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Nano-Mechanical Behavior and Nano-Tribological Properties of 316 Stainless Steel
作者姓名:LUO  Yong  GE  Shi-rong
作者单位:[1]School of Mechatronics Engineering, China University of Mining & Technology, Xuzhou, Jiangsu 221008, China [2]School of Materials Science and Engineering, China University of Mining & Technology, Xuzhou, Jiangsu 221008, China
摘    要:The microstructure and nano-tribological properties of 316 austenitic stainless steel have been investigated by using the in situ nano-mechanical testing system Tribolndenter, in which six different normal forces were chosen to make a scratch and indentation. The results show that the contact depth of the indentation increases with the normal force and material is piled up on the edge of the indentation as plastic distortion. The stable nano-hardness and the reduced modulus of 316 austenitic stainless steel are approximately 6 GPa and 160 GPa, respectively. The friction coefficients of 316 stainless steel with conic-type diamond tip have a typical value of about 0.13, 0.15, 0.17, 0.19, 0.22 and 0.25 when the normal forces are kept at 500 μN, 1000 μN, 1500 μN, 2000 μN, 2500 μN and 3000 μN, revealing an increasing trend with the normal forces. The increase of the friction coefficient in the unloading segment may result from the adhesion force caused by the material piled up.

关 键 词:纳米刻痕  不锈钢  生物材料  摩擦性能  磨损
收稿时间:2005-12-11
修稿时间:2006-01-14

Nano-Mechanical Behavior and Nano-Tribological Properties of 316 Stainless Steel
LUO Yong GE Shi-rong.Nano-Mechanical Behavior and Nano-Tribological Properties of 316 Stainless Steel[J].Journal of China University of Mining and Technology,2006,16(3):249-253.
Authors:LUO Yong  GE Shi-rong
Abstract:The microstructure and nano-tribological properties of 316 austenitic stainless steel have been investigated by using the in situ nano-mechanical testing system TriboIndenter, in which six different normal forces were chosen to make a scratch and indentation. The results show that the contact depth of the indentation increases with the normal force and material is piled up on the edge of the indentation as plastic distortion. The stable nano-hardness and the reduced modulus of 316 austenitic stainless steel are approximately 6 GPa and 160 GPa, respectively. The friction coefficients of 316 stainless steel with conic-type diamond tip have a typical value of about 0.13, 0.15, 0.17, 0.19, 0.22 and 0.25 when the normal forces are kept at 500 μN, 1000 μN, 1500 μN, 2000 μN, 2500 μN and 3000 μN, revealing an increasing trend with the normal forces. The increase of the friction coefficient in the unloading segment may result from the adhesion force caused by the material piled up.
Keywords:nano-scratch  nano-indentation  316 stainless steel  biomaterial  friction  wear
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