Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie

This paper proposed to design a nanoindentation system with the intention to identify material properties without spalling. The system is designed to perform simulation based on the load-depth curve data collected from NanoTestTM. The hardness results are compared with Brinell hardness test and...

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Main Authors: Teo, Adrian Wei Hong, Yeap, Gik Hong, Loo, Wei Jie
Format: Article
Language:English
Published: UiTM Press 2015
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Online Access:https://ir.uitm.edu.my/id/eprint/62980/1/62980.pdf
https://ir.uitm.edu.my/id/eprint/62980/
https://jeesr.uitm.edu.my/v1/
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spelling my.uitm.ir.629802022-06-28T09:43:41Z https://ir.uitm.edu.my/id/eprint/62980/ Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie Teo, Adrian Wei Hong Yeap, Gik Hong Loo, Wei Jie TJ Mechanical engineering and machinery This paper proposed to design a nanoindentation system with the intention to identify material properties without spalling. The system is designed to perform simulation based on the load-depth curve data collected from NanoTestTM. The hardness results are compared with Brinell hardness test and NanoTestTM for the same materials; i.e. brass, mild steel, aluminium and copper. Oliver-Pharr and Joslin-Oliver methods are selected to measure the material properties. Both selected methods require indentation load, impression area and depth to fulfil the material properties calculation while these signals are collected through a displacement sensor and an actuator. The results collected indicate that the spall of material rate, which can be reduced by decreasing the indentation load while maintaining the indentation depth at a longer dwell time. The theoretical simulation result of Joslin-Oliver method which neglects substrate effect acquired an average error rate of 7.823% whereas Oliver-Pharr method acquired an average error rate of 6.355%, both with comparison against NanoTestTM machine. The experiments have been performed using same materials; i.e. brass, aluminium, copper and mild steel. UiTM Press 2015-12 Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/62980/1/62980.pdf Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie. (2015) Journal of Electrical and Electronic Systems Research (JEESR), 8: 3. pp. 16-22. ISSN 1985-5389 https://jeesr.uitm.edu.my/v1/
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Teo, Adrian Wei Hong
Yeap, Gik Hong
Loo, Wei Jie
Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie
description This paper proposed to design a nanoindentation system with the intention to identify material properties without spalling. The system is designed to perform simulation based on the load-depth curve data collected from NanoTestTM. The hardness results are compared with Brinell hardness test and NanoTestTM for the same materials; i.e. brass, mild steel, aluminium and copper. Oliver-Pharr and Joslin-Oliver methods are selected to measure the material properties. Both selected methods require indentation load, impression area and depth to fulfil the material properties calculation while these signals are collected through a displacement sensor and an actuator. The results collected indicate that the spall of material rate, which can be reduced by decreasing the indentation load while maintaining the indentation depth at a longer dwell time. The theoretical simulation result of Joslin-Oliver method which neglects substrate effect acquired an average error rate of 7.823% whereas Oliver-Pharr method acquired an average error rate of 6.355%, both with comparison against NanoTestTM machine. The experiments have been performed using same materials; i.e. brass, aluminium, copper and mild steel.
format Article
author Teo, Adrian Wei Hong
Yeap, Gik Hong
Loo, Wei Jie
author_facet Teo, Adrian Wei Hong
Yeap, Gik Hong
Loo, Wei Jie
author_sort Teo, Adrian Wei Hong
title Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie
title_short Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie
title_full Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie
title_fullStr Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie
title_full_unstemmed Nanoindentation system for material properties identification / Teo Adrian Wei Hong, Yeap Gik Hong and Loo Wei Jie
title_sort nanoindentation system for material properties identification / teo adrian wei hong, yeap gik hong and loo wei jie
publisher UiTM Press
publishDate 2015
url https://ir.uitm.edu.my/id/eprint/62980/1/62980.pdf
https://ir.uitm.edu.my/id/eprint/62980/
https://jeesr.uitm.edu.my/v1/
_version_ 1738513995880464384
score 13.209306