无Ni型锆基块体非晶合金在生物模拟体液中的摩擦磨损性能
收稿日期: 2009-11-16
修回日期: 2010-03-17
网络出版日期: 2010-06-11
基金资助
教育部高等学校博士学科点专项基金项目200804870033, 华中科技大学自主创新研究基金项目C2009Z018J和清华大学摩擦学国家重点实验室开放基金项目资助
FRICTION AND WEAR PROPERTIES OF Ni–FREE Zr–BASED BULK METALLIC GLASSES IN SIMULATED BODY FLUID
Received date: 2009-11-16
Revised date: 2010-03-17
Online published: 2010-06-11
Supported by
Supported by Specialized Research Fund for the Doctoral Program of Higher Education (No.200804870033), Huazhong University of Science and Technology Innovation Research Fund (No.C2009Z018J) and The Tribology Science Fund of State Key Laboratory of Tribology
黄彩云 , 谌祺 , 柳林 . 无Ni型锆基块体非晶合金在生物模拟体液中的摩擦磨损性能[J]. 金属学报, 2010 , 46(6) : 681 -686 . DOI: 10.3724/SP.J.1037.2009.00762
In the last decade, bulk metallic glasses (BMGs) emerge as a new class of metallic materials with disordered atomic structure. Especially, Zr–based BMGs have attracted an increasing attention due to their distinct properties including ultrahigh strength, high elastic strain limit, relatively low Young’s modulus (50—100 GPa) and easy forming ability in viscous state. In addition, Zr–based BMGs displayed a superior corrosion resistance in artificial body fluids and a satisfactory biocompatibility. The combination of these unique properties makes them extremely promising for biomedical applications. The most promising applications for the BMGs are in dentistry and orthopaedics due to their mechanical superiority, where friction and wear properties are clinically important for the performance of the implants in the body. In the present study, a Ni–free BMG plate of Zr60Cu19Fe5Al10Ti6 with dimensions of 70 mm×12 mm×1.5 mm was successfully prepared by water–cooled copper mold casting. The friction and wear characteristics of the BMG under sliding in dry air, distilled water and phosphate buffered saline (PBS) have been investigated on a SRV friction and wear tester in a ball–on–plate contact configuration where the upper ball in motion was made of zirconia with 10 mm diameter and the lower stationary plate was made of the BMG. Ti6Al4V alloy was also tested under the same condition for comparison. The wear depth was investigated by a surface profiler and the wear volume was also calculated. The surface morphologes and the component of wear debris were examined by SEM and EDS Compared witte Ti alloy, the BMG exhibits much less volume loss in the PBS solution, demonstrating that the BMG has a better wear rsistance than the Ti alloy, though he former has a larger friction cefficient. The wear mechanism of thBMG is dominated by the corrosion wear with oxidation of the surface and fatigue flake mechanism.
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