DETACHED-EDDY SIMULATION APPLIED TO THE TIP-CLEARANCE FLOW IN A LAST STAGE STEAM TURBINE BLADE

被引:0
|
作者
Sun, Tianrui [1 ]
Petrie-Repar, Paul [1 ]
Vogt, Damian M. [2 ]
机构
[1] Royal Inst Technol, Dept Energy Technol, Stockholm, Sweden
[2] Univ Stuttgart, ITSM Inst Thermal Turbomachinery & Machinery Lab, Stuttgart, 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
Prediction of the aerodynamic stability of rotor blades at the last stage of steam turbines is of great importance and widely studied. Considering the large span and low natural frequency of these blades, flow at the tip region has a remarkable effect on blade flutter characteristics. However, the transonic tip-clearance flow in these blades has a complex structure of vortices. To obtain a deep understanding of the transonic tip-clearance flow structure in steam turbines, the Detached-Eddy Simulation (DES) is applied in this paper. DES is a hybrid LES/RANS method that activates LES in specified flow regions and applies URANS in other regions of the flow field. As far as we are aware, the tip-clearance flow structure of real-scale last stage steam turbine by high-fidelity numerical method had not been much analyzed in open literature. In this paper, the transonic tip clearance flow structure in modern last stage of steam turbines is analyzed by both URANS and DES approaches. The open steam turbine model designed by Durham University is chosen as the research model. The flow solver applied is the commercial software ANSYS CFX. From the DES result, the tip leakage vortex and the induced vortices are presented. Based on the comparison between tip-clearance flow structure captured by the two approaches, the URANS method is not able to resolve all induced vortices. Therefore, the distribution of aerodynamic loading on the blade surface is different between URANS and DES results. The present study serves as a basis for investigating the influence of the tip-clearance flow structure on blade aeroelasticity.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Application of detached-eddy simulation to free surface flow over dunes
    Zhang, Jingxin
    Wang, Xikun
    Liang, Dongfang
    Liu, Hua
    ENGINEERING APPLICATIONS OF COMPUTATIONAL FLUID MECHANICS, 2015, 9 (01) : 556 - 566
  • [32] Wind turbine blade tip flow and noise prediction by large-eddy simulation
    Fleig, O
    Lida, M
    Arakawa, C
    JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2004, 126 (04): : 1017 - 1024
  • [33] Numerical simulation of a new hollow stationary dehumidity blade in last stage of steam turbine
    Hou Y.
    Xie D.
    Li W.
    Yu X.
    Shi Y.
    Qin H.
    Frontiers in Energy, 2011, 5 (3) : 288 - 296
  • [34] Prediction and analysis of rotor tip-clearance flows using large-eddy simulation
    You, DY
    Wang, M
    Moin, P
    Mittal, R
    USERS GROUP CONFERENCE, PROCEEDINGS, 2004, : 158 - 165
  • [35] Detached-eddy simulation of supersonic turbulent flow over rearward facing step
    完颜振海
    冯顺山
    JournalofBeijingInstituteofTechnology, 2011, 20 (03) : 289 - 294
  • [36] Large-eddy and detached-eddy simulation of the flow around high-lift configurations
    Breuer, M
    Jovicic, N
    Mazaev, K
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING, MUNICH 2002, 2003, : 21 - 41
  • [37] Assessment of Passive Flow Control for Transonic Cavity Flow Using Detached-Eddy Simulation
    Lawson, S. J.
    Barakos, G. N.
    JOURNAL OF AIRCRAFT, 2009, 46 (03): : 1009 - 1029
  • [38] Analysis of flow exciting for the rotor blade of steam turbine last stage negative incidence
    Zhu, G.Y.
    Yu, M.Z.
    Qilunji Jishu/Turbine Technology, 2001, 43 (05):
  • [39] Multiscale finite element method applied to detached-eddy simulation for computational wind engineering
    Zhang, Yue
    Khurram, Rooh A.
    Habashi, Wagdi G.
    WIND AND STRUCTURES, 2013, 17 (01) : 1 - 19
  • [40] Numerical simulation of wet steam transonic condensation flow in the last stage of a steam turbine
    Han, Xu
    Han, Zhonghe
    Zeng, Wei
    Li, Peng
    Qian, Jiangbo
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2018, 28 (10) : 2378 - 2403