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Rolling contact wear of hybrid ceramic bearings with refrigerant lubrication

机译:混合陶瓷轴承与制冷剂润滑的滚动接触磨损

摘要

Silicon nitride Si3N4 bearing elements have shown practical advantages over traditional steel elements due to their mechanical and physical properties. Leading technology and demands for high efficiency have caused loading bearing contacts in all kinds of machinery to be subjected to high speeds, high contact stresses and severe conditions of lubrication. In addition the introduction of a new generation of hydrocarbon refrigerants in various systems, where these rolling contact silicon nitride bearing elements are employed raises further demands to evaluate the rolling contact fatigue performance of these elements with refrigerant lubrication. Obtaining material wear properties of these refrigerants used in mechanical applications is difficult due to high saturation pressure of the refrigerants. It is important to investigate the influence of these refrigerants as lubricants on the rolling contact fatigue performance of ceramic bearing elements. This research responds to the need for bench testing of rolling contacts using the new generation refrigerants as lubricants. A novel pressurised chamber was designed to achieve a liquid state of the refrigerant as fluid for the rolling contact fatigue experiments. A high-speed rotary Tribometer was used for rolling contact fatigue tests. Experimental study of the influence of the liquid refrigerant lubrication on rolling contact wear of the silicon nitride/steel elements is presented. Investigations of the lubricated contact of silicon nitride rolling elements using the pressurised chamber reveal that wear rate is affected by the nature and geometry ofthe induced defect. A residual stress survey was also performed on failed ceramic elements. Analysing the relationship of residual stress with rolling contact fatigue is an important study which will provide guidelines on the design process and manufacturing of these elements. The residual stress field analysis shows that residual stresses are relieved due to sub-surface damage and are inversely related to stress cycles. Maximum tensile stresses at the edges of the contact path cause a weaker residual stress field at the sub-surface crack front.
机译:氮化硅Si3N4轴承元件由于其机械和物理特性,已显示出优于传统钢元件的实际优势。领先的技术和对高效率的要求已导致各种机械中的轴承接触件承受高速,高接触应力和严酷的润滑条件。另外,在采用这些滚动接触氮化硅轴承元件的各种系统中引入新一代的碳氢化合物制冷剂提出了进一步的要求,以评估在制冷剂润滑下这些元件的滚动接触疲劳性能。由于制冷剂的高饱和压力,难以获得用于机械应用的这些制冷剂的材料磨损特性。重要的是要研究这些制冷剂作为润滑剂对陶瓷轴承元件滚动接触疲劳性能的影响。这项研究满足了使用新一代制冷剂作为润滑剂对滚动接触进行台架试验的需求。设计了一种新型的加压室,以实现制冷剂的液态作为滚动接触疲劳实验的流体。高速旋转摩擦计用于滚动接触疲劳测试。进行了液体制冷剂润滑对氮化硅/钢元件滚动接触磨损影响的实验研究。使用加压室对氮化硅滚动元件进行润滑接触的研究表明,磨损率受所诱发缺陷的性质和几何形状的影响。还对失效的陶瓷元件进行了残余应力调查。分析残余应力与滚动接触疲劳的关系是一项重要的研究,它将为这些元件的设计过程和制造提供指导。残余应力场分析表明,残余应力由于地下破坏而得到缓解,并且与应力循环成反比。接触路径边缘处的最大拉伸应力会导致次表面裂纹前沿处的残余应力场变弱。

著录项

  • 作者

    Khan Zulfiqar Ahmad;

  • 作者单位
  • 年度 2006
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
  • 中图分类

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