Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method

The study of residual stress has long been an important research field in science and engineering, due to the fact that uncontrolled residual stresses are detrimental to the performance of products. Numerous research contributions have been devoted to the quantification of residual stress states for...

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Main Authors: Jun, T, Korsunsky, A
Format: Journal article
Language:English
Published: 2010
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author Jun, T
Korsunsky, A
author_facet Jun, T
Korsunsky, A
author_sort Jun, T
collection OXFORD
description The study of residual stress has long been an important research field in science and engineering, due to the fact that uncontrolled residual stresses are detrimental to the performance of products. Numerous research contributions have been devoted to the quantification of residual stress states for the purpose of designing engineering components and predicting their lifetime and failure in service. For the purposes of the present study these can be broadly classified into two main approaches, namely, the interpretation of experimental measurements and process modelling. In this paper, a novel approach to residual stress analysis is developed, called here the Eigenstrain Reconstruction Method (ERM). This is a semi-empirical approach that combines experimental characterisation, specifically, residual elastic strain measurement by diffraction, with subsequent analysis and interpretation based on the eigenstrain theory. Three essential components of the ERM, i.e. the residual strain measurement, the solution of the inverse problem of eigenstrain theory, and the Simple Triangle (SIMTRI) method, are described. The ERM allows an approximate reconstruction of the complete residual strain and stress state in the entire engineering component. This is a significant improvement compared to the experimentally obtained limited knowledge of stress components at a selected number of measurement points, or to the simple interpolation between these points. © 2010 Elsevier Ltd. All rights reserved.
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spelling oxford-uuid:7fdc6afe-8b06-4a07-a252-09ed5d8b8eab2022-03-26T21:19:36ZEvaluation of residual stresses and strains using the Eigenstrain Reconstruction MethodJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:7fdc6afe-8b06-4a07-a252-09ed5d8b8eabEnglishSymplectic Elements at Oxford2010Jun, TKorsunsky, AThe study of residual stress has long been an important research field in science and engineering, due to the fact that uncontrolled residual stresses are detrimental to the performance of products. Numerous research contributions have been devoted to the quantification of residual stress states for the purpose of designing engineering components and predicting their lifetime and failure in service. For the purposes of the present study these can be broadly classified into two main approaches, namely, the interpretation of experimental measurements and process modelling. In this paper, a novel approach to residual stress analysis is developed, called here the Eigenstrain Reconstruction Method (ERM). This is a semi-empirical approach that combines experimental characterisation, specifically, residual elastic strain measurement by diffraction, with subsequent analysis and interpretation based on the eigenstrain theory. Three essential components of the ERM, i.e. the residual strain measurement, the solution of the inverse problem of eigenstrain theory, and the Simple Triangle (SIMTRI) method, are described. The ERM allows an approximate reconstruction of the complete residual strain and stress state in the entire engineering component. This is a significant improvement compared to the experimentally obtained limited knowledge of stress components at a selected number of measurement points, or to the simple interpolation between these points. © 2010 Elsevier Ltd. All rights reserved.
spellingShingle Jun, T
Korsunsky, A
Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method
title Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method
title_full Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method
title_fullStr Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method
title_full_unstemmed Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method
title_short Evaluation of residual stresses and strains using the Eigenstrain Reconstruction Method
title_sort evaluation of residual stresses and strains using the eigenstrain reconstruction method
work_keys_str_mv AT junt evaluationofresidualstressesandstrainsusingtheeigenstrainreconstructionmethod
AT korsunskya evaluationofresidualstressesandstrainsusingtheeigenstrainreconstructionmethod