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The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel

Sheet metal forming processes are an important part of many manufacturing operations today. The numerical simulation of these processes has become an important aspect in the design of the processes and in the understanding of the material forming itself. This thesis document describes the developmen...

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Main Author: Ward, John Douglas Bain
Other Authors: Martin, J B
Format: Thesis
Language:English
Published: Department of Mechanical Engineering 2016
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access_status_str Open Access
author Ward, John Douglas Bain
author2 Martin, J B
author_browse Martin, J B
Ward, John Douglas Bain
author_facet Martin, J B
Ward, John Douglas Bain
author_sort Ward, John Douglas Bain
collection Thesis
description Sheet metal forming processes are an important part of many manufacturing operations today. The numerical simulation of these processes has become an important aspect in the design of the processes and in the understanding of the material forming itself. This thesis document describes the development and formulation of a material model which was used in the numerical simulation of deep drawing problems. The purpose of the material model was to predict the formation of martensite during the plastic straining of metastable austenitic stainless steel and the effect of the martensite formation on the plasticity of the steel. The model was developed from existing work as a modified von Mises isotropic hardening elastic-plastic algorithm. The algorithm was implemented as the subroutine UMAT in the finite element program ABAQUS. Finite element simulations employing the material model were performed on two axisymmetric deep drawing examples. The finite element analysis was performed as a coupled displacement-temperature analysis. The simulations produced results which predicted the distribution of various material state variables such as the volume fraction of martensite, plastic strain, yield stress and temperature in the formed component. The results were consistent with what is intuitively expected from the physics of the problem. They were able to explain phenomena observed in physical tests such as the location of failures in the formed components and the occurrence of delayed cracking. It is concluded that the model was successful in providing qualitative information on the distribution of martensite in components formed by deep drawing. These predictions were for a broad range of stainless steel behaviour. However, extensions to the model are required to be able to make accurate quantitative predictions on the formation of martensite in specific materials.
format Thesis
id oai:open.uct.ac.za:11427/18306
institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:31:50.330Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2016
publishDateRange 2016
publishDateSort 2016
publisher Department of Mechanical Engineering
publisherStr Department of Mechanical Engineering
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source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/18306 The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel Ward, John Douglas Bain Martin, J B Mechanical Engineering Sheet metal forming processes are an important part of many manufacturing operations today. The numerical simulation of these processes has become an important aspect in the design of the processes and in the understanding of the material forming itself. This thesis document describes the development and formulation of a material model which was used in the numerical simulation of deep drawing problems. The purpose of the material model was to predict the formation of martensite during the plastic straining of metastable austenitic stainless steel and the effect of the martensite formation on the plasticity of the steel. The model was developed from existing work as a modified von Mises isotropic hardening elastic-plastic algorithm. The algorithm was implemented as the subroutine UMAT in the finite element program ABAQUS. Finite element simulations employing the material model were performed on two axisymmetric deep drawing examples. The finite element analysis was performed as a coupled displacement-temperature analysis. The simulations produced results which predicted the distribution of various material state variables such as the volume fraction of martensite, plastic strain, yield stress and temperature in the formed component. The results were consistent with what is intuitively expected from the physics of the problem. They were able to explain phenomena observed in physical tests such as the location of failures in the formed components and the occurrence of delayed cracking. It is concluded that the model was successful in providing qualitative information on the distribution of martensite in components formed by deep drawing. These predictions were for a broad range of stainless steel behaviour. However, extensions to the model are required to be able to make accurate quantitative predictions on the formation of martensite in specific materials. 2016-03-28T14:38:42Z 2016-03-28T14:38:42Z 1994 Master Thesis Masters MSc http://hdl.handle.net/11427/18306 eng application/pdf Department of Mechanical Engineering Faculty of Engineering and the Built Environment University of Cape Town
spellingShingle Mechanical Engineering
Ward, John Douglas Bain
The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
thesis_degree_str Master's
title The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
title_full The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
title_fullStr The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
title_full_unstemmed The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
title_short The numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
title_sort numerical modelling of transformation induced plasticity in the deep drawing of stainless steel
topic Mechanical Engineering
url http://hdl.handle.net/11427/18306
work_keys_str_mv AT wardjohndouglasbain thenumericalmodellingoftransformationinducedplasticityinthedeepdrawingofstainlesssteel
AT wardjohndouglasbain numericalmodellingoftransformationinducedplasticityinthedeepdrawingofstainlesssteel