TY - JOUR
T1 - Cellular Aluminum Particle-Air Detonation Based on Realistic Heat Capacity Model
AU - GaoXiang, Xiang
AU - Pengfei, Yang
AU - HongHui, Teng
AU - ZongLin, Jiang
N1 - Publisher Copyright:
© 2019 Taylor & Francis Group, LLC.
PY - 2020/10/2
Y1 - 2020/10/2
N2 - Modeling aluminum (Al) particle-air detonation is extremely difficult because the combustion is shock-induced, and there are multi-phase heat release and transfer in supersonic flows. Existing models typically use simplified combustion to reproduce the detonation velocity, which introduces many unresolved problems. The hybrid combustion model, coupling both the diffused- and kinetics-controlled combustion, is proposed recently, and then improved to include the effects of realistic heat capacities dependent on the particle temperature. In the present study, 2D cellular Al particle-air detonations are simulated with the realistic heat capacity model and its effects on the detonation featured parameters, such as the detonation velocity and cell width, are analyzed. Numerical results show that cell width increases as particle diameter increases, similarly to the trend observed with the original model, but the cell width is underestimated without using the realistic heat capacities. Further analysis is performed by averaging the 2D cellular detonations to quasi-1D, demonstrating that the length scale of quasi-1D detonation is larger than that of truly 1D model, similar to gaseous detonations.
AB - Modeling aluminum (Al) particle-air detonation is extremely difficult because the combustion is shock-induced, and there are multi-phase heat release and transfer in supersonic flows. Existing models typically use simplified combustion to reproduce the detonation velocity, which introduces many unresolved problems. The hybrid combustion model, coupling both the diffused- and kinetics-controlled combustion, is proposed recently, and then improved to include the effects of realistic heat capacities dependent on the particle temperature. In the present study, 2D cellular Al particle-air detonations are simulated with the realistic heat capacity model and its effects on the detonation featured parameters, such as the detonation velocity and cell width, are analyzed. Numerical results show that cell width increases as particle diameter increases, similarly to the trend observed with the original model, but the cell width is underestimated without using the realistic heat capacities. Further analysis is performed by averaging the 2D cellular detonations to quasi-1D, demonstrating that the length scale of quasi-1D detonation is larger than that of truly 1D model, similar to gaseous detonations.
KW - Al particle
KW - cellular detonation
KW - heat capacity
KW - hybrid model
UR - http://www.scopus.com/inward/record.url?scp=85067896313&partnerID=8YFLogxK
U2 - 10.1080/00102202.2019.1632298
DO - 10.1080/00102202.2019.1632298
M3 - Article
AN - SCOPUS:85067896313
SN - 0010-2202
VL - 192
SP - 1931
EP - 1945
JO - Combustion Science and Technology
JF - Combustion Science and Technology
IS - 10
ER -