Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming
This thesis examines the qualitative and quantitative variation in local plastic deformation and surface roughening due to crystallographic texture in body-centered cubic materials, specifically interstitial-free steel sheet and molybdenum foil and sheet. Complex forming operations currently used in...
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ndltd-LACETR-oai-collectionscanada.gc.ca-OKQ.1974-17432013-12-20T03:39:00ZMulti-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet FormingHamelin, Corycrystal plasticitymodellingbcc metalssurface roughnessdislocation theorystrain pathThis thesis examines the qualitative and quantitative variation in local plastic deformation and surface roughening due to crystallographic texture in body-centered cubic materials, specifically interstitial-free steel sheet and molybdenum foil and sheet. Complex forming operations currently used in industrial manufacturing lead to high material failure rates, due in part to the severity of the applied strain path. A multi-scale model was developed to examine the contribution of mesoscopic and local microscopic behaviour to the macroscopic constitutive response of bcc metals during deformation. The model integrated a dislocation-based hardening scheme and a Taylor-based crystal-plasticity formulation into the subroutine of an explicit dynamic FEM code, LS-DYNA. Numerical analyses using this model were able to predict not only correct grain rotation during deformation, but variations in plastic anisotropy due to initial crystallographic orientation. Simulations of molybdenum foil under uniaxial tension supported the existence of bending due to local variations in plastic anisotropy, confirmed with good quantitative agreement by experimental measurements of surface roughening. A series of two-stage strain-path tests were performed, revealing a prestrain-dependent softening of both the steel and molybdenum samples when an orthogonal secondary strain path is applied. Numerical analyses of these tests overestimate macroscopic hardening during complex loading, due in part to the dynamic nature of the FEM code used.Thesis (Ph.D, Mechanical and Materials Engineering) -- Queen's University, 2009-04-15 11:51:04.518Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.))2009-04-15 11:51:04.5182009-04-15T19:50:46Z2009-04-15T19:50:46Z2009-04-15T19:50:46ZThesis7942828 bytesapplication/pdfhttp://hdl.handle.net/1974/1743enenCanadian thesesThis publication is made available by the authority of the copyright owner solely for the purpose of private study and research and may not be copied or reproduced except as permitted by the copyright laws without written authority from the copyright owner. |
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crystal plasticity modelling bcc metals surface roughness dislocation theory strain path |
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crystal plasticity modelling bcc metals surface roughness dislocation theory strain path Hamelin, Cory Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming |
description |
This thesis examines the qualitative and quantitative variation in local plastic deformation and surface roughening due to crystallographic texture in body-centered cubic materials, specifically interstitial-free steel sheet and molybdenum foil and sheet. Complex forming operations currently used in industrial manufacturing lead to high material failure rates, due in part to the severity of the applied strain path.
A multi-scale model was developed to examine the contribution of mesoscopic and local microscopic behaviour to the macroscopic constitutive response of bcc metals during deformation. The model integrated a dislocation-based hardening scheme and a Taylor-based crystal-plasticity formulation into the subroutine of an explicit dynamic FEM code, LS-DYNA.
Numerical analyses using this model were able to predict not only correct grain rotation during deformation, but variations in plastic anisotropy due to initial crystallographic orientation. Simulations of molybdenum foil under uniaxial tension supported the existence of bending due to local variations in plastic anisotropy, confirmed with good quantitative agreement by experimental measurements of surface roughening.
A series of two-stage strain-path tests were performed, revealing a prestrain-dependent softening of both the steel and molybdenum samples when an orthogonal secondary strain path is applied. Numerical analyses of these tests overestimate macroscopic hardening during complex loading, due in part to the dynamic nature of the FEM code used. === Thesis (Ph.D, Mechanical and Materials Engineering) -- Queen's University, 2009-04-15 11:51:04.518 |
author2 |
Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.)) |
author_facet |
Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.)) Hamelin, Cory |
author |
Hamelin, Cory |
author_sort |
Hamelin, Cory |
title |
Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming |
title_short |
Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming |
title_full |
Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming |
title_fullStr |
Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming |
title_full_unstemmed |
Multi-Scale Modelling of Texture Evolution and Surface Roughening of BCC Metals During Sheet Forming |
title_sort |
multi-scale modelling of texture evolution and surface roughening of bcc metals during sheet forming |
publishDate |
2009 |
url |
http://hdl.handle.net/1974/1743 |
work_keys_str_mv |
AT hamelincory multiscalemodellingoftextureevolutionandsurfacerougheningofbccmetalsduringsheetforming |
_version_ |
1716620980522057728 |