Modeling of hypersonic vehicles propulsion system

被引:0
|
作者
Xiao, Di-Bo [1 ]
Lu, Yu-Ping [1 ]
Yao, Ke-Ming [2 ]
Liu, Yan-Bin [1 ]
Chen, Bo-Yi [1 ]
机构
[1] College of Astronautics, Nanjing University of Aeronautics and Astronautics, Nanjing,210016, China
[2] College of Electrical and Information Engineering, Jiangsu University of Technology, Changzhou,Jiangsu,213001, China
来源
关键词
Angle of attack - Computation theory - Curve fitting - Ducts - Hypersonic aerodynamics - Hypersonic vehicles - Mach number - Propulsion - Ramjet engines;
D O I
10.13224/j.cnki.jasp.2015.04.022
中图分类号
学科分类号
摘要
In order to quickly obtain the thrust and moment of thrust at the early design stage, and satisfy relevant modeling and analysis control, a model for the propulsion system of hypersonic vehicle was proposed. An inlet model was developed based on the wave interaction method. Moreover, the dual-mode combustor was modeled by an increasing area duct with heat addition and friction, whereas the internal nozzle was modeled by a variable area duct with friction. Accordingly, the thrust was estimated according to the momentum theory, and then analytical expression was obtained by a curve-fitting method. Compared with the result of CFD, the error of Mach number and temperature at the dual mode ramjet engine inlet was less than 5%, and the pressure error was less than 10%; the computed thrust increased as Mach number, stoichiometrically normalized fuel-to-air ratio and angle of attack increased, and decreased as height increased; the time cost of one state point was less than 0.5 s averagely. Computation result demonstrates that the proposed modeling approach meets the high efficiency and accuracy required in the control-oriented modeling process, contributing to the analysis and design related to dynamics and control of the hypersonic vehicles. ©, 2015, BUAA Press. All right reserved.
引用
收藏
页码:944 / 951
相关论文
共 50 条
  • [21] Hypersonic airbreathing propulsion
    Van Wie, David M.
    D'Alessio, Stephen M.
    White, Michael E.
    JOHNS HOPKINS APL TECHNICAL DIGEST, 2005, 26 (04): : 430 - 437
  • [22] Tracking oriented dynamics modeling of airbreathing hypersonic vehicles
    Li, Haining
    Lei, Humin
    Zhai, Dailiang
    Shao, Lei
    Li, Jiong
    Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica, 2014, 35 (06): : 1651 - 1664
  • [23] Adaptive Control of Hypersonic Vehicles in the Presence of Modeling Uncertainties
    Gibson, Travis E.
    Crespo, Luis G.
    Annaswamy, Anuradha M.
    2009 AMERICAN CONTROL CONFERENCE, VOLS 1-9, 2009, : 3178 - +
  • [24] Supercomputer modeling of flow past hypersonic flight vehicles
    Ermakov, M. K.
    Kryukov, I. A.
    10TH INTERNATIONAL CONFERENCE ON AEROPHYSICS AND PHYSICAL MECHANICS OF CLASSICAL AND QUANTUM SYSTEMS, 2017, 815
  • [25] Modeling and input-output decoupling of hypersonic vehicles
    Xiaofeng Su
    Yingmin Jia
    Junping Du
    Jun Zhang
    International Journal of Control, Automation and Systems, 2015, 13 : 156 - 166
  • [26] Modeling and Input-Output Decoupling of Hypersonic Vehicles
    Su, Xiaofeng
    Jia, Yingmin
    Du, Junping
    Zhang, Jun
    INTERNATIONAL JOURNAL OF CONTROL AUTOMATION AND SYSTEMS, 2015, 13 (01) : 156 - 166
  • [27] On the feasibility of piloting hypersonic vehicles: A pilot modeling approach
    Doman, DB
    AIAA GUIDANCE, NAVIGATION, AND CONTROL CONFERENCE, VOLS 1-3: A COLLECTION OF TECHNICAL PAPERS, 1999, : 892 - 900
  • [28] Australian Air Breathing Propulsion Research for Hypersonic, Beamed Energy-Propelled Vehicles
    Froning, David
    BEAMED ENERGY PROPULSION, 2010, 1230 : 13 - 16
  • [29] Modeling and coupling characteristics for an airframe-propulsion-integrated hypersonic vehicle
    Lv, Chengkun
    Chang, Juntao
    Dong, Yilei
    Ma, Jicheng
    Xu, Cheng
    ADVANCES IN AIRCRAFT AND SPACECRAFT SCIENCE, 2020, 7 (06): : 553 - 570
  • [30] Static aeroelasticity of the propulsion system of ion propulsion unmanned aerial vehicles
    Hao, Shuai
    Ma, Tielin
    Chen, She
    Ma, Hongzhong
    Xiang, Jinwu
    Ouyang, Fangxiang
    PROPULSION AND POWER RESEARCH, 2023, 12 (03) : 336 - 355