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Combustion Mechanism of Fe-Nb-B-Y Amorphous Alloys with an Anomalous Exothermic Phenomenon |
HU Xiang1, GE Jiacheng1, LIU Sinan1, FU Shu1, WU Zhenduo2,3, FENG Tao1, LIU Dong4, WANG Xunli2, LAN Si1( ) |
1.Herbert Gleiter Institute of Nanoscience, School of Materials Science and Engineering/Herbert Gleiter Institute, Nanjing University of Science and Technology, Nanjing 210094, China 2.Department of Physics, City University of Hong Kong, Hong Kong 999077, China 3.Applied Physics Centre of Neutron Scattering, Dongguan University of Hong Kong Research Institute, Dongguan 523808, China 4.School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, China |
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Cite this article:
HU Xiang, GE Jiacheng, LIU Sinan, FU Shu, WU Zhenduo, FENG Tao, LIU Dong, WANG Xunli, LAN Si. Combustion Mechanism of Fe-Nb-B-Y Amorphous Alloys with an Anomalous Exothermic Phenomenon. Acta Metall Sin, 2021, 57(4): 542-552.
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Abstract The functional groups in traditional energetic materials typically contain C, N, and O. These elements are usually unstable and sensitive to external stimuli. Moreover, the chemicals used during the preparation process of traditional energetic materials are toxic and pose many safety and environmental issues. As one of the metastable materials, high-energy-state amorphous alloys are potential candidates for new energetic materials with high combustion heat, low ignition temperature, non-toxicity, and improved safety. In this work, the combustion mechanism of Fe-based amorphous ribbons with an anomalous exothermic phenomenon was systematically studied using in situ synchrotron X-ray diffraction, differential scanning calorimetry, thermogravimetric analysis, and X-ray photoelectron spectroscopy. Experimental results show that compared to Fe-Nb-B-Y amorphous alloys with normal thermophysical and combustion behaviors, (Fe0.72B0.24Nb0.04)95.5Y4.5 amorphous ribbons with anomalous exothermic phenomena possess low ignition temperature and self-propagating combustion behavior due to the catalysis of the rapid crystallization exothermic process. The anomalous exothermic phenomenon and associated liquid-liquid phase transitions can cause rapid crystallization at elevated temperatures during heating, followed by multi-step oxidation. On the other hand, it was possible to significantly reduce the activation energy of high-temperature oxidation. The liquid-liquid phase transition can lower the energy barrier of the oxidation reaction. In this way, the oxidation reaction at high temperatures can be promoted. The results suggest that the liquid-liquid phase transition has an “induced activation” effect on the combustion of Fe-based amorphous alloys.
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Received: 26 October 2020
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Fund: National Natural Science Foundation of China(51871120);Natural Science Foundation of Jiangsu Province-Outstanding Youth Fund Project(BK20200019) |
About author: LAN Si, professor, Tel: 18115156168, E-mail: lansi@njust.edu.cn
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