Modeling the multiaxial fracture behavior of Ti–6Al–4V alloy sheets at a high temperature using improved damage modeling
Author:
Publisher
Elsevier BV
Subject
Metals and Alloys,Surfaces, Coatings and Films,Biomaterials,Ceramics and Composites
Reference77 articles.
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2. Effect of oxygen content and microstructure on the thermo-mechanical response of three Ti–6Al–4V alloys: experiments and modeling over a wide range of strain-rates and temperatures;Khan;Int J Plast,2007
3. Formability and microstructure evolution mechanisms of Ti6Al4V alloy during a novel hot stamping process;Kopec;Mater Sci Eng A,2018
4. Mechanical behaviour modelling and finite element simulation of simple part of Ti-6Al-4V sheet under hot/warm stamping conditions;Sirvin;J Manuf Process,2019
5. A microstructural based constitutive approach for simulating hot deformation of Ti6Al4V alloy in the α + β phase region;Souza;Mater Sci Eng A,2019
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1. Low-temperature superplastic deformation mechanism of ultra-fine grain Ti–6Al–4V alloy by friction stir processing;Journal of Materials Research and Technology;2024-05
2. An enhanced boundary lubrication friction model for sheet metal forming;International Journal of Mechanical Sciences;2023-12
3. Simulation-Free Identification of the Reduced Hosford–Coulomb Ductile Fracture Criterion for Nimonic Sheets Assisted by the Virtual Fields Method;JOM;2023-10-04
4. Inter-void shearing effect on damage evolution under plane strain deformation in high-strength aluminum alloy sheet;Journal of Materials Research and Technology;2023-09
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