Theoretical calculation of self-propagating high-temperature synthesis (SHS) preparation of AlB12

Main Article Content

Chao Wang*
Xiaoming Cao
Mengge Dong
Lu Zhang
Jianxing Liu
Xiaozhou Cao*
Xiangxin Xue*

Abstract

Although experimental results of preparing AlB12 by self-propagating high-temperature synthesis using Mg-B2O3-Al2O3 as raw material has been studied, the theoretical calculations for the preparation of AlB12 have not been examined as thoroughly. In this article, for the first time, we report on the study of theoretical calculation and the adiabatic temperature, calculated, and compared with the actual reaction temperature. The Gibbs free energy for each level of reaction is also calculated. The calculation results show that the adiabatic temperature is 2789.5 K, the standard Gibbs free energy of each reaction is less than 0, and the reaction can proceed spontaneously, which is consistent with the results of the experiment.

Downloads

Download data is not yet available.

Article Details

Wang, C., Cao, X., Dong, M., Zhang, L., Liu, J., Cao, X., & Xue, X. (2021). Theoretical calculation of self-propagating high-temperature synthesis (SHS) preparation of AlB12. Annals of Mathematics and Physics, 4(1), 009–012. https://doi.org/10.17352/amp.000019
Review Articles

Copyright (c) 2021 Wang C, et al.

Creative Commons License

This work is licensed under a Creative Commons Attribution 4.0 International License.

Matkovich VI (1977) Boron and refractory borides.

Luo X, Wang Z, Hu X, Shi Z, Gao B, et al. (2009) Influence of metallic additives on densification behaviour of hot-pressed TiB2. Light Metals 1151-1155. Link: https://bit.ly/3rcpwCI

Shiriev AA, Mukasyan AS (2017) Thermodynamics of SHS Processes in Concise Encyclopedia of Self-Propagating High-Temperature Synthesis. (Elsevier, 2017) 385-387.

Tao W, Wang Z, Chen G, Shi Z, Gao B, et al. (2009) Finite element analysis of thermo-electric coupled field in 400kA large-scale aluminum reduction cell. in 2009 World Non-Grid-Connected Wind Power and Energy Conference (IEEE) 1-4. Link: http://bit.ly/3f6DCU0

Cao X, Wang C, Shi L, Yang H, Xue X, et al. (2013) Effect of Ni addition on pressureless sintering of tungsten diboride. International Journal of Refractory Metals and Hard Materials 41: 597-602. Link: http://bit.ly/3lEdbWX

Cao X, Wang HY, Meng X, Wang C, Yang H, et al. (2011) High temperature electrochemical synthesis of tungsten boride from molten salt. in Advanced Materials Research (Trans Tech Publ) 463-466. Link: https://bit.ly/3cd7goM

Yukhvid V (1992) Modifications of SHS processes. Pure and Applied Chemistry 64: 977-988. Link: http://bit.ly/397gQr8

Wang C, Xue X, Cao X, Yang H (2012) Effect of BN Addition on Mechanical Properties and Microstructure of TiB2-Al Composites. Journal of Northeastern University (Natural Science) 19. Link: https://bit.ly/3rajlir

Chao W, Xiangxin X, Xiaozhou C, Lu Z, Jian Z, et al. (2013) A New Method of Fabricating AlN-TiB2 Composite Ceramics. Materials and Manufacturing Processes 28: 953-956. Link: https://bit.ly/3lKH0VF

Wang C, Zhang J, Xue XX, Cao XZ (2013) Fabrication B-Ni-Al Shielding Materials by Vacuum Metal Infiltration. Advanced Materials Research (Trans Tech Publ) 641-642: 410-413. Link: https://bit.ly/31aLvPP

Zhang P, Xia T, Zhang G, Yan L, Zhao W (2007) Thermodynamic analysis of Ti powder synthesized by SHS thermitreaction. Transactions of Nonferrous Metals Society of China 17: s27-s31. Link: https://bit.ly/3tQStpH

Cao X, Xu L, Wang C, Li S, Dong W, et al. (2020) Electrochemical Behavior and Electrodeposition of Sn Coating from Choline Chloride–Urea Deep Eutectic Solvents. Coatings 10: 1154. Link: https://bit.ly/316aNif

Yi HC, Moore J (1990) Self-propagating high-temperature (combustion) synthesis (SHS) of powder-compacted materials. Journal of Materials Science 25: 1159-1168. Link: https://bit.ly/2QzEBBX

Zhang W, Wang HY, Wang PJ, Zhang J, He L, et al. (2008) Effect of Cr content on the SHS reaction of Cr–Ti–C system. Journal of Alloys and Compounds 465: 127-131. Link: http://bit.ly/2NH5Kl8

Cao X, Wang C, Xue X, Yang H (2014) Preparation of tungsten boride ceramic by pressureless sintering. Journal of Inorganic Materials 29: 498-502. Link: http://bit.ly/3cUTOVG

Cao X, Wang C, Xue X, Cheng G (2015) Effect of ti addition on the residual aluminium content and mechanical properties of the B4C-al composites produced by vacuum infiltration. Archives of Metallurgy and Materials 60: 2493-2398. Link: https://bit.ly/3rhkbtL

Dong M, Xue X, Yang H, Liu D, Wang C, et al. (2016) A novel comprehensive utilization of vanadium slag: as gamma ray shielding material. Journal of Hazardous Materials 318: 751-757. Link: http://bit.ly/397hvc0

Xue X, Wang C, Tao J, Cao XZ, Ri R, et al. (2013) Research Progress on Aluminum-Boron Compounds (Al-B) and Its Composite Materials. Bulletin of the Chinese Ceramic Society 26. Link: https://bit.ly/3161Gy5

Mamyan S (2002) Thermodynamic analysis of SHS processes. in Key Engineering Materials (Trans Tech Publ) 1-8.

Chao W, Xiangxin X, Xiaozhou C, He Y, Gongjin C (2013) The effect of Ti addition on the microstructure and fracture toughness of BN-Al composite materials synthesized by vacuum infiltration. Archives of Metallurgy and Materials 58: 509-512. Link: https://bit.ly/3ccoXVb

Shiryaev A, Nersesyan M, Ming Q, Luss D (1999) Thermodynamic feasibility of SHS of SOFC materials. Journal of Materials Synthesis and Processing 7: 83-90. Link: https://bit.ly/3seMWZF

Qi D, Gao Y, Ren Z, Cao X, Wang C, et al. (2019) Preparation and Erosion Performance for Co-continuous Phase Composites of Si3N4/1Cr18Ni9Ti. Chinese Journal of Materials Research 33: 34-42. Link: http://bit.ly/3rdpo6b

Wang C, Hossain Bhuiyan ME, Moreno S, Minary-Jolandan M (2020) Direct-Write Printing Copper–Nickel (Cu/Ni) Alloy with Controlled Composition from a Single Electrolyte Using Co-Electrodeposition. ACS Appl Mater Interfaces 12: 18683-18691. Link: http://bit.ly/2PeD9nI

Mahmoudi M, Wang C, Moreno S, Burlison SR, Alatalo D, et al. (2020) Three-Dimensional Printing of Ceramics through “Carving” a Gel and “Filling in” the Precursor Polymer. ACS Applied Materials & Interfaces 12: 31984-31991. Link: https://bit.ly/3d2iQC2

Merzhanov A (1995) History and recent developments in SHS. Ceramics International 21: 371-379. Link: http://bit.ly/3184E55

Gosset D, Guery M, Kryger B (1991) Thermal properties of some boron‐rich compounds ("BnC" and AlB12). in AIP Conference Proceedings (American Institute of Physics) 380-383. Link: https://bit.ly/2ORKc66

Wang C, Ling B, Zhang L, Cao ZX, Yang H, et al. (2014) Elementary research on preparation of AlB12 powder by self-propagating high-temperature synthesis (SHS). in Materials Science Forum (Trans Tech Publ) 773-74: 365-369. Link: http://bit.ly/3s833bj

Shiryaev A (1993) Distinctive features of thermodynamic analysis in SHS investigations. Journal of engineering physics and thermophysics 65: 957-962. Link: https://bit.ly/3tI4cXx

Munir Z (1992) Reaction synthesis processes: mechanisms and characteristics. Metallurgical Transactions A 23: 7-13. Link: https://bit.ly/3seNz5t

Gennari S, Tamburini UA, Maglia F, Spinolo G, Munir ZA (2006) A new approach to the modeling of SHS reactions: Combustion synthesis of transition metal aluminides. Acta Materialia 54: 2343-2351. Link: http://bit.ly/3f9KnUS