High-energy ball milling and spark plasma sintering of molybdenum - lanthanum oxide (Mo-La2O3) and molybdenum - lanthanum zirconate (Mo-La2Zr2O7) composite powders
Authors/Creators
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Čelko, Ladislav
(Project leader)1, 2
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Tkachenko, Serhii
(Researcher)1, 2
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Casas Luna, Mariano
(Researcher)1, 3
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Dyčková, Lucie
(Researcher)1, 2
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Bednaříková, Vendula
(Researcher)1, 2
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Remešová, Michaela
(Researcher)1, 2
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Komarov, Pavel
(Researcher)1, 2
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Deák, Andrea
(Researcher)4
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Balaz, Matej
(Researcher)5, 6
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Crawford, Deborah
(Researcher)
- et al. Show all 13 authors
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Čelko, Ladislav
(Project leader)1, 2
-
Tkachenko, Serhii
(Researcher)1, 2
-
Casas Luna, Mariano
(Researcher)1, 3
-
Dyčková, Lucie
(Researcher)1, 2
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Bednaříková, Vendula
(Researcher)1, 2
-
Remešová, Michaela
(Researcher)1, 2
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Komarov, Pavel
(Researcher)1, 2
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Deák, Andrea
(Researcher)4
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Balaz, Matej
(Researcher)5, 6
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Crawford, Deborah
(Researcher)
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Diaz de la Torre, Sebastián
(Researcher)7
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Bodoki, Ede
(Researcher)8
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Cihlar, Jaroslav
(Researcher)1, 2
- 1. Brno University of Technology
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2.
Central European Institute of Technology
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3.
Charles University
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4.
HUN-REN Research Centre for Natural Sciences
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5.
Institute of Geotechnics of the Slovak Academy of Sciences
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6.
Slovak Academy of Sciences
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7.
Instituto Politécnico Nacional
- 8. Iuliu Hatieganu University of Medicine & Pharmacy
Description
The current study is focused on the preparation of Mo-10 vol%La2O3 and Mo-10 vol% La2Zr2O7 composite powders via low- and high-energy ball milling approaches as potential candidates for near-future high-temperature structural applications. The mechanical milling parameters play a critical role on the final powder's microstructure. When using the high-energy milling mode (using 800 rpm, ball-to-powder ratio (BPR) 100: 6), the homogeneous powder agglomerates are formed with refined laminated microstructure and more uniform ceramic phase distribution in both Mo-La2O3 and Mo-La2Zr2O7 systems compared to the powders produced by means of the low-energy milling mode (using 350 rpm, BPR 100: 6), where inhomogeneous powder mixture with less embedding of ceramic phases into Mo agglomerates was obtained. This study also focuses on the evaluation of high-temperature phase and microstructural stability of the produced composite powders treated at the temperature of 1300 degrees C under the different gaseous environments, including ambient, inert and reducing atmospheres. The Mo-10 vol% La2Zr2O7 composite powder exhibited better thermal stability during the high-temperature exposure in all tested atmospheres in comparison with the Mo-La2O3 composite powder, since it revealed less intensive formation of the intermediate phases, such as lanthanum oxymolybdates. Therefore, the Mo-10 vol%La2Zr2O7 composite powder was used further for consolidation by means of spark plasma sintering at 1600 degrees C. The successful production of Mo-La2Zr2O7 composite with homogeneous distribution of ceramic phase, the grain size about of 5 mu m, and hardness of 3.4 GPa was not reported so far.
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1-s2.0-S0263436821002493-main.pdf
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