Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering

High-brightness and high-power laser welding with different welding speeds and laser powers was applied to join Ti51 at%Ni shape-memory alloy, which was fabricated from the elemental pure Ti and pure Ni powders by spark-plasma sintering. Dendritic microstructures were observed in all the welds excep...

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Main Authors: Bahador, Abdollah, Hamzah, Esah, Kondoh, Katsuyoshi, Tsutsumi, Seiichiro, Umeda, Junko, Abu Bakar, Tuty Asma, Yusof, Farazila
Format: Article
Published: Nihon Kinzoku Gakkai 2018
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Online Access:http://eprints.um.edu.my/22374/
https://doi.org/10.2320/matertrans.M2017387
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spelling my.um.eprints.223742019-09-17T06:41:04Z http://eprints.um.edu.my/22374/ Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering Bahador, Abdollah Hamzah, Esah Kondoh, Katsuyoshi Tsutsumi, Seiichiro Umeda, Junko Abu Bakar, Tuty Asma Yusof, Farazila TJ Mechanical engineering and machinery High-brightness and high-power laser welding with different welding speeds and laser powers was applied to join Ti51 at%Ni shape-memory alloy, which was fabricated from the elemental pure Ti and pure Ni powders by spark-plasma sintering. Dendritic microstructures were observed in all the welds except the heat-conduction-type weld with the minimum welding parameters. In addition, the weld seam consisted of equiaxial grains surrounded by a narrow dendritic region. Based on the micro-X-ray diffraction pattern, in the keyhole-type welding, the martensite phase declined on increasing laser power and welding speed. Abnormal peak intensities were detected for (211) in the heat-conduction weld and (200) in the keyhole weld. Differential scanning calorimetry results revealed that phase transformation peaks of the conduction-type weld seam were similar to the base metal of Ti51 at%Ni SMA, whereas the corresponding peaks of the phase transformation in the other weld seams shifted towards lower temperatures due to Ni depletion in the matrix, grain coarsening and residual stress. Therefore, the findings suggest that heat-conduction-type can be a promising method for surface treatment of TiNi SMAs with minimum effect on the microstructure and shape memory properties. Nihon Kinzoku Gakkai 2018 Article PeerReviewed Bahador, Abdollah and Hamzah, Esah and Kondoh, Katsuyoshi and Tsutsumi, Seiichiro and Umeda, Junko and Abu Bakar, Tuty Asma and Yusof, Farazila (2018) Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering. Materials transactions, 59 (5). pp. 835-842. ISSN 1347-5320 https://doi.org/10.2320/matertrans.M2017387 doi:10.2320/matertrans.M2017387
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
Tsutsumi, Seiichiro
Umeda, Junko
Abu Bakar, Tuty Asma
Yusof, Farazila
Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering
description High-brightness and high-power laser welding with different welding speeds and laser powers was applied to join Ti51 at%Ni shape-memory alloy, which was fabricated from the elemental pure Ti and pure Ni powders by spark-plasma sintering. Dendritic microstructures were observed in all the welds except the heat-conduction-type weld with the minimum welding parameters. In addition, the weld seam consisted of equiaxial grains surrounded by a narrow dendritic region. Based on the micro-X-ray diffraction pattern, in the keyhole-type welding, the martensite phase declined on increasing laser power and welding speed. Abnormal peak intensities were detected for (211) in the heat-conduction weld and (200) in the keyhole weld. Differential scanning calorimetry results revealed that phase transformation peaks of the conduction-type weld seam were similar to the base metal of Ti51 at%Ni SMA, whereas the corresponding peaks of the phase transformation in the other weld seams shifted towards lower temperatures due to Ni depletion in the matrix, grain coarsening and residual stress. Therefore, the findings suggest that heat-conduction-type can be a promising method for surface treatment of TiNi SMAs with minimum effect on the microstructure and shape memory properties.
format Article
author Bahador, Abdollah
Hamzah, Esah
Kondoh, Katsuyoshi
Tsutsumi, Seiichiro
Umeda, Junko
Abu Bakar, Tuty Asma
Yusof, Farazila
author_facet Bahador, Abdollah
Hamzah, Esah
Kondoh, Katsuyoshi
Tsutsumi, Seiichiro
Umeda, Junko
Abu Bakar, Tuty Asma
Yusof, Farazila
author_sort Bahador, Abdollah
title Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering
title_short Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering
title_full Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering
title_fullStr Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering
title_full_unstemmed Heat-Conduction-Type and Keyhole-Type Laser Welding of Ti–Ni Shape-Memory Alloys Processed by Spark-Plasma Sintering
title_sort heat-conduction-type and keyhole-type laser welding of ti–ni shape-memory alloys processed by spark-plasma sintering
publisher Nihon Kinzoku Gakkai
publishDate 2018
url http://eprints.um.edu.my/22374/
https://doi.org/10.2320/matertrans.M2017387
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score 13.18916