Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product

This research investigates the effect of different types of hot gas atomisation (argon, nitrogen and oxygen) and melting pot temperatures on the particle size distribution, microstructure, density and phase of tin alloy (Sn-Cu-Ni-Ge) powder products. The tin alloy powder produced by hot argon ga...

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Main Authors: Basyir, Abdul, Kurnia, Robby, Cherly Firdharini, Aryanto, Didik, Widayatno, Wahyu Bambang, Wismogroho, Agus Sukarto
Format: Article
Language:English
Published: Penerbit Universiti Kebangsaan Malaysia 2022
Online Access:http://journalarticle.ukm.my/20655/1/23.pdf
http://journalarticle.ukm.my/20655/
https://www.ukm.my/jsm/malay_journals/jilid51bil9_2022/KandunganJilid51Bil9_2022.html
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Institution: Universiti Kebangsaan Malaysia
Language: English
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spelling my-ukm.journal.206552022-12-07T00:44:53Z http://journalarticle.ukm.my/20655/ Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product Basyir, Abdul Kurnia, Robby Cherly Firdharini, Aryanto, Didik Widayatno, Wahyu Bambang Wismogroho, Agus Sukarto This research investigates the effect of different types of hot gas atomisation (argon, nitrogen and oxygen) and melting pot temperatures on the particle size distribution, microstructure, density and phase of tin alloy (Sn-Cu-Ni-Ge) powder products. The tin alloy powder produced by hot argon gas atomisation had the greatest density (7.84 g/cm3 ) and the most spherical shape. While the tin alloy powder generated by hot oxygen gas atomisation had the lowest density (6.83 g/cm3 ), the highest endothermic area (60.41695 area unit) and the most elongated, irregular shape. Hot argon and nitrogen gas atomisation at a melting pot temperature of 800 °C produced a higher yield of 0-25 µm powder than at 700 °C. By contrast, hot oxygen atomisation produced the opposite result. However, all the powder products prepared at 800 °C had a higher spherical shape ratio in the range of 0-25 µm. Tin alloy powder produced by hot oxygen gas atomisation comprised only the elements of Sn and Cu, while the powder generated by hot argon and nitrogen gas atomisation consisted of elements such as the ingot of this powder. Penerbit Universiti Kebangsaan Malaysia 2022-09 Article PeerReviewed application/pdf en http://journalarticle.ukm.my/20655/1/23.pdf Basyir, Abdul and Kurnia, Robby and Cherly Firdharini, and Aryanto, Didik and Widayatno, Wahyu Bambang and Wismogroho, Agus Sukarto (2022) Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product. Sains Malaysiana, 51 (9). pp. 3027-3041. ISSN 0126-6039 https://www.ukm.my/jsm/malay_journals/jilid51bil9_2022/KandunganJilid51Bil9_2022.html
institution Universiti Kebangsaan Malaysia
building 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 This research investigates the effect of different types of hot gas atomisation (argon, nitrogen and oxygen) and melting pot temperatures on the particle size distribution, microstructure, density and phase of tin alloy (Sn-Cu-Ni-Ge) powder products. The tin alloy powder produced by hot argon gas atomisation had the greatest density (7.84 g/cm3 ) and the most spherical shape. While the tin alloy powder generated by hot oxygen gas atomisation had the lowest density (6.83 g/cm3 ), the highest endothermic area (60.41695 area unit) and the most elongated, irregular shape. Hot argon and nitrogen gas atomisation at a melting pot temperature of 800 °C produced a higher yield of 0-25 µm powder than at 700 °C. By contrast, hot oxygen atomisation produced the opposite result. However, all the powder products prepared at 800 °C had a higher spherical shape ratio in the range of 0-25 µm. Tin alloy powder produced by hot oxygen gas atomisation comprised only the elements of Sn and Cu, while the powder generated by hot argon and nitrogen gas atomisation consisted of elements such as the ingot of this powder.
format Article
author Basyir, Abdul
Kurnia, Robby
Cherly Firdharini,
Aryanto, Didik
Widayatno, Wahyu Bambang
Wismogroho, Agus Sukarto
spellingShingle Basyir, Abdul
Kurnia, Robby
Cherly Firdharini,
Aryanto, Didik
Widayatno, Wahyu Bambang
Wismogroho, Agus Sukarto
Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
author_facet Basyir, Abdul
Kurnia, Robby
Cherly Firdharini,
Aryanto, Didik
Widayatno, Wahyu Bambang
Wismogroho, Agus Sukarto
author_sort Basyir, Abdul
title Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
title_short Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
title_full Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
title_fullStr Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
title_full_unstemmed Investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
title_sort investigation of effect of various hot gas atomisation and melting pot temperatures on tin alloy powder product
publisher Penerbit Universiti Kebangsaan Malaysia
publishDate 2022
url http://journalarticle.ukm.my/20655/1/23.pdf
http://journalarticle.ukm.my/20655/
https://www.ukm.my/jsm/malay_journals/jilid51bil9_2022/KandunganJilid51Bil9_2022.html
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