Predicting rolling contact fatigue crack initiation in highly deformed rail steel
Licentiatavhandling, 2024
The first part of the thesis deals with evaluating and improving fatigue crack initiation criteria for severely deformed R260 pearlitic steel. This enhancement is addressed by proposing modified criteria. Three groups of experiments form the basis for the evaluations: Axial-torsion tests with large shear strain increments (predeformation), uniaxial or proportional multiaxial low cycle fatigue tests after different amounts of predeformation, and uniaxial high cycle fatigue experiments. To assess the performance of both existing and proposed crack initiation criteria, a cross-validation procedure is used. The proposed criterion, which accounts for the influence of accumulated plastic strains on fatigue crack initiation, improves the fit to the experimental data. Although there is a tendency to overfitting, this can be mitigated by considering more experiments.
In the second part of the thesis, fatigue crack initiation in a railhead subjected to realistic traffic loading is investigated, focusing on the influence of the large accumulated plastic deformations near the surface. The adopted anisotropic material model is calibrated against experiments with railway-like loading at different material states, corresponding to different depths in the railhead. The identified material parameters are then used to consider spatially varying properties in the railhead. This variation is governed by the accumulated shear strain distribution, obtained from measurements in field samples. By using the stresses and strains from finite element simulations of wheel over-rollings, the previously developed crack initiation criterion is applied. The results highlight the importance of considering the deformed near-surface material in a railhead when predicting fatigue crack initiation, as it is shown to reduce fatigue damage growth during a traffic load sequence.
plasticity
parameter identification
anisotropy
Railway mechanics
railway-like loading tests
fatigue crack initiation
predeformation
over-rolling simulations
Författare
Nasrin Talebi
Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik
Evaluations and enhancements of fatigue crack initiation criteria for steels subjected to large shear deformations
International Journal of Fatigue,;Vol. 182(2024)
Artikel i vetenskaplig tidskrift
Nasrin Talebi, Björn Andersson, Magnus Ekh, Knut Andreas Meyer, Influence of a highly deformed surface layer on RCF predictions for rails in service
Driving research and innovation to push Europe's rail system forward (IN2TRACK3)
Trafikverket (2021/19114), 2021-01-01 -- 2023-12-31.
Europeiska kommissionen (EU) (EC/H2020/101012456), 2021-01-01 -- 2023-12-31.
Crack initiation in anisotropic wheel/rail material
Europeiska kommissionen (EU) (EC/H2020/730848), 2021-11-17 -- 2023-12-30.
Chalmers järnvägsmekanik (CHARMEC) (MU41), 2021-11-17 -- 2026-11-16.
Styrkeområden
Transport
Ämneskategorier
Teknisk mekanik
Annan materialteknik
Infrastruktur
C3SE (Chalmers Centre for Computational Science and Engineering)
Utgivare
Chalmers
Virtual Development Laboratory, Chalmers Tvärgata 4C, Göteborg
Opponent: Senior Associate Professor Daniel Leidermark, Linköping University, Linköping, Sweden