Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model

In this study, the damage model GISSMO (Generalized Incremental Stress State dependent damage MOdel) is used to describe the evolution of ductile damage and predict the onset of fracture during the self-pierce riveting of thin aluminum (EN AW-5182) sheets. By accurate prediction of the pre-damage an...

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Main Authors: M. Otroshi, M. Rossel, G. Meschut
Format: Article
Language:English
Published: Elsevier 2020-03-01
Series:Journal of Advanced Joining Processes
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666330920300133
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author M. Otroshi
M. Rossel
G. Meschut
author_facet M. Otroshi
M. Rossel
G. Meschut
author_sort M. Otroshi
collection DOAJ
description In this study, the damage model GISSMO (Generalized Incremental Stress State dependent damage MOdel) is used to describe the evolution of ductile damage and predict the onset of fracture during the self-pierce riveting of thin aluminum (EN AW-5182) sheets. By accurate prediction of the pre-damage and material separation in the simulation of joining process, the accuracy of crashworthiness simulations can be improved. Besides, over dimensioning will be reduced and more precise components will be designed. A simple approach to illustrate the separation of upper sheet in the simulation of the joining process is based on a geometric separation criterion. Such a criterion is not predictive und cannot be used in case of variations in tool configurations, sheet thickness, and material combinations. In this work, the material failure is described in dependence of the stress state. The stress state during the process simulation is studied and the variety of damage specimens is experimental examined to characterize the parameters of damage model. The inverse analysis is used to minimize the difference between the experimental and the numerical prediction concerning the load-stroke curves and the fracture zones. The numerical simulation of self-pierce riveting with semi tubular rivet using the damage model is performed and compared with experimental produced joints. It is shown that the model predicts the separation of material in the relevant region correctly. Furthermore, the results of simulation and experiment concerning the load-stroke diagram and the geometry of the joint are in good agreement.
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spelling doaj.art-dcacd87e2b514765ae4bb217fe233a1b2022-12-21T22:32:56ZengElsevierJournal of Advanced Joining Processes2666-33092020-03-011100015Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage modelM. Otroshi0M. Rossel1G. Meschut2Corresponding author.; Laboratory of Materials and Joining Technology, Paderborn University, Paderborn, GermanyLaboratory of Materials and Joining Technology, Paderborn University, Paderborn, GermanyLaboratory of Materials and Joining Technology, Paderborn University, Paderborn, GermanyIn this study, the damage model GISSMO (Generalized Incremental Stress State dependent damage MOdel) is used to describe the evolution of ductile damage and predict the onset of fracture during the self-pierce riveting of thin aluminum (EN AW-5182) sheets. By accurate prediction of the pre-damage and material separation in the simulation of joining process, the accuracy of crashworthiness simulations can be improved. Besides, over dimensioning will be reduced and more precise components will be designed. A simple approach to illustrate the separation of upper sheet in the simulation of the joining process is based on a geometric separation criterion. Such a criterion is not predictive und cannot be used in case of variations in tool configurations, sheet thickness, and material combinations. In this work, the material failure is described in dependence of the stress state. The stress state during the process simulation is studied and the variety of damage specimens is experimental examined to characterize the parameters of damage model. The inverse analysis is used to minimize the difference between the experimental and the numerical prediction concerning the load-stroke curves and the fracture zones. The numerical simulation of self-pierce riveting with semi tubular rivet using the damage model is performed and compared with experimental produced joints. It is shown that the model predicts the separation of material in the relevant region correctly. Furthermore, the results of simulation and experiment concerning the load-stroke diagram and the geometry of the joint are in good agreement.http://www.sciencedirect.com/science/article/pii/S2666330920300133Self-pierce rivetingDuctile fractureDamage modelingGISSMO damage model
spellingShingle M. Otroshi
M. Rossel
G. Meschut
Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model
Journal of Advanced Joining Processes
Self-pierce riveting
Ductile fracture
Damage modeling
GISSMO damage model
title Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model
title_full Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model
title_fullStr Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model
title_full_unstemmed Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model
title_short Stress state dependent damage modeling of self-pierce riveting process simulation using GISSMO damage model
title_sort stress state dependent damage modeling of self pierce riveting process simulation using gissmo damage model
topic Self-pierce riveting
Ductile fracture
Damage modeling
GISSMO damage model
url http://www.sciencedirect.com/science/article/pii/S2666330920300133
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AT mrossel stressstatedependentdamagemodelingofselfpiercerivetingprocesssimulationusinggissmodamagemodel
AT gmeschut stressstatedependentdamagemodelingofselfpiercerivetingprocesssimulationusinggissmodamagemodel