COMP Centre of Excellence, Department of Applied Physics, Aalto University, Aalto, Espoo, Finland.
Phys Rev Lett. 2012 Oct 12;109(15):155504. doi: 10.1103/PhysRevLett.109.155504.
The hysteresis or internal friction in the deformation of crystalline solids stressed cyclically is studied from the viewpoint of collective dislocation dynamics. Stress-controlled simulations of a dislocation dynamics model at various loading frequencies and amplitudes are performed to study the stress-strain rate hysteresis. The hysteresis loop areas exhibit a maximum at a characteristic frequency and a power law frequency dependence in the low frequency limit, with the power law exponent exhibiting two regimes, corresponding to the jammed and the yielding or moving phases of the system, respectively. The first of these phases of the system exhibits nontrivial critical-like viscoelastic dynamics, crossing over to intermittent viscoplastic deformation for higher stress amplitudes.
从集体位错动力学的角度研究了循环应力下晶态固体变形的滞后或内摩擦。通过对各种加载频率和幅度的位错动力学模型进行应力控制模拟,研究了应力-应变速率滞后。滞后环面积在特征频率处达到最大值,并在低频极限下呈现幂律频率依赖性,其中幂律指数表现出两个区域,分别对应于系统的堵塞和屈服或移动相。系统的前一相表现出非平凡的类临界粘弹性动力学,对于更高的应力幅度,过渡到间歇粘塑性变形。