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A methodology to investigate the contribution of conduction and radiation heat transfer to the effective thermal conductivity of packed graphite pebble beds, including the wall effect

机译:研究传导和辐射热传递对填充石墨卵石床有效导热率(包括壁效应)的贡献的方法

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The effective thermal conductivity represents the overall heat transfer characteristics of a packed bed of spheres and must be considered in the analysis and design of pebble bed gas-cooled reactors. During depressurized loss of forced cooling conditions the dominant heat transfer mechanisms for the passive removal of decay heat are radiation and conduction. Predicting the value of the effective thermal conductivity is complex since it inter alia depends on the temperature level and temperature gradient through the bed, as well as the pebble packing structure. The effect of the altered packing structure in the wall region must therefore also be considered. Being able to separate the contributions of radiation and conduction allows a better understanding of the underlying phenomena and the characteristics of the resultant effective thermal conductivity. This paper introduces a purpose-designed test facility and accompanying methodology that combines physical measurements with Computational Fluid Dynamics (CFD) simulations to separate the contributions of radiation and conduction heat transfer, including the wall effects. Preliminary results obtained with the methodology, offer important insights into the trends observed in the experimental results and provide a better understanding of the interplay between the underlying heat transfer phenomena. (C) 2017 Elsevier B.V. All rights reserved.
机译:有效的热导率代表了球状填充床的整体传热特性,在卵石床气冷反应器的分析和设计中必须予以考虑。在强制冷却条件的减压损失期间,用于被动去除衰变热的主要传热机制是辐射和传导。预测有效导热系数的值很复杂,因为它尤其取决于通过床层的温度水平和温度梯度以及卵石填充结构。因此,还必须考虑壁区域中堆积结构改变的影响。能够区分辐射和传导的贡献,可以更好地理解潜在现象和所得有效导热率的特性。本文介绍了一种专门设计的测试设施和随附的方法,该方法将物理测量结果与计算流体动力学(CFD)模拟相结合,以区分辐射和传导热传递的贡献,包括壁效应。用该方法获得的初步结果,提供了对实验结果中观察到的趋势的重要见解,并提供了对潜在传热现象之间相互作用的更好理解。 (C)2017 Elsevier B.V.保留所有权利。

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