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Ballistic limit prediction using a numerical model with progressive damage capability

机译:使用具有渐进破坏能力的数值模型预测弹道极限

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摘要

The ultimate objective of this study is to provide further understanding of the behaviour of laminated composites of varying lamina orientations and stacking sequences, when under high-velocity impact. Emphasis is placed on the determination of ballistic limits of these composites. To this end, an experimental program is carried out and a computational model, with progressive damage modeling capabilities, is developed using LS-DYNA. Experiments are performed whereby striking velocities are measured, via high-speed photography, to determine the ballistic limits of carbon fiber-reinforced polymer (CFRP) laminates of various stacking sequences. The results are reproduced closely by a numerical simulation, indicating that the numerical analysis conducted, including the choice of material model and contact definition, is an accurate means for modeling the high-speed impact characteristics of CFRP laminates. It is found that the use of static elastic and strength properties to describe the material is reasonable, since strain rate effects are found to be negligible. The kinetic energy of the projectile, plotted over the simulated impact duration, is used as the prime parameter to compare the experimental and numerical results. The numerical results accurately predict the experimental ballistic limit for six of the seven tested laminate stacking sequences. Failure due to delamination is found to play a vital role with respect to the energy absorbing ability and lamina stacking sequence of CFRP laminates.
机译:这项研究的最终目的是在高速冲击下,进一步了解层状取向和堆叠顺序不同的层压复合材料的行为。重点放在确定这些复合材料的弹道极限上。为此,使用LS-DYNA进行了实验程序并开发了具有渐进式损伤建模功能的计算模型。进行实验,通过高速摄影测量打击速度,以确定各种堆叠顺序的碳纤维增强聚合物(CFRP)层压板的弹道极限。结果通过数值模拟精确再现,表明进行的数值分析,包括材料模型的选择和接触定义,是模拟CFRP层压板高速冲击特性的准确方法。发现使用静态弹性和强度特性来描述材料是合理的,因为发现应变率效应可以忽略。在模拟的冲击持续时间内绘制的弹丸动能用作主要参数,以比较实验结果和数值结果。数值结果准确预测了七个测试层压板堆叠序列中六个序列的实验弹道极限。发现由于分层引起的破坏对于CFRP层压板的能量吸收能力和层板堆叠顺序起着至关重要的作用。

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