Low‐velocity impact behavior of composite laminates based on bio‐inspired stacking sequence

IF 4.8 2区 材料科学 Q2 MATERIALS SCIENCE, COMPOSITES Polymer Composites Pub Date : 2024-09-06 DOI:10.1002/pc.29013
Tian Zhou, Hongyuan Yang, Chaoyi Peng, Yiru Ren
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Abstract

This work aims to study the effects of bionic spiral stacking sequence, impact energy and impactor shape on the impact resistance of laminates. The finite element model is established based on the stress failure criterion, progressive damage evolution, and the triangle traction‐separation law. The reliability of the finite element model is validated through rigorous comparison with experimental data. The study investigates the influence of laminate layup sequence, impact energy, and impactor shape on the impact resistance of laminates. The results show that during low‐speed impacts, laminate damage is primarily characterized by fiber breakage, matrix cracking, and delamination. Matrix cracking and delamination become more pronounced as the impact energy increases. The design of linear spiral ply and power function spiral ply has a positive effect on the impact resistance of laminates. The impact resistance of laminates is sensitive to the sharpness of the impactor and the level of impact energy. Higher impact energy and sharper impactor shapes lead to increased energy absorption in the laminate, resulting in more pronounced damage failure.Highlights The impact resistance of bionic spiral composite laminates is studied. Three biologically inspired stacking sequences were designed. A numerical simulation method is proposed and verified. The low‐velocity impact characteristics of bionic laminates are revealed.

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基于生物启发堆叠序列的复合材料层压板的低速冲击行为
这项工作旨在研究仿生螺旋堆叠顺序、冲击能量和冲击器形状对层压板抗冲击性能的影响。根据应力破坏准则、渐进损伤演化和三角形牵引分离定律建立了有限元模型。通过与实验数据的严格对比,验证了有限元模型的可靠性。研究探讨了层压板铺设顺序、冲击能量和冲击器形状对层压板抗冲击性能的影响。结果表明,在低速冲击过程中,层压板的损坏主要表现为纤维断裂、基质开裂和分层。随着冲击能量的增加,基质开裂和分层现象更加明显。线性螺旋层和功率函数螺旋层的设计对层压板的抗冲击性有积极影响。层压板的抗冲击性对冲击器的锋利程度和冲击能量水平很敏感。更高的冲击能量和更锋利的冲击器形状会增加层压板的能量吸收,导致更明显的破坏失效。设计了三种受生物启发的堆叠序列。提出并验证了一种数值模拟方法。揭示了仿生层压板的低速冲击特性。
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来源期刊
Polymer Composites
Polymer Composites 工程技术-材料科学:复合
CiteScore
7.50
自引率
32.70%
发文量
673
审稿时长
3.1 months
期刊介绍: Polymer Composites is the engineering and scientific journal serving the fields of reinforced plastics and polymer composites including research, production, processing, and applications. PC brings you the details of developments in this rapidly expanding area of technology long before they are commercial realities.
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