TY - JOUR
T1 - Al/Ti 基纳米复合燃料热反应性及燃烧性能
AU - Yang, Sulan
AU - Zhang, Haorui
AU - Nie, Hongqi
AU - Yan, Qilong
N1 - Publisher Copyright:
© 2023 China Ordnance Society. All rights reserved.
PY - 2023/4
Y1 - 2023/4
N2 - To effectively promote the intermetallic reaction between Al and Ti, two types of core-shell structured nanocomposite fuels have been prepared by using the high-energy ball milling method, namely Al/Ti@ AP/NC and Al/Ti@ PVDF/CL-20. The quality of the coating layers of AP/NC and PVDF/CL-20 on the surface of Al/Ti is inspected by scanning electron microscopy (SEM). The thermal reactivity, heat of reaction and combustion performances of Al/Ti-based composite fuels are evaluated by DSC/TG thermal analyses, a bomb calorimeter, and a customized combustion diagnostic system. The morphologies and compositions of the condensed combustion products (CCPs) are characterized by SEM and X-ray diffraction (XRD) techniques, respectively. Results show that the core-shell structured Al/Ti@AP/NC and Al/Ti@PVDF/CL-20 could be obtained by high-energy ball milling method. The thermal decomposition of the energetic composites is enhanced with the introduction of Al/Ti. Furthermore, the intermetallic reaction between Al and Ti, burning rate, and the combustion wave temperature could be enhanced with the inclusions of AP/NC or PVDF/CL-20. In particular, for the composite fuel coated with AP/NC, the burning rate (246.6 mm·s -1) is increased by 9.5 times and the combustion wave temperature (1 703.2 ℃) is 59.3% higher compared to that of pure Al/Ti (the burning rate and combustion wave temperature are 23.5 mm·s -1 and 1 069.3 ℃, respectively). The compositions of the CCPs depend on the types of energetic coating layers, which are dominated with AlTi2 C and Ti(O0.19 C0.53 N0.32), indicating that chemical reactions occur between Al/Ti and energetic composites during the combustion process.
AB - To effectively promote the intermetallic reaction between Al and Ti, two types of core-shell structured nanocomposite fuels have been prepared by using the high-energy ball milling method, namely Al/Ti@ AP/NC and Al/Ti@ PVDF/CL-20. The quality of the coating layers of AP/NC and PVDF/CL-20 on the surface of Al/Ti is inspected by scanning electron microscopy (SEM). The thermal reactivity, heat of reaction and combustion performances of Al/Ti-based composite fuels are evaluated by DSC/TG thermal analyses, a bomb calorimeter, and a customized combustion diagnostic system. The morphologies and compositions of the condensed combustion products (CCPs) are characterized by SEM and X-ray diffraction (XRD) techniques, respectively. Results show that the core-shell structured Al/Ti@AP/NC and Al/Ti@PVDF/CL-20 could be obtained by high-energy ball milling method. The thermal decomposition of the energetic composites is enhanced with the introduction of Al/Ti. Furthermore, the intermetallic reaction between Al and Ti, burning rate, and the combustion wave temperature could be enhanced with the inclusions of AP/NC or PVDF/CL-20. In particular, for the composite fuel coated with AP/NC, the burning rate (246.6 mm·s -1) is increased by 9.5 times and the combustion wave temperature (1 703.2 ℃) is 59.3% higher compared to that of pure Al/Ti (the burning rate and combustion wave temperature are 23.5 mm·s -1 and 1 069.3 ℃, respectively). The compositions of the CCPs depend on the types of energetic coating layers, which are dominated with AlTi2 C and Ti(O0.19 C0.53 N0.32), indicating that chemical reactions occur between Al/Ti and energetic composites during the combustion process.
KW - Al/Ti
KW - combustion performance
KW - nano-composite fuels
KW - thermal reactivity
UR - http://www.scopus.com/inward/record.url?scp=85159085608&partnerID=8YFLogxK
U2 - 10.12382/bgxb.2022.0132
DO - 10.12382/bgxb.2022.0132
M3 - 文章
AN - SCOPUS:85159085608
SN - 1000-1093
VL - 44
SP - 1118
EP - 1125
JO - Binggong Xuebao/Acta Armamentarii
JF - Binggong Xuebao/Acta Armamentarii
IS - 4
ER -