Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process
Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming process which induced severe plastic deformation (SPD) for the production of bulk ultrafine-grained metals. This research used Titanium CP Grade 2 and Aluminum Alloy 6061 to investigate the microstructure a...
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ump-176922018-07-16T08:24:42Z http://umpir.ump.edu.my/id/eprint/17692/ Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process M. A. H., Abu Hassan Dayangku Noorfazidah, Awang Shri TJ Mechanical engineering and machinery Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming process which induced severe plastic deformation (SPD) for the production of bulk ultrafine-grained metals. This research used Titanium CP Grade 2 and Aluminum Alloy 6061 to investigate the microstructure and mechanical properties of both materials after ECAP process. The materials were extruded through die channel angle of 126º internal and 10º external under pressure of 60 bar. The result shows that there is significant increase in grain refinement and hardness after ECAP process for both of the materials. 2017 Conference or Workshop Item PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/17692/1/Microstructure%20and%20Mechanical%20Properties%20of%20Metals%20Subjected%20to%20Equal%20Channel%20Angular%20Pressing%20%28ECAP%29%20Process.pdf M. A. H., Abu Hassan and Dayangku Noorfazidah, Awang Shri (2017) Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process. In: Mechanical Engineering Research Day 2017, 30 Mac 2017 , Perpustakaan UTEM. pp. 1-2.. (Unpublished) |
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Universiti Malaysia Pahang |
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Online Access |
language |
English |
topic |
TJ Mechanical engineering and machinery |
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TJ Mechanical engineering and machinery M. A. H., Abu Hassan Dayangku Noorfazidah, Awang Shri Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process |
description |
Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming process which induced severe plastic deformation (SPD) for the production of bulk ultrafine-grained metals. This research used Titanium CP Grade 2 and Aluminum Alloy 6061 to investigate the microstructure and mechanical properties of both materials after ECAP process. The materials were extruded through die channel angle of 126º internal and 10º external under pressure of 60 bar. The result shows that there is significant increase in grain refinement and hardness after ECAP process for both of the materials. |
format |
Conference or Workshop Item |
author |
M. A. H., Abu Hassan Dayangku Noorfazidah, Awang Shri |
author_facet |
M. A. H., Abu Hassan Dayangku Noorfazidah, Awang Shri |
author_sort |
M. A. H., Abu Hassan |
title |
Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process |
title_short |
Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process |
title_full |
Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process |
title_fullStr |
Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process |
title_full_unstemmed |
Microstructure and Mechanical Properties of Metals Subjected to Equal Channel Angular Pressing (ECAP) Process |
title_sort |
microstructure and mechanical properties of metals subjected to equal channel angular pressing (ecap) process |
publishDate |
2017 |
url |
http://umpir.ump.edu.my/id/eprint/17692/ http://umpir.ump.edu.my/id/eprint/17692/1/Microstructure%20and%20Mechanical%20Properties%20of%20Metals%20Subjected%20to%20Equal%20Channel%20Angular%20Pressing%20%28ECAP%29%20Process.pdf |
first_indexed |
2023-09-18T22:24:35Z |
last_indexed |
2023-09-18T22:24:35Z |
_version_ |
1777415880814100480 |