Numerical simulation of supersonic flow past reentry capsules

被引:0
作者
R. C. Mehta
机构
[1] Vikram Sarabhai Space Centre,Aerodynamics Division
来源
Shock Waves | 2006年 / 15卷
关键词
Supersonic flows; Computational fluid dynamics; Reentry capsules;
D O I
暂无
中图分类号
学科分类号
摘要
The flow fields over ARD (ESA's atmospheric reentry demonstrator), OREX (orbital reentry experiments) and spherically blunted cone-flare reentry configurations are numerically obtained by solving time-dependent, axisymmetric, compressible Navier–Stokes equations for freestream Mach numbers range of 1.2–6.0. The fluid dynamics are discretized in spatial coordinates employing a finite volume approach which reduces the governing equations to semi discretized ordinary differential equations. Temporal integration is performed using the multistage Runge–Kutta time-stepping scheme. A local time step is used to achieve steady-state solution. The numerical simulation is carried out on a structured grid. The flow-field features around the reentry capsule, such as bow shock wave, sonic line, expansion fan and recirculating flow in the base region are obtained. A good agreement is found between the calculated value of aerodynamic drag coefficient of the spherically blunted cone/fare reentry configuration with the experimental data. The effects of geometrical parameters, such as radius of the spherical cap, half cone angle, with sharp shoulder edge and with smooth shoulder edge on the flow-field have been numerically investigated for various reentry configuration which will be useful for optimization of the reentry capsule.
引用
收藏
页码:31 / 41
页数:10
相关论文
共 27 条
[1]  
Chester W.(1956)Supersonic flow past a bluff body with a detached shock J. Fluid Mech. 1 353-365
[2]  
Freeman N.C.(1956)On the theory of hypersonic flow past plane and axially symmetric bluff bodies J. Fluid Mech. 1 353-365
[3]  
Lighthill M.J.(1957)Dynamics of a dissociating gas, Part 1: Equilibrium flow J. Fluid Mech. 2 1-32
[4]  
Wood W.A.(1996)Commercial Experiment Transport reentry capsule J. Spacecraft Rockets 33 643-646
[5]  
Gnoffo D.F.G.(1995)Review and development of base pressure and base heating correlations in supersonic flow J. Spacecraft Rockets 32 8-23
[6]  
Rault D.F.G.(2003)Computational prediction of the Beagle 2 aerodynamic database J. Spacecraft Rockets 40 632-638
[7]  
Lamb J.P.(2002)Numerical investigation of high-enthaly flow generated by expansion tube AIAA J. 40 2423-2430
[8]  
Oberkampf W.L.(1994)Navier-Stokes solver for hypersonic flow over a slander cone J. Spacecraft Rockets 31 215-222
[9]  
Liever P.A.(2001)Numerical analysis of dynamic stability of a reentry capsule at transonic speeds AIAA J 39 646-653
[10]  
Habchi S.D.(2002)Mechanism of dynamic instability of a reentry capsule at transonic speeds AIAA J 40 2467-2475