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Experimental Observations on Dynamic Response of Selected Transparent Armor Materials

机译:选定的透明装甲材料动力响应的实验观察

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Structural transparent material systems are critical for many military and civilian applications. Transparent armor systems can consist of a wide variety of glass laminate assemblies with polymeric bonding interfaces and backing as well as the inclusion of polycrystalline ceramic (AlON, spinel) and single crystals (sapphire) as front facing materials. Over the last 20 years as the threats have escalated and become more varied, the challenges for rapidly developing optimized threat specific transparent armor packages have become extremely complex. Ultimate failure of structural ceramics in impact events is a function of the temporal and spatial interaction of the macro-stresses at the macro-, micro- and nano-structural scale, including elastic and inelastic (plastic) deformation, crack nucleation, damage evolution and resulting failure from the macro-scale (top down) and/or from the nano-scale (bottom up). In order to accelerate the development of validated design and predictive performance models, a systematic series of experimental investigations have been carried out on various non-crystalline ceramics (glass), single crystal (sapphire) and polycrystalline ceramics (AlON). The Edge-on Impact (EOI) test coupled with a high-speed Cranz-Schardin film camera has been extensively used on a variety of monolithic and laminated glasses, AlON and crystallographically controlled sapphire single crystals to visualize and quantify stress wave, crack and damage propagation. A modified Kolsky bar technique instrumented with a high speed digital camera has been utilized in an unconfined and confined test sample mode to examine the dynamic deformation and failure of AlON undergoing uniaxial, high strain rate compression. Real time photography has clearly demonstrated the critical influence of defects and post mortem characterization of fragments resulting from these tests have revealed the influence of micro-deformational twining and cleavage down to the nano-scale. Finally, a brief summary of work using ultra-high-speed photography of the impact of conventional projectiles on glass and AlON will be presented. These experimental results will be absolutely critical to help evolve and validate existing models used in computer codes to simulate the impact performance of brittle materials.
机译:结构透明材料系统对于许多军事和民用应用至关重要。透明装甲系统可以由各种具有聚合物粘合界面和衬里的玻璃层压板组件组成,还可以包含多晶陶瓷(AlON,尖晶石)和单晶(蓝宝石)作为正面材料。在过去的20年中,随着威胁的升级和变化越来越大,快速开发优化的,针对威胁的透明装甲包的挑战变得异常复杂。结构陶瓷在冲击事件中的最终破坏是宏观,微观和纳米结构尺度上宏观应力在时间和空间上相互作用的函数,包括弹性和非弹性(塑性)变形,裂纹成核,损伤演变和宏观尺度(自上而下)和/或纳米尺度(自下而上)导致的故障。为了加速开发经过验证的设计和预测性能模型,已经对各种非晶陶瓷(玻璃),单晶(蓝宝石)和多晶陶瓷(AlON)进行了一系列系统的实验研究。 Edge-on Impact(EOI)测试与高速Cranz-Schardin胶片相机结合使用,已广泛用于各种整体玻璃和夹层玻璃,AlON和晶体学控制的蓝宝石单晶,以可视化和量化应力波,裂纹和损伤传播。在无限制和受限的测试样本模式下,采用了一种配备有高速数码相机的改进的Kolsky棒技术,以检查AlON在单轴高应变速率压缩下的动态变形和破坏。实时摄影清楚地表明了缺陷的关键影响,并且由这些测试产生的碎片的事后表征表明了微观变形孪生和裂解至纳米级的影响。最后,将简要介绍使用超高速摄影技术拍摄的常规弹丸对玻璃和AlON的影响的工作。这些实验结果对于帮助发展和验证计算机代码中用来模拟脆性材料的冲击性能的现有模型至关重要。

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