...
首页> 外文期刊>Surface & Coatings Technology >Improvement of the fretting fatigue and fretting wear of Ti6A14V by duplex surface modification
【24h】

Improvement of the fretting fatigue and fretting wear of Ti6A14V by duplex surface modification

机译:通过双面表面改性改善Ti6A14V的微动疲劳和微动磨损

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Ion-beam-enhanced deposition (IBED) was investigated as a way to increase the fretting fatigue resistance of Ti6Al4V. Both hard CrN coatings with good toughness and soft CuNiIn coatings of low friction have been applied on the base material, and shot peening combined with coatings has also been studied in order to improve the fretting fatigue (FF) resistance. Since these IBED coatings exhibit a good bonding strength even after shot peening, they do not spall off during fretting fatigue and fretting wear tests. When the contact stress is not severe and gross slip contact conditions are operative, both CrN and CuNiIn show a better fretting fatigue resistance than that of shot-peened Ti6Al4V. As the contact stress concentration of fretting fatigue is high, coatings combined with shot peening achieved high levels. The fretting fatigue lifetime is largely dependent on the sliding contact conditions such as contact geometry, sliding distance and contacting materials. Under partial slip, cracks initiate at an early stage limiting the fretting fatigue lifetime, while under gross slip, a much higher fretting fatigue limit is achieved. Compressive residual stresses are particularly important to improve the fretting fatigue lifetime, when -crack propagation is predominant during the failure progress.
机译:研究了离子束增强沉积(IBED)作为增加Ti6Al4V抗微动疲劳性的方法。具有良好韧性的硬质CrN涂层和低摩擦性的软质CuNiIn涂层均已应用于基础材料,并且还研究了喷丸与涂层的结合以提高耐微动疲劳(FF)的性能。由于这些IBED涂层即使在喷丸处理后也表现出良好的粘结强度,因此在微动疲劳和微动磨损测试中不会脱落。当接触应力不严重且可在总体滑动接触条件下工作时,CrN和CuNiIn均比喷丸Ti6Al4V表现出更好的抗微动疲劳性。由于微动疲劳的接触应力集中度很高,因此结合喷丸处理的涂层达到了很高的水平。微动疲劳寿命在很大程度上取决于滑动接触条件,例如接触几何形状,滑动距离和接触材料。在部分滑移下,裂纹在早期开始,从而限制了微动疲劳寿命,而在大滑移下,则达到了更高的微动疲劳极限。当裂纹在裂纹发展过程中占主导地位时,压缩残余应力对于延长微动疲劳寿命特别重要。

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