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Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework

This paper develops a framework to obtain the flow stress of nickel-based superalloys as a function of γ-γ′ morphology. The yield strength is a major factor in the design of these alloys. This work provides additional effects of γ′ morphology in the design scope that has been adopted for the model d...

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Autores principales: Keshavarz, Shahriyar, Molaeinia, Zara, Reid, Andrew C. E., Langer, Stephen A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7537544/
https://www.ncbi.nlm.nih.gov/pubmed/33029385
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author Keshavarz, Shahriyar
Molaeinia, Zara
Reid, Andrew C. E.
Langer, Stephen A.
author_facet Keshavarz, Shahriyar
Molaeinia, Zara
Reid, Andrew C. E.
Langer, Stephen A.
author_sort Keshavarz, Shahriyar
collection PubMed
description This paper develops a framework to obtain the flow stress of nickel-based superalloys as a function of γ-γ′ morphology. The yield strength is a major factor in the design of these alloys. This work provides additional effects of γ′ morphology in the design scope that has been adopted for the model developed by authors. In general, the two-phase γ-γ′ morphology in nickel-based superalloys can be divided into three variables including γ′ shape, γ′ volume fraction and γ′ size in the sub-grain microstructure. In order tfo obtain the flow stress, non-Schmid crystal plasticity constitutive models at two length scales are employed and bridged through a homogenized multi-scale framework. The multi-scale framework includes two sub-grain and homogenized grain scales. For the sub-grain scale, a size-dependent, dislocation-density-based finite element model (FEM) of the representative volume element (RVE) with explicit depiction of the γ-γ′ morphology is developed as a building block for the homogenization. For the next scale, an activation-energy-based crystal plasticity model is developed for the homogenized single crystal of Ni-based superalloys. The constitutive models address the thermo-mechanical behavior of nickel-based superalloys for a large temperature range and include orientation dependencies and tension-compression asymmetry. This homogenized model is used to obtain the morphology dependence on the flow stress in nickel-based superalloys and can significantly expedite crystal plasticity FE simulations in polycrystalline microstructures, as well as higher scale FE models in order to cast and design superalloys.
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spelling pubmed-75375442020-10-06 Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework Keshavarz, Shahriyar Molaeinia, Zara Reid, Andrew C. E. Langer, Stephen A. Crystals (Basel) Article This paper develops a framework to obtain the flow stress of nickel-based superalloys as a function of γ-γ′ morphology. The yield strength is a major factor in the design of these alloys. This work provides additional effects of γ′ morphology in the design scope that has been adopted for the model developed by authors. In general, the two-phase γ-γ′ morphology in nickel-based superalloys can be divided into three variables including γ′ shape, γ′ volume fraction and γ′ size in the sub-grain microstructure. In order tfo obtain the flow stress, non-Schmid crystal plasticity constitutive models at two length scales are employed and bridged through a homogenized multi-scale framework. The multi-scale framework includes two sub-grain and homogenized grain scales. For the sub-grain scale, a size-dependent, dislocation-density-based finite element model (FEM) of the representative volume element (RVE) with explicit depiction of the γ-γ′ morphology is developed as a building block for the homogenization. For the next scale, an activation-energy-based crystal plasticity model is developed for the homogenized single crystal of Ni-based superalloys. The constitutive models address the thermo-mechanical behavior of nickel-based superalloys for a large temperature range and include orientation dependencies and tension-compression asymmetry. This homogenized model is used to obtain the morphology dependence on the flow stress in nickel-based superalloys and can significantly expedite crystal plasticity FE simulations in polycrystalline microstructures, as well as higher scale FE models in order to cast and design superalloys. 2017 /pmc/articles/PMC7537544/ /pubmed/33029385 Text en Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Keshavarz, Shahriyar
Molaeinia, Zara
Reid, Andrew C. E.
Langer, Stephen A.
Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework
title Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework
title_full Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework
title_fullStr Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework
title_full_unstemmed Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework
title_short Morphology Dependent Flow Stress in Nickel-Based Superalloys in the Multi-Scale Crystal Plasticity Framework
title_sort morphology dependent flow stress in nickel-based superalloys in the multi-scale crystal plasticity framework
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7537544/
https://www.ncbi.nlm.nih.gov/pubmed/33029385
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AT molaeiniazara morphologydependentflowstressinnickelbasedsuperalloysinthemultiscalecrystalplasticityframework
AT reidandrewce morphologydependentflowstressinnickelbasedsuperalloysinthemultiscalecrystalplasticityframework
AT langerstephena morphologydependentflowstressinnickelbasedsuperalloysinthemultiscalecrystalplasticityframework