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Fabrication of Ni34.1Fe27.9B18Si18Nb2 amorphous matrix coating on mild steel by laser processing
  • 期刊名称:China Welding
  • 时间:0
  • 页码:1-6
  • 分类:TG161.99[金属学及工艺—热处理;金属学及工艺—金属学] TM262[电气工程—电工理论与新技术;一般工业技术—材料科学与工程]
  • 作者机构:[1]Shanghai Key Laboratory o(Materials Laser Processing and Modification, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China, [2]State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
  • 相关基金:This research was financially supported by the Ministry of Science and Technology of China (No. 2009DFB50350) and the National Natural Science Foundation of China (No. 50971091).
  • 相关项目:高功率半导体激光熔覆铁基非晶涂层的机理与性能研究
中文摘要:

<正>The microhardness distribution of the diode laser epitaxially deposited IN718 alloy coating was investigated.The Laves concentration in different regions of the coating was measured by binarization processing.The strengthening phase of the coating was characterized by transmission electron microscopy(TEM).The results showed that the microhardness increased along the depth of the coating.Part of Laves dissolved into austenitic matrix during the successive laser deposition.A little amount of strengthening phase was precipitated in the bottom region of the coating.It was attributed to the heat effect from the thermal cycle of successive deposition on the microstructure in the bottom region of the epitaxially deposited coating.

英文摘要:

The microhardness distribution of the diode laser epitaxially deposited IN718 alloy coating was investigated. The Laves concentration in different regions of the coating was measured by binarization processing. The strengthening phase of the coating was characterized by transmission electron microscopy (TEM). The results showed that the microhardness increased along the depth of the coating. Part of Laves dissolved into austenitic matrix during the successive laser deposition, A little amount of strengthening phase was precipitated in the bottom region of the coating. It was attributed to the heat effect from the thermal cycle of successive deposition on the microstructure in the bottom region of the epitaxially deposited coating.

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