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TOWARDS FUNCTIONALLY GRADED CELLULAR MICROSTRUCTURES

机译:迈向功能梯度细胞微结构

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摘要

Many materials require functionally graded cellular microstructures whose porosity (i.e. ratio of the void to solid volume of a material) is engineered to meet specific requirements. Indeed numerous applications have demonstrated the engineering potential of porous materials (e.g. polymeric foams) in areas ranging from biomaterial science through to structural engineering.rnAlthough a huge variety of foams can be manufactured with homogenous porosity, for heterogeneous foams there are no generic processes for controlling the distribution of porosity throughout the resulting matrix. Motivated by the desire to create a flexible process for engineering heterogeneous foams, this paper reports how ultrasound, applied during some of the foaming stages of a polyurethane (PU) melt, affects both the cellular structure and distribution of the pore size.rnThe experimental results allowed an empirical understanding of how the parameters of ultrasound exposure (i.e. frequency and acoustic pressure) influenced the volume and distribution of pores within the final polyurethane matrix: the data demonstrates that porosity (i.e. volume fraction) varies in direct proportion to the acoustic pressure magnitude of the ultrasound signal. The effects of ultrasound on porosity demonstrated by this work offer the prospect of a manufacturing process that can adjust the cellular geometry of foam and hence ensure that the resulting characteristics match the functional requirements.
机译:许多材料需要按功能分级的多孔微结构,其孔隙率(即材料的空隙与固体体积之比)经过设计可满足特定要求。的确,无数应用已经证明了多孔材料(例如聚合物泡沫)在生物材料科学到结构工程领域的工程潜力。尽管可以制造出均质孔隙度的多种泡沫,但对于异质泡沫,没有通用的控制方法整个所得基质的孔隙度分布。出于创造一种灵活的方法来工程化非均质泡沫的动机,本文报道了在聚氨酯(PU)熔体的某些发泡阶段施加的超声波如何影响泡孔结构和孔径分布.rn可以从经验上了解超声暴露的参数(即频率和声压)如何影响最终聚氨酯基质中孔的体积和分布:数据表明孔隙率(即体积分数)与声压大小成正比变化超声信号。这项工作证明了超声波对孔隙率的影响,为制造工艺提供了前景,该工艺可以调节泡沫的泡孔几何形状,从而确保所得的特性与功能要求相匹配。

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