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Multiscale Characterization and Experimentation on Particulate Reinforced Composites

机译:颗粒增强复合材料的多尺度表征和实验

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The addition of particulate additives has long been used as a method to adjust and design material systems for specific loading conditions. The transfer of loading to particulate additives can result in added toughness and can change ductility, among other properties. These changes are a function of many factors including the size, concentration, mechanical properties, interaction strength and dispersion of the particles. Recent advancements in scientific knowledge and manufacturing techniques have guided research towards the inclusion of particles with characteristic lengths measuring less than 100 nm and a renewed interested in particulate reinforced materials. This reduction in particle size can provide a drastic increase in the surface area between particle and matrix, which can theoretically provide increased load transfer and increased toughening. The reduction in particle size does result in a series of additional manufacturing and analysis challenges, namely the dispersing of particles for optimum load transfer and bulk response and the imaging of the particles in a representative and repeatable manner. In addition, the large surface area interactions tend to cause the particles to agglomerate, creating areas of high stress concentration and a reduction in bulk properties. Three novel characterization techniques will be presented in this article to discuss the effects of ZnO nanoparticle reinforcement of polymer materials and discussion over varying length scales.
机译:长期以来,添加颗粒状添加剂已被用作针对特定负载条件调整和设计材料系统的方法。将载荷转移到颗粒状添加剂上可导致增加的韧性,并可改变延展性,以及其他特性。这些变化是许多因素的函数,包括尺寸,浓度,机械性能,相互作用强度和颗粒的分散性。科学知识和制造技术的最新发展已将研究方向引导到包含特征长度小于100 nm的颗粒的研究中,并引起了人们对颗粒增强材料的新兴趣。粒度的这种减小可以使颗粒与基体之间的表面积急剧增加,这从理论上可以提供增加的载荷传递和增加的韧性。粒径的减小确实带来了一系列附加的制造和分析挑战,即为了最佳的载荷传递和体积响应而分散颗粒,以及以代表性和可重复的方式对颗粒进行成像。另外,大的表面积相互作用趋于引起颗粒团聚,产生高应力集中的区域并降低体积性质。本文将介绍三种新颖的表征技术,以讨论聚合物材料的ZnO纳米颗粒增强的效果以及在不同长度范围内的讨论。

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