首页> 外文会议>International Mechanical Engineering Congress and Exposition 2007 >EXPERIMENTAL AND NUMERICAL STUDIES OF S2-GLASS FIBER/TOUGHENED EPOXY COMPOSITE BEAMS SUBJECT TO DROP-WEIGHT OR BALLISTIC IMPACT
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EXPERIMENTAL AND NUMERICAL STUDIES OF S2-GLASS FIBER/TOUGHENED EPOXY COMPOSITE BEAMS SUBJECT TO DROP-WEIGHT OR BALLISTIC IMPACT

机译:S2-玻璃纤维/增韧环氧树脂复合梁受压或弹道冲击的实验和数值研究

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A combined experimental and 3-D dynamic nonlinear finite element approach was adopted to study composite beams subject to drop-weight or ballistic impact. The composite specimens, made of S2 glass-reinforced toughened epoxy (44% fiber volume fraction, cured at 350°F), had 24 layers (approximately 6.35 mm) with various stacking sequences. They were damaged by impacts using either an Instron-Dynatup 8520 instrumented drop-weight impact tester (low-velocity impact) or an in-house high-speed gas gun (ballistic impact). For both types of tests, the time-histories of dynamic strains induced during impact were recorded using strain gages mounted on the front and back of the composite beam specimen. For drop-weight impact tests, the time history of impact force was also recorded; whereas for ballistic impact tests, only the impact velocity was calculated from the recorded change in voltage outputs, which resulted from the traversing of the impactor through two optical paths formed by two sets of diode laser-amplified photo diode pairs. The commercially available 3-D dynamic nonlinear finite element software, LS-DYNA, incorporated with a proposed nonlinear anisotropic damage model, was then used to simulate the experimental results. Good agreement between experimental and FEM results can be seen from comparisons of dynamic strain and impact force histories and damage patterns. Once the proposed nonlinear anisotropic damage model was verified by experimental results, further finite element simulations were conducted to predict the ballistic limit velocity (V_(50)) for penetration prevention.
机译:采用试验与3D动态非线性有限元相结合的方法来研究承受落锤或弹道冲击的复合材料梁。由S2玻璃纤维增​​强的环氧树脂(纤维体积分数为44%,在350°F固化)制成的复合材料样品具有24层(约6.35 mm),具有不同的堆叠顺序。使用Instron-Dynatup 8520仪器跌落式冲击试验机(低速冲击)或室内高速气枪(弹道冲击),它们会受到冲击的破坏。对于这两种类型的测试,均使用安装在复合梁样品正面和背面的应变计记录了在冲击过程中引起的动态应变的时程。对于落锤冲击试验,还记录了冲击力的时间历史记录;而对于弹道冲击试验,仅通过记录的电压输出变化来计算冲击速度,该变化是由于冲击器穿过两组由二极管激光放大的光电二极管对形成的两条光路而产生的。然后使用市售的3-D动态非线性有限元软件LS-DYNA,并结合提出的非线性各向异性损伤模型来模拟实验结果。从动态应变和冲击力历史以及损伤模式的比较可以看出,实验结果与有限元结果之间具有良好的一致性。一旦通过实验结果验证了所提出的非线性各向异性损伤模型,便会进行进一步的有限元模拟,以预测弹道极限速度(V_(50)),以防止穿透。

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