• DocumentCode
    3244251
  • Title

    The aerodynamics performance of Blended Wing Body Baseline-II E2

  • Author

    Ali, Zurriati M. ; Kuntjoro, Wahyu ; Wisnoe, Wirachman ; Nasir, Rizal Efendy M ; Mohamad, Firdaus ; Reduan, Nor F.

  • Author_Institution
    Fac. of Mech. Eng., Univ. Teknol. MARA (UiTM), Shah Alam, Malaysia
  • fYear
    2011
  • fDate
    27-29 May 2011
  • Firstpage
    293
  • Lastpage
    297
  • Abstract
    This paper discusses the aerodynamics characteristics of Blended Wing Body - Baseline II E2, unmanned aerial vehicle aircraft. A computational method, Computational Fluid Dynamic (CFD) Star CCM+ software has been performed to obtain the aerodynamics characteristic of the BWB. The aerodynamic characteristics prediction of BWB-Baseline II E2 aircraft was obtained through CFD analysis using unstructured mesh and standard one - equation turbulence model, Spalart-Allmaras was selected in the investigations. Lift coefficient (CL), drag coefficient (CD) and moment coefficient (CM) were studied at flight condition of Mach 0.1 (~34 m/s) at different angles of attack, α. The CFD results were compared with the experimental result. The results show the trend of lift curves are similar at the linear region (α = -10° to 7°) but at the higher angle of attack the trends become nonlinear. The drag coefficient for CFD simulations is greater than experimental result and there are differences in pitching moment curves between CFD simulation and experiment data which the experiment data shows a steep curve than simulation.
  • Keywords
    Mach number; aerodynamics; aerospace components; aircraft; computational fluid dynamics; drag; flow simulation; remotely operated vehicles; turbulence; CFD analysis; Mach number; Spalart-Allmaras; Star CCM+ software; aerodynamics performance; angle of attack; blended wing body baseline-II E2 aircraft; computational fluid dynamics; drag coefficient; lift coefficient; linear region; moment coefficient; pitching moment curves; turbulence; unmanned aerial vehicle aircraft; unstructured mesh; Aircraft; Atmospheric modeling; Computational fluid dynamics; Equations; Mathematical model; Aerodynamics; Blended Wing Body; CFD;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Communication Software and Networks (ICCSN), 2011 IEEE 3rd International Conference on
  • Conference_Location
    Xi´an
  • Print_ISBN
    978-1-61284-485-5
  • Type

    conf

  • DOI
    10.1109/ICCSN.2011.6014899
  • Filename
    6014899