Orthogonal cutting study of the micro-cutting thin workpiece

With a broader intention of producing thin sheet embossing molds, results from investigations in orthogonal cutting of thin workpieces are presented here. Challenges in machining thin workpieces are many: residual stress effects, fixturing challenges, and substrate effects. Aluminum alloy Al6061-T6...

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Main Authors: Saptaji, Kushendarsyah, Subbiah, Sathyan
Other Authors: School of Mechanical and Aerospace Engineering
Format: Conference or Workshop Item
Language:English
Published: 2014
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Online Access:https://hdl.handle.net/10356/100168
http://hdl.handle.net/10220/24097
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1001682020-03-07T13:26:33Z Orthogonal cutting study of the micro-cutting thin workpiece Saptaji, Kushendarsyah Subbiah, Sathyan School of Mechanical and Aerospace Engineering ASME 2011 International Manufacturing Science and Engineering Conference DRNTU::Engineering::Manufacturing::Product engineering With a broader intention of producing thin sheet embossing molds, results from investigations in orthogonal cutting of thin workpieces are presented here. Challenges in machining thin workpieces are many: residual stress effects, fixturing challenges, and substrate effects. Aluminum alloy Al6061-T6 workpiece fixture using an adhesive is orthogonally cut with a single crystal diamond tool. We study trends in cutting forces, understand to what level of thickness we can machine the workpiece down to and in what the form the adhesive fails. Two types of workpiese-adhesive anomalies were noticed. One is the detachment of the thin workpiece by peel-off and the other one is where the workpiece did not get detached but the final width of the workpiece was non-uniform. We then use a validated finite element machining model to understand the stresses in the workpiece when it is thick and when machined to thin condition, effect of the adhesive itself and also the effect of adhesive thickness. Simulations show that the stress induced by the cutting process at the bottom of the workpiece is higher for the thinner workpiece (40 μm) compare to a thicker workpiece (400 μm) especially at the tool entrance region for adhesive thicknesses of 30 μm and 100 μm. Hence a thinner workpiece is more susceptible to failure by adhesive peeling. 2014-10-21T08:12:06Z 2019-12-06T20:17:44Z 2014-10-21T08:12:06Z 2019-12-06T20:17:44Z 2011 2011 Conference Paper Saptaji, K., & Subbiah, S. (2011). Orthogonal cutting study of the micro-cutting thin workpiece. ASME 2011 International Manufacturing Science and Engineering Conference, 2, 393-402. https://hdl.handle.net/10356/100168 http://hdl.handle.net/10220/24097 10.1115/MSEC2011-50256 en © 2011 ASME.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Manufacturing::Product engineering
spellingShingle DRNTU::Engineering::Manufacturing::Product engineering
Saptaji, Kushendarsyah
Subbiah, Sathyan
Orthogonal cutting study of the micro-cutting thin workpiece
description With a broader intention of producing thin sheet embossing molds, results from investigations in orthogonal cutting of thin workpieces are presented here. Challenges in machining thin workpieces are many: residual stress effects, fixturing challenges, and substrate effects. Aluminum alloy Al6061-T6 workpiece fixture using an adhesive is orthogonally cut with a single crystal diamond tool. We study trends in cutting forces, understand to what level of thickness we can machine the workpiece down to and in what the form the adhesive fails. Two types of workpiese-adhesive anomalies were noticed. One is the detachment of the thin workpiece by peel-off and the other one is where the workpiece did not get detached but the final width of the workpiece was non-uniform. We then use a validated finite element machining model to understand the stresses in the workpiece when it is thick and when machined to thin condition, effect of the adhesive itself and also the effect of adhesive thickness. Simulations show that the stress induced by the cutting process at the bottom of the workpiece is higher for the thinner workpiece (40 μm) compare to a thicker workpiece (400 μm) especially at the tool entrance region for adhesive thicknesses of 30 μm and 100 μm. Hence a thinner workpiece is more susceptible to failure by adhesive peeling.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Saptaji, Kushendarsyah
Subbiah, Sathyan
format Conference or Workshop Item
author Saptaji, Kushendarsyah
Subbiah, Sathyan
author_sort Saptaji, Kushendarsyah
title Orthogonal cutting study of the micro-cutting thin workpiece
title_short Orthogonal cutting study of the micro-cutting thin workpiece
title_full Orthogonal cutting study of the micro-cutting thin workpiece
title_fullStr Orthogonal cutting study of the micro-cutting thin workpiece
title_full_unstemmed Orthogonal cutting study of the micro-cutting thin workpiece
title_sort orthogonal cutting study of the micro-cutting thin workpiece
publishDate 2014
url https://hdl.handle.net/10356/100168
http://hdl.handle.net/10220/24097
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