Numerical and experimental study of micro single point incremental forming process

Single-point incremental sheet forming (SPISF) is a die-less forming process with advantages of high-flexibility, low-cost and short lead time. Recently, micro components have been employed in many applications, especially in medical industry using as implant components, surgical tool and tooth cari...

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Main Authors: Zhang, J., Castagne, Sylvie, Song, Xu, Zhai, Wei, Taureza, Muhammad, Danno, Atsushi
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2018
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Online Access:https://hdl.handle.net/10356/89260
http://hdl.handle.net/10220/46202
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-892602023-03-04T17:17:03Z Numerical and experimental study of micro single point incremental forming process Zhang, J. Castagne, Sylvie Song, Xu Zhai, Wei Taureza, Muhammad Danno, Atsushi School of Mechanical and Aerospace Engineering A*STAR SIMTech Micro Forming Single Point Incremental Sheet Forming DRNTU::Engineering::Mechanical engineering Single-point incremental sheet forming (SPISF) is a die-less forming process with advantages of high-flexibility, low-cost and short lead time. Recently, micro components have been employed in many applications, especially in medical industry using as implant components, surgical tool and tooth caring accessories etc. Therefore, the reduction of component size to micro-domain has becoming one of the key elements for the development of SPISF technique, which will encounter many challenges, such as reduction of formability, tool wear, inaccuracies in tooling fabrication, etc. This work combined numerical and experimental approaches to study the deformation mechanisms in micro SPISF process. Aluminum 1145 soft-temper foils with thickness of 38.1 μm and 50.8 μm were employed. A truncated pyramid with variable half-apex angle was proposed here as the standard geometry for measuring the maximum forming angle that could be achieved in micro-SPISF process. The influence of process parameters on forming behavior was studied. The result shows that forming angle has direct link with material formability. A full tool path micro-SPISF model has been developed with various 3D element types. It suggests that incompatible mode eight-node brick element C3D8I is capable to capture the shape and thickness distribution of the formed parts with most accuracy and least computational time. The thickness distribution of the workpiece was compared with the Sine Law to unveil the additional stretch region appearing at the top edge of the formed feature in the micro SPISF as compared to macro SPISF. Published version 2018-10-03T05:41:43Z 2019-12-06T17:21:23Z 2018-10-03T05:41:43Z 2019-12-06T17:21:23Z 2017 Journal Article Song, X., Zhang, J., Zhai, W., Taureza, M., Castagne, S., & Danno, A. (2017). Numerical and experimental study of micro single point incremental forming process. Procedia Engineering, 207, 825-830. doi:10.1016/j.proeng.2017.10.836 1877-7058 https://hdl.handle.net/10356/89260 http://hdl.handle.net/10220/46202 10.1016/j.proeng.2017.10.836 en Procedia Engineering © 2017 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). 6 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Micro Forming
Single Point Incremental Sheet Forming
DRNTU::Engineering::Mechanical engineering
spellingShingle Micro Forming
Single Point Incremental Sheet Forming
DRNTU::Engineering::Mechanical engineering
Zhang, J.
Castagne, Sylvie
Song, Xu
Zhai, Wei
Taureza, Muhammad
Danno, Atsushi
Numerical and experimental study of micro single point incremental forming process
description Single-point incremental sheet forming (SPISF) is a die-less forming process with advantages of high-flexibility, low-cost and short lead time. Recently, micro components have been employed in many applications, especially in medical industry using as implant components, surgical tool and tooth caring accessories etc. Therefore, the reduction of component size to micro-domain has becoming one of the key elements for the development of SPISF technique, which will encounter many challenges, such as reduction of formability, tool wear, inaccuracies in tooling fabrication, etc. This work combined numerical and experimental approaches to study the deformation mechanisms in micro SPISF process. Aluminum 1145 soft-temper foils with thickness of 38.1 μm and 50.8 μm were employed. A truncated pyramid with variable half-apex angle was proposed here as the standard geometry for measuring the maximum forming angle that could be achieved in micro-SPISF process. The influence of process parameters on forming behavior was studied. The result shows that forming angle has direct link with material formability. A full tool path micro-SPISF model has been developed with various 3D element types. It suggests that incompatible mode eight-node brick element C3D8I is capable to capture the shape and thickness distribution of the formed parts with most accuracy and least computational time. The thickness distribution of the workpiece was compared with the Sine Law to unveil the additional stretch region appearing at the top edge of the formed feature in the micro SPISF as compared to macro SPISF.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Zhang, J.
Castagne, Sylvie
Song, Xu
Zhai, Wei
Taureza, Muhammad
Danno, Atsushi
format Article
author Zhang, J.
Castagne, Sylvie
Song, Xu
Zhai, Wei
Taureza, Muhammad
Danno, Atsushi
author_sort Zhang, J.
title Numerical and experimental study of micro single point incremental forming process
title_short Numerical and experimental study of micro single point incremental forming process
title_full Numerical and experimental study of micro single point incremental forming process
title_fullStr Numerical and experimental study of micro single point incremental forming process
title_full_unstemmed Numerical and experimental study of micro single point incremental forming process
title_sort numerical and experimental study of micro single point incremental forming process
publishDate 2018
url https://hdl.handle.net/10356/89260
http://hdl.handle.net/10220/46202
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