Microstructural evolution of white and brown etching layers in pearlitic rail steels
- 1. Max-Planck-Institut für Eisenforschung GmbH, Max-Planck-Str. 1, 40237, Düsseldorf (Germany)
- 2. Delft University of Technology, Department of Materials Science and Engineering, Mekelweg 2, 2628CD, Delft (Netherlands)
- 3. Ghent University, Department of Electrical Energy, Metals, Mechanical Constructions & Systems, Technologiepark 903, Ghent (Belgium)
- 4. Akita University, Tegata Gakuencho, Akita, 010-8502 (Japan)
Description
The formation of White (WEL) and Brown Etching Layers (BEL) on rail raceways during service causes the initiation of microcracks which finally leads to failure. Detailed characterization of the WEL and the BEL in a pearlitic rail steel is carried out from micrometer to atomic scale to understand their microstructural evolution. A microstructural gradient is observed along the rail depth including martensite, austenite and partially dissolved parent cementite in the WEL and tempered martensite, ultrafine/nanocrystalline martensite/austenite, carbon saturated ferrite and partially dissolved parent cementite in the BEL. Plastic deformation in combination with a temperature rise during wheel-rail contact was found to be responsible for the initial formation and further microstructural evolution of these layers. The presence of austenite in the WEL/BEL proves experimentally that temperatures rise into the austenite range during wheel-rail contact. This is in agreement with finite element modelling results. Each wheel-rail contact must be considered as an individual short but intense deformation and heat treatment cycle that cumulatively forms the final microstructure, as shown by diffusion length calculations of C and Mn. The presence of secondary carbides in the BEL indicates that the temperature in the BEL during individual loading cycles reaches levels where martensite tempering occurs. Partially fragmented primary cementite laths, enriched in Mn, depleted in Si, and surrounded by a C-gradient and dislocations were found in the BEL. The initial step in the formation of BEL and WEL is the defect- and diffusion-assisted decomposition of the original microstructure.
Additional details
Identifiers
- DOI
- 10.1016/j.actamat.2019.04.012;
- PII
- S1359645419302046;
Publishing Information
- Journal Title
- Acta Materialia
- Journal Volume
- 171
- Journal Page Range
- p. 48-64
- ISSN
- 1359-6454
- CODEN
- ACMAFD
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 55030297
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- AUSTENITE; BACKSCATTERING; CARBON; CEMENTITE; COMPUTERIZED SIMULATION; CRACKS; CRYSTALS; DEFECTS; DIFFUSION LENGTH; ELECTRON CHANNELING; ELECTRON DIFFRACTION; FERRITE; FERRITES; FINITE ELEMENT METHOD; MARTENSITE; MICROSTRUCTURE; NANOSTRUCTURES; PLASTICITY; STEELS
- Descriptors DEC
- ALLOYS; CALCULATION METHODS; CARBIDES; CARBON ADDITIONS; CARBON COMPOUNDS; CHANNELING; COHERENT SCATTERING; DIFFRACTION; DIMENSIONS; ELEMENTS; FERRIMAGNETIC MATERIALS; INTERMETALLIC COMPOUNDS; IRON ALLOYS; IRON BASE ALLOYS; IRON CARBIDES; IRON COMPOUNDS; LENGTH; MAGNETIC MATERIALS; MATERIALS; MATHEMATICAL SOLUTIONS; MECHANICAL PROPERTIES; NONMETALS; NUMERICAL SOLUTION; OXYGEN COMPOUNDS; SCATTERING; SIMULATION; TRANSITION ELEMENT ALLOYS; TRANSITION ELEMENT COMPOUNDS
Optional Information
- Copyright
- Copyright (c) 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.