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1.5级涡轮实验台前腔燃气入侵实验

张灵俊 罗翔 余鸿鹏 郭隽

张灵俊, 罗翔, 余鸿鹏, 郭隽. 1.5级涡轮实验台前腔燃气入侵实验[J]. 航空动力学报, 2013, 28(12): 2746-2751.
引用本文: 张灵俊, 罗翔, 余鸿鹏, 郭隽. 1.5级涡轮实验台前腔燃气入侵实验[J]. 航空动力学报, 2013, 28(12): 2746-2751.
ZHANG Ling-jun, LUO Xiang, YU Hong-peng, GUO Jun. Experiment on gas ingestion on forward disk cavity of 1.5 stage turbine rig[J]. Journal of Aerospace Power, 2013, 28(12): 2746-2751.
Citation: ZHANG Ling-jun, LUO Xiang, YU Hong-peng, GUO Jun. Experiment on gas ingestion on forward disk cavity of 1.5 stage turbine rig[J]. Journal of Aerospace Power, 2013, 28(12): 2746-2751.

1.5级涡轮实验台前腔燃气入侵实验

基金项目: 国家自然科学基金(50806004)

Experiment on gas ingestion on forward disk cavity of 1.5 stage turbine rig

  • 摘要: 在1.5级涡轮实验台上,针对不同转速和不同封严质量流量,分别采用稳态压力测量、瞬态压力测量和二氧化碳体积分数法对燃气入侵现象进行了实验研究,以确定不同工况下主流的动静叶相互作用对燃气入侵的影响以及入侵到盘腔的燃气在腔内与冷气的掺混过程.结果表明:静叶后的时均压力在周向有明显的周期分布,部分区域封严环外的压力高于腔内压力,且随着封严质量流量增加,这一区域逐渐缩小;动叶扫掠带来同频率的压力波动,对于燃气入侵的发生有着重要的影响;通过二氧化碳体积分数实验获得了最小封严质量流量,并得到在封严质量流量不足情况下燃气沿着静盘侧入侵盘腔的结果.

     

  • [1] Campbell D A.Gas turbine disc sealing system design[R]. AGARD-CP-237, 1978.
    [2] Abe T, Kikuchi J, Takeuchi H.An investigation of turbine disc cooling[R].Vienna:3rd CIMAC Congress, 1979.
    [3] Kobayashi N, Matsumato M, Shizuya M.An experimental investigation of a gas turbine disc cooling system[J].Journal of Engineering for Gas Turbines and Power, 1984, 106(1):136-141.
    [4] Roy R P, Feng J, Narzary D, et al.Experiments on gas ingestion through axial-flow turbine rim seals[R].ASME Paper GT-2004-53394, 2004.
    [5] Narzary D, Feng J, Roy R P.Ingestion into a rotor-stator disk cavity with single-and double-rim seals[R].AIAA-2005-3982, 2005.
    [6] Roy R P, Devasenathipathy S, Xu G, et al.A study of the flow field in a model rotor-stator disk cavity[R].ASME Paper 99-GT-246, 1999.
    [7] Roy R P, Xu G, Feng J.Study of main-stream gas ingestion in a rotor-stator disk cavity[R].AIAA-2000-3372, 2000.
    [8] Roy R P, Xu G, Feng J, et al.Pressure fieldand main stream gas ingestion in rotor stator disk cavity[R].ASME Paper 2001-GT-564, 2001.
    [9] Roy R P, Xu G, Feng J, et al.A study of convective heat transfer in a model rotor-stator disk cavity[J].Journal of Turbomachinery, 2001, 123(3):621-632.
    [10] Zhou D, Roy R, Wang C, et al.Main gas ingestion in a turbine stage for three rim cavity configurations[C]//Proceedings of ASME Turbo Expo 2009.Orlando, FL, USA:American Society of Mechanical Engineers, 2009:1239-1252.
    [11] Bohn D E, Decker A, Ohlendorf N, et al.Influence of an axial and radial rim seal geometry on hot gas ingestion into the upstream cavity of a 1.5-stage turbine[R].ASME Paper GT-2006-90453, 2006.
    [12] Gallier K D, Lawless P B, Fleeter S.Investigation of seal purge flow effects on the hub flow field in a turbine stage using particle image velocimetry[R].AIAA-2000-3370, 2000.
    [13] Dierksheide U, Meyer P, Hovestadt T.Endoscopic 2D particle image velocimetry (PIV) flow field measurements in IC engines[J].Experiments in Fluids, 2002, 33(6):794-800.
    [14] Owen J M.Prediction of ingestion through turbine rim seals:Part 1 rotationally-induced ingress[R].ASME Paper GT-2009-29121, 2009.
    [15] Owen J M.Prediction of ingestion through turbine rim seals:Part 2 externally-induced and combined ingress[R].ASME Paper GT-2009-29122, 2009.
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出版历程
  • 收稿日期:  2012-11-06
  • 刊出日期:  2013-12-28

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