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Advances in high strain rate material testing

机译:高应变率材料测试的进展

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In this contribution, attention is focused on new developments and possibilities for advanced material testing using split Hopkinson bar setups. The possibility to test non-common materials (such as small diameter steel cords), and to generate more dimensional stress states (e.g. in a three-point-bending configuration) is outlined. In both tests very low amplitude signals have to be captured. Because measurement devices have become much more sensitive in recent years, these signals can now be measured with sufficient accuracy. Moreover, the technical specifications of high-speed imaging devices have improved tremendously. A technique to extract the deformation of a Hopkinson specimen from high-speed streak camera images—using geometrical Moire and phase shifting—will be presented. Other advances, made possible by the increased availability of numerical tools, are enhanced signal processing and/or data extraction techniques. Finally, a combined numerical/experimental method to exclude the influence of the specimen geometry on the stress-strain curves extracted from classical Hopkinson experiments is presented.
机译:在这一贡献中,关注使用Split Hopkinson Bar设置的先进材料测试的新的开发和可能性。概述了测试非普通材料(例如小直径钢丝绳)的可能性,并概述了更多尺寸应力状态(例如,在三点弯曲的配置中)。在两个测试中,必须捕获非常低的幅度信号。由于近年来测量设备变得更加敏感,因此现在可以以足够的精度测量这些信号。此外,高速成像装置的技术规格已经提高了巨大的改善。提出一种从高速条纹摄像机图像中提取霍普金森标本的变形的技术,将呈现使用几何莫尔和相移 - 将展开。通过增加数值工具的可用性来实现的其他进步是增强的信号处理和/或数据提取技术。最后,提出了一种组合的数值/实验方法,以排除试样几何形状对从经典霍普金森实验中提取的应力 - 应变曲线的影响。

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