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A new model and solutions for a spiral heat exchanger and its experimental validation

机译:螺旋换热器的新模型,新方案及其实验验证

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摘要

A spiral heat exchanger was applied in a ground source heat pump (GSHP) system that is primarily used for residential indoor heating. Studies that have been performed on the heat transfer of spiral heat exchanger have focused on field measurements and numerical analysis; however, theoretical research on the subject is absent in the literature. In this study, a methodology is proposed to analyze the heat performance of a spiral heat exchanger. A ring source model was established and solved analytically to describe the temperature variation of the ground caused by a spiral heat exchanger. The validity of the model was examined by an experiment on the soil temperature variation with a spiral heater. The virtual ring tube surface temperature response of unit ring circle was calculated by a superposition of the contributions of the ring source itself and adjacent ring sources. Furthermore, a fast algorithm was created to compute the average tube surface temperature resulting from the dimensionless temperature rise at a point far from the ring source that is constant when the non-dimensional distance is less than 0.13. The author confirmed that the calculation time of this proposed algorithm decreased by a factor of 100 compared with the traditional integration method. A system designer will find this algorithm helpful when determining the size of a heat exchanger under a required heating load, particularly for different arrangement of spiral heat exchangers.
机译:螺旋热交换器应用于地面热泵(GSHP)系统,该系统主要用于住宅室内供热。关于螺旋换热器传热的研究集中于现场测量和数值分析。但是,文献中没有对该主题的理论研究。在这项研究中,提出了一种方法来分析螺旋热交换器的热性能。建立了环形源模型并进行了解析求解,以描述由螺旋热交换器引起的地面温度变化。通过使用螺旋加热器对土壤温度变化进行实验,检验了模型的有效性。通过将环源本身和相邻环源的贡献叠加,可以计算出单元环的虚拟环管表面温度响应。此外,创建了一种快速算法来计算由无量纲的温度上升所产生的平均管子表面温度,该无量纲的温度上升是在无因次距离小于0.13时远离环源的点处恒定的。作者证实,与传统的集成方法相比,该算法的计算时间减少了100倍。系统设计人员会发现,在确定所需加热负载下的热交换器尺寸时,尤其是对于螺旋式热交换器的不同布置,该算法很有用。

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