期刊文献+

Influence of laser surface remelting on microstructure and degradation mechanism in simulated body fluid of Zn-0.5Zr alloy 被引量:1

Influence of laser surface remelting on microstructure and degradation mechanism in simulated body fluid of Zn-0.5Zr alloy
原文传递
导出
摘要 In this study,the Zn-0.5 wt%Zr(Zn-Zr)alloy was treated by laser surface remelting(LSR),and then the microstructure and degradation mechanism of the remelting layer were investigated and compared with the original as-cast alloy.The results reveal that after LSR,the bulky Zn(22)Zr phase in the original Zn-Zr alloy is dissolved and the coarse equiaxed grains transform into fine dendrites with a secondary dendrite arm space of about 100 nm.During the degradation process in simulated body fluid(SBF),the corrosion products usually concentrate at some certain areas in the original alloy,while the corrosion products distribute uniformly and loosely in the LSR-treated surface.After removing the corrosion products,it was found that the former suffers obvious pitting corrosion and then localized corrosion.The proposed mechanism is that corrosion initiates at grain boundaries and develops into the depth at some locations,and then leads to localized corrosion.For the LSR-treated sample,corrosion initiates at some active sites and propagates in all directions,corrosion takes place in the whole surface with distinctly uniform thickness reduction,while the localized corrosion and peeling of bulky Zn(22)Zr particles were eliminated.The electrochemical results also suggest the uniform corrosion of LSR-treated sample and localized corrosion of original sample.Based on the results,a new approach to regulate the corrosion mode of the biodegradable Zn alloy is proposed. In this study,the Zn-0.5 wt%Zr(Zn-Zr) alloy was treated by laser surface remelting(LSR),and then the microstructure and degradation mechanism of the remelting layer were investigated and compared with the original as-cast alloy.The results reveal that after LSR,the bulky Zn22Zr phase in the original Zn-Zr alloy is dissolved and the coarse equiaxed grains transform into fine dendrites with a secondary dendrite arm space of about 100 nm.During the degradation process in simulated body fluid(SBF),the corrosion products usually concentrate at some certain areas in the original alloy,while the corrosion products distribute uniformly and loosely in the LSR-treated surface.After removing the corrosion products,it was found that the former suffers obvious pitting corrosion and then localized corrosion.The proposed mechanism is that corrosion initiates at grain boundaries and develops into the depth at some locations,and then leads to localized corrosion.For the LSR-treated sample,corrosion initiates at some active sites and propagates in all directions,corrosion takes place in the whole surface with distinctly uniform thickness reduction,while the localized corrosion and peeling of bulky Zn22Zr particles were eliminated.The electrochemical results also suggest the uniform corrosion of LSR-treated sample and localized corrosion of original sample.Based on the results,a new approach to regulate the corrosion mode of the biodegradable Zn alloy is proposed.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2019年第11期2705-2713,共9页 材料科学技术(英文版)
关键词 Biodegradable Zn alloy Laser surface remelting MICROSTRUCTURE Degradation mechanism Biodegradable Zn alloy Laser surface remelting Microstructure Degradation mechanism
  • 相关文献

参考文献1

二级参考文献62

  • 1Y.E Zheng, X.N. Gu, E Witte, Mater. Sci. Eng. R Rep. 77 (2014) 1-34.
  • 2X.N. Gu, Y.E Zheng, Front China 4 (2010) 111-115.
  • 3E Witte, N. Hort, C. Vogt, S. Cohen, K.U. Kainer, R. WiUumeit, E Feyerabend, Curt. Opin. Solid State Mater. Sci. 12 (2008) 63-72.
  • 4M.E Staiger, A.M. Pietak, J. Huadmai, G. Dias, Biomaterials 27 (2006) 1728-1734.
  • 5X. Gu, Y. Zheng, Y. Cheng, S. Zhong, T. Xi, Biomaterials 30 (2009) 484-498.
  • 6T. Kraus, S.E Fischerauer, A.C. H~nzi, P.J. Uggowitzer, J.E L6ffler, A.M. Weinberg, Acta Biomater, 8 (2012) 1230-1238.
  • 7P.K. Bowen, J. Drelich, R.E. Buxbaum, R.M. Rajachar, J. Goldman, Emerg. Mater. Res. 1 (2012) 237-255.
  • 8H. Hermawan, A. Purnama, D. Dube, J. Couet, D. Mantovani, Acta Biomater. 6 (2010) 1852-1860.
  • 9T.. Huang, J. Cheng, Y.E Zheng, Mater. Sci. Eng. C Mater. Biol. Appl. 35 (2014) 43-53.
  • 10W.J. Lin, D.Y. Zhang, G. Zhang, H.T. Sun, H.P. Qi, L.P. Chen, Z.Q. Liu, R.L. Gao, W. Zheng, Mater. Des. 91 (2016) 72-79.

共引文献23

同被引文献13

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部