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dc.contributor.authorVolkov, G.en
dc.contributor.authorBorodin, E.en
dc.contributor.authorBratov, V.en
dc.date.accessioned2024-03-21T08:51:24Z-
dc.date.available2024-03-21T08:51:24Z-
dc.date.issued2017-
dc.identifier.citationVolkov G. Numerical simulations of Taylor anvil-on-rod impact tests using classical and new approaches / G. Volkov, E. Borodin, V. Bratov // Procedia Structural Integrity. — 2017. — Vol. 6. — P. 330-335.en
dc.identifier.issn2452-3216-
dc.identifier.other67938id
dc.identifier.otherhttp://www.scopus.com/inward/record.url?partnerID=8YFLogxK&scp=85065763055m
dc.identifier.otherhttps://doi.org/10.1016/j.prostr.2017.11.050pdf
dc.identifier.other8b243a7e-fa6b-407f-a235-b170ab73382apure_uuid
dc.identifier.urihttp://elar.urfu.ru/handle/10995/75656-
dc.description.abstractPlastic deformation of samples undergoing Taylor anvil-on-rod impact test is simulated utilising finite element method (FEM). Classical (bilinear plasticity using von Mises stress, Johnson-Cook plasticity model) plasticity models and a new plasticity model based on notion of incubation time of plastic flow initiation are employed to model dynamic deformation of tested samples. In order to verify the obtained solutions, the received predictions are compared to available experimental measurements of deformed sample shapes for two different materials (copper, aluminium) and various initial sample velocities. It is shown that bilinear von Mises plasticity model is not able to provide satisfactory coincidence between the shape of the sample boundary received in numerical simulations and in real experimental conditions. At the same time, models accounting for rate dependency of deformation are providing much more accurate results. Substitution of the concept of «dynamic» yielding stress of a material, depending on the rate of deformation by characteristic time of plastic stress relaxation provides a powerful tool for robust prediction of plastic deformation for a wide range of strain rates. The parameter of the characteristic relaxation time has a clear physical interpretation and theoretically can be evaluated from microstructural studies. © 2017 The Authors. Published by Elsevier B.V.en
dc.description.sponsorshipThe research was supported by grants of the President of the Russian Federation (MK-4649.2016.1, MD-7481.2016.1), the Ministry of Education and Science of the Russian Federation (competitive part of State Task of NIR CSU No. 3.2510.2017/PP) and RFBR research grant 16-51-45063.en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherElsevier B.V.en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.rightscc-by-nc-ndother
dc.rightsgoldother
dc.sourceProcedia Structural Integrityen
dc.subjectALUMINIUMen
dc.subjectCOPPERen
dc.subjectFEMen
dc.subjectINCUBATION TIMEen
dc.subjectTAYLOR TESTen
dc.titleNumerical simulations of Taylor anvil-on-rod impact tests using classical and new approachesen
dc.typeConference Paperen
dc.typeinfo:eu-repo/semantics/conferenceObjecten
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.doi10.1016/j.prostr.2017.11.050-
dc.identifier.scopus85065763055-
local.affiliationSaint-Petersburg State University, Universitetskaya Naberezhnaya 7/9, Saint-Petersburg, 199034, Russian Federationen
local.affiliationDepartment of Physics, Institute of Natural Sciences, Ural Federal University, Mira str., 19, Ekaterinburg, 620002, Russian Federationen
local.affiliationInstitute of Problems of Mechanical Engineering RAS, V.O., Bolshoj pr., 61, Staint-Petersburg, 199178, Russian Federationen
local.contributor.employeeБородин Илья Николаевичru
local.description.firstpage330-
local.description.lastpage335-
local.volume6-
dc.identifier.wos000452910300049-
local.identifier.pure9807217-
local.identifier.eid2-s2.0-85065763055-
local.identifier.wosWOS:000452910300049-
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