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Effective permeability and thermal conductivity of open-cell metallic foams via homogenization on a microstructure model

机译:通过微结构模型均质化的开孔金属泡沫的有效渗透率和热导率

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摘要

To predict effective thermal conductivities and permeabilities of open-cell foams, produced by a SlipReaction FoamSintering (SRFS)-process, a multiscale approach based on the homogenization method is applied. This formulation allows to calculate effective aerothermal properties by solving either special thermal or Stokes flow problems on a unit cell. Starting from a detailed foam description by tomographic images, 3D microstructure models of the SlipReaction (SR)-foam are generated by combining spectral analyses with a specific mesh generation. Effective thermal conductivities of an Inconel foam sample are predicted with different FE discretizations by the homogenization procedure and compared with the experimental results, measured by the transient plane source technique. Effective Darcy permeabilities are evaluated in the foam center and compared with experimental pressure drop measurements. Moreover, permeability predictions of the unit cells with extremal porosity allow to measure the permeability scatter of the Inconel SR-foam sample.
机译:为了预测通过滑移反应泡沫烧结(SRFS)工艺生产的开孔泡沫的有效导热率和渗透率,采用了基于均质化方法的多尺度方法。通过解决晶胞上的特殊热流或斯托克斯流问题,该公式可以计算有效的空气热性能。从层析成像图像对泡沫的详细描述开始,通过将光谱分析与特定的网格生成相结合,生成了滑动反应(SR)泡沫的3D微观结构模型。通过均质化程序通过不同的FE离散化预测Inconel泡沫样品的有效热导率,并将其与通过瞬态平面源技术测量的实验结果进行比较。在泡沫中心评估有效达西渗透率,并与实验压降测量值进行比较。此外,具有极高孔隙率的晶胞的渗透率预测可以测量Inconel SR泡沫样品的渗透率散布。

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