Numerical Modeling of Supersonic Flow with a Region of Heat Release by a Longitudinal-Transverse Discharge

IF 1 4区 工程技术 Q4 MECHANICS Fluid Dynamics Pub Date : 2023-08-30 DOI:10.1134/S0015462823600281
K. N. Kornev, A. A. Logunov, V. M. Shibkov
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Abstract

Steady supersonic air flow in a diverging aerodynamic channel of rectangular cross-section is numerically simulated. The channel represents a laboratory model of an air-breathing straight-flow engine. The aerodynamic model is validated using the experimental data for the case in which the zone of volumetric heat release is absent. After the model has been validated a supersonic flow with a built-in zone of volumetric heat release was numerically simulated. Three-dimensional distributions of the velocity, temperature, and pressure in a steady supersonic air flow are obtained. It is shown that in the case, in which the volumetric density of the heat power of the source is equivalent to the mean total power of the discharge W = 10 kW, the discharge heats the gas up to the temperature T = 1700 to 4200 K, which leads to flow acceleration without its thermal choking. When the thermal power density of the source is equivalent to the mean common discharge power W = 20 kW, the gas is heated more strongly, up to 6700 K, but then local thermal choking of the flow occurs.

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超声速纵向-横向流动放热区域的数值模拟
对矩形截面发散气动通道内的定常超声速气流进行了数值模拟。该通道代表了一个实验室模型的吸气直流式发动机。用实验数据验证了该模型在没有体积放热区的情况下的有效性。在模型得到验证后,对一个内置体积放热区的超声速流动进行了数值模拟。得到了稳定超音速气流中速度、温度和压力的三维分布。结果表明,在热源热功率体积密度等于放电平均总功率W = 10 kW的情况下,放电将气体加热至温度T = 1700 ~ 4200 K,导致气流加速而不产生热堵塞。当源的热功率密度相当于平均共放电功率W = 20 kW时,气体受热更强,可达6700 K,但随后会发生流动的局部热堵塞。
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来源期刊
Fluid Dynamics
Fluid Dynamics MECHANICS-PHYSICS, FLUIDS & PLASMAS
CiteScore
1.30
自引率
22.20%
发文量
61
审稿时长
6-12 weeks
期刊介绍: Fluid Dynamics is an international peer reviewed journal that publishes theoretical, computational, and experimental research on aeromechanics, hydrodynamics, plasma dynamics, underground hydrodynamics, and biomechanics of continuous media. Special attention is given to new trends developing at the leading edge of science, such as theory and application of multi-phase flows, chemically reactive flows, liquid and gas flows in electromagnetic fields, new hydrodynamical methods of increasing oil output, new approaches to the description of turbulent flows, etc.
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