论文标题

用于句法泡沫应用的空心热塑性微球的几何和机械表征

Geometrical and Mechanical Characterisation of Hollow Thermoplastic Microspheres for Syntactic Foam Applications

论文作者

Curd, Matthew E., Morrison, Neil F., Smith, Michael J. A., Gajjar, Parmesh, Yousaf, Zeshan, Parnell, William

论文摘要

最近,空心的热塑性微球(例如由诺伊恩制造的expancel)作为一种创新的填充材料出现,用于聚合物 - 矩阵复合材料。由此产生的全聚合物句法泡沫具有出色的损伤耐受性,在大型菌株下的强可恢复性以及有利的能量耗散特性。尽管在各种行业和应用中发现使用量增加,包括涂料,膜,密封剂,包装,微流体,医学超声材料和固定复合材料的复合材料,但几乎完全没有用于Expancel Microspheres的统计几何信息。此外,尚未报道它们的机械性能。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的两类expancel热塑性微球的几何量表征。我们还观察到在聚氨酯基质句法泡沫中微球的空间分布。我们表明,两类微球的体积加权多分散壳直径均遵循正态分布。有趣的是,未观察到壳壁厚度的多分散性,尤其是壳厚度与壳直径无关。我们在小应变状态下采用了测量的几何信息,以首次确定年轻的模量和泊松比的估计。我们的结果促进了使用热塑性微球的句法泡沫的设计和制造的潜在改进。鉴于利用热塑性微球的田地的广度,我们预计我们的结果以及所使用的方法将在未来的材料研究中更广泛地使用。

Recently, hollow thermoplastic microspheres, such as Expancel made by Nouryon, have emerged as an innovative filler material for use in polymer-matrix composites. The resulting all-polymer syntactic foam takes on excellent damage tolerance properties, strong recoverability under large strains, and favourable energy dissipation characteristics. Despite finding increasing usage in various industries and applications, including in coatings, films, sealants, packaging, composites for microfluidics, medical ultrasonics and cementious composites, there is a near-complete absence of statistical geometrical information for Expancel microspheres. Further, their mechanical properties have not yet been reported. In this work we characterise the geometrical quantities of two classes of Expancel thermoplastic microspheres using X-ray computed tomography, focused ion beam and electron microscopy. We also observe the spatial distribution of microspheres within a polyurethane-matrix syntactic foam. We show that the volume-weighted polydisperse shell diameter in both classes of microsphere follows a normal distribution. Interestingly, polydispersity of the shell wall thickness is not observed and in particular the shell thickness is not correlated to the shell diameter. We employ the measured geometrical information 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. Our results contribute to potential future improvements in the design and fabrication of syntactic foams that employ thermoplastic microspheres. Given the breadth of fields which utilise thermoplastic microspheres, we anticipate that our results, together with the methods used, will be of use in a much broader context in future materials research.

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