消散
动能
振荡(细胞信号)
刚度
动力摩擦
材料科学
弹簧(装置)
摩擦力矩
经典力学
保守势力
动力学(音乐)
机械
物理
扭矩
热力学
复合材料
化学
声学
生物化学
作者
Shuyu Huang,Zhiyong Wei,Zaoqi Duan,Chengdong Sun,Yongkang Wang,Yi Tao,Yan Zhang,Yajing Kan,Ernst Meyer,Deyu Li,Yunfei Chen
标识
DOI:10.1103/physrevlett.132.056203
摘要
Friction is responsible for about one-third of the primary energy consumption in the world. So far, a thorough atomistic understanding of the frictional energy dissipation mechanisms is still lacking. The Amontons' law states that kinetic friction is independent of the sliding velocity while the Prandtl-Tomlinson model suggests that damping is proportional to the relative sliding velocity between two contacting objects. Through careful analysis of the energy dissipation process in atomic force microscopy measurements, here we propose that damping force is proportional to the tip oscillation speed induced by friction. It is shown that a physically well-founded damping term can better reproduce the multiple peaks in the velocity-dependent friction force observed in both experiments and molecular dynamics simulations. Importantly, the analysis gives a clear physical picture of the dynamics of energy dissipation in different friction phases, which provides insight into long-standing puzzles in sliding friction, such as velocity weakening and spring-stiffness-dependent friction.
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