MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS

Superplastic forming (SPF) is a valuable near net shape fabrication method, used to produce very complex, contoured and monolithic structures that are often lighter, stronger and safer than the assemblies they replace. However, the widespread industrial use of Superplastic (SP) alloys is hindered by...

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Main Author: Thuramalla, Naveen
Format: Others
Published: UKnowledge 2004
Subjects:
Online Access:http://uknowledge.uky.edu/gradschool_theses/323
http://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1326&context=gradschool_theses
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spelling ndltd-uky.edu-oai-uknowledge.uky.edu-gradschool_theses-13262015-04-11T05:05:11Z MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS Thuramalla, Naveen Superplastic forming (SPF) is a valuable near net shape fabrication method, used to produce very complex, contoured and monolithic structures that are often lighter, stronger and safer than the assemblies they replace. However, the widespread industrial use of Superplastic (SP) alloys is hindered by a number of issues including low production rate and limited predictive capabilities of stability during deformation and failure. Failure during SPD may result from geometrical macroscopic instabilities and/or microstructural aspects. However, the available failure criteria are either based on geometrical instabilities or microstructural features and do not account for both failure modes. The present study presents a generalized multi-scale stability criterion for SP materials, accounting for both aspects of failure under various loading conditions. A combined model accounting for cavity nucleation and plasticity controlled cavity growth along with a grain growth model and a modified microstructure based constitutive equation for SP materials is incorporated into Harts stability analysis to develop the proposed stability criterion for different loading conditions. Effects of initial grain size, initial levels of cavitation, nucleation strain, strain-rate sensitivity, and grain-growth exponent on the optimum forming curves of different SP alloys are investigated, for different loading conditions. 2004-01-01T08:00:00Z text application/pdf http://uknowledge.uky.edu/gradschool_theses/323 http://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1326&context=gradschool_theses University of Kentucky Master's Theses UKnowledge SPF|Multiscale Failure Criterion|Stability Analysis|Optimum Forming Paths|SP Alloys
collection NDLTD
format Others
sources NDLTD
topic SPF|Multiscale Failure Criterion|Stability Analysis|Optimum Forming Paths|SP Alloys
spellingShingle SPF|Multiscale Failure Criterion|Stability Analysis|Optimum Forming Paths|SP Alloys
Thuramalla, Naveen
MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS
description Superplastic forming (SPF) is a valuable near net shape fabrication method, used to produce very complex, contoured and monolithic structures that are often lighter, stronger and safer than the assemblies they replace. However, the widespread industrial use of Superplastic (SP) alloys is hindered by a number of issues including low production rate and limited predictive capabilities of stability during deformation and failure. Failure during SPD may result from geometrical macroscopic instabilities and/or microstructural aspects. However, the available failure criteria are either based on geometrical instabilities or microstructural features and do not account for both failure modes. The present study presents a generalized multi-scale stability criterion for SP materials, accounting for both aspects of failure under various loading conditions. A combined model accounting for cavity nucleation and plasticity controlled cavity growth along with a grain growth model and a modified microstructure based constitutive equation for SP materials is incorporated into Harts stability analysis to develop the proposed stability criterion for different loading conditions. Effects of initial grain size, initial levels of cavitation, nucleation strain, strain-rate sensitivity, and grain-growth exponent on the optimum forming curves of different SP alloys are investigated, for different loading conditions.
author Thuramalla, Naveen
author_facet Thuramalla, Naveen
author_sort Thuramalla, Naveen
title MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS
title_short MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS
title_full MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS
title_fullStr MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS
title_full_unstemmed MULTISCALE MODELING AND ANALYSIS OF FAILURE AND STABILITY DURING SUPERPLASTIC DEFORMATION -- UNDER DIFFERENT LOADING CONDITIONS
title_sort multiscale modeling and analysis of failure and stability during superplastic deformation -- under different loading conditions
publisher UKnowledge
publishDate 2004
url http://uknowledge.uky.edu/gradschool_theses/323
http://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1326&context=gradschool_theses
work_keys_str_mv AT thuramallanaveen multiscalemodelingandanalysisoffailureandstabilityduringsuperplasticdeformationunderdifferentloadingconditions
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