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The enhanced catalytic decomposition behaviors of RDX by using porous activated carbon loaded with nanosized metal oxides Full article

Journal Journal of Thermal Analysis and Calorimetry
ISSN: 1388-6150 , E-ISSN: 1572-8943
Output data Year: 2023, Volume: 148, Number: 10, Pages: 4255-4266 Pages count : 12 DOI: 10.1007/s10973-023-11987-8
Authors Nie Hongqi 1 , Yang Xu-Hao 1 , Yang Su-Lan 1 , Fershtat Leonid 2 , Yan Qi-Long 1
Affiliations
1 Science and Technology on Combustion, Internal Flow and Thermo-Structure Laboratory, Northwestern Polytechnical University, Xi’an, 710072, China
2 N. D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, 119991, Russia

Abstract: The nano-sized metal oxides (MOs) as combustion catalysts have been widely employed in solid rocket propellants, but the functionality of these materials is greatly restricted owing to their agglomeration. The catalytic activity of MOs on nanoscale was found to be significantly improved by the incorporation of MOs with carbon nanomaterials, which normally act as carriers allowing for well-distribution of MOs. In this paper, the CuO and Fe2O3 nanoparticles were produced by hydrothermal method and the CuO@C and Fe2O3@C nanocomposites with a uniform structure have been fabricated by an in-situ growth of corresponding MOs on the porous activated carbon (pAC). The morphology of the prepared MOs nanoparticles and resultant pAC carried ones were characterized using scanning electron microscope. It has been shown that the CuO and Fe2O3 nanoparticles are tightly adhered and dispersed on the surface of pAC. Their catalytic effects on the thermal decomposition of hexogen (RDX) were analyzed using thermal analysis techniques. Results indicate that the thermal decomposition of RDX was considerably promoted in the presence of these catalysts, where the CuO@C and Fe2O3@C were found to be capable of lowering the Tp for RDX by 14.8 °C and 12.4 °C, respectively. In addition, the decomposition kinetics of RDX in the presence of these catalysts have been evaluated with the DTG and DSC experimental data, and results show that the CuO@C and Fe2O3@C were able to reduce the Ea of RDX decomposition by 39.8 kJ mol−1 and 50.7 kJ mol−1, which is suggestive of an enhanced decomposition process for RDX by addition of carbon-loaded catalysts. The TG-FTIR analysis indicates that, in the presence of CuO@C and Fe2O3@C, the gaseous products are dominated by N2O in RDX decomposition.
Cite: Nie H. , Yang X-H. , Yang S-L. , Fershtat L. , Yan Q-L.
The enhanced catalytic decomposition behaviors of RDX by using porous activated carbon loaded with nanosized metal oxides
Journal of Thermal Analysis and Calorimetry. 2023. V.148. N10. P.4255-4266. DOI: 10.1007/s10973-023-11987-8 WOS Scopus OpenAlex
Identifiers:
Web of science: WOS:000949269000001
Scopus: 2-s2.0-85150183191
OpenAlex: W4360979502
Citing:
DB Citing
OpenAlex 6
Scopus 10
Web of science 7
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