首页> 外文会议>International Conference on Shock Impact Loads on Structures >STUDY ON PERFORMANCE OF EXPLOSIVE CONFINEMENT STRUCTURES AGAINST INTERNAL BLAST WAVE AT SHORT RANGES
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STUDY ON PERFORMANCE OF EXPLOSIVE CONFINEMENT STRUCTURES AGAINST INTERNAL BLAST WAVE AT SHORT RANGES

机译:爆炸监禁结构对短程内部爆炸波的性能研究

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Internal explosive blast environments at short ranges and the effects of deformation and failure by them on confinement structures were rarely studied. Systematically performed theoretical and experiment research work here presents the confinement structures' anti-explosion performance under near internal explosive blast for designing relevant projects scientifically, rationally, economically and efficiently. A new approach on approximate analytical calculation of internal explosive blast has been put forward based upon theory of explosion in real air at short ranges. The flow field status and on-wall blast loads when explosive detonated in vessels were successfully simulated with the LS-DYNA code. Explosion experiment results indicate that the major response is circular stretch when reinforced concrete cylinder subjected to internal explosive blast, and explosive fractures on container are of fractal feature relative to the container's failure degree. Equivalent static loads applied on explosive confinement steel vessels are dependent not only upon the natural frequency of the vessel and the blast peak pressure, but also upon the ratio of quasi static gas pressure to the blast peak pressure. When adopting long cylindrical shell with low quasi static gas pressure and considering the favorable ductility, an explosive confinement steel vessel can be sharply lightened. The Holmquist-Johnson-Concrete model seems best fit for the concrete in layered confinement structure made up of"steel + concrete + soil (rock)". For large explosion, a compound structure of "long and thin steel sealing internal cylinder + reinforcing steel cylinders + concrete +infinite surrounding granite" appears safe, rational and feasible.
机译:很少研究了短程内部爆炸性的爆炸环境,并且它们对监禁结构的变形和失效的影响很少。系统地执行的理论和实验研究工作在这里提出了在近乎内部爆炸性爆炸下的监禁结构的防爆性能,用于科学,合理,经济和有效地设计相关项目。基于简短范围内真正的空气爆炸理论,提出了一种新的内部爆炸爆炸分析计算的新方法。使用LS-DYNA码成功模拟爆炸性爆炸时的流场状态和墙壁冲压载荷。爆炸实验结果表明,当经过内部爆炸爆炸的钢筋混凝土缸时,主要反应是圆形拉伸,以及容器上的爆炸性骨折相对于容器故障程度的分形特征。应用于爆炸隔音钢容器上的等效静载荷不仅依赖于容器的固有频率和喷砂峰值压力,而且还依赖于爆破峰值压力,而且还依赖于准静态气体压力与喷发峰值压力的比率。采用具有低准静态气体压力并考虑有利的延展性的长圆柱形壳,可以急剧地减轻爆炸性限制钢容器。 Holmquist-Johnson - 混凝土模型似乎最适合由“钢+混凝土+土壤(岩石)”组成的分层限制结构中的混凝土。对于大型爆炸,“长薄钢密封内圆筒+加强钢瓶+混凝土+无限花岗岩”的复合结构看起来安全,理性和可行。

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