超燃冲压发动机
超音速
机械
雷诺平均Navier-Stokes方程
马赫数
燃烧室
休克(循环)
大涡模拟
材料科学
湍流
冲击波
流量(数学)
计算机模拟
阻塞流
喷射(流体)
前沿
消散
对偶(语法数字)
航空航天工程
分离涡模拟
物理
燃烧
动量(技术分析)
剪切(地质)
涡流
高超音速飞行
高超音速
唤醒
静压
计算流体力学
压力梯度
振动
基线(sea)
混合(物理)
作者
Vasudevan Venkateshwaran,P. Padmanathan
出处
期刊:International Journal of Modern Physics C
[World Scientific]
日期:2025-09-26
标识
DOI:10.1142/s0129183126500464
摘要
This research explores the combustion process in supersonic combustors using steady-state numerical simulations, with a particular emphasis on strut- and cavity-based mixing techniques. The study reveals that shock waves emanating from the leading edge and recirculation zones generated by cavities significantly influence flame structure and stability, underscoring their importance in achieving stable combustion. Numerical simulations were conducted to examine the effects of dual cavity positioning on a Mach 2.0 airflow, with a baseline setup for comparison. The results were verified against experimental data, demonstrating the reliability of the simulation method. The study used a combination of steady-state RANS simulations, the SST k–[Formula: see text] turbulence model, species transport equations and the ideal gas assumption. The Finite Rate Eddy Dissipation model effectively captured the intricate dynamics of turbulence-chemistry interactions in the reacting flow. The strategic placement of dual cavities allows for investigation into the complex interactions of waves and shear layer mixing. Compared to the baseline model, the dual cavity configuration facilitates more complete combustion. When the dual cavities cause the shock train to move downstream of the strut injector, the combustion zone expands laterally due to intense interactions between shocks and shear layers. The presence of cavities alters the dominant frequencies and impacts the strength of coherent flow structures in the diverging section. The pressure loss for configurations C45 and C55 is approximately 33%, about 8% higher than the baseline case. Configuration C35, however, incurs a greater penalty, with a pressure loss of around 36%, or 17% above the baseline. Despite these losses, C45 and C55 show notable improvements in combustion efficiency and mixing length, making them promising design options. Optimal cavity positioning can enhance mixing and combustion efficiency while reducing total pressure loss.
科研通智能强力驱动
Strongly Powered by AbleSci AI