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Title:Unravelling the intricacies of micro-nonuniform heating in field-assisted sintering of multiphase metallic microstructures
Authors:ID Tomše, Tomaž, Institut "Jožef Stefan" (Author)
ID Podmiljšak, Benjamin, Institut "Jožef Stefan" (Author)
ID Scherf, Lavinia (Author)
ID Kessler, Reto (Author)
ID Kobe, Spomenka, Institut "Jožef Stefan" (Author)
ID Kocjan, Andraž, Institut "Jožef Stefan" (Author)
ID Šturm, Sašo, Institut "Jožef Stefan" (Author)
ID Žužek Rožman, Kristina, Institut "Jožef Stefan" (Author)
Files:.pdf PDF - Presentation file, download (4,68 MB)
MD5: 19E3B6B82DB05EE6DD0C818BBA826DEF
 
Language:English
Typology:1.01 - Original Scientific Article
Organization:Logo IJS - Jožef Stefan Institute
Abstract:Micro-nonuniform heating in the field-assisted sintering (FAST) of electrically conductive powders has been a topic of discussion in the materials science community. Microstructural specifics, such as neck formation at low consolidation temperatures and density variations, have previously been ascribed to local overheating at the particle-particle contacts due to the Joule effect. However, recent theoretical modelling studies suggest that the very fast diffusion of heat within the micron-sized particles prevents the overheating, thereby challenging the conventional understanding of FAST-related heating effects. To provide a new experimental perspective on the local overheating and underscore its pivotal role in controlling the microstructure formation, we have studied the phase transformations in a Nd-Fe-B-type multiphase metallic powder during FAST. The formation of the α-Fe phase, following the peritectic decomposition of the Nd2Fe14B matrix phase expected at ≈1180 ◦C (TPER), was observed for FAST temperatures (TFAST) below TPER. A correlation between the electric current and the final phase composition, which can only be explained by considering the local overheating effect, was established. We showed that the formation of the α-Fe phase at TFAST < TPER can be mitigated by (i) decreasing the electric current through the sample, which is achieved by lowering the heating rate from 100 to 10 ◦C/min or by using electrically highly conductive pressing tools (WC) and a non-conductive coating (BN), or by (ii) interparticle necking achieved through a thermal pre-treatment of the powder compact that decreases the overall resistance. Our findings emphasize the criticality of the electric current modulation to minimize any undesired phase transformation, paving the way for future developments in rapid, FAST-based strategies aimed at refining the microstructures and tailoring the properties of multiphase metallic materials
Publication status:Published
Publication version:Version of Record
Submitted for review:16.01.2024
Article acceptance date:07.08.2024
Publication date:09.04.2024
Publisher:Elsevier
Year of publishing:2024
Number of pages:10 str.
Numbering:Vol. 328, Art. 118405
Source:Nizozemska
PID:20.500.12556/DiRROS-21796 New window
UDC:539
ISSN on article:0924-0136
DOI:10.1016/j.jmatprotec.2024.118405 New window
COBISS.SI-ID:192379395 New window
Copyright:© 2024 The Authors.
Publication date in DiRROS:28.03.2025
Views:671
Downloads:193
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Record is a part of a journal

Title:Journal of materials processing technology
Shortened title:J. mater. process. technol.
Publisher:Elsevier
ISSN:0924-0136
COBISS.SI-ID:30105600 New window

Document is financed by a project

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:P2-0084
Name:Nanostrukturni materiali

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:Z2-2645
Name:Razvoj tehnike hitrega radiacijskega sintranja za izdelavo naprednih večkomponentnih trajnih magnetov tipa Nd-Fe-B brez izmeta in z zmanjšano vsebnostjo kritičnih surovin

Funder:EIT RAW Materials
Project number:21043
Name:Grain boundaries engineered Nd-Fe-B permanent magnets
Acronym:RECO2MAG

Funder:EC - European Commission
Funding programme:HE
Project number:101058598
Name:Resilient and sustainable critical raw materials REE supply chains for the e-mobility and renewable energy ecosystems and strategic sectors
Acronym:REESilience

Licences

License:CC BY 4.0, Creative Commons Attribution 4.0 International
Link:http://creativecommons.org/licenses/by/4.0/
Description:This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.
Licensing start date:09.04.2024
Applies to:VoR

Secondary language

Language:Slovenian
Keywords:mikro ogrevanje, vroče točke, mikrostrukture


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