TY - JOUR
T1 - Numerical investigation on effects of divergent section expansion ratio on flow characteristics of multi-stream serpentine nozzle under various offset ratios
AU - Zhang, Xinye
AU - Zhou, Li
AU - Shi, Jie
AU - Wang, Zhanxue
N1 - Publisher Copyright:
© 2026 Elsevier Inc.
PY - 2026/9
Y1 - 2026/9
N2 - Multi-stream serpentine nozzles enhance adaptive-cycle engine compatibility and aircraft stealth performance. However, their complex geometry induces severe flow interactions and losses, necessitating a deep understanding of how key geometric parameters affect the flow characteristics. This study numerically investigates 30 nozzle configurations with offset ratios ranging from 0.25 to 0.65 and divergent section expansion ratios ranging from 1.10 to 1.50. Results show increasing offset ratio promotes shock wave coalescence and mainstream over-expansion at lower expansion ratios, forming λ-shaped or normal shocks. Vorticity analysis reveals offset ratio intensifies corner vortices in the transition section, while expansion ratio amplifies upper-wall vortices. Analysis of turbulent kinetic energy identifies distinct jet regions, demonstrating that larger offset ratios accelerate attenuation of the upper tertiary stream core length, with this shortening occurring at progressively lower expansion ratios. Reduced core length shifts the complete mixing location further upstream. Total pressure recovery declines with both parameters (maximum drop 9.915 %). The main discharge coefficient decreases with offset but increases with expansion, whereas the tertiary discharge coefficient varies non-monotonically (maximum deviation 18.919 %). Optimal expansion ratio for peak thrust shifts lower as offset increases. These findings elucidate the individual and superimposed roles of offset ratio and expansion ratio in modulating flow distortion, shock-system evolution, and mixing enhancement, thereby providing a framework for managing aerodynamic losses and optimizing performance in multi-stream serpentine nozzle design. Abbreviations: Δy/D, offset ratio; Am,e/Ath, divergent section expansion ratio; pa, ambient pressure; Ta, ambient temperature; NPR, nozzle pressure ratio; TPR, tertiary pressure ratio; Tin*, inlet total temperature; FPG, favorable pressure gradient; APG, adverse pressure gradient; ES, expansion-shock structure; OS, oblique shock wave; TS, transmitted shock wave; NS, normal shock wave; θth, total pressure loss coefficient at the throat of the main stream section; TKE, turbulent kinetic energy; σe, total pressure recovery coefficient; CD,m, discharge coefficient of the main stream; CD,t, discharge coefficient of the tertiary stream; CFx, axial thrust coefficient.
AB - Multi-stream serpentine nozzles enhance adaptive-cycle engine compatibility and aircraft stealth performance. However, their complex geometry induces severe flow interactions and losses, necessitating a deep understanding of how key geometric parameters affect the flow characteristics. This study numerically investigates 30 nozzle configurations with offset ratios ranging from 0.25 to 0.65 and divergent section expansion ratios ranging from 1.10 to 1.50. Results show increasing offset ratio promotes shock wave coalescence and mainstream over-expansion at lower expansion ratios, forming λ-shaped or normal shocks. Vorticity analysis reveals offset ratio intensifies corner vortices in the transition section, while expansion ratio amplifies upper-wall vortices. Analysis of turbulent kinetic energy identifies distinct jet regions, demonstrating that larger offset ratios accelerate attenuation of the upper tertiary stream core length, with this shortening occurring at progressively lower expansion ratios. Reduced core length shifts the complete mixing location further upstream. Total pressure recovery declines with both parameters (maximum drop 9.915 %). The main discharge coefficient decreases with offset but increases with expansion, whereas the tertiary discharge coefficient varies non-monotonically (maximum deviation 18.919 %). Optimal expansion ratio for peak thrust shifts lower as offset increases. These findings elucidate the individual and superimposed roles of offset ratio and expansion ratio in modulating flow distortion, shock-system evolution, and mixing enhancement, thereby providing a framework for managing aerodynamic losses and optimizing performance in multi-stream serpentine nozzle design. Abbreviations: Δy/D, offset ratio; Am,e/Ath, divergent section expansion ratio; pa, ambient pressure; Ta, ambient temperature; NPR, nozzle pressure ratio; TPR, tertiary pressure ratio; Tin*, inlet total temperature; FPG, favorable pressure gradient; APG, adverse pressure gradient; ES, expansion-shock structure; OS, oblique shock wave; TS, transmitted shock wave; NS, normal shock wave; θth, total pressure loss coefficient at the throat of the main stream section; TKE, turbulent kinetic energy; σe, total pressure recovery coefficient; CD,m, discharge coefficient of the main stream; CD,t, discharge coefficient of the tertiary stream; CFx, axial thrust coefficient.
KW - Aerodynamic performance
KW - Divergent section expansion ratio
KW - Multi-stream serpentine nozzle
KW - Offset ratio
KW - Shock wave coalescence
KW - Turbulent kinetic energy
UR - https://www.scopus.com/pages/publications/105045808285
U2 - 10.1016/j.ijheatfluidflow.2026.110590
DO - 10.1016/j.ijheatfluidflow.2026.110590
M3 - 文章
AN - SCOPUS:105045808285
SN - 0142-727X
VL - 121
JO - International Journal of Heat and Fluid Flow
JF - International Journal of Heat and Fluid Flow
M1 - 110590
ER -