Machining Behaviors and Surface Investigation on Udimet L-605 Alloy

This article is primarily concerned with the turning of Udimet L-605 alloy, which is crucial for a variety of applications, including the production of parts for the automotive, marine, and aircraft sectors. According to the researchers’ recommendation, dry machining was preferable for this machinin...

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Main Authors: S. Paulsingarayar, S.J.D.V. Kumar, S. Marichamy, K. Anandavelu
Format: Article
Language:English
Published: Polish Academy of Sciences 2025-03-01
Series:Archives of Metallurgy and Materials
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Online Access:https://journals.pan.pl/Content/134544/AMM-2025-1-40-Paulsingarayar.pdf
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author S. Paulsingarayar
S.J.D.V. Kumar
S. Marichamy
K. Anandavelu
author_facet S. Paulsingarayar
S.J.D.V. Kumar
S. Marichamy
K. Anandavelu
author_sort S. Paulsingarayar
collection DOAJ
description This article is primarily concerned with the turning of Udimet L-605 alloy, which is crucial for a variety of applications, including the production of parts for the automotive, marine, and aircraft sectors. According to the researchers’ recommendation, dry machining was preferable for this machining, and the studies were conducted using a PVD-coated TiAlN-TiN tungsten carbide cutting tool insert. Depth of cut during the machining process is essential for enhancing surface smoothness and reducing tool wear during the turning process. Increased cutting zone temperature brought on by deeper cutting causes increased tool wear and subpar surface finish. In this study, a greater emphasis was placed on the surface morphology for the machined surface’s better and worse surface finishes. The peak and valley profiles created on the machined surface are mostly determined by kurtosis and skewness. The AFM study offered a clear indication of it. The average roughness of 34.77 nm was attained. Nearly 23% tool tip interface temperature was increased with increase of depth of cut.
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institution Kabale University
issn 2300-1909
language English
publishDate 2025-03-01
publisher Polish Academy of Sciences
record_format Article
series Archives of Metallurgy and Materials
spelling doaj-art-32fddccffe9f4e4a8b88cf065778fdbf2025-08-20T03:44:10ZengPolish Academy of SciencesArchives of Metallurgy and Materials2300-19092025-03-01vol. 70No 1351357https://doi.org/10.24425/amm.2025.152552Machining Behaviors and Surface Investigation on Udimet L-605 AlloyS. Paulsingarayar0https://orcid.org/0000-0002-3216-083XS.J.D.V. Kumar1https://orcid.org/0009-0006-5001-5878S. Marichamy2K. Anandavelu3Department of Mechanical Engineering, NPR College of Engineering and Technology, Natham, TamilnaduDepartment of Mechanical Engineering, SSM Institute of Engineering and Technology, Dindigul, TamilnaduDepartment of Mechanical Engineering, MRK Institute of Technology, Cuddalore, TamilnaduDepartment of Mechanical Engineering, MRK Institute of Technology, Cuddalore, TamilnaduThis article is primarily concerned with the turning of Udimet L-605 alloy, which is crucial for a variety of applications, including the production of parts for the automotive, marine, and aircraft sectors. According to the researchers’ recommendation, dry machining was preferable for this machining, and the studies were conducted using a PVD-coated TiAlN-TiN tungsten carbide cutting tool insert. Depth of cut during the machining process is essential for enhancing surface smoothness and reducing tool wear during the turning process. Increased cutting zone temperature brought on by deeper cutting causes increased tool wear and subpar surface finish. In this study, a greater emphasis was placed on the surface morphology for the machined surface’s better and worse surface finishes. The peak and valley profiles created on the machined surface are mostly determined by kurtosis and skewness. The AFM study offered a clear indication of it. The average roughness of 34.77 nm was attained. Nearly 23% tool tip interface temperature was increased with increase of depth of cut.https://journals.pan.pl/Content/134544/AMM-2025-1-40-Paulsingarayar.pdfudimet alloymachiningsurface morphologytool temperatureafm
spellingShingle S. Paulsingarayar
S.J.D.V. Kumar
S. Marichamy
K. Anandavelu
Machining Behaviors and Surface Investigation on Udimet L-605 Alloy
Archives of Metallurgy and Materials
udimet alloy
machining
surface morphology
tool temperature
afm
title Machining Behaviors and Surface Investigation on Udimet L-605 Alloy
title_full Machining Behaviors and Surface Investigation on Udimet L-605 Alloy
title_fullStr Machining Behaviors and Surface Investigation on Udimet L-605 Alloy
title_full_unstemmed Machining Behaviors and Surface Investigation on Udimet L-605 Alloy
title_short Machining Behaviors and Surface Investigation on Udimet L-605 Alloy
title_sort machining behaviors and surface investigation on udimet l 605 alloy
topic udimet alloy
machining
surface morphology
tool temperature
afm
url https://journals.pan.pl/Content/134544/AMM-2025-1-40-Paulsingarayar.pdf
work_keys_str_mv AT spaulsingarayar machiningbehaviorsandsurfaceinvestigationonudimetl605alloy
AT sjdvkumar machiningbehaviorsandsurfaceinvestigationonudimetl605alloy
AT smarichamy machiningbehaviorsandsurfaceinvestigationonudimetl605alloy
AT kanandavelu machiningbehaviorsandsurfaceinvestigationonudimetl605alloy