• 首页 | 期刊简介 | 编委会 | 投稿须知 | 出版道德规范 | 下载专区 | English
王聪,刘永杰*,杨昆,王清远*.模拟体液环境下植入用Ti6Al7Nb合金的高周疲劳行为[J].实验力学,2016,31(6):723~729
模拟体液环境下植入用Ti6Al7Nb合金的高周疲劳行为
On the High Cycle Fatigue Behavior of Implant Ti6Al7Nb Alloy in Simulated Body Fluid
投稿时间:2016-08-15  修订日期:2016-10-11
DOI:10.7520/1001-4888-16-304
中文关键词:  植入用Ti6Al7Nb  高周疲劳  模拟体液  S-N曲线  疲劳裂纹萌生
英文关键词:implanted medical Ti6Al7Nb  high cycle fatigue  simulated body fluid  S-N curve  fatigue crack initiation
基金项目:国家自然科学基金(11327801、11302142)和四川大学青年教师科研启动基金(2015SCU11026)
作者单位
王聪 四川大学 空天科学与工程学院 成都 610065 
刘永杰* 四川大学 破坏力学与工程防灾减灾四川省重点实验室 成都 610065 
杨昆 四川大学 破坏力学与工程防灾减灾四川省重点实验室 成都 610065 
王清远* 1.四川大学 空天科学与工程学院 成都 610065 2. 四川大学 破坏力学与工程防灾减灾四川省重点实验室 成都 610065 
摘要点击次数: 1200
全文下载次数: 489
中文摘要:
      Ti6Al7Nb合金作为一种新型的医用植入材料,在临床上已得到了推广应用,其在人体内长期服役情况下的疲劳行为值得关注。本文采用超声加速振动疲劳实验结合扫描电子显微镜微观观察,研究了植入用Ti6Al7Nb合金在空气和模拟体液环境下的高周疲劳行为。结果显示,Ti6Al7Nb合金不存在传统意义上的疲劳极限,其疲劳强度随着循环周次的增大而减小;Ti6Al7Nb合金在模拟体液环境中的疲劳性能远低于空气环境中,在108周次下的疲劳强度比空气环境中低23%;Ti6Al7Nb合金在空气和模拟体液中的疲劳性能都低于Ti6Al4V合金。断口显微观察发现,疲劳裂纹均萌生于试样表面。模拟体液会导致材料脆化,促进表面疲劳裂纹的萌生,从而降低材料的疲劳强度。
英文摘要:
      As a new type of implanted medical material, Ti6Al7Nb alloy has been popularized and applied in clinical practice, and its fatigue behavior in long-term service in human body deserves more attention. In this paper, high cycle fatigue behavior of implanted medical Ti6Al7Nb alloy in both air and simulated body fluid environments was studied by means of ultrasonic accelerated vibration fatigue experiment and microscopic observation of scanning electron microscope. Results demonstrate that Ti6Al7Nb alloy does not have conventional fatigue limit, and its fatigue strength decreases with the increase of cycle times. The fatigue strength of Ti6Al7Nb alloy in simulated body fluid environment is much lower than that in air. Its fatigue strength in simulated body fluid environment at 108 cycles is lower than that in air environment up to 23%. The fatigue performance of Ti6Al7Nb alloy in both air and simulated body fluid environments are lower than that of Ti6Al4V alloy. Microscopic observation of fracture surface reveals that all faigue cracks initiate on sample surface. Simulated body fluid may lead to the material embrittlement and promote the initiation of fatigue crack, which reduces material fatigue strength.
查看全文  下载PDF阅读器
关闭

网站版权:《实验力学》编辑部
您是本站第 65668120 位访问者,今日一共访问642次,当前在线人数: 0
技术支持:本系统由北京勤云科技发展有限公司设计