期刊文献+

Effect of Heat Treatment on Structure and Wear Resistance of High Chromium Cast Steel Containing Boron 被引量:8

Effect of Heat Treatment on Structure and Wear Resistance of High Chromium Cast Steel Containing Boron
原文传递
导出
摘要 The microstructure, mechanical properties and wear resistance of high chromium cast steel containing boron after different heat treatments were studied by means of the optical microscopy (OM), the scanning electron microscopy (SEM), X-ray diffraction (XRD), hardness, impact toughness, tensile and pin-on-disc abrasion tests. The results show that as cast microstructures of boron-free high chromium steel consist of martensite and a few (Cr, Fe)_7C_3 carbide, and the macro-hardness of boron-free high chromium steel is 55-57 HRC. After 0.5 mass% B was added into high chromium cast steel, as-cast structure transforms into eutectic (Fe, Cr)2B, (Cr, Fe)7 (C, B)a and martensite, and the macro-hardness reaches 58-60 HRC. High temperature quenching leads to the disconnection and isolated distribution of boride, and there are many (Cr,Fe)_23 (C,B)_6 precipitated phases in the quenching structure. Quenching from 1050 ℃, high chromium steel obtained the highest hardness, and the hardness of high chromium cast steel containing boron is higher than that of boron-free high chromium steel. The change of quenching temperature has no obvious effect on impact toughness of high chromium steel, and the increase of quenching temperature leads to tensile strength having an increasing tendency. At the same quenching temperature, the wear resistance of high chromium cast steel containing boron is more excellent than that of boron-free high chromium steel. High chromium cast steel guide containing boron has good performance while using in steel bar mill. The microstructure, mechanical properties and wear resistance of high chromium cast steel containing boron after different heat treatments were studied by means of the optical microscopy (OM), the scanning electron microscopy (SEM), X-ray diffraction (XRD), hardness, impact toughness, tensile and pin-on-disc abrasion tests. The results show that as cast microstructures of boron-free high chromium steel consist of martensite and a few (Cr, Fe)_7C_3 carbide, and the macro-hardness of boron-free high chromium steel is 55-57 HRC. After 0.5 mass% B was added into high chromium cast steel, as-cast structure transforms into eutectic (Fe, Cr)2B, (Cr, Fe)7 (C, B)a and martensite, and the macro-hardness reaches 58-60 HRC. High temperature quenching leads to the disconnection and isolated distribution of boride, and there are many (Cr,Fe)_23 (C,B)_6 precipitated phases in the quenching structure. Quenching from 1050 ℃, high chromium steel obtained the highest hardness, and the hardness of high chromium cast steel containing boron is higher than that of boron-free high chromium steel. The change of quenching temperature has no obvious effect on impact toughness of high chromium steel, and the increase of quenching temperature leads to tensile strength having an increasing tendency. At the same quenching temperature, the wear resistance of high chromium cast steel containing boron is more excellent than that of boron-free high chromium steel. High chromium cast steel guide containing boron has good performance while using in steel bar mill.
出处 《Journal of Iron and Steel Research(International)》 SCIE EI CAS CSCD 2014年第5期532-538,共7页 钢铁研究学报(英文版)
基金 Item Sponsored by National Natural Science Foundation of China(51274016) Natural Science Foundation of Beijing of China(2142009) Plan Item of Beijing Education Committee of China(KM201310005003)
关键词 high chromium cast steel boron alloying microstructure mechanical property wear resistance high chromium cast steel boron alloying microstructure, mechanical property wear resistance
  • 相关文献

参考文献19

  • 1M. Filipovic, Z. Kamberovic, M. Korac, Mater. Trans. 52 (2011) 386-390.
  • 2K. Bouhamla, A. Hadji, H. Maouche, H. Merradi, Rev. Metall. 108 (2011) 83-88.
  • 3Z. H. Huang, J. D. Xing, Y. M. Gao, X. H. Zhi, Int. J. Mater. Res. 103 (2012) 609-612.
  • 4S. Inthidech, Y. Matsubara, Mater. Trans. 49 (2008) 2322- 2330.
  • 5A.E. Karantzalis, A. Lekatou, H. Mavros, J. Mater. Eng. Perform. 18 (2009) 174-181.
  • 6Y. H. Qu, J. D. Xing, X. H. Zhi, J. Y. Peng, H. G. Fu, Mater. Lett. 62 (2008) 3024-3027.
  • 7E. J. Guo, L. H. Wang, L.P. Wang, Y.C. Huang, Rare Metals 18 (2009) 606-611.
  • 8R. Razavinejad, S. Firoozi, S. M. H. Mirbagheri, Steel Res. Int. 83 (2012) 861-869.
  • 9O. N. Dogan, J.A. Hawk, J. H. Tylczak, Wear 250-251 (2001) 462-469.
  • 10L. M. Chang, J. H. Liu, S.X. Yu, Y. Chen, B. Liu, J. Iron Steel Res. 14 (2002) No. 6, 45-49.

同被引文献88

引证文献8

二级引证文献24

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