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Consequences assessment of explosions in pipes using coupled FEM-SPH method

机译:耦合FEM-SPH方法评估管道爆炸的后果

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摘要

Explosions often lead to destruction of equipment, which is a difficult problem including complicated fluid-solid interactions. Most traditional CFD methods cannot synchronously solve the movements of fluids and large deformation and fracture of solids because such problem is usually accompanied with constantly moving-and-changing boundary conditions. In this paper, a coupled Finite Element Method Smoothed Particle Hydrodynamics (FEM-SPH) method was proposed to simulate the dynamic processes of explosions in pipes. The propagation of blast wave and the fracture of pipe were captured in every timestep, where the energy dissipation caused by plastic deformation and crack propagation were fully considered. A rate-dependent failure criterion for high-strain-rate load conditions was employed in the numerical simulation, which was presented in our previous work and has been verified in the dynamic fracture behavior of steels for pressure vessels and pipes. In addition, a simpler formula was proposed to describe the attenuation of blast wave outside the pipe and the consequences caused by the explosions were assessed. Results revealed the interaction between blast wave and pipe, the leakage of detonation products, the attenuations of peak overpressures outside the pipe and the corresponding consequences at different distances. It is found that when considering the energy consumption during plastic deformation and crack propagation in coupled FEM-SPH method, the assessment results are more rational than that without considering such energy consumption. (C) 2016 Elsevier Ltd. All rights reserved.
机译:爆炸通常会导致设备损坏,这是一个棘手的问题,包括复杂的流固耦合。大多数传统的CFD方法无法同步解决流体的运动以及固体的大变形和破裂,因为此类问题通常伴随着不断变化的边界条件。本文提出了一种耦合有限元法光滑粒子流体动力学(FEM-SPH)方法来模拟管道爆炸的动力学过程。在每个时间段都记录了爆炸波的传播和管道的破裂,充分考虑了由塑性变形和裂纹扩展引起的能量耗散。在数值模拟中采用了高应变速率载荷条件下的速率相关失效准则,该准则已在我们以前的工作中提出,并已在压力容器和管道用钢的动态断裂行为中得到验证。此外,提出了一个更简单的公式来描述管道外部爆炸波的衰减,并评估了爆炸造成的后果。结果揭示了爆炸波与管道之间的相互作用,爆炸产物的泄漏,管道外部峰值超压的衰减以及不同距离处的相应后果。研究发现,在采用有限元-SPH耦合方法考虑塑性变形和裂纹扩展过程中的能耗时,评估结果比不考虑此类能耗时更为合理。 (C)2016 Elsevier Ltd.保留所有权利。

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