Investigation on Formation Mechanism of Nano-Gradient Structure in Dry Sliding Wear of Martensite Steel

被引:0
|
作者
Gao Q. [1 ]
Li S. [1 ]
Su Y. [1 ]
机构
[1] School of Mechanical Engineerying and Mechanics, Ningbo University, Ningbo, 315211, Zhejiang
来源
Mocaxue Xuebao/Tribology | 2019年 / 39卷 / 06期
基金
中国国家自然科学基金;
关键词
Dry sliding wear; Gradient structure; Martensitic steel; Nano-laminated structure; Wear mechanism;
D O I
10.16078/j.tribology.2019124
中图分类号
学科分类号
摘要
Dry sliding wear test was carried out on a martensitic steel using a SFT-2M pin-on-disk friction tester. The microstructure after sliding wear was characterized by scanning electron microscope (SEM), transmission electron microscope (TEM) and microhardness tester. The results show that microstructural change was controlled by different wear mechanisms at both high and low contact loads. At a relatively lower load, martensite lath became bend under the mechanism of abrasive wear, whereas it formed a gradient structure at the mechanism of adhesive wear at the higher load. As a result of sliding wear-induced plastic deformation, high dislocation density of geometrically necessary boundaries (GNBs) and incidental dislocation boundaries (IDBs) was formed. This led to the formation of laminated structure. The lamellar spacing was greatly reduced and grains were partitioned into smaller grains with increasing number of GNBs and IDBs. Eventually, nano-laminated structure was generated. © 2019, Science Press. All right reserved.
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页码:698 / 705
页数:7
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共 28 条
  • [1] Lu K., Gradient nanostructured materials, Acta Metallurgica Sinica, 51, 1, pp. 1-10, (2015)
  • [2] Liu X.C., Zhang H.W., Lu K., Formation of nano-laminated structure in nickel by means of surface mechanical grinding treatment, Acta Materialia, 96, pp. 24-36, (2015)
  • [3] Liu D., Research on microstructural evolution and thermal stability in ultrafine-grained pure titanium processed by high-pressure torsion, (2015)
  • [4] Zhan M., Zhang W., Zhang D., Production of Mg-Al-Zn magnesium alloy sheets with ultrafine-grain microstructure by accumulative roll-bonding, Transactions of Nonferrous Metals Society of China, 21, 5, pp. 991-997, (2011)
  • [5] Murayama M., Horita Z., Hono K., Microstructure of two-phase Al-1.7 at% Cu alloy deformed by equal-channel angular pressing, Acta Materialia, 49, 1, pp. 21-29, (2001)
  • [6] Zhao X., Hu Z., Chen H., Et al., Research and development prospects of ultrafine-grained materials fabricated by equal channel angular pressing, Materials Review, 22, pp. 2-4, (2008)
  • [7] Li N., Xia W., Zhao J., Et al., Lubricated fretting wear of gradient ultrafine-grained copper induced by burnishing, Tribology, 34, 1, pp. 20-27, (2014)
  • [8] Sun H.Q., Shi Y.N., Zhang M.X., Et al., Plastic strain-induced grain refinement in the nanometer scale in a Mg alloy, Acta Materialia, 55, 3, pp. 975-982, (2007)
  • [9] Singh J.B., Wen J.G., Bellon P., Nanoscale characterization of the transfer layer formed during dry sliding of Cu-15 wt. % Ni-8 wt. % Sn bronze alloy, Acta Materialia, 56, 13, pp. 3053-3064, (2008)
  • [10] Meng-Burany X., Perry T.A., Sachdev A.K., Et al., Subsurface sliding wear damage characterization in Al-Si alloys using focused ion beam and cross-sectional TEM techniques, Wear, 270, 3, pp. 152-162, (2011)