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FEATURES OF THE COMPOSITION AND MICROSTRUCTURE OF POROUS SKELETONS OF MAX-PHASES TI3ALC2 AND TI3SIC2 PRODUCED BY SHS METHOD IN AIR AND IN A PROTECTIVE SHELL OF SAND

https://doi.org/10.57070/2304-4497-2023-4(46)-88-97

Abstract

A simple and inexpensive method for the synthesis of porous skeletons of MAX phases Ti3SiC2 and Ti3AlC2 by the SHS method in air and in river sand filling, in which the use of a closed reactor with a special atmosphere or vacuum is not required, is considered. The study of the macrostructure of synthesized samples based on the MAX phases of titanium aluminum carbide and titanium silicon carbide showed that the samples have the same porosity of about 50 – 60 %, the open porosity is about 40 %. The average pore size ranges from 10 to 350 microns. The microstructure of the porous Ti3SiC2 and Ti3AlC2 frameworks consists of characteristic multidirectional blocks of MAX-phase plates, as well as a small number of equiaxed TiC particles surrounded by a single TiSi or TiAl phase, respectively. It is shown that the synthesis of porous frameworks in air leads to the formation of oxide and nitride phases that tightly cover surfaces up to 100 microns thick. The SHS process under a layer of sand makes it possible to reduce the average thickness of oxide and nitride films on the surface of the SHS frame to 20 microns. A subsurface layer consisting of two phases was found on the synthesized samples: TiC – TiSi in the Ti3SiC2 frame and TiC – TiAl in the Ti3AlC2 frame, the thickness of which is reduced from 50 microns (SHS in air) to 30 microns (SHS under a layer of sand). It was found that oxide and nitride films were absent in closed pores due to the fact that atmospheric gases did not have access to them when the samples cooled

About the Authors

Denis Davydov
Samara State Technical University
Russian Federation

postgraduate student of Department “Metal Science, Powder Metallurgy, Nanomaterials”



Aleksandr Amosov
Samara State Technical University
Russian Federation

Dr. Sci. (Phys.-Math.), Prof., Head of Department “Metal Science, Powder Metallur-gy, Nanomaterials”



Evgeny Latukhin
Samara State Technical University
Russian Federation

Cand. Sci. (Eng.), Assist. Prof. of Department “Metal Science, Powder Metallurgy, Nano-materials”



Emil Umerov
Samara State Technical University
Russian Federation

Postgraduate student of Department “Metal Science, Powder Metallurgy, Nanomaterials



Vladislav Novikov
Samara State Technical University
Russian Federation

Cand. Sci. (Eng.), Assist. Prof. of Department “Metal Science, Powder Metallurgy, Nano-materials”



References

1. Belov S.V. Porous materials in mechanical engineering. Moscow: Mashinostroenie, 1981:184. (In Russ.).

2. Gonzalez-Julian J. Processing of MAX phases: From synthesis to applications. Journal of the American Ceramic Society. 2021;104:659–690. https://doi.org/10.1111/jace.17544

3. Radovic M., Barsoum M. MAX phases: Bridging the gap between metals and ceramics. American Ceramic Society Bulletin. 2013;92(3):20–27.

4. Barsoum MW. MAX Phases: Properties of Machinable Ternary Carbides and Nitrides. Wiley VCH. 2013. http://dx.doi.org/10.1002/ 9783527654581

5. Velasco B., Tsipas S., Ferrari B., Gordo E. MAX phases foams produced via a powder metallurgy process using a water-soluble space-holder. Powder Metallurgy. 2014;58(2):95–99. https://doi.org/10.1179/0032589915Z.000000000226

6. Velasco B., Gordo E., Hu L., Radovic M., Tsipas S.A. Influence of porosity on elastic properties of Ti2AlC and Ti3SiC2 MAX phase foams. Journal of Alloys and Compounds. 2018:764:24–35. https://doi.org/10.1016/j.jallcom.2018.06.027

7. Sun Z., Liang Y., Li M., Zhou Y. Preparation of reticulated MAX phase support with morphology-controllable nanostructured ceria coating for gas exhaust catalyst devices. Journal of the American Ceramic Society. 2010;93(9):2591–2597. http://dx.doi.org/10.1111/j.1551-2916.2010.03776.x

8. Bowen C.R., Thomas T. Macro-porous Ti2AlC MAX-phase ceramics by the foam replication method. Ceramics International. 2015; 41(9):12178–12185. https://doi.org/10.1016 /J.CERAMINT.2015.06.038

9. Fey T., Stumpf M., Chmielarz A., Colombo P., Greil P., Potoczek M. Microstructure, thermal conductivity and simulation of elastic modulus of MAX-phase (Ti2AlC) gel-cast foams. Journal of the European Ceramic Society. 2018;38(10):3424–3432. http://dx.doi.org/10 .1016/j.jeurceramsoc.2018.04.012

10. Elsayed H., Chmielarz A., Potoczek M., Fey T., Colombo P. Direct ink writing of three dimensional Ti2AlC porous structures. Addit Manuf. 2019;28:365–372. https://doi.org/10.1016/j.addma.2019.05.018

11. Tan Q., Zhuang W., Attia M., Djugum R., Zhang M. Recent progress in additive manufacturing of bulk MAX phase components: A review. Journal of Materials Science & Technology. 2022;131:30–47. https://doi.org/10.1016/ j.jmst.2022.05.026

12. Sai Priya Munagala. MAX phases: New class of carbides and nitrides for aerospace structural applications. Aerospace Materials and Material Technologies, Indian Institute of Metals Series. 2016:455–465. https://doi.org/10.1007/978-981-10-2134-3_20

13. Krotkevich D.G., Kashkarov E.B., Mingazova Y.R., Lider A. M., Travitzky N. Fabrication of Max Phase-Based Gradient Porous Materials from Preceramic Paper. Russian Physics Journal. 2023;65:2186–2192. https://doi.org/10. 1007/s11182-023-02888-2

14. Goncharuk S.Yu., Samboruk A.R. Use of porous SHS materials as filters. Sovremennye materialy, tekhnika i tekhnologii. 2018;2(17):42–44. (In Russ.). https://doi.org/10.24411/9999-004A-2018-10020

15. Antsiferov V.N., Peshcherenko S.N. Porous substances as a new class of materials. Perspektivnye materialy. 2000;5:1–8. (In Russ.).

16. Pat. 2733524 RU. Method for obtaining ceramic-metal composite materials / Amosov A.P., Latukhina E.I., Umerov E.R. Аpplication 02.12.2019; publ. 02.10.2020. No. 28. (In Russ.).

17. Amosov A.P., Latukhin E.I., Umerov E.R. Applying Infiltration Processes and Self-Propagating High-Temperature Synthesis for Manufacturing Cermets: А Review. Russian Journal of Non-Ferrous Metals. 2022;63:81–100. http://dx.doi.org/10.3103/S1067821222010047

18. Latukhin E.I., Umerov E.R., Amosov A.P. Preparation of Ti3AlC2–Al Cermets by Com-bined Use of SHS of Ti3AlC2 Porous Skeleton and Spontaneous Infiltration with Al and Al-Based Melts. International Journal of Self-Propagating High-Temperature Synthesis. 2023;32:23–29. https://doi.org/10.3103/S1061386223010041

19. Umerov E.R., Latukhin E.I., Amosov A.P., Kichaev P. E. Preparation of Ti3SiC2–Sn(Pb) Cermet by SHS of Ti3SiC2 Porous Skeleton with Subsequent Spontaneous Infiltration with Sn–Pb Melt. International Journal of Self-Propagating High-Temperature Synthesis. 2023;32:30–35. https://doi.org/10.3103/S1061386223010089

20. Lepakova O.K., Itin V.I., Astafurova E.G., Erkaev P.A., Kitler V.D., Afanas'ev N.I. Synthesis, phase composition, structure and strength properties of porous materials based on Ti3SiC2 compound. Fizicheskaya mezomekhanika. 2016;19(2):108–113. (In Russ.).

21. Kovalev D.Yu. Dynamic X-ray of material-forming combustion processes. Extended abstract of doctor’s thesis. Chernogolovka, 2020:44. (In Russ.).

22. Davydov D.M., Umerov E.R., Latukhin E.I. Comparative analysis of methods for assessing the porosity of SHS-skeletons. Sovremennye materialy, tekhnika i tekhnologii. 2021;6(39):24–31. (In Russ.). https://doi.org/10.47581/2021/SMTT/.6.38.04

23. Davydov D.M., Umerov E.R., Latukhin E.I., Amosov A.P. The influence of elemental powder raw material on the formation of the porous frame of Ti3AlC2 MAX-phase when obtaining by the SHS method. Vektor nauki TGU. 2021;(3):37–47. (In Russ.). https://doi.org/ 10.18323/2073-5073-2021-3-37-47

24. Zakeri M., Rahimipour M.R., Khanmoham-madian A. Effect of the starting materials on the reaction synthesis of Ti3SiC2. Ceramics International. 2009;35(4):1553–1557. http://dx.doi. org/10.1016/j.ceramint.2008.08.011

25. Amosov A.P., Latukhin E.I., Davydov D.M. The influence of gas atmosphere composition on formation of surface films in self-propagating high-temperature synthesis of porous Ti3SiC2. Modern Applied Science. 2015;9(3):17–24. http://dx.doi.org/10.5539/ mas.v9n3p17

26. Kolsanov A.V., Nikolaenko A.N., Ivanov V.V., Prikhod'ko S.A., Platonov P.V. Determination of biocompatibility and cytotoxicity of titanium-based porous materials in an experiment. Nauka i innovatsii v meditsine. 2017;3(7):18–22. (In Russ.). http://dx.doi.org/10.35693/2500-1388-2017-0-3-18-22


Review

For citations:


Davydov D., Amosov A., Latukhin E., Umerov E., Novikov V. FEATURES OF THE COMPOSITION AND MICROSTRUCTURE OF POROUS SKELETONS OF MAX-PHASES TI3ALC2 AND TI3SIC2 PRODUCED BY SHS METHOD IN AIR AND IN A PROTECTIVE SHELL OF SAND. Bulletin of the Siberian State Industrial University. 2023;(4):88-97. (In Russ.) https://doi.org/10.57070/2304-4497-2023-4(46)-88-97

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ISSN 2304 - 4497 (Print)
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