A Study on Blended Inlet Body Design for a High Supersonic Unmanned Aerial Vehicle

被引:1
作者
You, Lianxing [1 ]
Yu, Xiongqing [1 ]
Li, Hongmei [2 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Aerosp Engn, Key Lab Fundamental Sci Natl Def Adv Design Techn, Nanjing 210016, Peoples R China
[2] Nanjing Inst Mechatron Technol, Dept Automat Engn, Nanjing 211135, Jiangsu, Peoples R China
关键词
near-space unmanned aerial vehicle; supersonic inlet; aerodynamic configuration; integrated design; numerical simulation;
D O I
10.5139/IJASS.2016.17.2.260
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The design process of blended inlet body (BIB) for the preliminary design of a near-space high supersonic unmanned aerial vehicle (HSUAV) is presented. The mass flow rate and cowl area of inlet at a design point are obtained according to the cruise condition of the HSUAV. A mixed-compression axisymmetric supersonic inlet section with a fixed geometry reasonably matching the high supersonic cruise state is created by using the inviscid theory of aerodynamics. The inlet section is optimized and used as a baseline section for the BIB design. Three BIB concepts for the HSUAV are proposed, and their internal aerodynamic characteristics of inlet are evaluated using Euler computational fluid dynamics (Euler CFD) solver. The preferred concept is identified, in which the straight leading edge of the baseline HSUAV configuration is modified into the convex leading edge to accommodate the inlet and meet the requirements of the cowl area to capture the sufficient air flow. The total recovery of inlet for the preferred BIB concept and the aerodynamic characteristics of the modified HSUAV configuration are verified using Navier-Stokes computational fluid dynamics (NS CFD) solver. The validation indicates that the preferred BIB concept can meet both the requirements of the inlet and aerodynamic performance of the HSUAV.
引用
收藏
页码:260 / 267
页数:8
相关论文
共 22 条
  • [1] Ahuja V, 2009, 16 AIAA DLR DGLR INT, P1
  • [2] Anderson JR J. D., 2011, FUNDAMENTALS AERODYN, P513
  • [3] [Anonymous], 32 AIAA ASME SAE ASE
  • [4] Coratekin T., 1999, AIAA PAPER, P199
  • [5] Curran E. T., 2000, SCRAMJET PROPULSION, P449
  • [6] Aerospace design optimization using a steady state real-coded genetic algorithm
    Dyer, John D.
    Hartfield, Roy J.
    Dozier, Gerry V.
    Burkhalter, John E.
    [J]. APPLIED MATHEMATICS AND COMPUTATION, 2012, 218 (09) : 4710 - 4730
  • [7] A century of ramjet propulsion technology evolution
    Fry, RS
    [J]. JOURNAL OF PROPULSION AND POWER, 2004, 20 (01) : 27 - 58
  • [8] Gordon C. O., 1989, AIRCRAFT PROPULSION, P203
  • [9] Hsia Y. C., 1989, J PROPULSION POWER, V7, P1030
  • [10] Jack D. M., 2002, AIRCRAFT ENGINE DESI, P120