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A DEM-based heat transfer model for the evaluation of effective thermal conductivity of packed beds filled with stagnant fluid: Thermal contact theory and numerical simulation

机译:基于DEM的热交换模型,用于评估填充有滞留流体的填充床的有效导热系数:热接触理论和数值模拟

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摘要

The Effective thermal conductivity (keg) is one of the key thermal properties for packed beds in the presence of a stagnant fluid. In this study, a thermal discrete element model (DEM) based on the original Cheng-Yu-Zulli analytical model for mono-sized packed beds has been improved and implemented especially for mixed beds of different particle sizes or materials. In order to perform the DEM simulation for packed beds, a thermal contact theory considering three heat transfer mechanisms (solid contact conduction, solid-fluid-solid conduction and radiation) was derived and applied in the network of Voronoi cells obtained by radical Voronoi tessellation of the relevant beds. The numerical model was validated through a comparison with experimental results already reported in literature and a good prediction for the effective thermal conductivity was obtained for both mono-sized and multi-sized packed beds in a wide range of solid-to-fluid conductivity ratio. The model also showed a good performance to study the heat flow distribution as well as the coupled thermo-mechanical behavior of packed beds. (C) 2018 Elsevier Ltd. All rights reserved.
机译:有效热导率(keg)是在流体停滞的情况下填充床的关键热特性之一。在这项研究中,基于原始Cheng-Yu-Zulli分析模型的单一尺寸填充床的热离散元素模型(DEM)已得到改进和实现,特别是针对不同粒径或材料的混合床。为了对填充床进行DEM模拟,推导了考虑三种传热机理(固体接触传导,固体-流体-固体传导和辐射)的热接触理论,并将其应用于通过自由基Voronoi镶嵌实现的Voronoi细胞网络中。相关床铺。通过与文献中已报道的实验结果进行比较,对数值模型进行了验证,并在宽范围的固液比下获得了单尺寸和多尺寸填充床的有效导热系数的良好预测。该模型还显示出良好的性能,可研究填充床的热流分布以及热力学行为。 (C)2018 Elsevier Ltd.保留所有权利。

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