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Dimensional analysis and parametric studies for designing artificial nacre.

机译:设计人造珍珠层的尺寸分析和参数研究。

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Nacre, the iridescent material found in Abalone shells, exhibits remarkable strength and toughness despite its composition of over 95% brittle ceramic. Its hierarchical structure over multiple length scales gives rise to its increase in toughness despite its material composition. In this work we develop a computational model of composites incorporating key morphological features of nacre's microstructure. By conducting a parametric analysis we are able to determine an optimal geometry that increases energy dissipation over 70 times. We discuss the contribution of varying ceramic strengths and size effect to see how this affects the overall performance of the composite. We then compare our simulations to experiments performed on a material possessing the same microstructure investigated computationally. For both simulations and experiments we show that our optimal geometry corresponds to that of natural nacre indicating the importance of specifically incorporating nacre's key morphological and constituent features. This combination of simulations and experiments gives great insight to the delicate interplay between material parameters and microstructure showing that if we optimally combine all aspects, we can develop novel synthetic materials with superior performance.
机译:Nacre是鲍鱼壳中发现的虹彩材料,尽管其脆性陶瓷含量超过95%,但仍具有出色的强度和韧性。尽管具有多种材料成分,但其​​在多个长度尺度上的分层结构仍使其韧性有所提高。在这项工作中,我们开发了一种复合材料的计算模型,该模型结合了珍珠母微结构的关键形态特征。通过进行参数分析,我们能够确定最佳的几何结构,使能量消耗增加70倍以上。我们讨论了变化的陶瓷强度和尺寸效应的作用,以了解这如何影响复合材料的整体性能。然后,我们将模拟与在具有相同微观结构的材料上进行的实验进行比较,该材料通过计算进行了研究。对于仿真和实验,我们都表明,我们的最佳几何形状与天然珍珠质相对应,表明了特别结合珍珠质的关键形态和组成特征的重要性。模拟和实验的结合为材料参数和微观结构之间的微妙相互作用提供了深刻的见解,表明如果我们将各个方面进行最佳组合,我们就能开发出性能卓越的新型合成材料。

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