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Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling

The three-high screw rolling of AISI 321 billet from 60 mm to 52 mm diameter was performed using an MISIS-100T mill. When screw rolling was carried out, a set of sections were made in the billet’s cross-section at the stationary stage of screw rolling. SolidWorks was applied to make the 3D model of...

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Autores principales: Skripalenko, Mikhail Mikhailovich, Rogachev, Stanislav Olegovich, Romantsev, Boris Alekseevich, Galkin, Sergei Pavlovich, Kaputkina, Liudmila Mikhailovna, Skripalenko, Mikhail Nikolaevich, Danilin, Andrei Vladimirovich, Fadeev, Viktor Aleksandrovich
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838781/
https://www.ncbi.nlm.nih.gov/pubmed/35160940
http://dx.doi.org/10.3390/ma15030995
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author Skripalenko, Mikhail Mikhailovich
Rogachev, Stanislav Olegovich
Romantsev, Boris Alekseevich
Galkin, Sergei Pavlovich
Kaputkina, Liudmila Mikhailovna
Skripalenko, Mikhail Nikolaevich
Danilin, Andrei Vladimirovich
Fadeev, Viktor Aleksandrovich
author_facet Skripalenko, Mikhail Mikhailovich
Rogachev, Stanislav Olegovich
Romantsev, Boris Alekseevich
Galkin, Sergei Pavlovich
Kaputkina, Liudmila Mikhailovna
Skripalenko, Mikhail Nikolaevich
Danilin, Andrei Vladimirovich
Fadeev, Viktor Aleksandrovich
author_sort Skripalenko, Mikhail Mikhailovich
collection PubMed
description The three-high screw rolling of AISI 321 billet from 60 mm to 52 mm diameter was performed using an MISIS-100T mill. When screw rolling was carried out, a set of sections were made in the billet’s cross-section at the stationary stage of screw rolling. SolidWorks was applied to make the 3D model of the rolled billet’s grain using microstructure images. The same technique was applied for the creation of the 3D model of a nondeformed billet’s grain. A comparison of the 3D models’ shape and dimensions before and after screw rolling was made. It was established that, compared to the nondeformed grain model, the screw rolled billet’s grain model was twisted and elongated along some angle in the rolling direction. This angle’s value is commensurable to the roll’s feed angle during the experimental rolling. Anisotropy indexes of before and after rolling grain models were estimated and compared to the anisotropy indexes obtained via the sections’ analysis in earlier research. Difference did not exceed 5%.
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spelling pubmed-88387812022-02-13 Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling Skripalenko, Mikhail Mikhailovich Rogachev, Stanislav Olegovich Romantsev, Boris Alekseevich Galkin, Sergei Pavlovich Kaputkina, Liudmila Mikhailovna Skripalenko, Mikhail Nikolaevich Danilin, Andrei Vladimirovich Fadeev, Viktor Aleksandrovich Materials (Basel) Article The three-high screw rolling of AISI 321 billet from 60 mm to 52 mm diameter was performed using an MISIS-100T mill. When screw rolling was carried out, a set of sections were made in the billet’s cross-section at the stationary stage of screw rolling. SolidWorks was applied to make the 3D model of the rolled billet’s grain using microstructure images. The same technique was applied for the creation of the 3D model of a nondeformed billet’s grain. A comparison of the 3D models’ shape and dimensions before and after screw rolling was made. It was established that, compared to the nondeformed grain model, the screw rolled billet’s grain model was twisted and elongated along some angle in the rolling direction. This angle’s value is commensurable to the roll’s feed angle during the experimental rolling. Anisotropy indexes of before and after rolling grain models were estimated and compared to the anisotropy indexes obtained via the sections’ analysis in earlier research. Difference did not exceed 5%. MDPI 2022-01-27 /pmc/articles/PMC8838781/ /pubmed/35160940 http://dx.doi.org/10.3390/ma15030995 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Skripalenko, Mikhail Mikhailovich
Rogachev, Stanislav Olegovich
Romantsev, Boris Alekseevich
Galkin, Sergei Pavlovich
Kaputkina, Liudmila Mikhailovna
Skripalenko, Mikhail Nikolaevich
Danilin, Andrei Vladimirovich
Fadeev, Viktor Aleksandrovich
Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling
title Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling
title_full Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling
title_fullStr Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling
title_full_unstemmed Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling
title_short Creation of 3D Model of Stainless-Steel Billet’s Grain after Three-High Screw Rolling
title_sort creation of 3d model of stainless-steel billet’s grain after three-high screw rolling
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838781/
https://www.ncbi.nlm.nih.gov/pubmed/35160940
http://dx.doi.org/10.3390/ma15030995
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