Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy
Elemental titanium (Ti) and nickel (Ni) powders were consolidated by spark plasma sintering (SPS) to fabricate Ti–51%Ni (mole fraction) shape-memory alloys (SMAs). The objective of this study is to enhance the superelasticity of SPS produced Ti–Ni alloy using free forging as a secondary process. Pro...
Saved in:
Main Authors: | , , , , , , , |
---|---|
Format: | Article |
Published: |
Elsevier
2018
|
Subjects: | |
Online Access: | http://eprints.um.edu.my/22375/ https://doi.org/10.1016/S1003-6326(18)64683-7 |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
Institution: | Universiti Malaya |
id |
my.um.eprints.22375 |
---|---|
record_format |
eprints |
spelling |
my.um.eprints.223752019-09-17T06:44:36Z http://eprints.um.edu.my/22375/ Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy Bahador, Abdollah Hamzah, Esah Kondoh, Katsuyoshi Asma Abubakar, Tuty Yusof, Farazila Umeda, Junko Saud, Safaa N. Ibrahim, Mustafa K. TJ Mechanical engineering and machinery Elemental titanium (Ti) and nickel (Ni) powders were consolidated by spark plasma sintering (SPS) to fabricate Ti–51%Ni (mole fraction) shape-memory alloys (SMAs). The objective of this study is to enhance the superelasticity of SPS produced Ti–Ni alloy using free forging as a secondary process. Products from two processes (with and without free forging) were compared in terms of microstructure, transformation temperature and superelasticity. The results showed that, free forging effectively improved the tensile and shape-memory properties. Ductility increased from 6.8% to 9.2% after forging. The maximum strain during superelasticity increased from 5% to 7.5% and the strain recovery rate increased from 72% to 92%. The microstructure of produced Ti–51%Ni SMA consists of the cubic austenite (B2) matrix, monoclinic martensite (B19′), secondary phases (Ti3Ni4, Ti2Ni and TiNi3) and oxides (Ti4Ni2O and Ti3O5). There was a shift towards higher temperatures in the martensitic transformation of free forged specimen (aged at 500 °C) due to the decrease in Ni content of B2 matrix. This is related to the presence of Ti3Ni4 precipitates, which were observed using transmission electron microscope (TEM). In conclusion, free forging could improve superelasticity and mechanical properties of Ti–51%Ni SMA. Elsevier 2018 Article PeerReviewed Bahador, Abdollah and Hamzah, Esah and Kondoh, Katsuyoshi and Asma Abubakar, Tuty and Yusof, Farazila and Umeda, Junko and Saud, Safaa N. and Ibrahim, Mustafa K. (2018) Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy. Transactions of Nonferrous Metals Society of China, 28 (3). pp. 502-514. ISSN 1003-6326 https://doi.org/10.1016/S1003-6326(18)64683-7 doi:10.1016/S1003-6326(18)64683-7 |
institution |
Universiti Malaya |
building |
UM Library |
collection |
Institutional Repository |
continent |
Asia |
country |
Malaysia |
content_provider |
Universiti Malaya |
content_source |
UM Research Repository |
url_provider |
http://eprints.um.edu.my/ |
topic |
TJ Mechanical engineering and machinery |
spellingShingle |
TJ Mechanical engineering and machinery Bahador, Abdollah Hamzah, Esah Kondoh, Katsuyoshi Asma Abubakar, Tuty Yusof, Farazila Umeda, Junko Saud, Safaa N. Ibrahim, Mustafa K. Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy |
description |
Elemental titanium (Ti) and nickel (Ni) powders were consolidated by spark plasma sintering (SPS) to fabricate Ti–51%Ni (mole fraction) shape-memory alloys (SMAs). The objective of this study is to enhance the superelasticity of SPS produced Ti–Ni alloy using free forging as a secondary process. Products from two processes (with and without free forging) were compared in terms of microstructure, transformation temperature and superelasticity. The results showed that, free forging effectively improved the tensile and shape-memory properties. Ductility increased from 6.8% to 9.2% after forging. The maximum strain during superelasticity increased from 5% to 7.5% and the strain recovery rate increased from 72% to 92%. The microstructure of produced Ti–51%Ni SMA consists of the cubic austenite (B2) matrix, monoclinic martensite (B19′), secondary phases (Ti3Ni4, Ti2Ni and TiNi3) and oxides (Ti4Ni2O and Ti3O5). There was a shift towards higher temperatures in the martensitic transformation of free forged specimen (aged at 500 °C) due to the decrease in Ni content of B2 matrix. This is related to the presence of Ti3Ni4 precipitates, which were observed using transmission electron microscope (TEM). In conclusion, free forging could improve superelasticity and mechanical properties of Ti–51%Ni SMA. |
format |
Article |
author |
Bahador, Abdollah Hamzah, Esah Kondoh, Katsuyoshi Asma Abubakar, Tuty Yusof, Farazila Umeda, Junko Saud, Safaa N. Ibrahim, Mustafa K. |
author_facet |
Bahador, Abdollah Hamzah, Esah Kondoh, Katsuyoshi Asma Abubakar, Tuty Yusof, Farazila Umeda, Junko Saud, Safaa N. Ibrahim, Mustafa K. |
author_sort |
Bahador, Abdollah |
title |
Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy |
title_short |
Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy |
title_full |
Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy |
title_fullStr |
Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy |
title_full_unstemmed |
Microstructure and superelastic properties of free forged Ti–Ni shape-memory alloy |
title_sort |
microstructure and superelastic properties of free forged ti–ni shape-memory alloy |
publisher |
Elsevier |
publishDate |
2018 |
url |
http://eprints.um.edu.my/22375/ https://doi.org/10.1016/S1003-6326(18)64683-7 |
_version_ |
1646210223367520256 |