Simulations of Heat and Drag Reduction of Opposing Jet in Hypersonic Flow

IF 1.3 4区 工程技术 Q2 ENGINEERING, AEROSPACE Journal of Spacecraft and Rockets Pub Date : 2023-05-08 DOI:10.2514/1.a35696
Qian Wu, Haiming Huang, Yipu Zhao, J. Yao, Jiajing Bai, Jinglai Zheng
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Abstract

To reduce aerodynamic heat and drag, and thus improve the speed of hypersonic vehicles, opposing jet technology has become a research focus because of its excellent heat and drag reduction effect. In this paper, Navier–Stokes equations, the shear stress transport turbulent models, the Gupta chemical kinetics model, and the five-species air model are considered; and a numerical simulation program of hypersonic aerodynamic heat and drag with an opposing jet is developed and verified by existing experimental data. On this basis, the flight conditions of [Formula: see text], 14, and 15 at a 30 km flight altitude are simulated numerically; and the complex flowfield structure of the leading edge of a blunt body with or without the opposing jet is analyzed. It is found that the jet can push away the shock wave, playing a good role in reducing heat and drag. The influence of the pressure ratio, Mach number, and jet temperature on reducing heat and drag is investigated. The results indicate that, under the same conditions, increasing the pressure ratio, increasing the jet Mach number, and decreasing the inlet Mach number will be more helpful for reducing heat and drag; whereas increasing the jet temperature is not conducive to heat reduction and has little impact on aerodynamic drag.
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高超声速对置射流减热减阻的数值模拟
为了降低气动热阻,从而提高高超声速飞行器的速度,对向射流技术因其优异的减热减阻效果而成为研究热点。本文考虑了Navier-Stokes方程、剪切应力输运湍流模型、Gupta化学动力学模型和五种空气模型;并编制了具有对向射流的高超声速气动热阻数值模拟程序,并用已有的实验数据进行了验证。在此基础上,对[公式:见文]、14、15在30 km飞行高度下的飞行情况进行了数值模拟;分析了有无对向射流时钝体前缘复杂的流场结构。研究发现,射流可以推开激波,起到很好的减热减阻作用。研究了压力比、马赫数和射流温度对减热减阻的影响。结果表明,在相同条件下,增大压比、增大射流马赫数、减小进气道马赫数更有利于减热减阻;而射流温度的升高不利于减热,对气动阻力影响不大。
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来源期刊
Journal of Spacecraft and Rockets
Journal of Spacecraft and Rockets 工程技术-工程:宇航
CiteScore
3.60
自引率
18.80%
发文量
185
审稿时长
4.5 months
期刊介绍: This Journal, that started it all back in 1963, is devoted to the advancement of the science and technology of astronautics and aeronautics through the dissemination of original archival research papers disclosing new theoretical developments and/or experimental result. The topics include aeroacoustics, aerodynamics, combustion, fundamentals of propulsion, fluid mechanics and reacting flows, fundamental aspects of the aerospace environment, hydrodynamics, lasers and associated phenomena, plasmas, research instrumentation and facilities, structural mechanics and materials, optimization, and thermomechanics and thermochemistry. Papers also are sought which review in an intensive manner the results of recent research developments on any of the topics listed above.
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