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Analytical formulation of effective heat transfer coefficient and extension of lumped capacitance method to simplify the analysis of packed bed storage systems

机译:有效传热系数的解析公式和集总电容扩展方法,简化了填充床存储系统的分析

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Analysis of the transient temperature evolution during charging or discharging of the packed bed thermal storage systems is immensely simplified with the formulation of an effective heat transfer coefficient between the solid storage materials and the heat transfer fluid. It can cut significant computational cost which is otherwise required for a complete numerical simulation. The lumped capacitance method, the simplest of the available options, is restricted only to the low Biot number scenarios and hence is seldom applicable to any real system. The formulation of the effective heat transfer coefficient allows the extension of the lumped capacitance method for moderate Biot numbers. The present work develops such a formulation to simplify the analysis of packed bed storage systems through analytical route. Earlier attempts in this direction were made through weighted average time method which is inherently restricted to the simple one-dimensional heat conduction problems. On the other hand, we find out the effective heat transfer coefficient starting from a general three dimensional analytical solution of the transient heat conduction and proceed with the well-known one term approximation which acts as the basis of the Heisler charts. The method is not dimensionally restricted and hence we can include realistic three dimensional shapes such as cuboid, short cylinder etc. in the formulation. We validate our method by comparing the resulting temperature profiles for the one-dimensional geometries which have been attempted earlier by the weighted average time method. We also provide the accuracy estimation (as a function of increasing Biot number) against the full numerical simulation for the geometries where the weighted average time is not applicable. Therefore, the current study provides the tool for an inexpensive theoretical estimation for the transient heat transfer behaviour in the thermal storage tanks which has long term design implications particularly for the large scale concentrated solar thermal power plants.
机译:通过在固体存储材料和传热流体之间建立有效的传热系数,极大地简化了对填充床储热系统充放电期间的瞬态温度变化的分析。它可以削减大量的计算成本,而这是完整的数值模拟所需要的。集总电容法是最简单的可用方法,仅限于低Biot数的情况,因此很少适用于任何实际系统。有效传热系数的公式允许将集总电容法扩展为适度的比奥数。本工作开发了这样一种公式,以简化通过分析途径对填充床存储系统的分析。通过加权平均时间方法在此方向上进行了较早的尝试,该方法固有地限于简单的一维导热问题。另一方面,我们从瞬态热传导的一般三维解析解开始寻找有效的传热系数,并以作为海斯勒图基础的众所周知的单项近似进行研究。该方法不受尺寸限制,因此我们可以在配方中包括逼真的三维形状,例如长方体,短圆柱体等。我们通过比较一维几何图形的结果温度曲线来验证我们的方法,而一维几何图形先前已通过加权平均时间方法进行了尝试。我们还针对不适用加权平均时间的几何图形的完整数值模拟,提供了准确性估计(作为增加的毕奥特数的函数)。因此,当前的研究为热储罐中的瞬态传热行为提供了一种廉价的理论估计工具,这对长期设计具有重要意义,特别是对于大型集中式太阳能热电厂。

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