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NUMERICAL SIMULATION ON THE PENETRATION EFFICIENCY OF NON-CIRCULAR RODS

机译:非圆棒穿透效率的数值模拟

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As the increasing impact velocity, the penetration mechanics of non-circular rods has attracted much attention due to its improved flight stability and launch ability. In this paper, the non-circular penetration experiments were conducted to compare with conventional right circular cross-sections. The finite element method using LS-DYNA software was performed to reproduce the penetration process. Penetrators that contain planar elements, such as rods with elliptic, rectangular cross sections are analyzed for the different cases at the impacting velocity of 400m/s~1000m/s. Comparisons are made for equal mass and equal specific kinetic energy penetrators having different cross-sectional geometrics. The predictions of the depth of penetration were validated against the experimental data. Meanwhile, typical failure modes of targets for different non-circular projectiles are investigated in the simulations. The numerical results show distinct advantage of penetration ability for the non-circular rods at higher velocities. The penetration mechanisms between the non-circular projectiles and the targets become different as the change of the stress distribution exerted on the targets. The phenomenon such as self-sharpening is believed to be the major reason for the enhancement of depth of penetration.
机译:随着冲击速度的提高,非圆形棒的穿透机理由于其飞行稳定性和发射能力的提高而备受关注。在本文中,进行了非圆形穿透实验,以与常规的右圆形横截面进行比较。进行了使用LS-DYNA软件的有限元方法来重现渗透过程。在400m / s〜1000m / s的冲击速度下,分析了包含椭圆形,矩形截面的杆等平面元件的侵彻情况。对具有不同横截面几何形状的相等质量和相等比动能穿透器进行比较。相对于实验数据验证了渗透深度的预测。同时,在仿真中研究了不同非圆形弹丸目标的典型失效模式。数值结果表明,非圆棒在较高速度下的穿透能力具有明显的优势。随着应力分布在目标上的变化,非圆形弹丸与目标之间的穿透机制会有所不同。诸如自锐化的现象被认为是增加穿透深度的主要原因。

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