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Study on torsional fretting wear behavior of a ball-on-socket contact configuration simulating an artificial cervical disk

机译:模拟人造颈椎盘的球窝接触结构的扭转微动磨损行为研究

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摘要

A ball-on-socket contact configuration was designed to simulate an artificial cervical disk in structure. UHMWPE (ultra high molecular weight polyethylene) hot pressed by powders and Ti6Al4V alloy were selected as the material combination of ball and socket. The socket surface was coated by a ~500 nm C-DLC (carbon ion implantation-diamond like carbon) mixed layer to improve its surface nano hardness and wear resistance. The torsional fretting wear behavior of the ball-on-socket model was tested at different angular displacements under 25% bovine serum lubrication with an axial force of 100 N to obtain more realistic results with that in vivo. The fretting running regimes and wear damage characteristics as well as wear mechanisms for both ball and socket were studied based on 2D (two dimension) optical microscope, SEM (scanning electron microscope) and 3D (three dimension) profiles. With the increase of angular displacement amplitude from 1 ° to 7°, three types of T-θ (Torsional torque-angular displacement amplitude) curves (i.e., linear, elliptical and parallelogram loops) corresponding to running regimes of PSR (partial slip regime), MR (mixed regime) and SR (slip regime) were observed and analyzed. Both the central region and the edge zone of the ball and socket were damaged. The worn surfaces were characterized by wear scratches and wear debris. In addition, more severe wear damage and more wear debris appeared on the central region of the socket at higher angular displacement amplitude. The dominant damage mechanism was a mix of surface scratch, adhesive wear and abrasive wear for the UHMWPE ball while that for the coated socket was abrasive wear by PE particles and some polishing and rolling process on the raised overgrown DLC grains. The frictional kinetic behavior, wear type, damage region and damage mechanism for the ball-on-socket model revealed significant differences with those of a ball-on-flat contact while showing better consistency with that of in vitro cervical prosthesis simulations according to the literature.
机译:设计了球上接触结构,以模拟人造颈椎盘的结构。采用粉末和Ti6Al4V合金热压的UHMWPE(超高分子量聚乙烯)作为球窝的材料组合。插座表面涂有〜500 nm C-DLC(碳离子注入-类金刚石碳)混合层,以提高其表面纳米硬度和耐磨性。在25%的牛血清润滑和100 N的轴向力下,在不同的角位移下测试了球窝模型的扭转微动磨损行为,从而在体内获得了更实际的结果。基于2D(二维)光学显微镜,SEM(扫描电子显微镜)和3D(3D)轮廓,研究了球和窝的微动运行方式,磨损损伤特性以及磨损机理。随着角位移幅度从1°增加到7°,对应于PSR的运行状态(部分滑移状态)的三种类型的T-θ(扭转扭矩-角位移幅度)曲线(即线性,椭圆形和平行四边形环)观察和分析MR(混合方案)和SR(滑移方案)。球窝的中心区域和边缘区域都损坏了。磨损的表面具有磨损刮痕和碎屑的特征。另外,在较高的角位移幅度下,插座的中心区域出现了更严重的磨损损坏和更多的磨损碎屑。 UHMWPE球的主要损坏机理是表面刮擦,粘着磨损和磨料磨损,而带涂层承窝的磨损机理是PE颗粒的磨料磨损以及凸起的长满的DLC晶粒的某些抛光和滚轧工艺。根据文献,球窝模型的摩擦动力学行为,磨损类型,损伤区域和损伤机理显示出与平面球接触的显着差异,同时与体外颈椎假体模拟显示出更好的一致性。 。

著录项

  • 来源
    《Materials science & engineering》 |2015年第10期|22-33|共12页
  • 作者单位

    State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China ,Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China;

    School of Material Science and Engineering, China University of Mining and Technology, Xuzhou 221116, China;

    Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China ,Biomechanics and Biotechnology Lab, Research Institute of Tsinghua University in Shenzhen, Shenzhen 518057, China;

    School of Material Science and Engineering, China University of Mining and Technology, Xuzhou 221116, China;

    State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China ,Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China;

    Biomechanics and Biotechnology Lab, Research Institute of Tsinghua University in Shenzhen, Shenzhen 518057, China,State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Torsional fretting wear; Ball-on-socket; Artificial cervical disk; In vitro simulation; Surface modification;

    机译:扭动微动磨损;球上球人工颈椎间盘体外模拟;表面修饰;

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