Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis

Ti-6Al-4V, known for high strength-to-weight ratio and good resistance to corrosion, has been widely used in aerospace, biomedical, and high-performance sports applications. A wide range of physical and mechanical properties of Ti-6Al-4V can be achieved by varying the microstructures via deformation...

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Main Author: Zhang, Ming
Published: Georgia Institute of Technology 2008
Subjects:
Online Access:http://hdl.handle.net/1853/22669
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-226692013-01-07T20:26:00ZCrystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysisZhang, MingCrystal plasticityFatigueTi-6Al-4VMaterials FatigueTitanium-aluminum-vanadium alloysFretting corrosionMicrostructureCrystals Plastic propertiesTi-6Al-4V, known for high strength-to-weight ratio and good resistance to corrosion, has been widely used in aerospace, biomedical, and high-performance sports applications. A wide range of physical and mechanical properties of Ti-6Al-4V can be achieved by varying the microstructures via deformation and recrystallization processes. The aim of this thesis is to establish a microstructure-sensitive fatigue analysis approach that can be applied in engineering applications such as fretting fatigue to permit explicit assessment of the influence of microstructure. In this thesis, crystal plasticity constitutive relations are developed to model the cyclic deformation -TiAl has beenabehavior of Ti-6Al-4V. The development of the slip bands within widely reported and has been found to play an important role in deformation and fatigue behaviors of Ti-6Al-4V. The shear enhanced model is used to simulate the formation and evolution of slip bands triggered by planar slip under static or quasi-static loading at room temperature. Fatigue Indicator Parameters (FIPs) are introduced to reflect driving force for the different crack formation mechanisms in Ti-6Al-4V. The cyclic stress-strain behavior and fretting fatigue sensitivity to microstructure and loading parameters in dual phase Ti-6Al-4V are investigated.Georgia Institute of Technology2008-06-10T20:44:37Z2008-06-10T20:44:37Z2008-03-10Dissertationhttp://hdl.handle.net/1853/22669
collection NDLTD
sources NDLTD
topic Crystal plasticity
Fatigue
Ti-6Al-4V
Materials Fatigue
Titanium-aluminum-vanadium alloys
Fretting corrosion
Microstructure
Crystals Plastic properties
spellingShingle Crystal plasticity
Fatigue
Ti-6Al-4V
Materials Fatigue
Titanium-aluminum-vanadium alloys
Fretting corrosion
Microstructure
Crystals Plastic properties
Zhang, Ming
Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis
description Ti-6Al-4V, known for high strength-to-weight ratio and good resistance to corrosion, has been widely used in aerospace, biomedical, and high-performance sports applications. A wide range of physical and mechanical properties of Ti-6Al-4V can be achieved by varying the microstructures via deformation and recrystallization processes. The aim of this thesis is to establish a microstructure-sensitive fatigue analysis approach that can be applied in engineering applications such as fretting fatigue to permit explicit assessment of the influence of microstructure. In this thesis, crystal plasticity constitutive relations are developed to model the cyclic deformation -TiAl has beenabehavior of Ti-6Al-4V. The development of the slip bands within widely reported and has been found to play an important role in deformation and fatigue behaviors of Ti-6Al-4V. The shear enhanced model is used to simulate the formation and evolution of slip bands triggered by planar slip under static or quasi-static loading at room temperature. Fatigue Indicator Parameters (FIPs) are introduced to reflect driving force for the different crack formation mechanisms in Ti-6Al-4V. The cyclic stress-strain behavior and fretting fatigue sensitivity to microstructure and loading parameters in dual phase Ti-6Al-4V are investigated.
author Zhang, Ming
author_facet Zhang, Ming
author_sort Zhang, Ming
title Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis
title_short Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis
title_full Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis
title_fullStr Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis
title_full_unstemmed Crystal plasticity modeling of Ti-6Al-4V and its application in cyclic and fretting fatigue analysis
title_sort crystal plasticity modeling of ti-6al-4v and its application in cyclic and fretting fatigue analysis
publisher Georgia Institute of Technology
publishDate 2008
url http://hdl.handle.net/1853/22669
work_keys_str_mv AT zhangming crystalplasticitymodelingofti6al4vanditsapplicationincyclicandfrettingfatigueanalysis
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