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A nano-scale material model applied in finite element analysis of aluminium plates under impact loading

机译:纳米尺度材料模型在冲击载荷下铝板有限元分析中的应用

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摘要

Finite element simulations of AA6070 aluminium plates struck by ogival-nose projectiles are performed. The aluminium plates are 20 mm thick and heat treated to temper O, T4, T6 and T7. A nano-scale material model, consisting of three parts: a precipitation model, a yield-strength model and a work-hardening model, is used to predict the flow–stress curves of the materials at ambient temperature based on the chemical composition of the alloy and the thermal history defined by the heat treatment. Finite element simulations of the perforation process are then carried out using both 3D solid and 2D axisymmetric elements. The numerically-obtained ballistic limit velocities, predicted without any use of data from mechanical tests, are compared with available experimental data and found to be in good agreement with the experimental ones for all tempers. The same holds for the predicted residual velocities at striking velocities higher than the ballistic limits.
机译:进行了由齿鼻式射弹撞击的AA6070铝板的有限元模拟。铝板厚20毫米,并进行了热处理,以回火O,T4,T6和T7。纳米级材料模型由三部分组成:沉淀模型,屈服强度模型和加工硬化模型,用于根据材料的化学成分来预测环境温度下材料的流动应力曲线。合金和热处理的历史定义。然后使用3D实体和2D轴对称元素对射孔过程进行有限元模拟。在不使用任何机械测试数据的情况下预测得到的弹道极限速度的数字,与可用的实验数据进行比较,发现与所有回火的实验数据都非常吻合。对于高于弹道极限的打击速度,预计剩余速度也是如此。

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