论文标题
不稳定的裂纹触发双层摩擦中的渐近破裂模式
Unstable cracks trigger asymptotic rupture modes in bimaterial friction
论文作者
论文摘要
在摩擦接触控制下连接两种材料的界面破裂使其宏观滑动。界面破裂动力学明显取决于结合摩擦界面的大体材料的机械性能。当材料相似时,最近的实验和理论工作表明,线性弹性断裂力学(LEFM)描述的剪切裂纹定量地描述了摩擦界面的破裂。当两种材料的弹性特性不同时,由双质耦合产生的许多新效果发生:界面处的正常应力在弹性动力学上与局部滑动速率耦合。在低破裂速度下,双层耦合不是很大,界面破裂受LEFM很好描述的“双层裂纹”控制。随着破裂速度的增加,我们从实验和理论上展示了双层裂纹在亚音速临界破裂速度下如何变得不稳定,$ C_T $。当破裂方向与较软的材料中施加的剪切方向相反时,我们表明$ c_t $是亚音速限制速度。当破裂在较软的材料中施加的剪切方向传播时,我们证明了$ C_T $提供了一个解释,以解释如何以及何时生成滑动脉冲(以空间局部滑动为特征的新破裂模式)。这项工作完成了对双层接口的摩擦破裂方式的基本物理描述。
The rupture of the interface joining two materials under frictional contact controls their macroscopic sliding. Interface rupture dynamics depend markedly on the mechanical properties of the bulk materials that bound the frictional interface. When the materials are similar, recent experimental and theoretical work has shown that shear cracks described by Linear Elastic Fracture Mechanics (LEFM) quantitatively describe the rupture of frictional interfaces. When the elastic properties of the two materials are dissimilar, many new effects take place that result from bimaterial coupling: the normal stress at the interface is elastodynamically coupled to local slip rates. At low rupture velocities, bimaterial coupling is not very significant and interface rupture is governed by `bimaterial cracks' that are described well by LEFM. As rupture velocities increase, we experimentally and theoretically show how bimaterial cracks become unstable at a subsonic critical rupture velocity, $c_T$. When the rupture direction opposes the direction of applied shear in the softer material, we show that $c_T$ is the subsonic limiting velocity. When ruptures propagate in the direction of applied shear in the softer material, we demonstrate that $c_T$ provides an explanation for how and when slip pulses (new rupture modes characterized by spatially localized slip) are generated. This work completes the fundamental physical description of how the frictional rupture of bimaterial interfaces takes place.