温度模拟用于GLHE设计目的。

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