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Numerical prediction on dynamic fracture of tubes subjected to internal gaseous detonation

机译:内气爆管动态断裂的数值预测

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Gaseous detonation-driven fracture is a strongly coupled fluid-structure-fracture problem which involves fluid motion, chemical reaction as well as structural large deformation and fracture. In our work, a stability-based coupling approach which couples a Lagrangian structure solver with fracture capability and an Eulerian fluid solver with detonation computation capability was developed to achieve the fluid-structure interaction (FSI) simulation of tube fracture due to internal gaseous detonation. Different from an assumed fracture strain or stress, a rate-dependent failure criterion for metal materials at high strain rate conditions was employed in the simulation to account for the failure of the tubes. The interaction between detonation wave and tube, dynamic crack propagations, strain responses, crack speeds and the venting of detonation products were obtained and discussed. The simulated final fracture patterns were compared with experiments and the numerical results from other literatures. It is found that our approach reproduces the experimental crack propagations quite well, and it gives a more reliable prediction of the fracture patterns of tubes subjected to gaseous detonation loads compared with other literatures. (C) 2016 Elsevier Ltd. All rights reserved.
机译:气体爆炸驱动的破裂是一个强烈耦合的流体结构破裂问题,涉及流体运动,化学反应以及结构大变形和破裂。在我们的工作中,开发了一种基于稳定性的耦合方法,该方法将具有断裂能力的拉格朗日结构求解器与具有爆震计算能力的欧拉流体求解器耦合在一起,以实现由于内部气体爆炸而引起的管断裂的流固耦合(FSI)模拟。与假定的断裂应变或应力不同,在模拟中采用了高应变速率条件下金属材料的速率相关失效准则,以说明管的失效。获得并讨论了爆炸波与管之间的相互作用,动态裂纹扩展,应变响应,裂纹速度以及爆炸产物的排放。将模拟的最终断裂模式与实验和其他文献的数值结果进行了比较。发现我们的方法可以很好地再现实验裂纹的扩展,并且与其他文献相比,它可以更可靠地预测承受气体爆轰载荷的管的断裂模式。 (C)2016 Elsevier Ltd.保留所有权利。

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