Stainless steel weld metal enhanced with carbon nanotubes

被引:0
|
作者
D. J. A. Borges
D. C. S. Cardoso
E. M. Braga
A. A. F. Castro
M. A. L. Dos Reis
C. R. L. Loayza
机构
[1] Universidade Federal do Pará,Programa de Pós
[2] Universidade Federal do Pará,Graduação em Engenharia Mecânica (PPGEM/UFPA)
[3] Universidade Federal do Pará,Programa de Pós
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This paper aims to establish the most indicated route to manufacture a nanostructured powder composed of 5 wt% Multi-walled Carbon Nanotubes and 304LSS powder. Four specimens were prepared using Mechanical Alloying and Chemical Treatment (CT) with Hydrogen Peroxide (H2O2\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$${\mathrm{H}}_{2}{\mathrm{O}}_{2}$$\end{document}) as the main processes. A thermal treatment post-processing was used in half of the samples to remove the remaining amorphous carbon and to evaluate its effects. Regarding the powder analysis, attachment, amorphous carbon degree, crystallinity, and doping of the CNT throughout the metal matrix were investigated. The nanostructured powders were then inserted as a core in a 304LSS tubular rod to perform the arc welding process. The CT route eliminated the amorphous carbon and generated more refiner grains, which provided a cross-section hardness gain of more than 40% regarding the 304LSS joint. In summary, the CT route, combined with the GTAW process, provided a new method for nanocomposite manufacturing by combining shorter preparation steps, obtaining an improvement in the microstructural and hardness performance.
引用
收藏
相关论文
共 50 条
  • [21] Stainless steel weld metal designed to mitigate residual stresses
    Shirzadi, A. A.
    Bhadeshia, H. K. D. H.
    Karlsson, L.
    Withers, P. J.
    SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2009, 14 (06) : 559 - 565
  • [22] Formation of the deformation twinning in austenitic stainless steel weld metal
    Pan, Chunxu
    Chen, Bingquan
    Journal of Materials Science Letters, 1995, 14 (24): : 1798 - 1800
  • [23] MICROCRACKING IN FULLY AUSTENITIC STAINLESS-STEEL WELD METAL
    GOOCH, TG
    HONEYCOMBE, J
    METAL CONSTRUCTION, 1975, 7 (03): : 146 - 148
  • [24] FERRITE CONTROL IN DUPLEX STAINLESS STEEL WELD METAL.
    Kotecki, D.J.
    Welding Journal (Miami, Fla), 1986, 65 (10):
  • [25] NITRIDE PRECIPITATION IN DUPLEX STAINLESS-STEEL WELD METAL
    KOKAWA, H
    TSORY, E
    NORTH, TH
    ISIJ INTERNATIONAL, 1995, 35 (10) : 1277 - 1283
  • [26] FERRITE CONTROL IN DUPLEX STAINLESS-STEEL WELD METAL
    KOTECKI, DJ
    WELDING JOURNAL, 1986, 65 (10) : S273 - S278
  • [27] Effect of nitrogen on σ transformation in duplex stainless steel weld metal
    Sato, YS
    Kokawa, H
    Kuwana, T
    SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 1999, 4 (01) : 41 - 49
  • [28] EFFECT OF MANGANESE ON STAINLESS STEEL WELD METAL FERRITE.
    Szumachowski, E.R.
    Kotecki, D.J.
    Welding Journal (Miami, Fla), 1984, 63 (05):
  • [29] Analysis of solidification process on austenitic stainless steel weld metal using synchrotron radiation-Study of solidification structure on austenitic stainless steel weld metal
    Osuki, Takahiro
    Yonemura, Mitsuharu
    Ogawa, Kazuhiro
    Konizo, Yu-Ichi
    Terasakio, Hidenori
    Yosetsu Gakkai Ronbunshu/Quarterly Journal of the Japan Welding Society, 2007, 25 (01): : 215 - 223
  • [30] Microstructure and corrosion characterization of weld metal in stainless steel and low carbon steel joint under different heat input
    Huang, Yanqin
    Huang, Jankang
    Zhang, Jianxiao
    Yu, Xiaoquan
    Li, Qi
    Wang, Zhen
    Fan, Ding
    MATERIALS TODAY COMMUNICATIONS, 2021, 29