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Length-scale dependency of biomimetic hard-soft composites

机译:仿生硬软复合材料的长度尺度依赖性

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Biomimetic composites are usually made by combining hard and soft phases using, for example, multi-material additive manufacturing (AM). Like other fabrication methods, AM techniques are limited by the resolution of the device, hence, setting a minimum length scale. The effects of this length scale on the performance of hard-soft composites are not well understood. Here, we studied how this length scale affects the fracture toughness behavior of single-edge notched specimens made using random, semi-random, and ordered arrangements of the hard and soft phases with five different ratios of hard to soft phases. Increase in the length scale (40 to 960 μm) was found to cause a four-fold drop in the fracture toughness. The effects of the length scale were also modulated by the arrangement and volumetric ratio of both phases. A decreased size of the crack tip plastic zone, a crack path going through the soft phase, and highly strained areas far from the crack tip were the main mechanisms explaining the drop of the fracture toughness with the length scale.
机译:仿生复合材料通常使用多种材料的增材制造(AM)将硬相和软相结合在一起制成。像其他制造方法一样,AM技术受设备分辨率的限制,因此设置了最小长度比例。这种长度尺度对硬软复合材料性能的影响尚不十分清楚。在这里,我们研究了这种长度尺度如何影响使用随机,半随机和有序排列的硬相和软相(具有五种不同的硬相与软相比率)制成的单边缺口试样的断裂韧性行为。发现长度尺度的增加(40至960μm)导致断裂韧性下降了四倍。长度比例的影响还受两相的排列和体积比的影响。裂纹尖端塑性区尺寸的减小,穿过软相的裂纹路径以及远离裂纹尖端的高应变区域是解释断裂韧性随长度尺度下降的主要机理。

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