Uncertainty Propagation in Integrated Airframe-Propulsion System Analysis for Hypersonic Vehicles

被引:24
|
作者
Lamorte, Nicolas [1 ]
Friedmann, Peretz P. [1 ]
Dalle, Derek J. [1 ]
Torrez, Sean M. [1 ]
Driscoll, James F. [1 ]
机构
[1] Univ Michigan, Ann Arbor, MI 48109 USA
关键词
SCRAMJET; FLIGHT; FLOWS;
D O I
10.2514/1.B35122
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Air-breathing hypersonic vehicles are based on an airframe-integrated scramjet engine. The elongated forebody that serves as the inlet of the engine is subject to harsh aerothermodynamic loading, which causes it to deform. Unpredicted deformations may produce unstart, combustor chocking, or structural failure due to increased loads. An uncertainty quantification framework is used to propagate the effects of aerothermoelastic deformations on the performance of the scramjet engine. A loosely coupled airframe-integrated scramjet engine is considered. The aerothermoelastic deformations calculated for an assumed trajectory and angle of attack are transferred to a scramjet engine analysis. Uncertainty associated with deformation prediction is propagated through the engine performance analysis. The effects of aerodynamic heating and aerothermoelastic deformations at the cowl of the inlet are the most significant. The cowl deformation is the main contributor to the sensitivity of the propulsion system performance to aerothermoelastic effects.
引用
收藏
页码:54 / 68
页数:15
相关论文
共 50 条
  • [1] Modelling for couplings of an airframe-propulsion integrated hypersonic vehicle with engine safety boundaries
    Yao, Z-H
    Bao, W.
    Chang, J.
    Yu, D.
    Tang, J.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2010, 224 (G1) : 43 - 55
  • [2] APPLICATION OF NUMERICAL ANALYSIS TOOLS FOR AIRFRAME-PROPULSION INTEGRATED TEST AND EVALUATION
    Davis, Milt W., Jr.
    Hale, Alan A.
    Vining, Charles
    Cousins, William T.
    PROCEEDINGS OF THE ASME TURBO EXPO 2008, VOL 1, 2008, : 31 - 40
  • [3] Mode transition path optimization for turbine-based combined-cycle ramjet stage under uncertainty propagation of integrated airframe-propulsion system
    Lv, Chengkun
    Huang, Qian
    Chang, Juntao
    Wang, Ziao
    Zheng, Jialin
    Yu, Daren
    ENERGY, 2023, 268
  • [4] Airframe-Propulsion Integrated Performance under Fluid-Structure-Propulsion Coupling
    Chen B.
    Qiu L.-K.
    Gong C.-L.
    Gu L.-X.
    Tuijin Jishu/Journal of Propulsion Technology, 2020, 41 (04): : 729 - 739
  • [5] Parametric analysis of an integrated airframe/propulsion module design for hypersonic vehicle
    School of Aeronautical Sciences and Engineering, Beijing University of Aeronautics and Astronautics, Beijing 100083, China
    Hangkong Dongli Xuebao, 2008, 7 (1287-1292):
  • [6] Inspiration of hypersonic vehicle with airframe/propulsion integrated design
    Luo, Jinling
    Li, Chao
    Xu, Jin
    Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica, 2015, 36 (01): : 39 - 48
  • [7] Airframe-propulsion integration methodology for waverider-derived hypersonic cruise aircraft design concepts
    Javaid, KH
    Serghides, VC
    JOURNAL OF SPACECRAFT AND ROCKETS, 2005, 42 (04) : 663 - 671
  • [8] Impact of Airframe-Propulsion System Modeling Strategies on Key Structural Performance Metrics
    Colbert, Stephen
    Quinn, Damian
    Nolan, Declan C.
    Fox, Rob
    Gaskell, Jill
    JOURNAL OF AIRCRAFT, 2023, 60 (02): : 281 - 292
  • [9] 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
  • [10] Modeling of hypersonic vehicles propulsion system
    Xiao, Di-Bo
    Lu, Yu-Ping
    Yao, Ke-Ming
    Liu, Yan-Bin
    Chen, Bo-Yi
    Hangkong Dongli Xuebao/Journal of Aerospace Power, 2015, 30 (04): : 944 - 951