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Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug

The paper presents the results of an analysis of the process of drawing AISI 321 stainless steel thin-walled seamless tubes on a floating plug. The influence of the geometry of dies and plugs, drawing velocity, and lubricants on the possibility of carrying out the pipe drawing process without a loss...

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Autores principales: Żaba, Krzysztof, Trzepieciński, Tomasz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456630/
https://www.ncbi.nlm.nih.gov/pubmed/37629975
http://dx.doi.org/10.3390/ma16165684
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author Żaba, Krzysztof
Trzepieciński, Tomasz
author_facet Żaba, Krzysztof
Trzepieciński, Tomasz
author_sort Żaba, Krzysztof
collection PubMed
description The paper presents the results of an analysis of the process of drawing AISI 321 stainless steel thin-walled seamless tubes on a floating plug. The influence of the geometry of dies and plugs, drawing velocity, and lubricants on the possibility of carrying out the pipe drawing process without a loss of strength of the lubricating film and, consequently, disturbance of the forming process and tube cracking, and also on the temperature in the drawing process, the mechanical properties of the tubes drawn, and the microhardness and roughness of the inner and outer surface of the tubes was investigated. The parameters of the drawing tools used were as follows: angle of drawing dies α = 16° and floating plugs with angles of inclination of the conical part of the plug β = 11.5°, 13°, and 14°. The drawing dies and floating plugs were made of G10 sintered carbide. Drawing speed was varied over the range 1 to 10 m/min. The study used several lubricants. Tubes with dimensions (outer diameter D(0), wall thickness g(0) before drawing process) D(0) = 19 mm, g(0) = 1.2 mm and D(0) = 18 mm, g(0) = 1.2 mm were drawn to produce tubes with dimensions (outer diameter D(k), wall thickness g(k) after drawing process) D(k) = 16 mm, g(k) = 1.06 mm on a drawbench with the same total elongation, while the diameter and wall thickness were changed. During the process, continuous measurements were made of the drawing force and temperature in the deformation zone and on the tube surface. It was found that the drawing process causes a decrease in the roughness parameters Ra and Rz of the inner surface of the tubes. Moreover, after drawing, an increase of 30–70% was observed in the microhardness of the tube material in relation to the microhardness of the charge material. Based on the test results, it can be concluded that the work of frictional forces is the main direction of optimization of tube drawing on a floating plug process of hard-deforming materials.
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spelling pubmed-104566302023-08-26 Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug Żaba, Krzysztof Trzepieciński, Tomasz Materials (Basel) Article The paper presents the results of an analysis of the process of drawing AISI 321 stainless steel thin-walled seamless tubes on a floating plug. The influence of the geometry of dies and plugs, drawing velocity, and lubricants on the possibility of carrying out the pipe drawing process without a loss of strength of the lubricating film and, consequently, disturbance of the forming process and tube cracking, and also on the temperature in the drawing process, the mechanical properties of the tubes drawn, and the microhardness and roughness of the inner and outer surface of the tubes was investigated. The parameters of the drawing tools used were as follows: angle of drawing dies α = 16° and floating plugs with angles of inclination of the conical part of the plug β = 11.5°, 13°, and 14°. The drawing dies and floating plugs were made of G10 sintered carbide. Drawing speed was varied over the range 1 to 10 m/min. The study used several lubricants. Tubes with dimensions (outer diameter D(0), wall thickness g(0) before drawing process) D(0) = 19 mm, g(0) = 1.2 mm and D(0) = 18 mm, g(0) = 1.2 mm were drawn to produce tubes with dimensions (outer diameter D(k), wall thickness g(k) after drawing process) D(k) = 16 mm, g(k) = 1.06 mm on a drawbench with the same total elongation, while the diameter and wall thickness were changed. During the process, continuous measurements were made of the drawing force and temperature in the deformation zone and on the tube surface. It was found that the drawing process causes a decrease in the roughness parameters Ra and Rz of the inner surface of the tubes. Moreover, after drawing, an increase of 30–70% was observed in the microhardness of the tube material in relation to the microhardness of the charge material. Based on the test results, it can be concluded that the work of frictional forces is the main direction of optimization of tube drawing on a floating plug process of hard-deforming materials. MDPI 2023-08-18 /pmc/articles/PMC10456630/ /pubmed/37629975 http://dx.doi.org/10.3390/ma16165684 Text en © 2023 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
Żaba, Krzysztof
Trzepieciński, Tomasz
Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug
title Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug
title_full Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug
title_fullStr Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug
title_full_unstemmed Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug
title_short Cold Drawing of AISI 321 Stainless Steel Thin-Walled Seamless Tubes on a Floating Plug
title_sort cold drawing of aisi 321 stainless steel thin-walled seamless tubes on a floating plug
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456630/
https://www.ncbi.nlm.nih.gov/pubmed/37629975
http://dx.doi.org/10.3390/ma16165684
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