The Effect of the Microstructure and Defects on Crack Initiation in 316L Stainless Steel under Multiaxial High Cycle Fatigue

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Abstract:

The aim of this study is to analyse the influence of both the microstructure and defects on the high cycle fatigue behaviour of the 316L austenitic stainless steel, using finite element simulations of polycrystalline aggregates. High cycle fatigue tests have been conducted on this steel under uniaxial (push-pull) and multiaxial (combined in-phase tension and torsion) loading conditions, with both smooth specimens and specimens containing artificial semi-spherical surface defects. 2D numerical models, using a cubic elastic constitutive model, are created to determine the degree of heterogeneity of the local stress parameters as a function of the defect size. This has been done for one microstructure using several orientation sets generated from the initial texture of the material. The grains are explicitly modelled and the anisotropic behaviour of each FCC crystal is described by the generalized Hookes law with a cubic elasticity tensor. From the simulations carried out with different defect sizes and orientation sets that are representative of the real texture of the tested material, statistical information regarding mesoscopic mechanical fields provides useful insight into the microstructural dependence of the driving forces for fatigue crack nucleation at the mesoscopic scale (or the scale of individual grains). The results in terms of the stress fields and fatigue crack initiation conditions are determined at both the mesoscopic and macroscopic scales. The results from these FE models are used along with an original probabilistic mesomechanics approach to quantify the defect size effect. The resulting predictions, which are sensitive to the microstructure, include the probability distribution of the high cycle fatigue strength.

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Advanced Materials Research (Volumes 891-892)

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815-820

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March 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] K. Dang-Van, Macro-micro approach in high-cycle multiaxial fatigue, in: D.L. McDowell, J.R. Ellis (Eds. ), Advances in Multiaxial Fatigue, ASTM Special Technical Publication, 1993, pp.120-130.

DOI: 10.1520/stp24799s

Google Scholar

[2] F. Morel, N. Huyen, Plasticity and damage heterogeneity in fatigue, Theoretical and Applied Fracture Mechanics. 49 (2008) 98-127.

DOI: 10.1016/j.tafmec.2007.10.006

Google Scholar

[3] H.B. Huntington, The elastic constants of crystals, in: F. Seitz, D. Turnbull (Eds. ), Solid State Physics (7), 1958, pp.213-351.

DOI: 10.1016/s0081-1947(08)60553-6

Google Scholar

[4] C. Geuzaine, J. -F. Remacle, Gmsh: A 3-D finite element mesh generator with built-in pre- and post-processing facilities, International Journal for Numerical Methods in Engineering. 19 (2009) 1309-1331.

DOI: 10.1002/nme.2579

Google Scholar

[5] C. Robert, N. Saintier, T. Palin-Luc, F. Morel, Micro-mechanical modelling of high cycle fatigue behaviour of metals under multiaxial loads, Mechanics of Materials. 55 (2012) 112-129.

DOI: 10.1016/j.mechmat.2012.08.006

Google Scholar

[6] R. Guerchais, C. Robert, F. Morel, N. Saintier, Micromechanical study of the loading path effect in high cycle fatigue, International Journal of Fatigue. 59 (2014) 64-75.

DOI: 10.1016/j.ijfatigue.2013.09.014

Google Scholar