Diffraction post-processor for polycrystalline plasticity modelling

Microscopic and macroscopic deformation of a polycrystal due to an applied load can be modelled using crystal plasticity implemented within the Finite Element (FE) framework. However, while macroscopic predictions can readily be validated against conventional monotonic and cyclic stress-strain curve...

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Asıl Yazarlar: Dini, D, Korsunsky, A, Dunne, F
Materyal Türü: Conference item
Baskı/Yayın Bilgisi: 2006
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author Dini, D
Korsunsky, A
Dunne, F
author_facet Dini, D
Korsunsky, A
Dunne, F
author_sort Dini, D
collection OXFORD
description Microscopic and macroscopic deformation of a polycrystal due to an applied load can be modelled using crystal plasticity implemented within the Finite Element (FE) framework. However, while macroscopic predictions can readily be validated against conventional monotonic and cyclic stress-strain curves, verification at the microscopic level is harder to achieve, since it involves calibrating the predictions for stresses and strains in individual grains, or in grains grouped by certain criteria (e.g., orientation). In this paper an elasto-plastic polycrystal finite element model is introduced, and its calibration is performed at a mesoscopic level via comparison with neutron diffraction data obtained experimentally. Time-of-flight (TOF) neutron diffraction experiments carried out on ENGIN-X instrument at ISIS involved in situ loading of samples of C263 nickel-based superalloy. In order to compare the numerical predictions of the FE model with these experimental data, the corresponding mesoscale average elastic strains must be extracted from the results of the simulation by employing a 'diffraction post-processor'. This provides a much improved technique for the calibration of FE formulation and enhances the confidence in the model. The FE diffraction post-processing procedures are discussed in detail, and comparison between the model predictions and experimental data are presented.
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spelling oxford-uuid:03c35fc8-4cf7-4c5c-8e44-081186f7312f2022-03-26T08:48:03ZDiffraction post-processor for polycrystalline plasticity modellingConference itemhttp://purl.org/coar/resource_type/c_5794uuid:03c35fc8-4cf7-4c5c-8e44-081186f7312fSymplectic Elements at Oxford2006Dini, DKorsunsky, ADunne, FMicroscopic and macroscopic deformation of a polycrystal due to an applied load can be modelled using crystal plasticity implemented within the Finite Element (FE) framework. However, while macroscopic predictions can readily be validated against conventional monotonic and cyclic stress-strain curves, verification at the microscopic level is harder to achieve, since it involves calibrating the predictions for stresses and strains in individual grains, or in grains grouped by certain criteria (e.g., orientation). In this paper an elasto-plastic polycrystal finite element model is introduced, and its calibration is performed at a mesoscopic level via comparison with neutron diffraction data obtained experimentally. Time-of-flight (TOF) neutron diffraction experiments carried out on ENGIN-X instrument at ISIS involved in situ loading of samples of C263 nickel-based superalloy. In order to compare the numerical predictions of the FE model with these experimental data, the corresponding mesoscale average elastic strains must be extracted from the results of the simulation by employing a 'diffraction post-processor'. This provides a much improved technique for the calibration of FE formulation and enhances the confidence in the model. The FE diffraction post-processing procedures are discussed in detail, and comparison between the model predictions and experimental data are presented.
spellingShingle Dini, D
Korsunsky, A
Dunne, F
Diffraction post-processor for polycrystalline plasticity modelling
title Diffraction post-processor for polycrystalline plasticity modelling
title_full Diffraction post-processor for polycrystalline plasticity modelling
title_fullStr Diffraction post-processor for polycrystalline plasticity modelling
title_full_unstemmed Diffraction post-processor for polycrystalline plasticity modelling
title_short Diffraction post-processor for polycrystalline plasticity modelling
title_sort diffraction post processor for polycrystalline plasticity modelling
work_keys_str_mv AT dinid diffractionpostprocessorforpolycrystallineplasticitymodelling
AT korsunskya diffractionpostprocessorforpolycrystallineplasticitymodelling
AT dunnef diffractionpostprocessorforpolycrystallineplasticitymodelling