Sintering of MAX-phase materials by spark plasma and other methods; Journal of Materials Science; Vol. 56, iss. 3
| Parent link: | Journal of Materials Science Vol. 56, iss. 3.— 2021.— [P. 1980-2015] |
|---|---|
| Korporace: | Национальный исследовательский Томский политехнический университет Инженерная школа ядерных технологий Отделение экспериментальной физики, Национальный исследовательский Томский политехнический университет Инженерная школа новых производственных технологий Отделение материаловедения |
| Další autoři: | Lyu Jinzhe, Kashkarov E. B. Egor Borisovich, Travitsky (Travitzky) N. Nakhum, Syrtanov M. S. Maksim Sergeevich, Lider A. M. Andrey Markovich |
| Shrnutí: | Title screen This review focuses on the comparison of the spark plasma sintering (SPS) with other fabrication methods of MAX-phase materials. In the view of optimizing properties for prospective applications, we summarized different routes to synthesize and sinter bulk/powder MAX-phases with various microstructures, discussed the phase composition of MAX-phases obtained by SPS and other methods. In the article, we introduced the experimental features of various sintering methods and carried out the comparative analysis of “competition phenomenon” between the SPSed MAX-phases and MAX-phases prepared by other technologies. We referred to relevant reports and reviews in which one can acquire a comprehensive understanding of sintering kinetics, sintering thermodynamics, grain growth kinetics, and densification mechanisms. Furthermore, the influence of the sintering routes on the properties of the MAX-phases was discussed paying emphasis on the mechanical properties. Режим доступа: по договору с организацией-держателем ресурса |
| Jazyk: | angličtina |
| Vydáno: |
2021
|
| Témata: | |
| On-line přístup: | https://doi.org/10.1007/s10853-020-05359-y |
| Médium: | Elektronický zdroj Kapitola |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=663036 |
Podobné jednotky
Ti3SiC2 MAX-Phase-Based Composites Produced by Vacuum and Spark Plasma Sintering; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 19, iss. 5
Vydáno: (2025)
Vydáno: (2025)
Fabrication of Paper-Derived Ti3SiC2-Based Materials by Spark Plasma Sintering; Advanced Engineering Materials; Vol. 22, iss. 6
Vydáno: (2020)
Vydáno: (2020)
Spark Plasma Sintering of Commercial Zirconium Carbide Powders: Densification Behavior and Mechanical Properties; Materials; Vol. 8
Vydáno: (2015)
Vydáno: (2015)
Investigation of the transparent ceramic optical properties based on ZrO2, produced by spark plasma sintering; Nanostructured Materials
Autor: Paygin V. D. Vladimir Denisovich
Vydáno: (2016)
Autor: Paygin V. D. Vladimir Denisovich
Vydáno: (2016)
Spark Plasma Sintering of Paper-Derived Ti3AlC2-Based Composites: Influence of Sintering Temperature; Materials Science Forum; Vol. 1016 : THERMEC’2020/2021
Vydáno: (2021)
Vydáno: (2021)
Features of heterophase structure formation at spark plasma sintering of high-carbon and chromium-nickel steels; Materials Characterization; Vol. 129
Autor: Nikulina A. A.
Vydáno: (2017)
Autor: Nikulina A. A.
Vydáno: (2017)
Spark plasma sintering of Al2O3-filled preceramic paper for membrane supports; Materials Letters; Vol. 383
Vydáno: (2025)
Vydáno: (2025)
Synthesis of W-Cu composite nanoparticles by the electrical explosion of two wires and their consolidation by spark plasma sintering; Materials Research Express; Vol. 6, iss. 12
Vydáno: (2019)
Vydáno: (2019)
Preceramic Paper-Derived SiCf/SiCp Composites Obtained by Spark Plasma Sintering: Processing, Microstructure and Mechanical Properties; Materials; Vol. 13 iss. 3
Vydáno: (2020)
Vydáno: (2020)
Spark Plasma Sintering of Aluminum-Magnesium-Matrix Composites with Boron Carbide and Tungsten Nano-powder Inclusions: Modeling and Experimentation; The Journal of The Minerals, Metals & Materials Society; Vol. 68, iss. 3
Vydáno: (2016)
Vydáno: (2016)
Spark plasma sintering of ceramic matrix composite based on alumina, reinforced by carbon nanotubes; IOP Conference Series: Materials Science and Engineering; Vol. 286 : Modern Technologies and Materials of New Generations (MTMNG-2017)
Vydáno: (2018)
Vydáno: (2018)
Obtaining Intermetallic Compound Copper-Tin: Plasma Dynamic Synthesis and Spark Plasma Sintering; Key Engineering Materials; Vol. 743 : High Technology: Research and Applications (HTRA 2016)
Vydáno: (2017)
Vydáno: (2017)
Application of spark plasma sintering for fabricating Nd-Fe-B composite; IOP Conference Series: Materials Science and Engineering; Vol. 93: Modern Technique and Technologies (MTT'2015)
Autor: Sivkov A. A. Aleksandr Anatolyevich
Vydáno: (2015)
Autor: Sivkov A. A. Aleksandr Anatolyevich
Vydáno: (2015)
Manufacturing Optically Transparent Thick Zirconia Ceramics by Spark Plasma Sintering with the Use of Collector Pressing; Applied Sciences; Vol. 11, iss. 3
Vydáno: (2021)
Vydáno: (2021)
Spark plasma sintering of alumina nanopowders produced by electrical explosion of wires; SpringerPlus; Vol. 4, iss. 1
Autor: An V. V. Vladimir Vilorievich
Vydáno: (2015)
Autor: An V. V. Vladimir Vilorievich
Vydáno: (2015)
Spark plasma sintering of agglomerated vanadium carbide powder; Ceramics International; Vol. 41, iss. 3, pt. A
Vydáno: (2015)
Vydáno: (2015)
Formation of transition zones under spark plasma sintering of dissimilar steels; Metal Science and Heat Treatment; Vol. 60, iss. 9-10
Vydáno: (2019)
Vydáno: (2019)
Synthesis and Properties of Nickel/Carbon Nanotube Nanocomposites via the Electrical Explosion of Wire in Liquid and Spark Plasma Sintering Method; Journal of Nanoscience and Nanotechnology; Vol. 17, iss. 10
Vydáno: (2017)
Vydáno: (2017)
Relationship of Optical Properties and Elastoplastic Characteristics of Transparent Spark-Plasma-Sintered YSZ Ceramics; Journal of Ceramic Science and Technology; Vol. 8, № 8
Vydáno: (2017)
Vydáno: (2017)
An Application of Spark Plasma Sintering for Compaction of Refractory Oxides and Nitrides; Applied Mechanics and Materials; Vol. 756 : Mechanical Engineering, Automation and Control Systems (MEACS2014)
Autor: Matrenin S. V. Sergey Veniaminovich
Vydáno: (2015)
Autor: Matrenin S. V. Sergey Veniaminovich
Vydáno: (2015)
Sintering of powder materials a study guide
Autor: Dudina D. V.
Vydáno: (Новосибирск, НГТУ, 2022)
Autor: Dudina D. V.
Vydáno: (Новосибирск, НГТУ, 2022)
Effect of Spark Plasma Sintering Temperature on the Properties of Transparent YSZ Ceramics; Refractories and Industrial Ceramics; Vol. 60, iss. 2
Vydáno: (2019)
Vydáno: (2019)
Comparative Evaluation of Spark Plasma and Conventional Sintering of NiO/YSZ Layers for Metal-Supported Solid Oxide Fuel Cells; High Temperature Materials and Processes; Vol. 37, iss. 4
Vydáno: (2018)
Vydáno: (2018)
Activation of mass transfer processes at spark plasma sintering of zirconium dioxide; IOP Conference Series: Materials Science and Engineering; Vol. 124 : Mechanical Engineering, Automation and Control Systems (MEACS2015)
Autor: Akarachkin S. A.
Vydáno: (2016)
Autor: Akarachkin S. A.
Vydáno: (2016)
Microstructure and Phase Composition of Porous SiC-Ceramic Obtained by Spark Plasma Sintering of Preceramic Paper; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 17
Autor: Sedanova E. P. Elizaveta Pavlovna
Vydáno: (2023)
Autor: Sedanova E. P. Elizaveta Pavlovna
Vydáno: (2023)
Manufacturing of Transparent MgAl2O4 Ceramics by Spark Plasma Sintering Combined with Collector Pressing Method; Bulletin of the Russian Academy of Sciences: Physics; Vol. 89, iss. 9
Vydáno: (2025)
Vydáno: (2025)
Preceramic paper-derived SiCf/Ti3Al(Si)C2 and SiCf/Ti3SiC2 MAX-phase based laminates fabricated using spark plasma sintering; Scripta Materialia; Vol. 194
Vydáno: (2021)
Vydáno: (2021)
Quantitative Phase Analysis of Plasma-Treated High-Silica Materials; Russian Physics Journal; Vol. 61, iss. 2
Autor: Kosmachev P. V. Pavel Vladimirovich
Vydáno: (2018)
Autor: Kosmachev P. V. Pavel Vladimirovich
Vydáno: (2018)
Time-Keeping Factor at a Constant Temperature in the Process of Spark Plasma Sintering; Nanotechnologies in Russia; Vol. 12, iss. 9-10
Vydáno: (2017)
Vydáno: (2017)
Synthesis of Ti[3]SiC[2]-based composites by spark plasma sintering of preceramic papers; IOP Conference Series: Materials Science and Engineering; Vol. 597 : Prospects of Fundamental Sciences Development (PFSD-2019)
Vydáno: (2019)
Vydáno: (2019)
Ultrasonic tomography of SiC-based materials synthesized by spark plasma sintering of preceramic paper; Journal of Physics: Conference Series; Vol. 1327 : Innovations in Non-Destructive Testing (SibTest 2019)
Vydáno: (2019)
Vydáno: (2019)
Fabrication of Fe-Cu composites from electroexplosive bimetallic nanoparticles by spark plasma sintering; Vacuum; Vol. 170
Vydáno: (2019)
Vydáno: (2019)
Sintering of zirconia ceramics using microwave and spark heating techniques; IOP Conference Series: Materials Science and Engineering; Vol. 110 : Radiation-Thermal Effects and Processes in Inorganic Materials (RTEP2015)
Vydáno: (2016)
Vydáno: (2016)
LiF influence on spark plasma sintering and structure of transparent MgAl2O4 ceramics; Russian Physics Journal; Vol. 68, iss. 4
Vydáno: (2025)
Vydáno: (2025)
Effect of technological parameters on optical and mechanical properties of Spark Plasma Sintered transparent YSZ ceramics; Ceramics International; Vol. 47, iss. 8
Vydáno: (2021)
Vydáno: (2021)
Obtaining Ceramic Based on Si3N4 and TiN by Spark Plasma Sintering; Glass and Ceramics; Vol. 72, iss. 9
Autor: Evdokimov A. A. Andrey Anatolievich
Vydáno: (2016)
Autor: Evdokimov A. A. Andrey Anatolievich
Vydáno: (2016)
Effective thermal expansion coefficient of a sintered glass–eucryptite composite; Journal of Materials Science; Vol. 52, iss. 19
Vydáno: (2017)
Vydáno: (2017)
Obtaining silicon carbide based ceramics by spark plasma sintering; Химия и химическая технология в XXI веке
Autor: Nassyrbayev (Nasyrbaev) A. Artur
Vydáno: (2019)
Autor: Nassyrbayev (Nasyrbaev) A. Artur
Vydáno: (2019)
Luminescent properties of YSZ ceramics doped with europium ions produced by spark plasma sintering technique; Radiation Effects in Insulators
Vydáno: (2019)
Vydáno: (2019)
Fabrication of the Ni[3]Al-based alloy formed by spark plasma sintering of VKNA powders; IOP Conference Series: Materials Science and Engineering; Vol. 124 : Mechanical Engineering, Automation and Control Systems (MEACS2015)
Vydáno: (2016)
Vydáno: (2016)
Podobné jednotky
-
Ti3SiC2 MAX-Phase-Based Composites Produced by Vacuum and Spark Plasma Sintering; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 19, iss. 5
Vydáno: (2025) -
Fabrication of Paper-Derived Ti3SiC2-Based Materials by Spark Plasma Sintering; Advanced Engineering Materials; Vol. 22, iss. 6
Vydáno: (2020) -
Spark Plasma Sintering of Commercial Zirconium Carbide Powders: Densification Behavior and Mechanical Properties; Materials; Vol. 8
Vydáno: (2015) -
Investigation of the transparent ceramic optical properties based on ZrO2, produced by spark plasma sintering; Nanostructured Materials
Autor: Paygin V. D. Vladimir Denisovich
Vydáno: (2016) -
Spark Plasma Sintering of Paper-Derived Ti3AlC2-Based Composites: Influence of Sintering Temperature; Materials Science Forum; Vol. 1016 : THERMEC’2020/2021
Vydáno: (2021)