首页> 外文会议>25th International Congress on High-Speed Photography and Photonics Sep 29-Oct 4, 2002 Beaune, France >Application of ultra high speed optical measurements to the study of metals viscoplasticity under very high dynamic mechanical loading
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Application of ultra high speed optical measurements to the study of metals viscoplasticity under very high dynamic mechanical loading

机译:超高速光学测量在超高动态机械载荷下金属粘塑性研究中的应用

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When the loading is highly dynamic, the prediction of dynamic structural response by means of numerical calculations needs optimized constitutive relations to describe plastic behavior of metallic materials. In order to extend the domain of strain rate and strain explored in classical characterization experimental programs , free expanding structure tests are particularly well suited to models evaluation by virtue of their inherently homogeneous stress state. The expanding shell test allows to load a material in the domain of high strain levels while strain rate is about 10~4 s~(-1). The experiment (experimental apparatus, measurements ...) is described with the difficulties encountered for the interpretation of the experimental data. The radial velocity is measured with the Doppler Laser Interferometry technique (DLI) for different locations (at 0°, 30° 45° from the revolution axis) in order to record border effects. The accuracy of this technique allows the evaluation for the shock wave propagation stage in the shell (a short characteristic duration of a few μs) and the plastic deformation (duration of tens of μs). Furthermore, expansion of the material sample is observed by means of ultra high speed cameras. The film is a good tool for examination of damage appearances, detonation products problems, fracture of elements of the experimental set up. Under some assumptions, the numerical transformation of radial velocities gives indications about the evolution of the strain, stress, strain rate and temperature rise (this last parameter is related to plastic work). It is also shown the correlation between experimental, analytical and numerical approaches. This review is presented for three materials:copper, tantalum and TA6V4. It is demonstrated that sensitivity to plastic contribution to the motion of matter under high dynamic deformation states is related to strength, density and melting temperature. The contribution of this test to modeling of constitutive equationsis also discussed and further works are finally proposed.
机译:当载荷是高度动态的时,通过数值计算来预测动态结构响应需要优化本构关系来描述金属材料的塑性行为。为了扩展经典表征实验程序中探索的应变率和应变范围,自由扩展结构测试因其固有的均匀应力状态而特别适合于模型评估。膨胀壳试验允许在高应变水平的区域内加载材料,而应变速率约为10〜4 s〜(-1)。描述了实验(实验仪器,测量值...),并在解释实验数据时遇到了困难。为了记录边界效果,使用多普勒激光干涉测量技术(DLI)在不同位置(与旋转轴成0°,30°和45°处)测量了径向速度。此技术的准确性允许评估外壳中的冲击波传播阶段(几秒钟的短特征持续时间)和塑性变形(几十秒的持续时间)。此外,借助超高速相机观察到材料样品的膨胀。该膜是检查损坏外观,爆炸产物问题,实验装置断裂元素的良好工具。在某些假设下,径向速度的数值转换给出了有关应变,应力,应变速率和温度升高的演变的指示(最后一个参数与塑性功有关)。还显示了实验,分析和数值方法之间的相关性。本文针对三种材料进行了介绍:铜,钽和TA6V4。结果表明,在高动态变形状态下,塑性对物质运动的敏感性与强度,密度和熔化温度有关。还讨论了该测试对本构方程建模的贡献,并最终提出了进一步的工作。

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