仿生CFRP复合材料,通过耦合设计提高抗冲击性

IF 7.1 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Zhipeng Zhou , Hui Cao , Xiaofei Yue , Shuaihua Wang , Xiaomin Ma , Zhiyong Wang , Zhihua Wang
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引用次数: 0

摘要

CFRP复合材料在冲击载荷下的可靠性较低,严重限制了其应用领域。在这项工作中,模仿螳螂虾的dactyl棒的梯度设计的仿生正弦结构被引入CFRP层压板中,以提高抗冲击性。通过瞬态响应监测、无损检测、层间断裂试验和有限元分析,研究了结构构型和冲击载荷对仿生CFRP复合材料弹道性能和吸能机理的影响。分析了侵彻阶段与破坏机制之间的内在关系。结果表明,采用正弦-梯度耦合结构的复合材料层合板的弹道极限和能量吸收率(EAR)得到了显著提高。耦合结构增加了弹丸的侵彻距离。通过优化设计结构的波长和振幅,大大增强了CFRP层合板的EAR,实现了分层和变形之间的平衡和协同。优化后的梯度结构不仅增加了二次裂纹的数量、应力传递效率和弹丸的偏角,而且使层间断裂韧性提高了156.2%,从而使层板在191.8 m/s的冲击速度下的EAR提高了40.4%。梯度结构CFRP复合材料与球鼻和圆锥鼻弹丸相比,受扁鼻弹丸撞击时,由于挠度和分层区域较大,具有较高的EAR。梯度设计耦合结构为CFRP抗冲击复合材料的发展提供了一条新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bioinspired CFRP composites with improved impact resistance through coupling design

Bioinspired CFRP composites with improved impact resistance through coupling design
The low reliability of CFRP composites under impact loading seriously limits its application fields. In this work, bioinspired sinusoidal structures with a gradient design mimicking mantis shrimp’s dactyl club were introduced into CFRP laminates to improve the impact resistance. The effects of structural configurations and impact loading on the ballistic performance and energy absorption mechanism of biomimicking CFRP laminate were studied through transient response monitoring, non-destructive detection, interlayer fracture testing, and finite element analysis. The underlying relationship between the penetration stage and the failure mechanisms was analyzed. The results show that the ballistic limit and energy absorption rate (EAR) of CFRP laminates with sinusoidal-gradient coupling structure were significantly improved. The coupling structure increased the penetration distance of the projectile. By optimizing the wavelength and amplitude of the designed structure, the EAR of the CFRP laminates was greatly enhanced, achieving a balance and synergy between delamination and deformation. The optimized gradient structure not only increases the amount of secondary cracks, the efficiency of stress transfer, and the deflection angle of the projectile, but also increases the interlaminar fracture toughness by 156.2 %, thereby improving the EAR of the laminate by 40.4 % at an impact velocity of 191.8 m/s. Compared with spherical-nosed and conical-nosed projectiles, the CFRP laminate with gradient structure showed a higher EAR when hit by flat-nosed projectiles due to the large deflection and delamination region. The coupling structure with gradient design provides a novel way for the development of impact resistant CFRP composites.
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来源期刊
International Journal of Mechanical Sciences
International Journal of Mechanical Sciences 工程技术-工程:机械
CiteScore
12.80
自引率
17.80%
发文量
769
审稿时长
19 days
期刊介绍: The International Journal of Mechanical Sciences (IJMS) serves as a global platform for the publication and dissemination of original research that contributes to a deeper scientific understanding of the fundamental disciplines within mechanical, civil, and material engineering. The primary focus of IJMS is to showcase innovative and ground-breaking work that utilizes analytical and computational modeling techniques, such as Finite Element Method (FEM), Boundary Element Method (BEM), and mesh-free methods, among others. These modeling methods are applied to diverse fields including rigid-body mechanics (e.g., dynamics, vibration, stability), structural mechanics, metal forming, advanced materials (e.g., metals, composites, cellular, smart) behavior and applications, impact mechanics, strain localization, and other nonlinear effects (e.g., large deflections, plasticity, fracture). Additionally, IJMS covers the realms of fluid mechanics (both external and internal flows), tribology, thermodynamics, and materials processing. These subjects collectively form the core of the journal's content. In summary, IJMS provides a prestigious platform for researchers to present their original contributions, shedding light on analytical and computational modeling methods in various areas of mechanical engineering, as well as exploring the behavior and application of advanced materials, fluid mechanics, thermodynamics, and materials processing.
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