Diametrical growth in the forward flow forming process: Simulation, validation, and prediction

In the present study, the phenomenon of diametric growth in the forward flow forming process has been studied through finite element simulation and experimental investigation. Implicit integration scheme was employed in the simulation to achieve good accuracy for diametric growth prediction. The sim...

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Main Authors: Song, X, Fong, K, Oon, SR, Tiong, W, Li, P, Korsunsky, A, Danno, A
Format: Journal article
Language:English
Published: 2014
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author Song, X
Fong, K
Oon, SR
Tiong, W
Li, P
Korsunsky, A
Danno, A
author_facet Song, X
Fong, K
Oon, SR
Tiong, W
Li, P
Korsunsky, A
Danno, A
author_sort Song, X
collection OXFORD
description In the present study, the phenomenon of diametric growth in the forward flow forming process has been studied through finite element simulation and experimental investigation. Implicit integration scheme was employed in the simulation to achieve good accuracy for diametric growth prediction. The simulation results were in good agreement with the experiments for both types of materials considered, the aluminum alloy AA6061 and stainless steel SS304L. The residual stresses in the flow-formed parts were measured using x-ray diffraction to validate the model as well as provide the explanation for the diametric growth behavior. Based on the numerical and experimental results, an empirical function was proposed here to describe the amount of diametric growth in the flow-formed parts, which can be used as a predictive tool for dimension control in the flow forming process. © 2013 Springer-Verlag London.
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spelling oxford-uuid:00f6f651-15f1-4dc8-84e9-898c17badd1a2022-03-26T08:32:19ZDiametrical growth in the forward flow forming process: Simulation, validation, and predictionJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:00f6f651-15f1-4dc8-84e9-898c17badd1aEnglishSymplectic Elements at Oxford2014Song, XFong, KOon, SRTiong, WLi, PKorsunsky, ADanno, AIn the present study, the phenomenon of diametric growth in the forward flow forming process has been studied through finite element simulation and experimental investigation. Implicit integration scheme was employed in the simulation to achieve good accuracy for diametric growth prediction. The simulation results were in good agreement with the experiments for both types of materials considered, the aluminum alloy AA6061 and stainless steel SS304L. The residual stresses in the flow-formed parts were measured using x-ray diffraction to validate the model as well as provide the explanation for the diametric growth behavior. Based on the numerical and experimental results, an empirical function was proposed here to describe the amount of diametric growth in the flow-formed parts, which can be used as a predictive tool for dimension control in the flow forming process. © 2013 Springer-Verlag London.
spellingShingle Song, X
Fong, K
Oon, SR
Tiong, W
Li, P
Korsunsky, A
Danno, A
Diametrical growth in the forward flow forming process: Simulation, validation, and prediction
title Diametrical growth in the forward flow forming process: Simulation, validation, and prediction
title_full Diametrical growth in the forward flow forming process: Simulation, validation, and prediction
title_fullStr Diametrical growth in the forward flow forming process: Simulation, validation, and prediction
title_full_unstemmed Diametrical growth in the forward flow forming process: Simulation, validation, and prediction
title_short Diametrical growth in the forward flow forming process: Simulation, validation, and prediction
title_sort diametrical growth in the forward flow forming process simulation validation and prediction
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AT tiongw diametricalgrowthintheforwardflowformingprocesssimulationvalidationandprediction
AT lip diametricalgrowthintheforwardflowformingprocesssimulationvalidationandprediction
AT korsunskya diametricalgrowthintheforwardflowformingprocesssimulationvalidationandprediction
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