Analysis of laser sintered materials using finite element method

Invention of milling combined laser sintering system (MLSS) is able to reduce the mould manufacturing time and improve the mould accuracy. Thus, more study is needed to increase the understanding for the laser sintered material machining characteristic to gain benefit from the invention of MLSS. Thi...

Full description

Saved in:
Bibliographic Details
Main Authors: Ahmad Shahir Jamaludin,, Abdullah Yassin,
Format: Article
Language:English
Published: Universiti Kebangsaan Malaysia 2013
Online Access:http://journalarticle.ukm.my/6682/1/06_Ahmad_Shahir.pdf
http://journalarticle.ukm.my/6682/
http://www.ukm.my/jsm/
Tags: Add Tag
No Tags, Be the first to tag this record!
id my-ukm.journal.6682
record_format eprints
spelling my-ukm.journal.66822016-12-14T06:41:54Z http://journalarticle.ukm.my/6682/ Analysis of laser sintered materials using finite element method Ahmad Shahir Jamaludin, Abdullah Yassin, Invention of milling combined laser sintering system (MLSS) is able to reduce the mould manufacturing time and improve the mould accuracy. Thus, more study is needed to increase the understanding for the laser sintered material machining characteristic to gain benefit from the invention of MLSS. This paper clarified the analysis of laser sintered material machinability with the application of Finite Element Method (FEM). Mild steel AISI1055 was applied in developing the Finite Element model in this study due to its popularity in machinability test and adequate level of data availability. 2D orthogonal cutting was employed on edge design tools with updated Lagrangian coupled thermo mechanical plane strain model. Adaptive meshing, tool edge radius and various types of friction models were assigned to obtain efficient simulations and precise cutting results. Cutting force and cutting-edge temperature estimated by Finite Element Method are validated against corresponding experimental values by previous researchers. In the study, cutting force increases when radial depth increases and lowest error acquired when the shear friction factor of 0.8 was applied. Machining simulation for laser sintered materials estimated lower cutting force compared with mild steel AISI1055 due to lower Young modulus. Higher cutting temperature estimated for machining simulation laser sintered material compared with machining simulation mild steel AISI1055 due to its low thermal conductivity. Universiti Kebangsaan Malaysia 2013-12 Article PeerReviewed application/pdf en http://journalarticle.ukm.my/6682/1/06_Ahmad_Shahir.pdf Ahmad Shahir Jamaludin, and Abdullah Yassin, (2013) Analysis of laser sintered materials using finite element method. Sains Malaysiana, 42 (12). pp. 1727-1733. ISSN 0126-6039 http://www.ukm.my/jsm/
institution Universiti Kebangsaan Malaysia
building Perpustakaan Tun Sri Lanang Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Kebangsaan Malaysia
content_source UKM Journal Article Repository
url_provider http://journalarticle.ukm.my/
language English
description Invention of milling combined laser sintering system (MLSS) is able to reduce the mould manufacturing time and improve the mould accuracy. Thus, more study is needed to increase the understanding for the laser sintered material machining characteristic to gain benefit from the invention of MLSS. This paper clarified the analysis of laser sintered material machinability with the application of Finite Element Method (FEM). Mild steel AISI1055 was applied in developing the Finite Element model in this study due to its popularity in machinability test and adequate level of data availability. 2D orthogonal cutting was employed on edge design tools with updated Lagrangian coupled thermo mechanical plane strain model. Adaptive meshing, tool edge radius and various types of friction models were assigned to obtain efficient simulations and precise cutting results. Cutting force and cutting-edge temperature estimated by Finite Element Method are validated against corresponding experimental values by previous researchers. In the study, cutting force increases when radial depth increases and lowest error acquired when the shear friction factor of 0.8 was applied. Machining simulation for laser sintered materials estimated lower cutting force compared with mild steel AISI1055 due to lower Young modulus. Higher cutting temperature estimated for machining simulation laser sintered material compared with machining simulation mild steel AISI1055 due to its low thermal conductivity.
format Article
author Ahmad Shahir Jamaludin,
Abdullah Yassin,
spellingShingle Ahmad Shahir Jamaludin,
Abdullah Yassin,
Analysis of laser sintered materials using finite element method
author_facet Ahmad Shahir Jamaludin,
Abdullah Yassin,
author_sort Ahmad Shahir Jamaludin,
title Analysis of laser sintered materials using finite element method
title_short Analysis of laser sintered materials using finite element method
title_full Analysis of laser sintered materials using finite element method
title_fullStr Analysis of laser sintered materials using finite element method
title_full_unstemmed Analysis of laser sintered materials using finite element method
title_sort analysis of laser sintered materials using finite element method
publisher Universiti Kebangsaan Malaysia
publishDate 2013
url http://journalarticle.ukm.my/6682/1/06_Ahmad_Shahir.pdf
http://journalarticle.ukm.my/6682/
http://www.ukm.my/jsm/
_version_ 1643736855233953792
score 13.214268