Fatigue Life Prediction of S235 Details Based on Dislocation Density

Author:

Pedrosa Bruno1,Correia José2,Gripp Iara3,Fernandes Lisete4,Rebelo Carlos1

Affiliation:

1. University of Coimbra Portugal

2. University of Porto Portugal

3. Federal Fluminense University Rio de Janeiro Brasil

4. CIDE‐UME University of Trás‐os‐Montes and Alto Douro Vila Real Portugal

Abstract

AbstractGlobal approaches have been the main procedure to design structural details and components under fatigue loading. This procedure is easy to apply but it disregards not only the effect of the material type but also the influence of the geometry in complex components. On the other hand, local approaches rely on the specific local damage parameters that can be assessed for each type of material and detail geometry. The parameters derived from low cycle fatigue (LCF) tests are the most common damage parameters used to predict the fatigue life and establish reliable fatigue design approaches. Recently, Huffman proposed a fatigue damage model based on strain energy density and on the dislocation density of the material. In this regard, S235 was selected to perform a metallographic and mechanical assessment aiming to define the dislocation density of the material and to describe the fatigue behavior using the Huffman damage model. Additionally, fatigue tests on structural details (plate with hole) were conducted and results were compared with fatigue life predictions based on Huffman local approach. It was found that Huffman model based on dislocation density is a reliable approach to predict the fatigue life of structural steel details.

Funder

Fundação para a Ciência e a Tecnologia

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

Reference13 articles.

1. Fatigue design and retrofit of steel bridges

2. Review of Fatigue Crack Propagation Models for Metallic Components;Benden S.;Eur. J. Sci. Res.,2009

3. European Committee for Standardisation EN 1993‐1‐9:Eurocode 3 Design of steel structures – Part 1‐9: Fatigue Brussels 2010.

4. Dislocation distribution and prediction of fatigue damage

5. A Dislocation Model for Fatigue Crack Initiation

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