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Three-dimensional woven carbon fibre polymer composite beams and plates under ballistic impact

机译:弹道冲击下的三维编织碳纤维聚合物复合梁和板

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摘要

Clamped. rectangular orthogonal 3D woven carbon composite beams under ballistic impact at a velocity range 60 ms(-1) = nu(0) = 190 ms(-1) were investigated in order to understand the damage mechanisms within the material and the role of through-the-thickness (TTT) reinforcement. Experimental tests revealed three distinct categories of beam response: (i) low velocity impacts (nu(0) 110 ms(-1)) which featured projectile rebound, with dominant matrix cracking and localised fibre fracture, (ii) medium velocity impact (110 ms(-1) = nu(0) 148 ms(-1) 1) which exhibited a stretch-deformation dominated failure mechanism, and (iii) higher velocity impacts (nu(0) = 148 ms(-1)) which resulted in projectile penetration, combined with longitudinal fibre fracture at the centre of the sample. Finite element (FE) simulations were conducted to understand the experimental outcomes, which showed sufficient fidelity and captured the three distinct beam response regimes. The presence of the TTT-reinforcement can suppress the inter-laminar matrix crack propagation and increase the material ballistic impact resistance for low velocity impact and high velocity impact. However, for medium velocity impact, the in-plane fibre fracture surface was found to be at the locations of TTT-reinforcement. This may suggest that the TTT-reinforcement creates weak points for the stretch-deformation dominated failure mechanism. The verified FE simulations were conducted to predict the multi-hit ballistic impact limit surfaces for the clamped circular 3D woven composite plates, and for the equivalent laminate composite without the presence of the TTT reinforcement. The numerical results suggested the presence of TTT reinforcement could improve the multi-hit ballistic resistance of the composite plates for multi-hit scenarios where the initial impact is 50%-95% of the ballistic limit of the plates.
机译:夹紧。矩形正交3D编织碳复合材料梁在弹道冲击下在60 ms(-1)<= nu(0)<= 190 ms(-1)的速度范围内受到研究,目的是了解材料内的损伤机理及其作用增厚(TTT)加固。实验测试揭示了光束响应的三个不同类别:(i)低速冲击(nu(0)<110 ms(-1)),其特征为弹丸回弹,具有显着的基质破裂和局部纤维断裂,(ii)中速冲击( 110 ms(-1)<= nu(0)<148 ms(-1)1),表现出拉伸变形为主的破坏机理,并且(iii)更高的速度冲击(nu(0)> = 148 ms(-1) ))导致弹丸穿透,并在样品中心出现纵向纤维断裂。进行了有限元(FE)模拟以了解实验结果,该结果显示出足够的保真度并捕获了三种不同的光束响应方案。 TTT增强材料的存在可以抑制层间基体裂纹的扩展,并提高材料对低速冲击和高速冲击的弹道冲击强度。但是,对于中等速度的冲击,发现面内纤维断裂表面位于TTT加固的位置。这可能表明,TTT加固为拉伸变形为主的破坏机制创造了薄弱环节。进行了验证的有限元模拟,以预测夹紧的圆形3D编织复合材料板以及等效的层压材料复合材料(不包含TTT增强材料)的多冲击弹道冲击极限表面。数值结果表明,TTT增强材料的存在可以改善复合板的多次撞击弹道阻力,这种多重撞击场景的初始冲击是板的弹道极限的50%-95%。

著录项

  • 来源
    《Composite Structures》 |2018年第2期|483-495|共13页
  • 作者单位

    Univ Nottingham, Fac Engn, Ctr Struct Engn & Informat, Univ Pk, Nottingham NG7 2RD, England;

    Univ Nottingham, Fac Engn, Ctr Struct Engn & Informat, Univ Pk, Nottingham NG7 2RD, England;

    Univ Southern Queensland, Ctr Future Mat, Toowoomba, Qld 4350, Australia;

    R&T & Composite Fan Impact Grp, Rolls Royce Plc, Derby DE24 8BJ, England;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    3D woven composites; Ballistic impact experiment; Multi-hit; Finite element; Failure mechanism;

    机译:3D编织复合材料;冲击试验;多次撞击;有限元;破坏机理;
  • 入库时间 2022-08-17 13:07:26

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