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首页> 外文期刊>Materials Sciences and Applications >Numerical Analysis and Experimental Verification of Ti/APC-2/Kevlar Hybrid Composite Laminates Due to Low-Velocity Impact
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Numerical Analysis and Experimental Verification of Ti/APC-2/Kevlar Hybrid Composite Laminates Due to Low-Velocity Impact

机译:Ti / APC-2 / Kevlar混杂复合材料层板低速冲击的数值分析和实验验证

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The mechanical properties of Ti/APC-2/Kevlar/epoxy hybrid composite laminates after low velocity impact were investigated at room temperature. There were three types of samples, including three layered [Ti/(0/90)_(s)/Ti], five layered [Ti/(0/90)_(2)/ ]_(s) and nine layered [Ti/Kevlar/Ti/(0/90)_(2)/ ]_(s). The lay-ups of APC-2 were crossply, while Ti layers were treated by chromic acid anodic method. Ti and APC-2 were stacked to fabricate the composite laminates via hot press curing process. Kevlar layers were added to fabricate nine-layered composite laminates via vacuum assisted resin transfer molding. The drop-weight tests were conducted with a hemispherical nosed projectile in 10 mm diameter. The impact loads were 5 kg and 10 kg and impact heights were adjusted to penetrate samples or the maximum height 1.50 m. The static tensile tests were conducted to measure the residual mechanical properties after impact. The free body drop tests were also simulated by using finite element method and software ANSYS LS-DYNA3D. The results showed that the bottom Ti layer absorbed more internal energy than the top Ti layer, then the cracks were found in the bottom Ti layer more often. The ultimate tensile strength reduced significantly after impact. The initial longitudinal compliance increased with the impact height increasing and decreased after the samples penetrated. Comparing the experimental data with the numerical results, it was found that the damage of the latter was more serious than that of the former. On the conservative side, the results of numerical simulation are acceptable and adopted for applications when no testing data available.
机译:在室温下研究了低速冲击后Ti / APC-2 / Kevlar /环氧杂化复合层压板的力学性能。共有三种类型的样品,包括三层[Ti /(0/90)_(s)/ Ti],五层[Ti /(0/90)_(2)/] _(s)和九层[ Ti / Kevlar / Ti /(0/90)_(2)/] _(s)。 APC-2的叠层是交叉的,而钛层则用铬酸阳极法处理。通过热压固化工艺将Ti和APC-2堆叠在一起以制造复合层压板。通过真空辅助树脂传递模塑法添加凯夫拉尔层以制造九层复合层压板。跌落重量测试是使用直径为10 mm的半球形鼻状弹丸进行的。冲击载荷分别为5 kg和10 kg,并调整冲击高度以穿透样品或最大高度1.50 m。进行静态拉伸测试以测量冲击后的残余机械性能。还使用有限元方法和软件ANSYS LS-DYNA3D模拟了自由落体试验。结果表明,底部Ti层比顶部Ti层吸收更多的内能,因此在底部Ti层中更容易发现裂纹。冲击后,极限抗拉强度明显降低。初始纵向顺应性随冲击高度的增加而增加,而样品穿透后则减小。将实验数据与数值结果进行比较,发现后者的损害比前者更严重。从保守的角度来说,数值模拟的结果是可以接受的,并且在没有可用测试数据的情况下可以用于应用。

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