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Consequence analysis of premixed flammable gas explosion occurring in pipe using a coupled fluid-structure-fracture approach

机译:使用耦合流体 - 结构 - 骨折方法在管道中发生预混易燃气体爆炸的后果分析

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摘要

A coupled fluid-structure-fracture approach incorporating a high-efficiency detonation modeling algorithm was proposed to study the consequences of premixed flammable gas explosion occurring in pipe. A strain-rate-dependent failure criterion which is the vital prerequisite for accurate consequences prediction was derived based on the failure mechanism of materials at high strain rates and it was applied to account for the fracture of pipe. The simulated pressure time history and fracture patterns were validated against experimental results and good agreements were acquired. The interaction between detonation wave and pipe during crack extension, dynamic fracture processes of pipes with different initial flaws, venting features of detonation products and pressure profiles out of pipe were obtained and discussed in detail. The comparison with existing semi-empirical and CFD methods was performed and it is revealed that the deformation and fracture of pipe have obvious negative influences on the peak overpressure and the rate of pressure increase out of pipe. Because the energy absorption and dissipation due to structural deformation and fracture are well taken into account, the coupled fluidstructure-fracture method is expected to provide more rational consequences prediction and analysis results.
机译:提出了一种耦合的流体 - 结构 - 骨折方法,包括高效率爆轰建模算法,研究了管道中发生预混易燃气体爆炸的后果。基于高应变率高的材料的失效机制,推导出一种应变率依赖性的失效标准,其是准确后果预测的预测预测,并且施用了管道的骨折。模拟压力时间历史和裂缝模式针对实验结果验证,获得了良好的协议。爆裂波和管道之间的相互作用在裂缝延伸期间,具有不同初始缺陷的管道的动态断裂过程,获得了爆炸产物的通风特征和管道外部的压力分布,并详细讨论。进行了与现有的半实验和CFD方法的比较,揭示了管道的变形和断裂对峰值过度压力和管道压力增加的速率显而易见的负面影响。因为通过结构变形和裂缝引起的能量吸收和耗散,因此耦合的流体结构 - 断裂方法预计会提供更多的理性后果预测和分析结果。

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