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Simulation of Thermal Transport in Open-Cell Metal Foams: Effect of Periodic Unit Cell Structure

机译:开孔金属泡沫热传输模拟:周期单元电池结构的影响

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摘要

Direct simulation of thermal transport in open-cell metal foams is conducted using different periodic unit-cell geometries. The periodic unit-cell structures are constructed by assuming the pore space to be spherical and subtracting the pore space from a unit cube of the metal. Different types of packing arrangement for spheres are considered—body centered cubic, face centered cubic, and the A15 lattice (similar to a Weaire-Phelan unit cell)—which give rise to different foam structures. Effective thermal conductivity, pressure drop, and Nusselt number are computed by imposing periodic boundary conditions for aluminum foams saturated with air or water. The computed values compare well with existing experimental measurements and semiempirical models for porosities greater than 80%. The effect of different foam packing arrangements on the computed thermal and fluid flow characteristics is discussed. The capabilities and limitations of the present approach are identified.
机译:使用不同的周期性单元 - 单元几何形状进行开放式电池金属泡沫中的热传输的直接模拟。通过假设孔隙空间是球形的并且从金属的单位立方体减去孔隙空间来构造周期性单元 - 单元结构。用于球体的不同类型的填充布置被认为是中心的立方体,面朝中心立方体,以及A15格(类似于令人满意的菲尔人单元电池) - 产生不同的泡沫结构。通过对饱和空气或水饱和的铝泡沫的周期边界条件施加周期边界条件来计算有效的导热性,压降和露珠数。计算值与现有的实验测量和半级模型相比,孔隙率大于80%。讨论了不同泡沫包装装置对计算的热和流体流动特性的影响。确定了本方法的能力和限制。

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