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On a relative shift in the periodic micro-geometry and other causes for discrepancy in the microstructure-based modelling of 3D-printed porous media

机译:关于周期性微几何的相对移动以及其他基于3D打印的多孔介质的基于微结构的建模中的差异的原因

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Samples with periodic microstructures, designed for good sound absorption, have been manufactured by 3D printing. Typically, however, the acoustical properties of the resulting samples differ from those predicted. Two causes of the discrepancies are (1) inaccuracies related to the 3D-printing resolution and (2) imperfections resulting from micro-fibres, micro-pores, and pore surface roughness, created during manufacture. Discrepancies due to the first cause can be addressed, post hoc, by updating the idealised periodic geometric model used for creating the codes for fabrication on the basis of a survey using a scanning microscope, or through computerised micro-tomography scans. Reducing the discrepancies due to the second cause requires a relatively significant further modelling effort. Another cause for small discrepancies is when two layers of the same periodic porous material and thickness differ only by a relative shift of the internal geometry of the periodic Representative Volume Element (RVE). This causes the absorption peaks to be shifted in frequency. A modelling procedure is proposed to take this into account.
机译:具有良好的吸声设计的具有周期性微结构的样品已通过3D打印制造。但是,通常情况下,所得样本的声学特性与预测的声学特性不同。导致差异的两个原因是:(1)与3D打印分辨率有关的不准确之处;以及(2)在制造过程中由于微纤维,微孔和孔表面粗糙度而导致的缺陷。事后,可以通过使用扫描显微镜在调查的基础上更新理想的周期性几何模型(用于创建制造代码)或通过计算机显微断层扫描来解决由第一个原因引起的差异。要减少第二个原因引起的差异,就需要进行相当大的进一步建模工作。小差异的另一个原因是,相同周期性多孔材料和厚度的两层仅因周期性代表体积元素(RVE)的内部几何形状的相对偏移而不同。这导致吸收峰的频率偏移。提出了一种建模程序来考虑到这一点。

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