NON-CIRCULAR AND NON-CYLINDRICAL STREAMVANES

被引:0
|
作者
Gillespie, John [1 ]
Lowe, K. Todd [1 ]
机构
[1] Virginia Polytech Inst & State Univ, Blacksburg, VA 24061 USA
关键词
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
We show that desired swirl distributions may be obtained in non-circular and non-cylindrical inlet ducts by tailored vane distributions designed with an a priori method, and further explain dominant physics for the spatial evolution of swirl in expanding or contracting ducts. Virginia Tech has developed the StreamVane (TM) device for producing swirl distortion, as well as the ScreenVane (TM) device for producing combined swirl and pressure distortions. Up to now, all StreamVane and ScreenVane devices have designed to fit in a right, circular cylindrical duct. This is usually the simplest geometry to use for testing the response (in terms of performance and stall margin changes, as well as aeromechanics) of turbofan engines to inlet distortion. However, many potential applications exist for generating or removing swirl distortions in ducts that are not cylindrical. For example, turboshaft engines generally do not have a cylindrical inlet to install a StreamVane in front of. Yet, inlet distortion is still very relevant to the performance of the engine. With a non-cylindrical StreamVane, inlet distortions generated by various flight conditions can be tested in conjunction with the real aircraft inlet. Further applications exist both within and outside of the field of turbomachinery for flow conditioning purposes. Four separate conceptual designs were created and analyzed: a converging duct (nozzle), a diverging duct (diffuser), a square duct, and an annular duct. Twin vortex swirl profiles were specified for all of the cases except the annular duct, which was designed to create a single vortex. However, in a real application, these swirl profiles would instead be specified by the end-user depending on what is required for the test. As in circular cylindrical StreamVanes, the end-user has the option of selecting any physically consistent swirl profile. All of the concept designs were checked with CFD analysis in ANSYS CFX. The square and annular StreamVanes showed comparable performance to a baseline StreamVane in a cylindrical duct (RMS errors of 1.5 degrees or less). The StreamVanes placed in a nozzle and diffuser demonstrated that swirl patterns may also be created in converging and diverging ducts, and that the varying cross sectional area has a non-negligible influence on the development of the swirl profile. A simple explanation has been made for this altered flow development has been, and is shown to make good quantitative predictions of the changes in swirl with downstream location. The demonstration of the capability to create StreamVanes for applications that do not use cylindrical ducts should open a variety of possibilities, while building on existing experiences.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Free vibrations of laminated composite non-circular thick cylindrical shells
    Suzuki, K
    Shikanai, G
    Leissa, AW
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 1996, 33 (27) : 4079 - 4100
  • [32] Vibration analysis of a railway carbody model as a non-circular cylindrical shell
    Kobayashi, Yukinori
    Ishiguri, Kotaro
    Tomioka, Takahiro
    Hoshino, Yohei
    PROCEEDINGS OF THE ASME INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCE AND INFORMATION IN ENGINEERING CONFERENCE, VOL 1, PTS A-C, 2008, : 2085 - 2093
  • [33] Stress concentration on thin cylindrical shells with large non-circular openings
    Song, Tian-shu
    Wu, Lin-zhi
    Du, Shan-yi
    Liu, Dian-kui
    Gong Cheng Li Xue/Engineering Mechanics, 2000, 17 (06): : 47 - 52
  • [34] Bistable laminates with non-cylindrical curved shapes
    Chillara, V. S. C.
    Dapino, M. J.
    COMPOSITE STRUCTURES, 2019, 230
  • [35] STARTUP OF NON-CIRCULAR TOKAMAKS
    GROSS, L
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1977, 22 (09): : 1187 - 1187
  • [36] On the dissipative Boussinesq equation in a non-cylindrical domain
    Clark, H. R.
    Cousin, A. T.
    Frota, C. L.
    Limaco, J.
    NONLINEAR ANALYSIS-THEORY METHODS & APPLICATIONS, 2007, 67 (08) : 2321 - 2334
  • [37] CNC LONGITUDINAL GRINDING WITH NON-CYLINDRICAL WORKPIECES
    MEUSBURGER, P
    WERKSTATTSTECHNIK ZEITSCHRIFT FUR INDUSTRIELLE FERTIGUNG, 1989, 79 (12): : 673 - 676
  • [38] Evaporation of non-circular droplets
    Wray, Alexander W.
    Moore, Madeleine R.
    JOURNAL OF FLUID MECHANICS, 2023, 961
  • [39] Drops with non-circular footprints
    Ravazzoli, Pablo D.
    Gonzalez, Alejandro G.
    Diez, Javier A.
    PHYSICS OF FLUIDS, 2016, 28 (04)
  • [40] Dynamical shape control in non-cylindrical hydrodynamics
    Dziri, R
    Zolésio, JP
    INVERSE PROBLEMS, 1999, 15 (01) : 113 - 122