Application of multi-phase viscoplastic material modelling to computational welding mechanics of grade-s960ql steel - 09/10/18
, Andreas Pittner, Rainer Falkenberg, Ole Kahlcke, Michael Rethmeier| pages | 15 |
| Iconographies | 13 |
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| Autres | 0 |
Abstract |
The sound numerical prediction of welding-induced thermal stresses, residual stresses, and distortions strongly depends on the accurate description of a welded material's thermomechanical deformation behaviour. In this work, we provide experimental data on the viscoplastic deformation behaviour of a grade-s960ql steel up to a temperature of . In addition, a multi-phase viscoplastic material model is proposed, which accounts for the experimentally observed isothermal deformation behaviour of grade-s960ql steel base and austenitised material, as well as for athermal contributions that originate from solid-state phase transformations. The multi-phase viscoplastic and a classic rate-independent isotropic hardening material model were applied in the numerical simulations of both-ends-fixed bar Satoh tests and a single-pass gas metal arc weld. The influence of material modelling choices on the agreement between numerical simulation and experimental results is discussed, and recommendations for further work are given.
Keywords : Computational welding mechanics, s960ql, Cyclic hardening, Viscoplasticity, Complex low-cycle fatigue test, Satoh test
Plan
Vol 346 - N° 11
P. 1018-1032 - novembre 2018 Retour au numéroBienvenue sur EM-consulte, la référence des professionnels de santé.
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