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类金刚石碳/镍-类金刚石碳薄膜混合结构与力学性能的分子动力学模拟

Molecular dynamics simulation of hybrid structure and mechanical properties of DLC/Ni-DLC thin films.

作者信息

Xiaoqiang Wang, Xu Zhang, Xiangyi Hu, Yingjian Tian, Haojie Wang, Haoran Fu, Huimin Li

机构信息

School of Mechatronics Engineering, Henan University of Science and Technology, Luoyang, 471003, China.

出版信息

Sci Rep. 2024 Aug 14;14(1):18885. doi: 10.1038/s41598-024-69759-9.

Abstract

To improve the mechanical properties of the rolling body surface of wind power bearings, extend its service life. In this study, a large-scale molecular/atomic parallel processor LAMMPS was introduced, and then the process of magnetron sputtering technology in the preparation of DLC/Ni-DLC thin films on the 42CrMo substrate material was simulated. The effects of deposition parameters such as sputtering temperature, sputtering voltage, deposition air pressure, and Ni doping on the residual stress, film base bonding, and organizational structure of the thin films were investigated. The simulation results show that for different deposition parameters, the atomic tensile and compressive stresses existed simultaneously in DLC/Ni-DLC films, and the residual stresses were between - 0.504-5.003 Gpa and - 2.11-0.065 Gpa, respectively; the doping of Ni effectively improved the distribution of hybrid structure and the mechanical properties of the DLC films, and the ratio of the sp3 hybrid structure in the film organization was about 2.56 times higher than that of the non-doped films, and the membrane base bonding force was increased by 32.78% and the residual stress is reduced and transitioned from tensile stress to compressive stress. In addition, it was observed that the thickness of the mixed layer of DLC/Ni-DLC films with the substrate was not increased after the thickness of the mixed layer was extended to about 2 nm. Nickel doping and reasonable control of deposition parameters help to reduce the residual stress and improve the bonding strength of the film by changing the organizational structure of the film, which provides an important theoretical and scientific basis for the preparation of low-stress, high-performance and long-life DLC films and the wide application of rolling bodies for wind power bearings under complex working conditions.

摘要

为提高风电轴承滚动体表面的力学性能,延长其使用寿命。本研究引入大规模分子/原子并行处理器LAMMPS,对磁控溅射技术在42CrMo基体材料上制备DLC/Ni-DLC薄膜的过程进行了模拟。研究了溅射温度、溅射电压、沉积气压和Ni掺杂等沉积参数对薄膜残余应力、膜基结合力和组织结构的影响。模拟结果表明,对于不同的沉积参数,DLC/Ni-DLC薄膜中同时存在原子拉伸应力和压缩应力,残余应力分别在-0.504-5.003 GPa和-2.11-0.065 GPa之间;Ni的掺杂有效改善了DLC薄膜的混合结构分布和力学性能,薄膜组织中sp3混合结构的比例比未掺杂薄膜高出约2.56倍,膜基结合力提高了32.78%,残余应力降低并由拉伸应力转变为压缩应力。此外,观察到DLC/Ni-DLC薄膜与基体的混合层厚度扩展到约2 nm后不再增加。Ni掺杂和合理控制沉积参数有助于通过改变薄膜组织结构来降低残余应力、提高薄膜结合强度,为制备低应力、高性能、长寿命DLC薄膜以及风电轴承滚动体在复杂工况下的广泛应用提供了重要的理论和科学依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ba0/11324779/223edc20709a/41598_2024_69759_Fig1_HTML.jpg

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