Please wait a minute...
Acta Metall Sin  2006, Vol. 42 Issue (2): 181-185     DOI:
Research Articles Current Issue | Archive | Adv Search |
ROOM-TEMPERATURE SLIDING WEAR PROPERTIES OF LASER MELT DEPOSITED Cr13Ni5Si2/γ TERNARY METAL SILICIDE ALLOY
Y.L. Fang;H.M. Wang
北京航空航天大学材料科学与工程学院
Cite this article: 

Y.L. Fang; H.M. Wang. ROOM-TEMPERATURE SLIDING WEAR PROPERTIES OF LASER MELT DEPOSITED Cr13Ni5Si2/γ TERNARY METAL SILICIDE ALLOY. Acta Metall Sin, 2006, 42(2): 181-185 .

Download:  PDF(623KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  A wear resistant metal silicide alloy consisting of Cr13Ni5Si2 ternary metal silicide dendrites and the interdendritic nickel-base solid solution (γ) was designed and fabricated by the laser melting/continuous deposition process. Wear resistance of the Cr13Ni5Si2/γ alloy was evaluated on an MM-200 block-on-wheel dry sliding wear tester at room temperature. Results indicate that the Cr13Ni5Si2/γ alloy has excellent wear resistance and extremely low load-sensitivity of wear under dry sliding wear test conditions.
Key words:  ternary metal silicide      wear      melt deposition      
Received:  30 May 2005     
ZTFLH:  TB331  
  TG113  

URL: 

https://www.ams.org.cn/EN/     OR     https://www.ams.org.cn/EN/Y2006/V42/I2/181

[1] Hawk J A, Alman D E. Mater Sci Eng, 1997; A239-240: 899
[2] Johnson B J, Kennedy F E, Baker I. Wear, 1996; 192: 241
[3] Hawk J A, Alman D E. Wear, 1999; 225-229: 544
[4] Alman D E, Hawk J A, Tylczak J H, Dogan C P, Wilson R D. Wear, 2001; 251: 875
[5] Yang J, La P Q, Liu W M, Xue Q J. Wear, 2004; 257: 104
[6] Jin J H, Stephenson D J. Wear, 1998; 217: 200
[7] Hawk J A, Alman D E. Scr Mater, 1995; 5: 725
[8] Alman D E, Hawk J A. Wear, 2001; 251: 890
[9] Kim J H, Tabaru T, Hirai H, Kitahara A, Hanada S. Scr Mater, 2003; 48: 1439
[10] Zhou J, Guo J T. Mater Sci Eng, 2003; A339: 166
[11] Misra A, Gibala R, Noebe R D. Intermetallica, 2001; 9: 971
[12] Xu H P, Ngan A H W, Duggan B J, Chen Q Z. Mater Lett, 1997; 31: 233
[13] Mishima Y, Kato M, Kimura Y, Hosoda H, Miura S. Intermetallics, 1996; 4: 171
[14] Villars P, Prince A, Okamoto H. Handbook of Ternary Alloys Phase Diagrams. New York: ASM International, 1995: 9143
[15] Tang H B, Fang Y L, Wang H M. Acta Mater, 2004; 52: 1773
[16] Wang H M, Zhang L Y. Chin Pat, No.02121496.4, 2002(王华明,张凌云.中国发明专利,ZL02121496.4,2002)
[17] Zhang L Q, Wang H M. Mater Lett, 2003; 57: 2710
[1] FENG Li, WANG Guiping, MA Kai, YANG Weijie, AN Guosheng, LI Wensheng. Microstructure and Properties of AlCo x CrFeNiCu High-Entropy Alloy Coating Synthesized by Cold Spraying Assisted Induction Remelting[J]. 金属学报, 2023, 59(5): 703-712.
[2] MIAO Junwei, WANG Mingliang, ZHANG Aijun, LU Yiping, WANG Tongmin, LI Tingju. Tribological Properties and Wear Mechanism of AlCr1.3TiNi2 Eutectic High-Entropy Alloy at Elevated Temperature[J]. 金属学报, 2023, 59(2): 267-276.
[3] WANG Haifeng, ZHANG Zhiming, NIU Yunsong, YANG Yange, DONG Zhihong, ZHU Shenglong, YU Liangmin, WANG Fuhui. Effect of Pre-Oxidation on Microstructure and Wear Resistance of Titanium Alloy by Low Temperature Plasma Oxynitriding[J]. 金属学报, 2023, 59(10): 1355-1364.
[4] ZHANG Shihong, HU Kai, LIU Xia, YANG Yang. Corrosion-Erosion Mechanism and Research Prospect of Bare Materials and Protective Coatings for Power Generation Boiler[J]. 金属学报, 2022, 58(3): 272-294.
[5] HAN Ruyang, YANG Gengwei, SUN Xinjun, ZHAO Gang, LIANG Xiaokai, ZHU Xiaoxiang. Austenite Grain Growth Behavior of Vanadium Microalloying Medium Manganese Martensitic Wear-Resistant Steel[J]. 金属学报, 2022, 58(12): 1589-1599.
[6] CUI Hongzhi, JIANG Di. Research Progress of High-Entropy Alloy Coatings[J]. 金属学报, 2022, 58(1): 17-27.
[7] BI Jiazi, LIU Xiaobin, LI Ran, ZHANG Tao. Tribological Properties of Polyalphaolefin (PAO6) Lubricant Modified with Particles Additives of Metallic Glass[J]. 金属学报, 2021, 57(4): 559-566.
[8] LI Xiaoqian, WANG Fuguo, LIANG Aimin. Effect of Spraying Process on Microstructure and Tribological Properties of Ta2O5 In Situ Composite Nanocrystalline Ta-Based Coatings[J]. 金属学报, 2021, 57(2): 237-246.
[9] ZHAO Wanxin, ZHOU Zheng, HUANG Jie, YANG Yange, DU Kaiping, HE Dingyong. Microstructure and Frictional Wear Behavior of FeCrNiMo Alloy Layer Fabricated by Laser Cladding[J]. 金属学报, 2021, 57(10): 1291-1298.
[10] WEI Shizhong, XU Liujie. Review on Research Progress of Steel and Iron Wear-Resistant Materials[J]. 金属学报, 2020, 56(4): 523-538.
[11] SUN Xinjun,LIU Luojin,LIANG Xiaokai,XU Shuai,YONG Qilong. TiC Precipitation Behavior and Its Effect on Abrasion Resistance of High Titanium Wear-Resistant Steel[J]. 金属学报, 2020, 56(4): 661-672.
[12] WU Xiang,ZUO Xiurong,ZHAO Weiwei,WANG Zhongyang. Mechanism of TiN Fracture During the Tensile Process of NM500 Wear-Resistant Steel[J]. 金属学报, 2020, 56(2): 129-136.
[13] XU Shuai, SUN Xinjun, LIANG Xiaokai, LIU Jun, YONG Qilong. Effect of Hot Rolling Deformation on Microstructure and Mechanical Properties of a High-Ti Wear-Resistant Steel[J]. 金属学报, 2020, 56(12): 1581-1591.
[14] ZHANG Yu, LOU Liyan, XU Qinglong, LI Yan, LI Changjiu, LI Chengxin. Microstructure and Wear Resistance of Ni-Based WC Coating by Ultra-High Speed Laser Cladding[J]. 金属学报, 2020, 56(11): 1530-1540.
[15] SONG Qianting, XU Yingkun, XU Jian. Dry-Sliding Wear Behavior of (TiZrNbTa)90Mo10 High-Entropy Alloy Against Al2O3[J]. 金属学报, 2020, 56(11): 1507-1520.
No Suggested Reading articles found!