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鱼鳞多层结构的有限元建模

Finite element modeling of multilayered structures of fish scales.

作者信息

Chandler Mei Qiang, Allison Paul G, Rodriguez Rogie I, Moser Robert D, Kennedy Alan J

机构信息

U.S. Army Engineer Research and Development Center, Vicksburg, MS 39180, USA.

Department of Mechanical Engineering, University of Alabama, Tuscaloosa, AL 25487, USA.

出版信息

J Mech Behav Biomed Mater. 2014 Dec;40:375-389. doi: 10.1016/j.jmbbm.2014.09.013. Epub 2014 Sep 23.

Abstract

The interlinked fish scales of Atractosteus spatula (alligator gar) and Polypterus senegalus (gray and albino bichir) are effective multilayered armor systems for protecting fish from threats such as aggressive conspecific interactions or predation. Both types of fish scales have multi-layered structures with a harder and stiffer outer layer, and softer and more compliant inner layers. However, there are differences in relative layer thickness, property mismatch between layers, the property gradations and nanostructures in each layer. The fracture paths and patterns of both scales under microindentation loads were different. In this work, finite element models of fish scales of A. spatula and P. senegalus were built to investigate the mechanics of their multi-layered structures under penetration loads. The models simulate a rigid microindenter penetrating the fish scales quasi-statically to understand the observed experimental results. Study results indicate that the different fracture patterns and crack paths observed in the experiments were related to the different stress fields caused by the differences in layer thickness, and spatial distribution of the elastic and plastic properties in the layers, and the differences in interface properties. The parametric studies and experimental results suggest that smaller fish such as P. senegalus may have adopted a thinner outer layer for light-weighting and improved mobility, and meanwhile adopted higher strength and higher modulus at the outer layer, and stronger interface properties to prevent ring cracking and interface cracking, and larger fish such as A. spatula and Arapaima gigas have lower strength and lower modulus at the outer layers and weaker interface properties, but have adopted thicker outer layers to provide adequate protection against ring cracking and interface cracking, possibly because weight is less of a concern relative to the smaller fish such as P. senegalus.

摘要

匙吻鲟(长吻雀鳝)和塞内加尔多鳍鱼(灰鳍多鳍鱼和白化多鳍鱼)相互连接的鳞片是有效的多层装甲系统,可保护鱼类免受诸如同种间攻击互动或捕食等威胁。这两种鱼鳞都具有多层结构,外层更硬更挺,内层更软更具柔韧性。然而,相对层厚度、层间性能不匹配、每层的性能梯度和纳米结构存在差异。在微压痕载荷下,两种鳞片的断裂路径和模式不同。在这项工作中,构建了匙吻鲟和塞内加尔多鳍鱼鱼鳞的有限元模型,以研究其多层结构在穿透载荷下的力学性能。这些模型模拟了一个刚性微压头准静态穿透鱼鳞的过程,以理解观察到的实验结果。研究结果表明,实验中观察到的不同断裂模式和裂纹路径与层厚度差异、层中弹性和塑性性能的空间分布以及界面性能差异所导致的不同应力场有关。参数研究和实验结果表明,像塞内加尔多鳍鱼这样的小鱼可能采用较薄的外层来减轻重量并提高机动性,同时在外层采用更高的强度和模量以及更强的界面性能来防止环形开裂和界面开裂,而像匙吻鲟和巨骨舌鱼这样的大鱼在外层具有较低的强度和模量以及较弱的界面性能,但采用了较厚的外层以提供足够的保护来防止环形开裂和界面开裂,这可能是因为相对于塞内加尔多鳍鱼这样的小鱼,重量问题不那么重要。

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