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Influence of external load on the frictional characteristics of rotary model using a molecular dynamics approach

机译:分子动力学方法研究外载荷对旋转模型摩擦特性的影响

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molecular dynamics approach to study the frictional characteristics in the perspective of atoms. The model consists of a diamond rotator and a copper substrate and the diamond rotator rotates around the cooper substrate at different external loads. The frictional force is calculated by summing all the atomic forces of diamond rotator along the opposite direction of linear velocity and the real contact area is defined by the number of atoms that interact chemically across the contact interface. Influences of external load on the frictional force and coefficient of friction are analyzed. The simulation results show that the total atomic force varies with rotary cycle according to the sine law with a periodic cycle of 2 pi in the rotary model. However, the frictional force is basically not a periodic signal. It fluctuates around the average frictional force which is linearly dependent on the real contact area. Besides, it is demonstrated that the coefficient of friction decreases with the increase of external load, which is due to the nonlinear increase of real contact area. As a result, the present work will have an important impact on the fundamental understanding of the wear mechanism of rotary model. (C) 2016 Elsevier B.V. All rights reserved.
机译:分子动力学方法从原子的角度研究摩擦特性。该模型由金刚石旋转器和铜基板组成,并且金刚石旋转器在不同的外部载荷下围绕库珀基板旋转。摩擦力是通过将金刚石旋转器沿线速度的相反方向的所有原子力求和而得出的,而实际接触面积是由在整个接触界面上化学相互作用的原子数定义的。分析了外部载荷对摩擦力和摩擦系数的影响。仿真结果表明,在旋转模型中,总原子力根据正弦定律随旋转周期变化,周期为2 pi。但是,摩擦力基本上不是周期性信号。它围绕平均摩擦力波动,该平均摩擦力线性依赖于实际接触面积。此外,证明了摩擦系数随着外部载荷的增加而减小,这是由于实际接触面积的非线性增加所致。因此,目前的工作将对旋转模型磨损机理的基本理解产生重要影响。 (C)2016 Elsevier B.V.保留所有权利。

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