首页> 外文期刊>Friction >Multiscale study of the dynamic friction coefficient due to asperity plowing
【24h】

Multiscale study of the dynamic friction coefficient due to asperity plowing

机译:多尺度研究动态摩擦系数由于粗糙耕作

获取原文
           

摘要

A macroscopically nominal flat surface is rough at the nanoscale level and consists of nanoasperities. Therefore, the frictional properties of the macroscale-level rough surface are determined by the mechanical behaviors of nanoasperity contact pairs under shear. In this work, we first used molecular dynamics simulations to study the non-adhesive shear between single contact pairs. Subsequently, to estimate the friction coefficient of rough surfaces, we implemented the frictional behavior of a single contact pair into a Greenwood-Williamson-type statistical model. By employing the present multiscale approach, we used the size, rate, and orientation effects, which originated from nanoscale dislocation plasticity, to determine the dependence of the macroscale friction coefficient on system parameters, such as the surface roughness, separation, loading velocity, and direction. Our model predicts an unconventional dependence of the friction coefficient on the normal contact load, which has been observed in nanoscale frictional tests. Therefore, this model represents one step toward understanding some of the relevant macroscopic phenomena of surface friction at the nanoscale level.
机译:宏观上标称平坦表面在纳米级水平处粗糙并且由纳米级组成。因此,宏观级粗糙表面的摩擦性质由剪切下的纳米倾斜对的机械行为确定。在这项工作中,我们首先使用分子动力学模拟来研究单个接触对之间的非粘性剪切。随后,为了估计粗糙表面的摩擦系数,我们将单个接触对的摩擦行为实施为Greenwood-Williamson型统计模型。通过采用本发明的多尺度方法,我们使用了源自纳米级位错可塑性的尺寸,速率和方向效应,以确定宏观摩擦系数对系统参数的依赖性,例如表面粗糙度,分离,装载速度和方向。我们的模型预测了在纳米级摩擦试验中观察到的正常接触载荷对摩擦系数的非常规依赖性。因此,该模型代表了理解纳米级水平的一些相关宏观现象的一步。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号