期刊文献+

Optimum Tilt Angle of Flow Guide in Steam Turbine Exhaust Hood Considering the Effect of Last Stage Flow Field 被引量:4

Optimum Tilt Angle of Flow Guide in Steam Turbine Exhaust Hood Considering the Effect of Last Stage Flow Field
下载PDF
导出
摘要 Abstract Heat transfer and vacuum in condenser are influenced by the aerodynamic performance of steam tur- bine exhaust hood. The current research on exhaust hood is mainly focused on analyzing flow loss and optimal design of its structure without consideration of the wet steam condensing flow and the exhaust hood coupled with the front and rear parts. To better understand the aerodynamic performance influenced by the tilt angle of flow guide inside a diffuser, taking a 600 MW steam turbine as an example, a numerical simulator CFX is adopted to solve compressible three-dimensional (3D) Reynolds time-aver- aged N-S equations and standard k-e turbulence model. And the exhaust hood flow field influenced by different tilt angles of flow guide is investigated with consideration of the wet steam condensing flow and the exhaust hood coupled with the last stage blades and the condenser throat. The result shows that the total pressure loss coefficient and the static pressure recovery coefficient of exhaust hood change regularly and monotonously with the gradual increase of tilt angle of flow guide. When the tilt angle of flow guide is within the range of 30~ to 40~, the static pressure recovery coefficient is in the range of 15.27% to 17.03% and the total pressure loss coefficient drops to approximately 51%, the aerodynamic performance of exhaust hood is significantly improved. And the effectiveenthalpy drop in steam turbine increases by 0.228% to 0.274%. It is feasible to obtain a reasonable title angle of flow guide by the method of coupling the last stage and the condenser throat to exhaust hood in combination of the wet steam model, which provides a practical guidance to flow guide transformation and optimal design in exhaust hood. Abstract Heat transfer and vacuum in condenser are influenced by the aerodynamic performance of steam tur- bine exhaust hood. The current research on exhaust hood is mainly focused on analyzing flow loss and optimal design of its structure without consideration of the wet steam condensing flow and the exhaust hood coupled with the front and rear parts. To better understand the aerodynamic performance influenced by the tilt angle of flow guide inside a diffuser, taking a 600 MW steam turbine as an example, a numerical simulator CFX is adopted to solve compressible three-dimensional (3D) Reynolds time-aver- aged N-S equations and standard k-e turbulence model. And the exhaust hood flow field influenced by different tilt angles of flow guide is investigated with consideration of the wet steam condensing flow and the exhaust hood coupled with the last stage blades and the condenser throat. The result shows that the total pressure loss coefficient and the static pressure recovery coefficient of exhaust hood change regularly and monotonously with the gradual increase of tilt angle of flow guide. When the tilt angle of flow guide is within the range of 30~ to 40~, the static pressure recovery coefficient is in the range of 15.27% to 17.03% and the total pressure loss coefficient drops to approximately 51%, the aerodynamic performance of exhaust hood is significantly improved. And the effectiveenthalpy drop in steam turbine increases by 0.228% to 0.274%. It is feasible to obtain a reasonable title angle of flow guide by the method of coupling the last stage and the condenser throat to exhaust hood in combination of the wet steam model, which provides a practical guidance to flow guide transformation and optimal design in exhaust hood.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2017年第4期866-875,共10页 中国机械工程学报(英文版)
基金 Supported by National Natural Science Foundation of China(Grant Nos.51576036,51476192) Science and Technology Development Planning Foundation of Jilin Province of China(Grant No.20140204040SF)
关键词 Steam turbine Exhaust hood Last stageblades Tilt angle of flow guide Aerodynamicperformance Steam turbine Exhaust hood Last stageblades Tilt angle of flow guide Aerodynamicperformance
  • 相关文献

参考文献4

二级参考文献38

  • 1ENGEDA A,KIM Y,AUNGIER R,et al.The inlet flow structure of a centrifugal compressor stage and its influence on the compressor performance[J].ASME Journal of Fluids Engineering,2003,125(3):779-785.
  • 2WILLIAMS D D.Review of current knowledge on engine response to distorted inlet flow conditions[C] // AGARD Conference,Munich,AGARD CP-400,1986.
  • 3FLATHERS M B,BACHE G E,RAINSBERGER R.An experimental and computational investigation of flow in a radial inlet of an industrial pipeline centrifugal compressor[C] // ASME Paper 94-GT-134,1994.
  • 4KOCH J,CHOW P,HUTCHINSON B,et al.Experi-mental and computational study of a radial compressor inlet[C] // ASME Paper 95-GT-82,1995.
  • 5HOHLWEG W,AMINENI N.Effect of reduced inlet space on a medium flow coefficient centrifugal compressor stage[J].ASME IMECE,2000,5:99-108.
  • 6KIM Y,ENGEDA A,AUNGIER R,et al.The influence of inlet flow distortion on the performance of a centrifugal compressor and the development of improved inlet using numerical simulations[J].Journal of Power and Energy,2001,215(3):323-338.
  • 7HU J J,GOODMAN E D,SEO K S,et al.Adaptive Hierarchical Fair Competition (AHFC) model for parallel evolutionary algorithms[C] // Proceedings of the Genetic and Evolutionary Computation Conference,New York,USA,2002,772-779.
  • 8徐忠.离心压缩机原理[M].北京:机械工业出版社,1990.1-8.
  • 9樊涛,谢永慧,张荻,孙弼.汽轮机低压排汽缸与末两级耦合流动的三维数值模拟[J].中国电机工程学报,2007,27(26):90-95. 被引量:30
  • 10CHUPP R E, GHASRIPOOR F, TURNQUIST N A, et al. Advanced seals for industrial applications: Dynamic seal development[J]. Journal of Propulsion and Power, 2002, 18(6): 1260-1266.

共引文献35

同被引文献23

引证文献4

二级引证文献9

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部