Computational simulation of impact perforation of polymeric-foam core sandwiched composites with different skin–face configurations

IF 0.8 4区 工程技术 Q4 ENGINEERING, MECHANICAL
I. Elnasri, Ahmed Almagableh, A. Gherissi
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引用次数: 0

Abstract

The normal and oblique impact perforation responses of composite sandwich panels based on a Rohacell polymeric foam core are numerically investigated at high impact energies (> 60 J). A cylindrical form factor with a diameter of 140 mm and a thickness of 15 mm is selected for the sandwich specimens. Four different stacking sequences of 1 mm carbon/epoxy face sheets are considered (i.e., quasi-isotropic, cross-ply, angle-ply, and unidirectional stacking). A computational model was constructed using LS-DYNA finite element software and an inverse perforation testing scheme adapted with a Split Hopkinson bar and confirmed by comparing these results with those obtained using the free shooting projectile-target testing schemes published in the literature. The effects of impact energy, failure modes, impact angles and damage key parameters are analyzed. The results reveal the contact force vs displacement curves are highly influenced by the impact energy increases. The stacking sequence of the face sheets does not influence the energy absorption capacity. Whereas the maximum absorbed energy increases with an increasing impact angle up to 20°. Using Hopkinson bars in conjunction with the virtual inverse perforation testing approach is effective for examining the response of sandwich composites at high impact energies.
不同表皮面结构的聚合物-泡沫夹芯复合材料冲击穿孔的计算模拟
我们对基于 Rohacell 聚合物泡沫芯材的复合夹层板在高冲击能量(大于 60 J)下的正向和斜向冲击穿孔响应进行了数值研究。夹层试样选用直径为 140 毫米、厚度为 15 毫米的圆柱形。考虑了 1 毫米碳/环氧面片的四种不同堆叠顺序(即准各向同性堆叠、交叉层堆叠、角层堆叠和单向堆叠)。使用 LS-DYNA 有限元软件构建了一个计算模型,并采用分体式霍普金森杆进行了反穿孔测试,通过将这些结果与文献中公布的自由射弹-目标测试方案所获得的结果进行比较,对计算结果进行了确认。分析了冲击能量、破坏模式、冲击角度和破坏关键参数的影响。结果表明,接触力与位移曲线受冲击能量增加的影响很大。面片的堆叠顺序不会影响能量吸收能力。而最大吸收能量会随着冲击角度的增加而增加,最高可达 20°。将霍普金森杆与虚拟反向穿孔测试方法结合使用,可有效检验夹层复合材料在高冲击能量下的响应。
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
CiteScore
2.30
自引率
0.00%
发文量
53
审稿时长
5 months
期刊介绍: Published since 1972, Transactions of the Canadian Society for Mechanical Engineering is a quarterly journal that publishes comprehensive research articles and notes in the broad field of mechanical engineering. New advances in energy systems, biomechanics, engineering analysis and design, environmental engineering, materials technology, advanced manufacturing, mechatronics, MEMS, nanotechnology, thermo-fluids engineering, and transportation systems are featured.
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