TY - JOUR
T1 - Characterizing the spray under varying ambient pressures for internal-mixing gas-liquid injector
AU - Qiao, Wentong
AU - Yang, Xiaocong
AU - Wang, Shaoyan
AU - Deng, Zhi
AU - Yang, Lijun
AU - Fu, Qingfei
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/6
Y1 - 2026/6
N2 - This study investigates the spray dynamics of an internal-mixing gas-liquid injector under elevated backpressure, relevant to engine combustors. Experiments combining high-speed imaging, shadowgraphy, and proper orthogonal decomposition reveal how gas-liquid momentum ratio ( GLMR ), backpressure ( P b), and gas Weber number ( We g) govern the flow and spray characteristics. Critical GLMR for separating aerodynamic and impact fragmentation regimes is predicted by theoretically deriving the liquid jet trajectories. The results demonstrate that increasing GLMR raises the gas discharge coefficient but lowers the liquid one. While Weg enhances the spray angle, P b reduces it. Increasing Weg also enhances the penetration distance, with a slight increase observed under higher P b. P b significantly reduces droplet velocity—a consequence of attenuated kinetic energy of atomized droplets—and generally increases droplet size, whereas Weg tends to reduce it. Furthermore, P b suppresses spray oscillation instability. These findings elucidate the mechanisms of backpressure influence and provide direct insights for optimizing injector performance in high-pressure environments.
AB - This study investigates the spray dynamics of an internal-mixing gas-liquid injector under elevated backpressure, relevant to engine combustors. Experiments combining high-speed imaging, shadowgraphy, and proper orthogonal decomposition reveal how gas-liquid momentum ratio ( GLMR ), backpressure ( P b), and gas Weber number ( We g) govern the flow and spray characteristics. Critical GLMR for separating aerodynamic and impact fragmentation regimes is predicted by theoretically deriving the liquid jet trajectories. The results demonstrate that increasing GLMR raises the gas discharge coefficient but lowers the liquid one. While Weg enhances the spray angle, P b reduces it. Increasing Weg also enhances the penetration distance, with a slight increase observed under higher P b. P b significantly reduces droplet velocity—a consequence of attenuated kinetic energy of atomized droplets—and generally increases droplet size, whereas Weg tends to reduce it. Furthermore, P b suppresses spray oscillation instability. These findings elucidate the mechanisms of backpressure influence and provide direct insights for optimizing injector performance in high-pressure environments.
KW - Ambient pressure
KW - Flow characteristics
KW - Internal-mixing gas-liquid injector
KW - Spray oscillations
UR - https://www.scopus.com/pages/publications/105034617472
U2 - 10.1016/j.ijmultiphaseflow.2026.105711
DO - 10.1016/j.ijmultiphaseflow.2026.105711
M3 - 文章
AN - SCOPUS:105034617472
SN - 0301-9322
VL - 200
JO - International Journal of Multiphase Flow
JF - International Journal of Multiphase Flow
M1 - 105711
ER -