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TsAGI Science Journal

ISSN 印刷: 1948-2590
ISSN オンライン: 1948-2604

TsAGI Science Journal

DOI: 10.1615/TsAGISciJ.v40.i2.10
pages 131-149

NUMERICAL SIMULATION OF AERODYNAMICS OF WINGED RE-ENTRY SPACE VEHICLE

A. V. Vaganov
Central Aerohydrodynamic Institute (TsAGI) 1, Zhukovsky str., Zhukovsky, 140180, Moscow region, Russia
Sergey Drozdov
Central Aerohydrodynamic Institute (TsAGI) 1, Zhukovsky str., Zhukovsky, 140180, Moscow region, Russia
Alexander Petrovich Kosykh
Central Aerohydrodynamic Institute (TsAGI) 1, Zhukovsky str., Zhukovsky, 140180, Moscow region, Russia
Garry Grantovich Nersesov
Central Aerohydrodynamic Institute (TsAGI) 1, Zhukovsky str., Zhukovsky, 140180, Moscow region, Russia
Iraida Fedorovna Chelysheva
Central Aerohydrodynamic Institute (TsAGI) 1, Zhukovsky str., Zhukovsky, 140180, Moscow region, Russia
Vladimir L'vovich Yumashev
Central Aerohydrodynamic Institute (TsAGI) 1, Zhukovsky str., Zhukovsky, 140180, Moscow region, Russia

要約

Investigated numerically are the flow pattern and the aerodynamic characteristics of a new generation of winged re-entry space vehicles (RSVs) of comparably small size. Examined is the RSV — TsAGI [1, 2] layout, which has a complicated configuration: strongly blunt fuselage, wing with variable-swept leading edge and with two tips, elevons, fuselage trim panel, and a vertical fin with a rudder and air brake installed on it. Calculations were performed for inviscid and thermally nonconductive gas within the range of Mach numbers M = 1.1−16.5 and within the range of angle of attack α = 0−45°. The main aerodynamic characteristics of RSVs, i.e., their flow field topology features, are defined by means of numerical simulation, and the influence of real air thermophysical properties at hypersonic velocities was investigated by means of numerical simulation.

参考

  1. Vaganov, A., Zadonsky, A., Kireev, A., Paderin, L., Plyashechnik, V., Skuratov, A., Stepanov, E., Kobzev, V., Yaroshevsky, V., Lavrakhin, G., and Yudin, V., The formation of the advanced winged re-entry vehicle layout and the definition of its aerodynamic characteristics.

  2. Vaganov, A., Dmitriev, V., Zadonsky, S., Kireev, A., Skuratov, A., and Stepanov, E., The estimations of thermal conditions of small-sized winged re-entry vehicles on its design stage.

  3. Vaganov, A., Drozdov, S., Dudin, G., Kosykh, A., Nersesov, G., Pafnutiev, V., Chelysheva, I., and Yumashev, V., The numerical investigation of the advanced re-entry space vehicle aerodynamics.

  4. Kosykh, A., Nersesov, G., Chelysheva, I., and Yumashev, V., The numerical simulation of three-dimensional flow over supersonic vehicles and its elements by means of multipoint technology.

  5. Griffich, B. J., Maus, J. R., Majors, Â. Ì., and Best, J. Ò., Addressing the hypersonic simulation problem.

  6. Neiland, V. Ya., The convergence of the orbiter "Buran" flight test and preflight study results and the choice of strategy to develop a second generation orbiter.

  7. Golubinsky, A., Kosykh, A., Savin, I., and Chelysheva, I., The numerical simulation of supersonic three-dimensional flow over idealized layouts of the RSV by perfect gas and by equilibrium-dissociating air.

  8. Golubinsky, A., Kosykh, A., and Chelysheva, I., The mathematical simulation of the RSA flight at hypersonic velocities while disorbiting.

  9. 9. Belov, I., Kosykh, A., Chelysheva, I., Naboyschikov, G., and Skorodelov, V., The numerical investigation of the flow over the experimental aircraft and of the aircraft aerodynamic char¬ acteristics taking into account the real air thermodynamic properties.

  10. Dmitriev, V. G., Vaganov, A. V., Gorshkov, À. Â., Lapygin, V. I., Galaktionov, A. Yu., and Mikhalin, V. A., Analysis of aerothermodynamic parameters of reusable space wing vehicles.


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