Ti3SiC2-based composites synthesized by vacuum sintering and consolidated by spark plasma sintering: Microstructure and mechanical properties; Ceramics International; Vol. 52, iss. 15, Pt. B

ग्रंथसूची विवरण
Parent link:Ceramics International.— .— Amsterdam: Elsevier Science Publishing Company Inc.
Vol. 52, iss. 15, Pt. B.— 2026.— P. 30302-30314
अन्य लेखक: Sedanova E. P. Elizaveta Pavlovna, Arlashkin I. E. Iljya Evgenjevich, Perevislov S. N. Sergey Nikolaevich, Kashkarov E. B. Egor Borisovich, Pirozhkov A. V. Alexey Vladimirovich, Nassyrbayev (Nasyrbaev) A. Artur, Chemerevskaya K. O. Kseniya Olegovna
सारांश:Title screen
The study demonstrates that using pre-synthesized Ti3SiC2 as a precursor is an effective strategy for fabricating high-performance MAX-phase composites. Initial porous Ti3SiC2-TiC composites were obtained by vacuum sintering of 3Ti/1.2Si/2C, Ti/1.2Si/2TiC, 2Ti/1.2SiC/1.8TiC, and 3Ti/1.2SiC/0.8C powder mixtures, and then consolidated by spark plasma sintering (SPS) with reactive Si additions. This two-step approach promoted in-situ Ti3SiC2 formation during SPS, resulting in dense Ti3SiC2-TiSi2-TiC composites with a high MAX-phase content (up to 87 vol%) and a flexural strength of 573–719 MPa – approximately 1.5 times higher than that of composites produced by direct one-step SPS. In contrast, the one-step SPS approach, while effective for producing hard Ti3SiC2-TiC-SiC composite (16.6 GPa), could not achieve comparable strength due to inherent porosity and limited MAX-phase content
Текстовый файл
AM_Agreement
भाषा:अंग्रेज़ी
प्रकाशित: 2026
विषय:
ऑनलाइन पहुंच:https://doi.org/10.1016/j.ceramint.2026.05.130
स्वरूप: इलेक्ट्रोनिक पुस्तक अध्याय
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=686762

MARC

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200 1 |a Ti3SiC2-based composites synthesized by vacuum sintering and consolidated by spark plasma sintering: Microstructure and mechanical properties  |f E. P. Sedanova, I. E. Arlashkin, S. N. Perevislov [et al.] 
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330 |a The study demonstrates that using pre-synthesized Ti3SiC2 as a precursor is an effective strategy for fabricating high-performance MAX-phase composites. Initial porous Ti3SiC2-TiC composites were obtained by vacuum sintering of 3Ti/1.2Si/2C, Ti/1.2Si/2TiC, 2Ti/1.2SiC/1.8TiC, and 3Ti/1.2SiC/0.8C powder mixtures, and then consolidated by spark plasma sintering (SPS) with reactive Si additions. This two-step approach promoted in-situ Ti3SiC2 formation during SPS, resulting in dense Ti3SiC2-TiSi2-TiC composites with a high MAX-phase content (up to 87 vol%) and a flexural strength of 573–719 MPa – approximately 1.5 times higher than that of composites produced by direct one-step SPS. In contrast, the one-step SPS approach, while effective for producing hard Ti3SiC2-TiC-SiC composite (16.6 GPa), could not achieve comparable strength due to inherent porosity and limited MAX-phase content 
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610 1 |a Ceramic composites 
610 1 |a MAX-Phases 
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701 1 |a Sedanova  |b E. P.  |c Specialist in the field of nuclear technologies  |c Engineer of Tomsk Polytechnic University  |f 1994-  |g Elizaveta Pavlovna  |9 21923 
701 1 |a Arlashkin  |b I. E.  |g Iljya Evgenjevich 
701 1 |a Perevislov  |b S. N.  |g Sergey Nikolaevich 
701 1 |a Kashkarov  |b E. B.  |c Physicist  |c Associate Professor, Researcher of Tomsk Polytechnic University, Candidate of Physical and Mathematical Sciences  |f 1991-  |g Egor Borisovich  |9 18267 
701 1 |a Pirozhkov  |b A. V.  |c physicist  |c engineer of Tomsk Polytechnic University  |f 1996-  |g Alexey Vladimirovich  |9 23035 
701 1 |a Nassyrbayev (Nasyrbaev)  |b A.  |c Specialist in the field of electric power engineering  |c Research Engineer of Tomsk Polytechnic University  |f 1998-  |g Artur  |9 22370 
701 1 |a Chemerevskaya  |b K. O.  |g Kseniya Olegovna 
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