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12th International Fatigue Congress (FATIGUE), Date: 2018/05/27 - 2018/06/01, Location: FRANCE, Poitiers

Publication date: 2018-01-01
Volume: 165
Publisher: EDP Sciences

12TH INTERNATIONAL FATIGUE CONGRESS (FATIGUE 2018)

Author:

Talemi, Reza Hojjati
Zhang, Jie ; Hertele, Stijn ; De Waele, Wim ; Henaff, G

Keywords:

Science & Technology, Technology, Engineering, Mechanical, Materials Science, Multidisciplinary, Engineering, Materials Science, FAILURE-MECHANISM, PREDICTION, STG/18/010#54843755

Abstract:

© The Authors, published by EDP Sciences, 2018. Many structural applications are aiming for weight reduction by using high strength steel. In a lug joint the load is transmitted by a pin, which leads to a pressure distribution on the hole in the lug. When a lug joint is subjected to axial cyclic loading conditions, the stress distribution becomes multiaxial, i.e. a combination of normal and tangential stresses. In such loading case, a fretting crack initiates at the contact interface between the pin/lug connection which is followed by a fatigue crack propagation up to the final rupture of the lug. In this study, the fretting fatigue crack initiation and propagation in a pin/lug joint are simulated using multiaxial fatigue criterion and fracture mechanics, respectively. To do so, first a 2D finite element model is developed for obtaining stresses and strains at the contact interface in a pin/lug joint. Using the extracted data, fretting fatigue failure parameters are analysed. Next, the obtained stresses and strains are used to estimate the crack initiation lifetime using a fatigue multiaxial critical plane model. A 3D model is set-up to simulate the crack propagation using eXtended Finite Element Method (XFEM). Eventually, the predicted total fatigue lifetimes are compared against experimental observations taken from literature.