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Self-Consistent Open-Celled Metal Foam Model for Thermal Applications

机译:用于热学应用的自洽开孔金属泡沫模型

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摘要

Many engineering applications require thermal cycling of granular materials. Since these materials generally have poor effective thermal conductivity various techniques have been proposed to improve bed thermal transport. These include insertion of metal foam with the granular material residing in the interstitial space. The use of metal foam introduces a parasitic thermal capacitance, disrupts packing, and reduces the amount of active material. In order to optimize the combined high porosity metal foam-granular material matrix and study local thermal nonequilibrium, multiple energy equations are required. The interfacial conductance coefficients, specific interface area, and the effective thermal conductivities of the individual components, which are required for a multiple energy equation analysis, are functions of the foam geometry. An ideal three-dimensional geometric model of open-celled Duocell foam is proposed. Computed tomography is used to acquire foam cell and ligament diameter distribution, ligament shape, and specific surface area for a range of foam parameters to address various shortcomings in the literature. These data are used to evaluate the geometric self-consistency of the proposed geometric model with respect to the intensive and extensive geometry parameters. Experimental thermal conductivity data for the same foam samples are acquired and are used to validate finite element analysis results of the proposed geometric model. A simple relation between density and thermal conductivity ratio is derived using the results. The foam samples tested exhibit a higher dependence on relative density and less dependence on interstitial fluid than data in the literature. The proposed metal foam geometric model is shown to be self-consistent with respect to both its geometric and thermal properties.
机译:许多工程应用需要粒状材料的热循环。由于这些材料通常具有较差的有效导热率,因此已经提出了各种技术来改善床层的热传递。这些包括插入金属泡沫,而粒状材料驻留在间隙中。使用金属泡沫会引入寄生热电容,打乱包装并减少活性物质的量。为了优化组合的高孔隙率金属泡沫-颗粒材料矩阵并研究局部热不平衡,需要多个能量方程。多重能量方程分析所需的界面电导系数,比界面面积和各个组件的有效热导率是泡沫几何形状的函数。提出了理想的开孔Duocell泡沫三维几何模型。计算机断层扫描用于获取泡沫参数范围的韧带和韧带直径分布,韧带形状和比表面积,以解决文献中的各种缺点。这些数据用于相对于密集和广泛的几何参数来评估所提出的几何模型的几何自洽性。获取相同泡沫样品的实验热导率数据,并将其用于验证所提出几何模型的有限元分析结果。利用该结果得出密度与导热率之间的简单关系。与文献中的数据相比,测试的泡沫样品表现出对相对密度的更高依赖性和对间隙液的更低依赖性。所提出的金属泡沫几何模型就其几何和热学性能而言都是自洽的。

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