Microstructure and Abrasive Wear Behavior of Medium Carbon Low Alloy Martensitic Abrasion Resistant Steel

被引:114
作者
Deng, Xiang-tao [1 ]
Wang, Zhao-dong [1 ]
Han, Yi [1 ]
Zhao, Hui [2 ]
Wang, Guo-dong [1 ]
机构
[1] Northeastern Univ, State Key Lab Rolling & Automat, Shenyang 110819, Liaoning, Peoples R China
[2] Yangxi Harbor Elect Power Dev Co Ltd, Yangjiang 529800, Guangdong, Peoples R China
关键词
abrasion resistant steel; processing parameter; mechanical property; relative wear resistance; HEAT-TREATMENT; TOUGHNESS; STRENGTH; HARDNESS; METALS;
D O I
10.1016/S1006-706X(14)60015-7
中图分类号
TF [冶金工业];
学科分类号
080601 [冶金物理化学];
摘要
The effect of processing parameters such as hot rolling and heat treatment on microstructure and mechanical properties was investigated for a new 0.27mass% C and Ni, Mo-free low alloy martensitic abrasion resistant steel. The three-body impact abrasive wear behavior was also analyzed. The results showed that two-step controlled rolling besides quenching at 880 C and tempering at 170 degrees C could result in optimal mechanical property: the Brinell hardness, tensile strength, elongation and -40 degrees C impact toughness were 531, 1530 MPa, 11.8% and 58 J, respectively. The microstructure was of fine lath martensite with little retained austenite. Three-body impact abrasive wear results showed that wear mechanism was mainly of plastic deformation fatigue when the impact energy was 2 J, and the relative wear resistance was 1.04 times higher than that of the same grade compared steel under the same working condition. The optimal hardness and toughness match was the main reason of higher wear resistance.
引用
收藏
页码:98 / 103
页数:6
相关论文
共 19 条
[1]
Effect of microstructure on the oxidative wear behavior of plain carbon steel [J].
Abouei, V. ;
Saghafian, H. ;
Kheirandish, Sh. .
WEAR, 2007, 262 (9-10) :1225-1231
[2]
CONTACT AND RUBBING OF FLAT SURFACES [J].
ARCHARD, JF .
JOURNAL OF APPLIED PHYSICS, 1953, 24 (08) :981-988
[3]
The effects of conventional heat treatment and boronizing on abrasive wear and corrosion of SAE 1010, SAE 1040, D2 and 304 steels [J].
Atik, E ;
Yunker, U ;
Meriç, C .
TRIBOLOGY INTERNATIONAL, 2003, 36 (03) :155-161
[4]
Chen N. P., 1987, CHIN J MAT RES, V1, P3
[5]
Relationship between microstructure, hardness, impact toughness and wear performance of selected grinding media for mineral ore milling operations [J].
Chenje, TW ;
Simbi, DJ ;
Navara, E .
MATERIALS & DESIGN, 2004, 25 (01) :11-18
[6]
Heat treatment of multi-element low alloy wear-resistant steel [J].
Fu, HG ;
Xiao, Q ;
Fu, HF .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2005, 396 (1-2) :206-212
[7]
THE EFFECT OF HARDNESS ON THE TRANSITION OF THE ABRASIVE WEAR MECHANISM OF STEELS [J].
HOKKIRIGAWA, K ;
KATO, K ;
LI, ZZ .
WEAR, 1988, 123 (02) :241-251
[8]
ROLE OF FRACTURE TOUGHNESS IN WEAR OF METALS [J].
HORNBOGEN, E .
WEAR, 1975, 33 (02) :251-259
[9]
Hsu T.Y., 1999, Martensitic Transformation and Martensite
[10]
Correlating microstructural features and mechanical properties with abrasion resistance of a high strength low alloy steel [J].
Jha, AK ;
Prasad, BK ;
Modi, OP ;
Das, S ;
Yegneswaran, AH .
WEAR, 2003, 254 (1-2) :120-128