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Synergistic lubrication effect of Al2O3 and MoS2 nanoparticles confined between iron surfaces: a molecular dynamics study

机译:Al2O3和MOS2纳米颗粒在铁表面之间限制的协同润滑效应:分子动力学研究

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摘要

Nonequilibrium molecular dynamics (NEMD) simulations were performed to investigate the tribology behaviors of Al2O3 and MoS2 nanoparticles confined between iron (Fe) slabs. Results indicated that the combined use of these two nanoparticles yielded the lowest and most stable friction force, normal force, interface temperature and wear rate, which exhibited a significant synergistic lubrication effect. A novel parameter the rolling/sliding motion coefficient (K-rs) was proposed to evaluate the motion pattern of spherical Al2O3. There were 51% rolling + 49% sliding motion when used alone and 91% rolling + 9% sliding in the existence of MoS2. Similarly, about 72.3% of the friction was shared by interlayer sliding of MoS2 monolayers in the presence of Al2O3, which was higher than used alone (54.8%). Then, the diffusion of atoms at the friction interface was explored to reveal the synergistic lubrication mechanism. The tribofilm formed by the diffusion of Fe and S atoms could protect the metal surfaces from further wear. The adsorption of S atoms to Al2O3 nanoparticle could promote its rolling effect and prevent it from embedding into iron matrix. Besides, Al2O3 could also facilitate the separation of MoS2 monolayers to enhance their interlayer sliding effect.
机译:采用非平衡分子动力学(NEMD)模拟方法研究了铁(Fe)片间Al2O3和MoS2纳米颗粒的摩擦学行为。结果表明,这两种纳米颗粒的联合使用产生了最低和最稳定的摩擦力、法向力、界面温度和磨损率,表现出显著的协同润滑效应。提出了一个新的参数滚动/滑动运动系数(K-rs)来评估球形Al2O3的运动模式。单独使用时,有51%的滚动+49%的滑动运动,在MoS2存在时,有91%的滚动+9%的滑动运动。类似地,在Al2O3存在的情况下,MoS2单分子膜的层间滑动分担了约72.3%的摩擦力,这比单独使用时(54.8%)更高。然后,研究了摩擦界面原子的扩散,揭示了协同润滑机理。由Fe和S原子扩散形成的摩擦膜可以保护金属表面免受进一步磨损。S原子在Al2O3纳米粒子上的吸附可以促进其滚动效应,防止其嵌入铁基体中。此外,Al2O3还可以促进MoS2单分子膜的分离,增强其层间滑动效应。

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  • 来源
    《Journal of Materials Science》 |2021年第15期|共15页
  • 作者单位

    Univ Sci &

    Technol Beijing Sch Mat Sci &

    Engn Beijing 100083 Peoples R China;

    Univ Sci &

    Technol Beijing Sch Mat Sci &

    Engn Beijing 100083 Peoples R China;

    Univ Sci &

    Technol Beijing Sch Mat Sci &

    Engn Beijing 100083 Peoples R China;

    Univ Sci &

    Technol Beijing Sch Mat Sci &

    Engn Beijing 100083 Peoples R China;

    Univ Sci &

    Technol Beijing Sch Mat Sci &

    Engn Beijing 100083 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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