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HOME > J Korean Powder Metall Inst > Volume 20(5); 2013 > Article
Computer Simulation and Verification of Adiabatic Temperature and Apparent Activity Energy of the NiO/Al Aluminothermic System
Yuepeng Song, Yanmin Zhu, Dongsheng Gao, Jing Guo, Hyoung Seop Kim
Journal of Korean Powder Metallurgy Institute 2013;20(5):332-337
DOI: https://doi.org/10.4150/KPMI.2013.20.5.332
1Mechanical and Electronic Engineering College, Shandong Agricultural University
2Mechanical and Electronic Engineering College, Shandong Agricultural University
3College of Horticulture Science and Engineering, Shandong Provincial Key Laboratory of Horticultural Machineries and Equipments Shandong Agricultural University
4Mechanical and Electronic Engineering College, Shandong Agricultural University
5Department of Materials Science and Engineering, Pohang University of Science and Technology
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Recently, self-propagating high-temperature synthesis (SHS), related to metallic and ceramic powder interactions, has attracted huge interest from more and more researchers, because it can provide an attractive, energy-efficient approach to the synthesis of simple and complex materials. The adiabatic temperature T_ad and apparent activation energy analysis of different thermit systems plays an important role in thermodynamic studies on combustion synthesis. After establishing and verifying a mathematic calculation program for predicting adiabatic temperatures, based on the thermodynamic theory of combustion synthesis systems, the adiabatic temperatures of the NiO/Al aluminothermic system during self-propagating high-temperature synthesis were investigated. The effect of a diluting agent additive fraction on combustion velocity was studied. According to the simulation and experimental results, the apparent activation energy was estimated using the Arrhenius diagram of ln(v/T_ad)sim/T_ad based on the combustion equation given by Merzhanov et al. When the temperature exceeds the boiling point of aluminum (2,790 K), the apparent activation energy of the NiO/Al aluminothermic system is 64pm14 kJ/mol. In contrast, below 2,790 K, the apparent activation energy is 189pm15 kJ/mol. The process of combustion contributed to the mass-transference of aluminum reactant of the burning compacts. The reliability of the simulation results was experimentally verified.

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