Kocbay, E., Scheidl, J., Schwarzinger, F., & Vetyukov, Y. (2023). An enhanced stress resultant plasticity model for shell structures with application in sheet metal roll forming. The International Journal of Advanced Manufacturing Technology. https://doi.org/10.1007/s00170-023-12544-1
E325 - Institut für Mechanik und Mechatronik E325-01 - Forschungsbereich Technische Dynamik und Fahrzeugdynamik E325-02 - Forschungsbereich Mechanik fester Körper
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Zeitschrift:
The International Journal of Advanced Manufacturing Technology
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ISSN:
0268-3768
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Datum (veröffentlicht):
2023
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Umfang:
18
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Verlag:
Springer-Verlag London Ltd.
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Peer Reviewed:
Ja
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Keywords:
Finite element analysis; Kirchhoff–Love shell; Metal plasticity; Mixed Eulerian–Lagrangian formulation; Roll forming; Stress resultant shell plasticity
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Abstract:
The proposed Kirchhoff-Love shell stress resultant plasticity model extends a previously reported model for plates by complementing the constitutive law of elastoplasticity with membrane effects. This enhanced model is designed for bending dominant settings with small to moderate membrane forces. It is thus implemented in a purpose-built nonlinear mixed Eulerian–Lagrangian finite element scheme for the simulation of sheet metal roll forming. Numerical experiments by imposing artificial strain histories on a through-the-thickness element are conducted to test the model against previously reported stress resultant plasticity models and to validate it against the traditional continuum plasticity approach that features an integration of relations of elastoplasticity in a set of grid points distributed over the thickness. Results of actual roll forming simulations demonstrate the practicality in comparison to the computationally more expensive continuum plasticity approach.