首页> 外文会议>International Symposium on Explosion, Shock Wave and Hypervelocity Phenomena(ESHP-2); 20070306-09; Kumamoto(JP) >Mechanical Changes in Materials Caused by Explosive Precompression Shock Waves and the Effects on Fragmentation of Exploding Cylinders
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Mechanical Changes in Materials Caused by Explosive Precompression Shock Waves and the Effects on Fragmentation of Exploding Cylinders

机译:爆炸预压缩冲击波引起材料的机械变化及其对爆炸气瓶破裂的影响

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Explosive driven rapid fracture in a structural body will be preceded by a compression process, and the compression effects on mechanical properties of the materials are clearly important to understand shock-induced failure such as spall or fragmentation phenomena. In this study, incident shock waves in plate specimens of aluminum A2017-T4 and 304 stainless steel are generated by plane detonation waves in the high explosive PETN initiated using wire-row explosion techniques, and the compressed specimens are successfully recovered without severe damages due to the reflected expansion waves with use of momentum trap method. A hydro code, Autodyn-2D is applied to determine test conditions: thicknesses of explosives, attenuators, specimens and momentum traps and to evaluate experimental results, simulating time-histories of stress waves in the layers of the test assembly. Microhardness distributions in cross-sections, tensile strength, fracture ductility and yield stress are measured for the recovered specimens, using miniature tensile and compression test pieces machined from them. They are compared with those of virgin specimens, showing significant increase of hardness, tensile and yield strength and remarkable reduction of elongation and ductility for shocked specimens. The results are taken into consideration for evaluation of experimental fragmentation energy in cylinder explosion tests.
机译:在结构体中爆炸驱动的快速断裂之前将经历压缩过程,并且压缩对材料的机械性能的影响对于理解冲击诱发的破坏(例如剥落或破碎现象)显然非常重要。在这项研究中,铝高铝板A2017-T4和304不锈钢的板状试样中的入射冲击波是通过使用线行爆炸技术引发的高爆炸性PETN中的平面爆震波产生的,并且成功地恢复了压缩试样而不会造成严重损坏动量阱法反映反射的膨胀波。液压代码Autodyn-2D用于确定测试条件:炸药,衰减器,标本和动量阱的厚度,并评估实验结果,模拟测试组件各层中的应力波的时间历史。使用回收的样品加工出的微型拉伸和压缩试验片,测量横截面的显微硬度分布,拉伸强度,断裂延展性和屈服应力。将它们与原始样品进行比较,显示出冲击样品的硬度,抗张强度和屈服强度显着增加,伸长率和延展性显着降低。为了评估气瓶爆炸试验中的实验碎裂能量,需要考虑这些结果。

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