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首页> 外文期刊>Journal of Applied Mechanics: Transactions of the ASME >Recent Milestones in Unraveling the Full-Field Structure of Dynamic Shear Cracks and Fault Ruptures in Real-Time: From Photoelasticity to Ultrahigh-Speed Digital Image Correlation
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Recent Milestones in Unraveling the Full-Field Structure of Dynamic Shear Cracks and Fault Ruptures in Real-Time: From Photoelasticity to Ultrahigh-Speed Digital Image Correlation

机译:最近的里程碑在揭开动态剪切裂缝和故障破裂的全场结构实时:从光弹性到超高速度数字图像相关性

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The last few decades have seen great achievements in dynamic fracture mechanics. Yet, it was not possible to experimentally quantify the full-field behavior of dynamic fractures, until very recently. Here, we review our recent work on the full-field quantification of the temporal evolution of dynamic shear ruptures. Our newly developed approach based on digital image correlation combined with ultrahigh-speed photography has revolutionized the capabilities of measuring highly transient phenomena and enabled addressing key questions of rupture dynamics. Recent milestones include the visualization of the complete displacement, particle velocity, strain, stress and strain rate fields near growing ruptures, capturing the evolution of dynamic friction during individual rupture growth, and the detailed study of rupture speed limits. For example, dynamic friction has been the biggest unknown controlling how frictional ruptures develop but it has been impossible, until now, to measure dynamic friction during spontaneous rupture propagation and to understand its dependence on other quantities. Our recent measurements allow, by simultaneously tracking tractions and sliding speeds on the rupturing interface, to disentangle its complex dependence on the slip, slip velocity, and on their history. In another application, we have uncovered new phenomena that could not be detected with previous methods, such as the formation of pressure shock fronts associated with "supersonic" propagation of shear ruptures in viscoelastic materials where the wave speeds are shown to depend strongly on the strain rate.
机译:过去几十年来看,动态骨折力学的成就良好。然而,在最近,无法通过实验量化动态骨折的全场行为。在这里,我们审查了我们最近的全场量化动态剪切破裂的全场量化。我们基于数字图像相关性的新开发方法与超高速摄影结合彻底改变了测量高瞬态现象的能力,并启用了破裂动力学的关键问题。最近的里程碑包括在越来越严重的裂缝中的完全位移,粒子速度,应变,应力和应变场的可视化,捕获在个体破裂生长期间动态摩擦的演变,以及对破裂速度限制的详细研究。例如,动态摩擦是最大的未知控制摩擦破裂的发展,但直到现在,在自发性破裂传播期间测量动态摩擦,并理解其对其他数量的依赖。我们最近的测量允许通过同时跟踪破裂界面上的牵引和滑动速度,解开其对滑动,滑动速度和历史的复杂依赖。在另一个应用中,我们发现了无法用先前的方法检测的新现象,例如与“超音速”相关的压力冲击前沿的形成,其中波速所示的粘弹性材料中的粘弹性材料中的粘性破裂依赖于菌株速度。

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