Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module

It has been proposed to use the developed triangular kinematic module 2a with a curvilinear sloping boundary as an axial one, making it possible to describe the character of metal flow in the reversal zone to radial extrusion. Based on the energy method, we have derived the magnitudes of deformation...

Full description

Bibliographic Details
Main Authors: Natalia Hrudkina, Leila Aliieva, Oleg Markov, Dmytro Kartamyshev, Serhii Shevtsov, Mykola Kuznetsov
Format: Article
Language:English
Published: PC Technology Center 2020-06-01
Series:Eastern-European Journal of Enterprise Technologies
Subjects:
Online Access:http://journals.uran.ua/eejet/article/view/203989
id doaj-23d08f99b6124e2c977654443ca233e0
record_format Article
spelling doaj-23d08f99b6124e2c977654443ca233e02020-11-25T02:55:47ZengPC Technology CenterEastern-European Journal of Enterprise Technologies1729-37741729-40612020-06-0131 (105)172210.15587/1729-4061.2020.203989203989Modeling the process of radial-direct extrusion with expansion using a triangular kinematic moduleNatalia Hrudkina0Leila Aliieva1Oleg Markov2Dmytro Kartamyshev3Serhii Shevtsov4Mykola Kuznetsov5Donbass State Engineering Academy Akademichna str., 72, Kramatorsk, Ukraine, 84313Donbass State Engineering Academy Akademichna str., 72, Kramatorsk, Ukraine, 84313Donbass State Engineering Academy Akademichna str., 72, Kramatorsk, Ukraine, 84313LEKR, LTD Oleksy Tykhoho str., 10, Kramatorsk, Ukraine, 84313Donbass State Engineering Academy Akademichna str., 72, Kramatorsk, Ukraine, 84313Donbas National Academy of Civil Engineering and Architecture Heroiv Nebesnoi Sotni str., 14, Kramatorsk, Ukraine, 84333It has been proposed to use the developed triangular kinematic module 2a with a curvilinear sloping boundary as an axial one, making it possible to describe the character of metal flow in the reversal zone to radial extrusion. Based on the energy method, we have derived the magnitudes of deformation force power inside the built kinematic module 2a, the power of friction forces at the border of the contact between a blank and a tool, and the power of cut forces with adjacent kinematic modules. The result is the obtained analytical expression of the reduced pressure for the deformation of the axial triangular kinematic module 2a with a sloping boundary, whose shape depends on the parameter α. We have analyzed the possibilities of optimizing the reduced deformation pressure for the parameter α under different ratios of geometric parameters of the module and friction conditions. Taking into consideration the shape of the adjacent kinematic module 3a, it has been proposed to use the resulting reduced pressure dependences to calculate the power modes of the combined sequential radial-longitudinal extrusion processes with the developed radial component of metal flow. A comparative analysis has been performed of the estimation schemes EM-2a with the developed axial triangular kinematic module 2a and EM-2 with the use of the axial rectangular kinematic module 2 and experimental data from modeling the process of combined radial-direct extrusion with expansion. The data on a deformation effort derived from the EM-2a scheme (with the developed triangular module with a curvilinear boundary 2a) and EM-2 exceed those experimentally obtained by 12‒15 % and 15‒20 %, respectively. This confirms the rationality of using the developed axial kinematic module 2a with a curvilinear boundary instead of an axial rectangular kinematic module when modeling processes of the sequential radial-direct extrusion with the developed radial component of metal flow. The resulting dependences of the reduced pressure of the module 2a deformation can be built into other estimation schemes of successive radial-longitudinal extrusion processes. As a result, the decrease in the obtained power parameters of the process could amount to 7‒10 % relative to the schemes involving the axial rectangular kinematic module 2http://journals.uran.ua/eejet/article/view/203989simulation of combined extrusion processeskinematic moduleenergy methoddeformation process
collection DOAJ
language English
format Article
sources DOAJ
author Natalia Hrudkina
Leila Aliieva
Oleg Markov
Dmytro Kartamyshev
Serhii Shevtsov
Mykola Kuznetsov
spellingShingle Natalia Hrudkina
Leila Aliieva
Oleg Markov
Dmytro Kartamyshev
Serhii Shevtsov
Mykola Kuznetsov
Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
Eastern-European Journal of Enterprise Technologies
simulation of combined extrusion processes
kinematic module
energy method
deformation process
author_facet Natalia Hrudkina
Leila Aliieva
Oleg Markov
Dmytro Kartamyshev
Serhii Shevtsov
Mykola Kuznetsov
author_sort Natalia Hrudkina
title Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
title_short Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
title_full Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
title_fullStr Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
title_full_unstemmed Modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
title_sort modeling the process of radial-direct extrusion with expansion using a triangular kinematic module
publisher PC Technology Center
series Eastern-European Journal of Enterprise Technologies
issn 1729-3774
1729-4061
publishDate 2020-06-01
description It has been proposed to use the developed triangular kinematic module 2a with a curvilinear sloping boundary as an axial one, making it possible to describe the character of metal flow in the reversal zone to radial extrusion. Based on the energy method, we have derived the magnitudes of deformation force power inside the built kinematic module 2a, the power of friction forces at the border of the contact between a blank and a tool, and the power of cut forces with adjacent kinematic modules. The result is the obtained analytical expression of the reduced pressure for the deformation of the axial triangular kinematic module 2a with a sloping boundary, whose shape depends on the parameter α. We have analyzed the possibilities of optimizing the reduced deformation pressure for the parameter α under different ratios of geometric parameters of the module and friction conditions. Taking into consideration the shape of the adjacent kinematic module 3a, it has been proposed to use the resulting reduced pressure dependences to calculate the power modes of the combined sequential radial-longitudinal extrusion processes with the developed radial component of metal flow. A comparative analysis has been performed of the estimation schemes EM-2a with the developed axial triangular kinematic module 2a and EM-2 with the use of the axial rectangular kinematic module 2 and experimental data from modeling the process of combined radial-direct extrusion with expansion. The data on a deformation effort derived from the EM-2a scheme (with the developed triangular module with a curvilinear boundary 2a) and EM-2 exceed those experimentally obtained by 12‒15 % and 15‒20 %, respectively. This confirms the rationality of using the developed axial kinematic module 2a with a curvilinear boundary instead of an axial rectangular kinematic module when modeling processes of the sequential radial-direct extrusion with the developed radial component of metal flow. The resulting dependences of the reduced pressure of the module 2a deformation can be built into other estimation schemes of successive radial-longitudinal extrusion processes. As a result, the decrease in the obtained power parameters of the process could amount to 7‒10 % relative to the schemes involving the axial rectangular kinematic module 2
topic simulation of combined extrusion processes
kinematic module
energy method
deformation process
url http://journals.uran.ua/eejet/article/view/203989
work_keys_str_mv AT nataliahrudkina modelingtheprocessofradialdirectextrusionwithexpansionusingatriangularkinematicmodule
AT leilaaliieva modelingtheprocessofradialdirectextrusionwithexpansionusingatriangularkinematicmodule
AT olegmarkov modelingtheprocessofradialdirectextrusionwithexpansionusingatriangularkinematicmodule
AT dmytrokartamyshev modelingtheprocessofradialdirectextrusionwithexpansionusingatriangularkinematicmodule
AT serhiishevtsov modelingtheprocessofradialdirectextrusionwithexpansionusingatriangularkinematicmodule
AT mykolakuznetsov modelingtheprocessofradialdirectextrusionwithexpansionusingatriangularkinematicmodule
_version_ 1724716331928911872