Low-velocity impact damage of bionic turtle shell sandwich laminates with different suture shapes

IF 3.5 3区 材料科学 Q1 ENGINEERING, MECHANICAL Journal of Sandwich Structures & Materials Pub Date : 2024-04-06 DOI:10.1177/10996362241245531
Xu Zhang, Benzhi Min, Shouji Zhao, Qiang Fu, Di Zhang, Zhenqing Wang
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Abstract

Turtle shells have evolved over millions of years, developing exceptional mechanical properties such as high relative strength and toughness, rendering them highly effective in resisting impacts. This study delves into the impact resistance of bionic turtle shell structures with various suture shapes. This article analyzes the low-velocity impact of carbon fiber epoxy resin prepreg (CF/EP) composite sandwich panels with a suture interface by using the finite element simulation. The simulations encompass closed and unclosed models featuring bonded and unbonded tips, each with diverse trapezoidal geometries (triangular, trapezoidal, anti-trapezoidal, and rectangular). The findings reveal that sandwich structures with suture interfaces demonstrate significantly enhanced impact resistance compared to those lacking sutures, displaying 3–9 times greater deformation capacity and 20–30 times higher energy absorption capacity. The impact resistance of the triangular suture interface exceeded that of other bioinspired suture shapes, with trapezoidal and anti-trapezoidal sutures also enhancing stiffness, strength, and toughness. Additionally, a 6° bonded tip angle resulted in optimal performance for the triangular suture interface across all analyzed perspectives. The simulation study in this paper provides comprehensive and reliable data on low-velocity impact results, offering fundamental insights for researchers to design composite material structures that meet specific mechanical requirements effectively. Additionally, it offers novel ideas for the connection of protective structures, such as artificial armor.
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不同缝合线形状的仿生龟甲夹层板的低速冲击损伤
龟壳经过数百万年的进化,形成了优异的机械性能,如较高的相对强度和韧性,使其在抗冲击方面非常有效。本研究深入探讨了具有不同缝合形状的仿生龟甲结构的抗冲击性。本文利用有限元模拟分析了带有缝合界面的碳纤维环氧树脂预浸料(CF/EP)复合材料夹层板的低速冲击。模拟包括封闭式和非封闭式模型,具有粘合和非粘合顶端,每个顶端都具有不同的梯形几何形状(三角形、梯形、反梯形和矩形)。研究结果表明,与无缝合线的夹层结构相比,有缝合线界面的夹层结构的抗冲击能力明显增强,其变形能力是无缝合线夹层结构的 3-9 倍,能量吸收能力是有缝合线夹层结构的 20-30 倍。三角形缝合界面的抗冲击性超过了其他生物启发缝合形状,梯形和反梯形缝合也提高了刚度、强度和韧性。此外,在所有分析视角下,6° 的粘合顶角可使三角形缝合界面达到最佳性能。本文的模拟研究为低速冲击结果提供了全面、可靠的数据,为研究人员设计复合材料结构以有效满足特定力学要求提供了基本见解。此外,它还为人工装甲等防护结构的连接提供了新思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Sandwich Structures & Materials
Journal of Sandwich Structures & Materials 工程技术-材料科学:表征与测试
CiteScore
9.60
自引率
2.60%
发文量
49
审稿时长
7 months
期刊介绍: The Journal of Sandwich Structures and Materials is an international peer reviewed journal that provides a means of communication to fellow engineers and scientists by providing an archival record of developments in the science, technology, and professional practices of sandwich construction throughout the world. This journal is a member of the Committee on Publication Ethics (COPE).
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