首页> 外文期刊>Coatings >On Friction Reduction by Surface Modifications in the TEHL Cam/Tappet-Contact-Experimental and Numerical Studies
【24h】

On Friction Reduction by Surface Modifications in the TEHL Cam/Tappet-Contact-Experimental and Numerical Studies

机译:TEHL Cam / Tappet-Contact的表面改性减少摩擦的实验和数值研究

获取原文
           

摘要

The overall energy efficiency of machine elements and engine components could be improved by using new technologies such as surface modifications. In the literature, surface engineering approaches like micro-texturing and the application of diamond-like carbon (DLC) coatings were frequently studied separately, with focus on a specific model contact and lubrication conditions. The contribution of the current study is to elucidate and compare the underlying friction reduction mechanisms of the aforementioned surface modifications in an application-orientated manner. The study applied the operating conditions of the thermo-elastohydrodynamically lubricated (TEHL) cam/tappet-contact of the valve train. Therefore, tribological cam/bucket tappet component Stribeck tests were used to determine the friction behavior of ultrashort pulse laser fabricated microtextures and PVD/PECVD deposited silicon-doped amorphous carbon coatings. Moreover, advanced surface characterization methods, as well as numerical TEHL tribo-simulations, were utilized to explore the mechanisms responsible for the observed tribological effects. The results showed that the DLC-coating could reduce the solid and fluid friction force in a wide range of lubrication regimes. Conversely, micro-texturing may reduce solid friction while increasing the fraction of fluid friction.
机译:可以通过使用诸如表面改性之类的新技术来提高机器元件和发动机组件的整体能效。在文献中,经常分别研究表面工程方法(如微纹理化和类金刚石碳(DLC)涂层的应用),重点是特定的模型接触和润滑条件。当前研究的贡献在于以面向应用的方式阐明和比较上述表面改性的潜在摩擦减小机理。该研究应用了气门机构的热弹性流体动力润滑(TEHL)凸轮/ tappet接触器的工作条件。因此,使用摩擦学凸轮/铲斗挺杆部件的Stribeck试验确定超短脉冲激光制造的微织构以及PVD / PECVD沉积的硅掺杂非晶碳涂层的摩擦性能。此外,先进的表面表征方法以及TEHL数值摩擦仿真技术被用于探索引起观察到的摩擦学效应的机理。结果表明,DLC涂层可以在多种润滑方式下降低固体和流体的摩擦力。相反,微纹理化可以减少固体摩擦,同时增加流体摩擦的比例。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
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