IFW Dresden, Institut für Komplexe Materialien, Helmholtzstraβe 20, D-01069 Dresden, Germany.
Phys Rev Lett. 2013 May 31;110(22):225501. doi: 10.1103/PhysRevLett.110.225501. Epub 2013 May 30.
Intermittent or serrated plastic flow is widely observed in the deformation of bulk metallic glasses (BMGs) or other disordered solids at low temperatures. However, the underlying physical process responsible for the phenomena is still poorly understood. Here, we give an interpretation of the serrated flow behavior in BMGs by relating the atomic-scale deformation with the macroscopic shear band behavior. Our theoretical analysis shows that serrated flow in fact arises from an intrinsic dynamic instability of the shear band sliding, which is determined by a critical stiffness parameter in stick-slip dynamics. Based on this, the transition from serrated to nonserrated flow with the strain rate or the temperature is well predicted and the effects of various extrinsic and intrinsic factors on shear band stability can be quantitatively analyzed in BMGs. Our results, which are verified by a series of compression tests on various BMGs, provide key ingredients to fundamentally understand serrated flow and may bridge the gap between the atomic-scale physics and the larger-scale shear band dynamics governing the deformation of BMGs.
在低温下,大块金属玻璃(BMG)或其他无序固体的变形中广泛观察到间歇性或锯齿状塑性流动。然而,导致这种现象的潜在物理过程仍未被很好地理解。在这里,我们通过将原子尺度的变形与宏观剪切带行为相关联,对 BMG 中的锯齿流行为给出了一种解释。我们的理论分析表明,锯齿流实际上是由剪切带滑动的固有动力学不稳定性引起的,这由粘滑动力学中的临界刚度参数决定。基于此,可以很好地预测应变率或温度下从锯齿流到非锯齿流的转变,并且可以定量分析 BMG 中各种外在和内在因素对剪切带稳定性的影响。我们的结果通过对各种 BMG 进行的一系列压缩测试得到了验证,为深入理解锯齿流提供了关键要素,并可能弥合原子尺度物理与控制 BMG 变形的较大剪切带动力学之间的差距。