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Geometrical and mechanical characterisation of hollow thermoplastic microspheres for syntactic foam applications

机译:句法泡沫应用中空热塑性微球的几何和力学表征

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摘要

Recently, hollow thermoplastic microspheres, have emerged as an innovative filler material for use in polymermatrix composites. The resulting all-polymer syntactic foam takes on excellent damage tolerance properties, strong recoverability under large strains, and favourable energy dissipation characteristics. Aside from syntactic foams, thermoplastic microspheres are finding increasing usage in a variety of applications and industries. Despite this, there is an absence of statistical geometrical and mechanical data for certain classes of thermoplastic microspheres. In this work we characterise two classes of thermoplastic microsphere using X-ray computed tomography, focused ion beam and electron microscopy. We observe the spatial distribution of these microspheres within a polyurethane-matrix syntactic foam and show that the volume-weighted polydisperse shell diameters follow a normal distribution. Interestingly, polydispersity of the shell wall thickness is not observed and furthermore the wall thickness is not correlated to the shell diameter. We utilise the geometrical information obtained in analytical micromechanical techniques in the small strain regime to determine, for the first time, estimates of the Young's modulus and Poisson's ratio of the microsphere shell material itself. Our results contribute to potential future improvements in the design and fabrication of materials that employ thermoplastic microspheres, including syntactic foams.
机译:最近,空心热塑性微球,已成为一种用于聚合物涂覆复合材料的创新填充材料。得到的全聚合物句法泡沫采用优异的损伤耐受性,在大菌株下具有强的可回收性,以及有利的能量耗散特性。除了句法泡沫,热塑性微球在各种应用和行业中寻找越来越多的应用。尽管如此,缺乏针对某些类热塑性微球的统计几何和机械数据。在这项工作中,我们使用X射线计算机断层扫描,聚焦离子束和电子显微镜表征两类热塑性微球。我们观察到聚氨酯 - 基质局部泡沫中这些微球的空间分布,并表明体积加权多分散壳直径遵循正态分布。有趣的是,未观察到壳壁厚的多分散性,此外,壁厚与壳体直径不相关。我们利用在小型应变制度中的分析微机械技术中获得的几何信息,首次确定杨氏模量和泊松的比例的微球材料本身。我们的结果有助于潜在的未来改进,设计和制造采用热塑性微球的材料,包括句法泡沫。

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