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Fatigue crack growth in bearing steel under cyclic mode II + static biaxial compression
Mode II fatigue crack growth under reversed shear and static biaxial compression was investigated in two bearing steels. Many aborted branches, quasi-orthogonal to the main crack, were observed along the crack face. The compressive stress parallel to the main crack hindered the growth of these branc...
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Published in: | arXiv.org 2022-06 |
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creator | Mael Zaid Bonnand, Vincent Doquet, Véronique Chiaruttini, Vincent Pacou, Didier Depouhon, Pierre |
description | Mode II fatigue crack growth under reversed shear and static biaxial compression was investigated in two bearing steels. Many aborted branches, quasi-orthogonal to the main crack, were observed along the crack face. The compressive stress parallel to the main crack hindered the growth of these branches and favored coplanar mode II crack growth. The crack face sliding displacement profiles measured by DIC were used to derive \(\Delta_{\rm KII,eff}\), at the main crack tip, using elastic-plastic FE simulations with crack face friction, by an inverse method. Friction corrected crack growth kinetics were obtained for mode II crack growth in both steels. |
doi_str_mv | 10.48550/arxiv.2207.05698 |
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subjects | Bearing steels Compressive properties Crack propagation Crack tips Fatigue failure Fracture mechanics Inverse method |
title | Fatigue crack growth in bearing steel under cyclic mode II + static biaxial compression |
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