Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application

The presented results are based on an experimental feasibility study which was carried out for the application of micro-hydroforming in the manufacture of micro-sized products made from the material PtIr10. Within the scope of this product development, the prediction of feasible and failure-free exp...

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Main Authors: Hartl Christoph, Schiefer Herwig, Chlynin Andreas
Format: Article
Language:English
Published: EDP Sciences 2014-01-01
Series:Manufacturing Review
Subjects:
Online Access:https://mfr.edp-open.org/articles/mfreview/full_html/2014/01/mfreview140007/mfreview140007.html
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spelling doaj-2ab7ac42fbc447cdb4b2a2909dcb02be2020-11-25T01:12:13ZengEDP SciencesManufacturing Review2265-42242014-01-0111710.1051/mfreview/2014015mfreview140007Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial applicationHartl ChristophSchiefer HerwigChlynin AndreasThe presented results are based on an experimental feasibility study which was carried out for the application of micro-hydroforming in the manufacture of micro-sized products made from the material PtIr10. Within the scope of this product development, the prediction of feasible and failure-free expansions was one major aspect. This paper deals with the analysis of the failure cases which limited the expansions due to necking. The experimental investigations have shown a scattering of the forming results which was due to so-called size-effects resulting from the material grain structure. Simulations with the finite element method were used to determine the development of stresses and strains within the hydroformed tube. It was demonstrated that a superimposition of axial compressive stresses reduces the influence of size-effects and increases the feasible expansion diameter. Using these simulations, the applicability of an existing failure criterion to estimate a mean forming-limit was verified.https://mfr.edp-open.org/articles/mfreview/full_html/2014/01/mfreview140007/mfreview140007.htmlMicro-hydroformingPlatinumFormabilityFailure criterionSize-effects
collection DOAJ
language English
format Article
sources DOAJ
author Hartl Christoph
Schiefer Herwig
Chlynin Andreas
spellingShingle Hartl Christoph
Schiefer Herwig
Chlynin Andreas
Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
Manufacturing Review
Micro-hydroforming
Platinum
Formability
Failure criterion
Size-effects
author_facet Hartl Christoph
Schiefer Herwig
Chlynin Andreas
author_sort Hartl Christoph
title Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
title_short Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
title_full Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
title_fullStr Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
title_full_unstemmed Evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
title_sort evaluation of experimental and numerical investigations into micro-hydroforming of platinum tubes for an industrial application
publisher EDP Sciences
series Manufacturing Review
issn 2265-4224
publishDate 2014-01-01
description The presented results are based on an experimental feasibility study which was carried out for the application of micro-hydroforming in the manufacture of micro-sized products made from the material PtIr10. Within the scope of this product development, the prediction of feasible and failure-free expansions was one major aspect. This paper deals with the analysis of the failure cases which limited the expansions due to necking. The experimental investigations have shown a scattering of the forming results which was due to so-called size-effects resulting from the material grain structure. Simulations with the finite element method were used to determine the development of stresses and strains within the hydroformed tube. It was demonstrated that a superimposition of axial compressive stresses reduces the influence of size-effects and increases the feasible expansion diameter. Using these simulations, the applicability of an existing failure criterion to estimate a mean forming-limit was verified.
topic Micro-hydroforming
Platinum
Formability
Failure criterion
Size-effects
url https://mfr.edp-open.org/articles/mfreview/full_html/2014/01/mfreview140007/mfreview140007.html
work_keys_str_mv AT hartlchristoph evaluationofexperimentalandnumericalinvestigationsintomicrohydroformingofplatinumtubesforanindustrialapplication
AT schieferherwig evaluationofexperimentalandnumericalinvestigationsintomicrohydroformingofplatinumtubesforanindustrialapplication
AT chlyninandreas evaluationofexperimentalandnumericalinvestigationsintomicrohydroformingofplatinumtubesforanindustrialapplication
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