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首页> 外文期刊>International journal of impact engineering >Impact dynamics and puncture failure of pressurized tank cars with fluid-structure interaction: A multiphase modeling approach
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Impact dynamics and puncture failure of pressurized tank cars with fluid-structure interaction: A multiphase modeling approach

机译:具有流体-结构相互作用的加压罐车的冲击动力学和穿刺破坏:多相建模方法

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This paper presents a computational framework that analyzes the effect of fluid-structure interaction (FSI) on the impact dynamics and puncture failure of pressurized commodity tank cars carrying hazardous materials. Shell (side) impact tests have been conducted on full scale tank cars resulting in deformed or punctured tank cars. A finite element (FE) modeling method is applied that explicitly simulates the three distinct phases in a tank car loaded with a liquefied substance: pressurized gas, pressurized liquid and solid structure. Furthermore, an equivalent plastic strain based fracture initiation criterion expressed as a function of stress triaxiality is adopted to depict the fracture behavior of the tank car steel material. The fracture initiation is implemented for ductile, shear and mixed fracture modes and followed by further material deterioration governed by a strain softening law. The force, displacement and impact energy results obtained from the FE analysis show good agreement with the corresponding shell impact test data. The simulations demonstrate that FSI plays a critical role in predicting the correct dynamics of tank car impact. The puncture resistance of a tank car, characterized as limit impact conditions in terms of puncture energy or puncture velocity, is further analyzed in shell impact scenarios. The puncture energy is shown to increase as the initial fluid pressure decreases, the tank car thickness increases or the effective impactor size increases. Quantitative correlations between puncture energy/velocity and each of these factors are obtained using the FE analysis method developed in this paper. Published by Elsevier Ltd.
机译:本文提出了一个计算框架,该框架分析了流固耦合对载运危险材料的加压商品罐车的冲击动力学和穿刺破坏的影响。已在大型罐车上进行了壳(侧面)冲击测试,导致罐车变形或刺穿。应用了一种有限元(FE)建模方法,该方法可以显式地模拟装有液化物质的罐车中的三个不同的相:加压气体,加压液体和固体结构。此外,采用表示为应力三轴性函数的基于等效塑性应变的断裂起始准则来描述罐车钢材的断裂行为。断裂开始是针对延性,剪切和混合断裂模式进行的,然后通过应变软化定律控制进一步的材料退化。有限元分析得到的力,位移和冲击能结果与相应的壳体冲击试验数据吻合良好。仿真表明,FSI在预测油罐车撞击的正确动态方面起着至关重要的作用。在罐体撞击情况下,进一步分析了油罐车的抗穿刺性,以穿刺能量或穿刺速度为极限冲击条件。随着初始流体压力的降低,罐车厚度的增加或有效冲击器尺寸的增加,穿刺能量会增加。使用本文开发的有限元分析方法可以获得穿刺能量/速度与这些因素之间的定量相关性。由Elsevier Ltd.发布

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