IMPACT OF TURBINE-STRUT CLOCKING ON THE PERFORMANCE OF A TURBINE CENTER FRAME

被引:0
|
作者
Sterzinger, P. Z. [1 ]
Merli, F. [1 ]
Peters, A. [1 ,2 ]
Behre, S. [1 ,3 ]
Heitmeir, F. [1 ]
Goettlich, E. [1 ]
机构
[1] ITTM Graz Univ Technol, Graz, Austria
[2] GE Aviat, Munich, Germany
[3] MTU Aero Engines, Munich, Germany
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
Previous studies have indicated a potential for improving the performance of a Turbine Center Frame (TCF) duct by optimizing the clocking position between the high-pressure-turbine (HPT) vanes and TCF struts. To assess the impact of clocking on the performance, a new test vehicle with a clockable ratio of HPT vanes to TCF struts, consisting of an HPT stage (aerodynamically representative of the second-stage HPT engine), a TCF duct with non-turning struts, and a first-stage low-pressure turbine vane, was designed and tested in the transonic test turbine facility (TTTF) at Graz University of Technology. This paper quantifies the performance impact of clocking and describes the mechanisms causing TCF flow field changes, leveraging both experimental and numerical data. Other areas in the TCF duct impacted by the choice of the HPT vane circumferential position including the strength of unsteady HPT-TCF interaction modes, TCF strut incidence changes, and carry-over effects to the first LPT vane are additionally highlighted. Five-hole-probe (5HP) area traverses and kielhead-rake traverses were used to asses the flow field at the TCF-exit and calculate the pressure loss. The flow field at the TCF exit shows significant differences depending on the circumferential position of the HPT vane. A relative performance benefit of 5% was achieved. A series of unsteady RANS simulations were performed to support the measured results, understand and characterize the relevant loss mechanisms. The observed performance improvement was related to interaction between the HPT secondary -flow structures and the TCF struts. The impact of the HPT vane clocking on the unsteady flow field downstream of the TCF was investigated using Fast-Response Aerodynamic Pressure Probe (FRAPP) area traverses, analyzed by means of modal decomposition. In this way the individual azimuthal modes were ranked by their amplitude and a dependency of the clocking position was observed and quantified.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Parameterising the Impact of Roughness Evolution on Wind Turbine Performance
    Kelly, Jack
    Willden, Richard
    Vogel, Christopher
    [J]. WIND, 2022, 2 (02): : 415 - 428
  • [42] The Impact of Ice Formation on Wind Turbine Performance and Aerodynamics
    Barber, S.
    Wang, Y.
    Jafari, S.
    Chokani, N.
    Abhari, R. S.
    [J]. JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2011, 133 (01):
  • [43] Impact Of Vertical Wind Shear on wind turbine performance
    Chavan, Datta. S.
    Gaikwad, Shital
    Singh, Anupama
    Himanshu
    Parashar, Divya
    Saahil, Vivek
    Sankpal, Jaywant
    Karandikar, P. B.
    [J]. PROCEEDINGS OF 2017 IEEE INTERNATIONAL CONFERENCE ON CIRCUIT ,POWER AND COMPUTING TECHNOLOGIES (ICCPCT), 2017,
  • [44] Impact of Wind Turbine Control Strategies on Voltage Performance
    Vittal, Eknath
    O'Malley, Mark
    Keane, Andrew
    [J]. 2009 IEEE POWER & ENERGY SOCIETY GENERAL MEETING, VOLS 1-8, 2009, : 4443 - 4449
  • [45] Evaluation of the Impact of Surface Treatment on the Turbine Blade Performance
    Al-Jumaili, Shaymaa Abdul Khader
    Hawas, Malik N.
    Al-Gburi, Hussein
    [J]. JORDAN JOURNAL OF MECHANICAL AND INDUSTRIAL ENGINEERING, 2023, 17 (03): : 421 - 427
  • [46] Impact of ambient turbulence on performance of a small wind turbine
    Lubitz, William David
    [J]. RENEWABLE ENERGY, 2014, 61 : 69 - 73
  • [47] Impact of Stagger Angle Nonuniformity on Turbine Aerodynamic Performance
    Zhang, Weihao
    Zou, Zhengping
    Pan, Shangneng
    Liu, Huoxing
    Zhou, Ying
    Li, Wei
    [J]. JOURNAL OF THERMAL SCIENCE, 2010, 19 (05) : 465 - 472
  • [48] Impact of inlet air cooling on gas turbine performance
    Pyzik, Ewa
    Jarzebowski, Szymon
    Miller, Andrzej
    [J]. JOURNAL OF POWER TECHNOLOGIES, 2012, 92 (04): : 249 - 257
  • [49] Impact of Fuel Composition on Gas Turbine Engine Performance
    Burnes, Dan
    Camou, Alejandro
    [J]. JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 2019, 141 (10):
  • [50] Impact of Flexible Blades on the Performance of Savonius Wind Turbine
    Mohamed Taher Bouzaher
    Belhi Guerira
    [J]. Arabian Journal for Science and Engineering, 2022, 47 : 15365 - 15377