Energy absorption of composite 3D-printed fish scale inspired protective structures subjected to low-velocity impact

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES Composites Science and Technology Pub Date : 2024-06-23 DOI:10.1016/j.compscitech.2024.110725
Hari Bahadur Dura, Paul J. Hazell, Hongxu Wang, J.P. Escobedo-Diaz, Jianshen Wang
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Abstract

This paper reports the performance of protective structure inspired by elasmoid fish scales, employing a combination of experimental and numerical techniques. The composite scale-tissue structures were fabricated using a 3D printer with a dual-material extruder. Each structure was subjected to low-velocity impact using a drop-weight tower system. Investigation of the progressive failure mechanisms relied on finite element analysis and high-speed photography. Geometrical parameters of fish scales, including scale volume fraction, scale overlapping angle, and radius of curved scales were studied for their influence on impact resistance. Further, using Taguchi's method for the design of experiments, it was determined that enhancing impact resistance was achievable through an increase in scale volume fraction (by 15.1 %) and a larger scale overlapping ratio (by 39.4 %). The outcomes suggest that using a composite scale-tissue structure can contribute to developing more effective protective structures.

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受低速撞击启发的 3D 打印鱼鳞状复合防护结构的能量吸收能力
本文结合实验和数值技术,报告了受鳞片状鱼鳞启发的保护结构的性能。复合鳞片-组织结构是用带有双材料挤出机的三维打印机制造的。每个结构都使用落重塔系统经受了低速冲击。对渐进失效机制的研究依赖于有限元分析和高速摄影。研究了鱼鳞的几何参数,包括鳞片体积分数、鳞片重叠角和弯曲鳞片的半径,以了解它们对抗冲击性的影响。此外,利用田口试验设计法确定,通过增加鳞片体积分数(15.1%)和扩大鳞片重叠率(39.4%),可以提高抗冲击性。结果表明,使用鳞片-组织复合结构有助于开发更有效的保护结构。
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来源期刊
Composites Science and Technology
Composites Science and Technology 工程技术-材料科学:复合
CiteScore
16.20
自引率
9.90%
发文量
611
审稿时长
33 days
期刊介绍: Composites Science and Technology publishes refereed original articles on the fundamental and applied science of engineering composites. The focus of this journal is on polymeric matrix composites with reinforcements/fillers ranging from nano- to macro-scale. CSTE encourages manuscripts reporting unique, innovative contributions to the physics, chemistry, materials science and applied mechanics aspects of advanced composites. Besides traditional fiber reinforced composites, novel composites with significant potential for engineering applications are encouraged.
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