Modelling austenite flow curves in low alloy and microalloyed steels

A model has been developed to predict the austenite flow curves of low alloy and microalloyed steels. The model consists basically of two expressions for stress, as a function of strain, temperature, strain rate and the chemical composition of the steel. The first predicts the hardening and dynamic...

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Published inActa materialia Vol. 44; no. 1; pp. 155 - 163
Main Authors Hernandez, C.A., Medina, S.F., Ruiz, J.
Format Journal Article
LanguageEnglish
Published Oxford Elsevier Ltd 01.01.1996
Elsevier Science
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Abstract A model has been developed to predict the austenite flow curves of low alloy and microalloyed steels. The model consists basically of two expressions for stress, as a function of strain, temperature, strain rate and the chemical composition of the steel. The first predicts the hardening and dynamic recovery region and the second predicts the softening caused by dynamic recrystallization, the algebraic sum of both expressions predicting the complete flow curve. The model's different parameters are a function of the dimensionless parameter ZA of Sellars and Tegart's equation, which in turn has been modelled not only as a function of temperature and strain rate but also as a function of the chemical composition. In this way one single model may be applied to any hot deformed steel whose composition is the same as or similar to those studied.
AbstractList A model has been developed to predict the austenite flow curves of low alloy and microalloyed steels. The model consists basically of two expressions for stress, as a function of strain, temperature, strain rate, and the chemical composition of the steel. The first predicts the hardening and dynamic recovery region and the second predicts the softening caused by dynamic recrystallization, the algebraic sum of both expressions predicting the complete flow curve. The model's different parameters are a function of the dimensionless parameter Z/A of Sellars and Tegart's equation, which in turn has been modelled not only as a function of temperature and strain rate but also as a function of the chemical composition. In this way one single model may be applied to any hot deformed steel whose composition is the same as or similar to those studied.
A model has been developed to predict the austenite flow curves of low alloy and microalloyed steels. The model consists basically of two expressions for stress, as a function of strain, temperature, strain rate and the chemical composition of the steel. The first predicts the hardening and dynamic recovery region and the second predicts the softening caused by dynamic recrystallization, the algebraic sum of both expressions predicting the complete flow curve. The model's different parameters are a function of the dimensionless parameter ZA of Sellars and Tegart's equation, which in turn has been modelled not only as a function of temperature and strain rate but also as a function of the chemical composition. In this way one single model may be applied to any hot deformed steel whose composition is the same as or similar to those studied.
Author Medina, S.F.
Ruiz, J.
Hernandez, C.A.
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  surname: Ruiz
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Issue 1
Keywords Hardening
Temperature dependence
Dynamical recovery
Temperature range 1000-4000 K
Microalloyed steel
Austenite
Mechanical properties
Dynamical recrystallization
Low alloy steel
Modeling
Flow stress
Language English
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Snippet A model has been developed to predict the austenite flow curves of low alloy and microalloyed steels. The model consists basically of two expressions for...
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SubjectTerms Applied sciences
Elasticity. Plasticity
Exact sciences and technology
Mechanical properties and methods of testing. Rheology. Fracture mechanics. Tribology
Metals. Metallurgy
Title Modelling austenite flow curves in low alloy and microalloyed steels
URI https://dx.doi.org/10.1016/1359-6454(95)00153-4
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