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Hydrothermally degraded carbon fiber / epoxy plates subjected to underwater explosive loading in a fully submerged environment

机译:水热降解的碳纤维/环氧树脂在完全浸没环境中进行水下爆炸载荷

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An experimental and computational investigation was conducted to evaluate the underwater blast response of fully submerged carbon fiber composite plates after prolonged exposure to saline water. The material was a biaxial carbon fiber/epoxy composite with a [+/- 45 degrees] fiber orientation layup. The plates were placed in a saline water bath with a temperature of 65 degrees C for 35 and 70 days, which simulates approximately 10 and 20 years of operating conditions in accordance to Fick's law of diffusion coupled with Arrhenius's Equation and a reference ocean temperature of 17 degrees C. Underwater blast experiments were performed in a 2.1 m diameter pressure vessel. The composite plates were placed in the center of the vessel while fully submerged in water, and an RP-85 explosive was detonated at a standoff distance of 102 mm from the center of the plate. Two cases of fluid hydrostatic gage pressures were investigated: 0 MPa, and 3.45 MPa. Two high speed cameras were utilized for three-dimensional Digital Image Correlation, which provided full-field displacements and velocities of the composite plates during underwater blast loading. A third high speed camera captured the behavior of the explosive gas bubble. Moreover, the pressure fields generated by the explosive detonation and resulting gas bubble were recorded with tourmaline pressure transducers. A water diffusion study was completed which showed that the diffusion of water into the composites reached a point of complete saturation after 35 days of exposure. Quasi-static material characterization tests were performed before and after prolonged exposure to saline water. The properties obtained from quasi-static testing also served as material inputs for the numerical models. The quasi-static test results showed that the tensile modulus E-1,E-2 does not change with exposure to saline water, whereas the in-plane shear modulus G(12) decreases with saline water exposure. During blast loading, for the case of 0 MPa hydrostatic gage pressure, the gas bubble interacts with the composite plate substantially. In such an event, the out of plane displacement increased for saline water exposed plates when compared to virgin structures. For the case of 3.45 MPa hydrostatic gage pressure, the gas bubble does not visibly interact with the composite plate. In this case, the out of plane displacement for specimens exposed to saline water was similar to the virgin specimen. A fully coupled Eulerian-Lagrangian fluid structure interaction simulation was performed by using the DYSMAS code. The numerical simulations showed that the displacement of fully submerged composite plates is driven by the displacement of fluid, as well as the size of the gas bubble formed by the explosive rather than the peak pressure generated by the explosive. The numerical simulations were in agreement with the experimental findings in terms of pressure history and plate deformation.
机译:进行了实验和计算调查,以评价延长暴露于盐水后完全浸没碳纤维复合板的水下爆破响应。该材料是双轴碳纤维/环氧复合材料,其纤维取向铺敷。将板置于盐水浴中,温度为65℃,35℃和70天,根据Fick的扩散定律,与Arhenius方程相结合的大约10和20年的操作条件和17的参考海洋温度在直径2.1M的压力容器中进行水下喷砂实验。将复合板置于容器的中心,同时完全浸没在水中,并且RP-85爆炸物在距离板中心102毫米的支座距离处爆炸。研究了两种流体静液压测量压力:0MPa和3.45MPa。用于三维数字图像相关的两个高速相机,其在水下鼓胀期间提供了全场位移和复合板的速度。第三次高速相机捕获了爆炸性气体泡沫的行为。此外,用钢甘油压力传感器记录由爆炸爆炸和所得到的气泡产生的压力场。完成了水分扩散研究,表明水进入复合材料的扩散达到了35天暴露后完全饱和的点。在长期暴露于盐水之前和之后进行准静态材料表征测试。从准静态测试中获得的属性也用作数值模型的材料输入。准静态试验结果表明,拉伸模量E-1,E-2不会随着盐水暴露而改变,而面内剪切模量G(12)用盐水暴露减少。在爆破负载期间,对于0MPa静水量压力的情况,气泡基本上与复合板相互作用。在这种情况下,与原始结构相比,盐水水暴露板的平面位移增加。对于3.45MPa静水压测量压力的情况,气泡不与复合板相互作用。在这种情况下,暴露于盐水的样品的平面位移类似于原始标本。通过使用Dysmas代码执行完全耦合的Eulerian-Lagrangian流体结构相互作用仿真。数值模拟表明,完全浸没式复合板的位移由流体的位移驱动,以及由炸药形成的气泡的尺寸而不是通过炸药产生的峰值压力。在压力历史和板变形方面,数值模拟与实验结果一致。

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