THE ROLE OF DENSITY GRADIENT IN SPECIES MIGRATION AND SECONDARY FLOW STRUCTURES IN AXIAL FLOW TURBINES

被引:0
|
作者
Zou, Xin [1 ]
Yuan, Xin [1 ]
Dawes, W. N. [2 ]
机构
[1] Tsinghua Univ, Minist Educ, Key Lab Thermal Sci & Power Engn, Beijing 100084, Peoples R China
[2] Univ Cambridge, Dept Engn, Whittle Lab, Cambridge CB3 0DY, England
关键词
THIN AIRFOIL; NONUNIFORM DENSITY; TRANSPORT; FIELDS;
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
Physical quantities at combustor exit, hence turbine inlet, are highly non-uniform not just due to spatially varying combustion but also due to the dilution air and film-cooling air used in the combustor design. The effects of inlet total pressure and temperature ("hot streak") non-uniformity on the unsteady flow and heat transfer of turbine stages have been widely studied. However, few studies have considered the effects of inlet density non-uniformity derived from spatially varying species concentration ("species streak"). This "species streak" results in density gradients which, if not aligned with pressure gradients, will lead to the generation of baroelinie torque which will influence the generation, migration and evolution of voracity within the turbine passages and hence the secondary flow structure and mixing within the blade row. This paper examines the "species streak" effects on the unsteady flow and heat transfer within a high-pressure axial flow turbine stage focusing on the flow through the rotor. First, a validation study was carried out to check the capability of the selected CFD in modeling unsteady turbine stage flows. Time-accurate solutions were achieved and the results agreed well with the available experimental measurements. Based on the validation, two expanded case studies were carried out to investigate the "species streak" effects on the secondary flow and heat transfer in turbine rotor passages. It was found that the "species streak" could generate "hot streak enhancement structure" as well as "baroclinic torque structure" in rotor passages, which would work with the inherent secondary flow structures in rotor to determine its heat transfer. It was also found that the contributions of the baroclinic torque source term could have magnitudes comparable to other effects, such as vortex stretching, in creating secondary flows. In some circumstances, however, the overall effects of the baroclinic torque could be partially reduced by opposite vortex stretching effects generated by the same density gradients.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] The use of axial flow turbines for driving centrifugal compressors
    Beyer, B
    Hasemann, H
    Rautenberg, M
    SIXTH INTERNATIONAL CONFERENCE ON TURBOCHARGING AND AIR MANAGEMENT SYSTEMS, 1998, 1998 (11): : 183 - 192
  • [22] Convective heat transfer and aerodynamics in axial flow turbines
    Dunn, MG
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2001, 123 (04): : 637 - 686
  • [23] Performance Calculation for Cooled Axial Flow Turbines.
    Muggli, Wolfgang
    Rick, Hans
    MTZ Motortechnische Zeitschrift, 1982, 43 (01) : 23 - 28
  • [24] INCREASING AERODYNAMIC LOADING OF AXIAL-FLOW TURBINES
    KARADIMA.G
    MECHANICAL ENGINEERING, 1972, 94 (06) : 58 - &
  • [25] ON THE AERODYNAMIC DESIGN OF AXIAL-FLOW COMPRESSORS AND TURBINES
    VAZSONYI, A
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1948, 15 (01): : 53 - 64
  • [26] Flow structures and heat transport in Taylor-Couette systems with axial temperature gradient
    Leng, X. -Y.
    Krasnov, D.
    Li, B. -W.
    Zhong, J. -Q.
    JOURNAL OF FLUID MECHANICS, 2021, 920
  • [27] AXIAL MIGRATION OF RED CELLS IN TUBE FLOW
    GOLDSMIT.HL
    BEITEL, A
    FEDERATION PROCEEDINGS, 1970, 29 (02) : A319 - +
  • [28] A NUMERICAL INVESTIGATION INTO THE SOURCES OF ENDWALL LOSS IN AXIAL FLOW TURBINES
    Denton, John
    Pullan, Graham
    PROCEEDINGS OF THE ASME TURBO EXPO 2012, VOL 8, PTS A-C, 2012, : 1417 - 1430
  • [29] Evaluation of small axial flow hydrokinetic turbines for remote communities
    Anyi, Martin
    Kirke, Brian
    ENERGY FOR SUSTAINABLE DEVELOPMENT, 2010, 14 (02) : 110 - 116
  • [30] The effect of density gradient on boundary flow
    Zhang, Zhuo
    Song, Zhiyao
    Chen, Cheng
    Guo, Fei
    Zhang, Dong
    Hu, Di
    ESTUARINE COASTAL AND SHELF SCIENCE, 2016, 183 : 163 - 178