Failure analysis of a crossing rail made of Hadfield steel after severe plastic deformation induced by wheel-rail interaction

被引:48
作者
Zambrano, O. A. [1 ]
Tressia, G. [1 ,2 ]
Souza, R. M. [1 ]
机构
[1] Univ Sao Paulo, Dept Mech Engn, Surface Phenomena Lab LFS, Av Prof Mello Moraes 2231, BR-05508900 Sao Paulo, SP, Brazil
[2] Inst Tecnol Vale, Av Juscelino Kubitschek 31, BR-35400000 Ribeirao Preto, MG, Brazil
关键词
Manganese steel; Dynamic recrystallization; Severe plastic deformation; Crossing rail; Martensite; TWINNING-INDUCED-PLASTICITY; MECHANICAL-PROPERTIES; WEAR BEHAVIOR; CRYSTALLOGRAPHIC ORIENTATION; MARTENSITIC-TRANSFORMATION; EPSILON-MARTENSITE; GRAIN-ORIENTATION; AUSTENITIC STEELS; TAYLOR FACTOR; STRAIN;
D O I
10.1016/j.engfailanal.2020.104621
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
In this study, the sub-surface structure of a railroad crossing made of Hadfield steel was characterized. The microhardness profile and metallographic examination, in addition to XRD, EBSD, and TEM analyses, were conducted on zones near the surface (damaged), where the rolling contact fatigue was operative. It was confirmed that mechanical twinning was the main deformation mechanism operative under these circumstances, through metallographic examination, Taylor analysis, misorientation profiles, TEM micrographs, and diffraction patterns. Further evidence suggested that near the affected surfaces, where superficial cracks were observed, nanotwins and small traces of epsilon (h.c.p) and alpha' (b.c.t) martensite were detected, in conjunction with dynamic recrystallization. This last phenomenon was verified due to the presence of very small grains located at the grain boundaries with random crystallographic orientation, the high local misorientation difference between the small grains and the large ones, and finally due to the appearance of the small annealing twins. These results are discussed based on the local misorientation, Schmid and Taylor analysis, twin types, and crystallographic orientation.
引用
收藏
页数:24
相关论文
共 94 条
[1]   STRAIN-HARDENING OF HADFIELD MANGANESE STEEL [J].
ADLER, PH ;
OLSON, GB ;
OWEN, WS .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1986, 17 (10) :1725-1737
[2]  
[Anonymous], OBIT NOT FELLOWS R S
[3]   A Study of Different Microstructural Effects on the Strain Hardening Behavior of Hadfield Steel [J].
Bal, Burak .
INTERNATIONAL JOURNAL OF STEEL STRUCTURES, 2018, 18 (01) :13-23
[4]   Differentiating between intergranular and transgranular fracture in polycrystalline aggregates [J].
Bond, D. M. ;
Zikry, M. A. .
JOURNAL OF MATERIALS SCIENCE, 2018, 53 (08) :5786-5798
[5]   STRUCTURE OF HIGH-ANGLE GRAIN BOUNDARIES [J].
BRANDON, DG .
ACTA METALLURGICA, 1966, 14 (11) :1479-&
[6]   INSITU OBSERVATIONS OF THE FORMATION OF MARTENSITE IN STAINLESS-STEEL [J].
BROOKS, JW ;
LORETTO, MH ;
SMALLMAN, RE .
ACTA METALLURGICA, 1979, 27 (12) :1829-1838
[7]   DIRECT OBSERVATIONS OF MARTENSITE NUCLEI IN STAINLESS-STEEL [J].
BROOKS, JW ;
LORETTO, MH ;
SMALLMAN, RE .
ACTA METALLURGICA, 1979, 27 (12) :1839-1847
[8]   CEMS STUDY OF STRAIN INDUCED PHASE-TRANSFORMATION IN MANGANESE HADFIELD STEEL [J].
CABANILLAS, ED ;
ALVAREZ, EP ;
HEY, A ;
MERCADER, RC .
HYPERFINE INTERACTIONS, 1991, 66 (1-4) :295-298
[9]   Wear behavior and subsurface layer work hardening mechanism of Fe-24.1Mn-1.21C-0.48Si steel [J].
Cai, Changhong ;
Song, Renbo ;
Liu, Shuai ;
Feng, Yifan ;
Pei, Zhongzheng .
INTERNATIONAL CONFERENCE ON THE TECHNOLOGY OF PLASTICITY, ICTP 2017, 2017, 207 :2251-2256
[10]   Nanotwin Formation in High-Manganese Austenitic Steels Under Explosive Shock Loading [J].
Canadinc, D. ;
Uzer, B. ;
Elmadagli, M. ;
Guner, F. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2018, 49A (04) :1026-1030