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On the compression of aluminium foam structures under shock

机译:关于冲击下铝泡沫结构的压缩

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摘要

Foam-based materials have an important role as both blast and impact mitigators, with their extended sub-surface structures providing multiple redundant routes for load management and distribution in the event of failure. In order to further elucidate underlying stress management mechanisms at high strain-rates, here, open cell and closed cell Aluminium were investigated via the plate-impact technique. These experiments allowed the material to be loaded under a macroscale one-dimensional state of strain. The nature of pore collapse was monitored via manganin stress gauges at the target rear surface, with resultant data related back to changes in microstructure via microstructural analysis of both un-impacted and recovered target material. Results indicated crushing of the open cell foam occurred without retarding the flyer plate and the observed shock pressures suggested the degree of compaction increased with impact velocity. The higher density closed cell foam caused significant deceleration of the flyer plate during passage through the specimen and significantly lower shock pressures were observed at the anvil compared to the open cell material.
机译:泡沫材料既可作为爆炸缓解剂,又可以作为冲击缓解剂,在其扩展的地下结构中提供了多个冗余路径,以便在发生故障时进行载荷管理和分配,从而发挥了重要作用。为了进一步阐明在高应变率下的潜在应力管理机制,这里,通过平板冲击技术研究了开孔铝和闭孔铝。这些实验使材料可以在宏观的一维应变状态下加载。孔隙塌陷的性质是通过靶背面的锰应力计监测的,所得数据与未受影响和回收的靶材料的微观结构分析有关,涉及微观结构的变化。结果表明,开孔泡沫的破碎发生了,而没有阻碍翼板,并且观察到的冲击压力表明压实度随冲击速度而增加。与开孔材料相比,较高密度的闭孔泡沫在通过样品的过程中会导致传单板明显减速,并且在砧座处观察到的冲击压力明显较低。

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