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Mechanics of fish skin: A computational approach for bio-inspired flexible composites

机译:鱼皮力学:生物启发的柔性复合材料的一种计算方法

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摘要

Natural materials and structures are increasingly becoming a source of inspiration for the design novel of engineering systems. In this context, the structure of fish skin, made of an intricate arrangement of flexible plates growing out of the dermis of a majority of fish, can be of particular interest for materials such as protective layers or flexible electronics. To better understand the mechanics of these composite shells, we introduce here a general computational framework that aims at establishing a relationship between their structure and their overall mechanical response. Taking advantage of the periodicity of the scale arrangement, it is shown that a representative periodic cell can be introduced as the basic element to carry out a homogenization procedure based on the Hill-Mendel condition. The proposed procedure is applied to the specific case of the fish skin structure of the Morone saxatilis, using a computational finite element approach. Our numerical study shows that fish skin possesses a highly anisotropic response, with a softer bending stiffness in the longitudinal direction of the fish. This softer response arises from significant scale rotations during bending, which induce a stiffening of the response under large bending curvature. Interestingly, this mechanism can be suppressed or magnified by tuning the rotational stiffness of the scale-dermis attachment but is not activated in the lateral direction. These results are not only valuable to the engineering design of flexible and protective shells, but also have implications on the mechanics of fish swimming.
机译:天然材料和结构正日益成为工程系统设计小说的灵感来源。在这种情况下,鱼皮的结构由从大多数鱼的真皮中生长出来的柔性板的复杂排列构成,对于诸如保护层或柔性电子器件之类的材料可能特别感兴趣。为了更好地理解这些复合壳体的力学,我们在这里介绍一个通用的计算框架,该框架旨在建立其结构与整体机械响应之间的关系。利用刻度尺排列的周期性,表明可以引入一个代表性的周期性单元作为基本元素,以基于Hill-Mendel条件进行均化过程。使用计算有限元方法,将拟议的程序应用于沙翁的鱼皮结构的特定情况。我们的数值研究表明,鱼皮具有高度的各向异性响应,并且在鱼的纵向方向上具有较弱的弯曲刚度。这种较柔和的响应是由弯曲过程中的刻度尺旋转引起的,它在较大的弯曲曲率下会导致响应变硬。有趣的是,可以通过调节鳞皮-真皮附件的旋转刚度来抑制或放大该机制,但是该机制在横向方向上未激活。这些结果不仅对挠性和保护性壳的工程设计有价值,而且对鱼类游泳的力学也有影响。

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