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Finite element simulation of damage in fiber metal laminates under high velocity impact by projectiles with different shapes

机译:不同形状射弹高速冲击下纤维金属层压板损伤的有限元模拟

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摘要

Fiber metal laminates (FMLs) have been widely used in many high-tech industries as protective structures because of their excellent impact resistance. The damage constitutive model that accurately characterizes the complex damage modes and failure processes of FMLs is the base to study the ballistic impact problems by numerical simulation. In this paper, a nonlinear finite element model based on continuum damage mechanics is established to investigate the damage modes and failure mechanisms of carbon fiber reinforced aluminum laminates (CRALLs) under high velocity impact. Johnson-Cook material model and a 3D rate-dependent constitutive model are applied to identify the in-plane damage in aluminum and fiber composite layers respectively; cohesive elements governed by bilinear traction-separation constitutive model are implemented to simulate the inter-laminar delamination induced by impact. The ballistic performance and damage characteristics of CRALLs under high velocity impact by projectiles with different shapes are studied in detail. The obtained numerical results correlate well with the available experimental data thus validates the proposed finite element model, which also provides an appropriate reference for numerical studies of high velocity impact issues in other FMLs.
机译:纤维金属层压板(FML)由于其出色的抗冲击性,已在许多高科技行业中广泛用作保护结构。精确描述FMLs复杂损伤模式和破坏过程的损伤本构模型是通过数值模拟研究弹道冲击问题的基础。本文建立了基于连续损伤力学的非线性有限元模型,研究了碳纤维增强铝层压板在高速冲击下的损伤模式和破坏机理。应用Johnson-Cook材料模型和3D速率相关的本构模型分别识别铝和纤维复合材料层的面内损伤。采用双线性牵引-分离本构模型控制内聚单元,模拟了冲击引起的层间分层。详细研究了不同形状的弹丸在高速撞击下CRALL的弹道性能和损伤特性。获得的数值结果与可用的实验数据很好地相关,从而验证了所提出的有限元模型,该模型也为其他FML中的高速撞击问题的数值研究提供了适当的参考。

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