首页> 外文会议>ASME turbo expo >MESH GENERATION FOR CONJUGATE HEAT TRANSFER ANALYSIS OF A COOLED HIGH PRESSURE TURBINE STAGE
【24h】

MESH GENERATION FOR CONJUGATE HEAT TRANSFER ANALYSIS OF A COOLED HIGH PRESSURE TURBINE STAGE

机译:冷却高压汽轮机段共轭传热分析的网格生成

获取原文

摘要

The presented work demonstrates the feasibility of quasi-automatic structured mesh generation for all details in the complex cooling system of an industrial high pressure turbine stage, as required by advanced Conjugate Heat Transfer (CHT) simulations.The grid generation software has been adapted in order to quasi-automatically mesh typical cooling configurations such as cooling passages, basins, inserts, solid bodies, cooling holes, slots, and rib turbulators. A multi-domain structured mesh with about 154 million grid points and 12,316 blocks has been generated for the turbine stage. It includes 1,000 cooling holes, over 250 rib turbulators and 150 pin fins for the turbine stage.In order to verify the CFD response to the grid properties, simulations were performed as a first step on the coarse grid level (of 21.8 million grid points) using the 3D flow solver package FINE™/Turbo. The conductivity equation was solved for the solid part of the computational domain using the same temporal discretization scheme as for the flow solver. Parallel, coupled fluid/solid calculations using the k-ε turbulence model were performed on three different configurations: nozzle guide vane alone, rotor-blade alone, and full stage. These results show the feasibility of this approach to mesh generation for use in CHT modeling of the complex configuration of cooled turbine stages.
机译:提出的工作证明了高级自动共轭传热(CHT)模拟所要求的准自动结构化网格生成对于工业高压涡轮级复杂冷却系统中所有细节的可行性。 已对网格生成软件进行了调整,以准自动划分典型的冷却配置,例如冷却通道,水槽,嵌件,实体,冷却孔,狭槽和肋状湍流器。已经为涡轮级生成了具有约1.54亿个网格点和12,316个块的多域结构化网格。它包括1,000个冷却孔,超过250个肋湍流器和150个涡轮级销钉。 为了验证CFD对网格属性的响应,第一步是使用3D流量求解器软件包FINE™/ Turbo在粗网格级别(2180万个网格点)上进行模拟。使用与流动求解器相同的时间离散方案,对计算域的实体部分求解了电导率方程。使用k-ε湍流模型的并行,耦合的流体/固体计算是在三种不同的配置上执行的:单独的喷嘴导流叶片,单独的转子叶片和满载状态。这些结果表明,该方法用于网格生成的可行性可用于对冷却涡轮机级的复杂配置进行CHT建模。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号