A 3D numerical and experimental investigation of microstructural alterations around non-metallic inclusions in bearing steel

被引:30
作者
Moghaddam, Sina Mobasher [1 ]
Sadeghi, Farshid [1 ]
Paulson, Kristen [1 ]
Weinzapfel, Nick [2 ]
Correns, Martin [3 ]
Dinkel, Markus [4 ]
机构
[1] Purdue Univ, Sch Mech Engn, W Lafayette, IN 47907 USA
[2] Schaeffler Grp USA Inc, Troy, MI 48083 USA
[3] Schaeffler Technol AG & Co KG, Ind Str 1-3, D-91074 Herzogenaurach, Germany
[4] Schaeffler Technol AG & Co KG, Georg Schafer Str 30, Berlin, Germany
关键词
Non-metallic inclusions; Butterfly wings; Non-destructive methods; Ultrasonic inspection; Microstructural alterations; ROLLING-CONTACT FATIGUE; WHITE ETCHING AREA; CRACK FORMATION; MECHANICS; PROPAGATION; INITIATION; NITRIDE; FAILURE; SURFACE;
D O I
10.1016/j.ijfatigue.2016.02.034
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Non-metallic inclusions such as sulfides and oxides are byproducts of steel manufacturing process. When a component is subjected to repetitive loading, fatigue cracks can emanate from these inclusions due to stress concentrations that happen because of mismatch in elastic-plastic properties of inclusions and matrix. In certain applications such as gears and bearings, crack initiation from inclusions is accompanied with microstructural alteration. This paper employs a numerical as well an experimental approach to investigate these microstructural changes which are so-called "butterfly wings". A 3D finite element model was developed to obtain the stress distribution in a domain subjected to Hertzian loading with an embedded non-metallic inclusion. A formerly introduced 2D model based on continuum damage mechanics (CDM) was developed to simulate the butterfly wing formation in 3D. Wingspan-to inclusion ratios were observed at different cross sections following an analytical serial sectioning procedure. A closed form solution was suggested for the wingspan-to-observed-inclusion-diameter ratio and the results were corroborated with the data available in the open literature. On the experimental front, nonmetallic inclusions inside a sample made of bearing steel was detected using ultrasonic inspection method. Rolling contact fatigue (RCF) tests were run on the specimen and post-failure serial sectioning was conducted to understand the 3D shape of butterflies formed around an inclusion detected by ultrasound. Comparison of experimental and numerical serial sectioning of the wings showed a close correlation in the butterfly wings geometry. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:29 / 41
页数:13
相关论文
共 48 条
[1]   Microstructure-sensitive modeling of rolling contact fatigue [J].
Alley, Erick S. ;
Neu, Richard W. .
INTERNATIONAL JOURNAL OF FATIGUE, 2010, 32 (05) :841-850
[2]  
[Anonymous], 2006, J ASTM Int, DOI DOI 10.1520/JAI14059
[3]  
Auclair G, 2002, ASTM STP
[4]   MICROSTRUCTURAL CHANGES AROUND NON-METALLIC INCLUSIONS CAUSED BY ROLLING-CONTACT FATIGUE OF BALL-BEARING STEELS [J].
BECKER, PC .
METALS TECHNOLOGY, 1981, 8 (JUN) :234-243
[5]   Three-dimensional modelling of intergranular fatigue failure of fine grain polycrystalline metallic MEMS devices [J].
Bomidi, J. A. R. ;
Weinzapfel, N. ;
Sadeghi, F. .
FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2012, 35 (11) :1007-1021
[6]   Experimental and Numerical Investigation of Torsion Fatigue of Bearing Steel [J].
Bomidi, John A. R. ;
Weinzapfel, Nick ;
Slack, Trevor ;
Moghaddam, Sina Mobasher ;
Sadeghi, Farshid ;
Liebel, Alexander ;
Weber, Joerg ;
Kreis, Thomas .
JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME, 2013, 135 (03)
[7]   An Improved Approach for 3D Rolling Contact Fatigue Simulations with Microstructure Topology [J].
Bomidi, John A. R. ;
Weinzapfel, Nick ;
Sadeghi, Farshid ;
Liebel, Alexander ;
Weber, Joerg .
TRIBOLOGY TRANSACTIONS, 2013, 56 (03) :385-399
[8]   Sub-surface fatigue crack growth at alumina inclusions in AISI 52100 roller bearings [J].
Cerullo, Michele .
XVII INTERNATIONAL COLLOQUIUM ON MECHANICAL FATIGUE OF METALS (ICMFM17), 2014, 74 :333-338
[9]   High frequency ultrasonic detection of C-crack defects in silicon nitride bearing balls [J].
Deneuville, F. ;
Duquennoy, M. ;
Ouaftouh ;
Ourak, M. ;
Jenot, F. ;
Desvaux, S. .
ULTRASONICS, 2009, 49 (01) :89-93
[10]  
Errichello R, 2011, MICROSTRUCTURAL ALTE