首页> 外文会议>ASME gas turbine India conference >NUMERICAL PREDICTION OF COOLING PERFORMANCE SENSITIVITY OF 1st STAGE NOZZLE GUIDE VANE UNDER AEROTHERMAL CONDITIONS
【24h】

NUMERICAL PREDICTION OF COOLING PERFORMANCE SENSITIVITY OF 1st STAGE NOZZLE GUIDE VANE UNDER AEROTHERMAL CONDITIONS

机译:一级温度条件下第一级导流叶片冷却性能敏感性的数值预测

获取原文

摘要

To obtain high power and thermal efficiency, the 1st stage nozzle guide vanes of a high-pressure turbine need to operate under serious circumstances from burned gas coming out of combustors. This leads to vane suffering from effects of high thermal load, high pressure and turbulence, including flow-separated transition. Therefore, it is necessary to improve vane cooling performance under complex flow and heat transfer phenomena caused by the integration of these effects. In fact, these effects on a high-pressure turbine vane are controlled by several factors such as turbine inlet temperature, pressure ratio, turbulence intensity and length scale, vane curvature and surface roughness. Furthermore, if the vane is cooled by film cooling, hole configuration and blowing ratio are important factors too. These factors can change the aerothermal conditions of the vane operation. The present work aims to numerically predict sensitivity of cooling performances of the 1st stage nozzle guide vane under aerodynamic and thermal variations caused by three parameters i.e. pressure ratio, coolant inlet temperature and height of vane surface roughness using Computational Fluid Dynamics (CFD) with Conjugate Heat Transfer (CHT) approach. Numerical results show that the coolant inlet temperature and the vane surface roughness parameters have significant effects on the vane temperature, thereby affecting the vane cooling performances significantly and sensitively.
机译:为了获得高功率和热效率,高压涡轮机的第一级喷嘴导流叶片需要在严重的情况下从燃烧器中排出的燃烧气体运行。这导致叶片遭受高热负荷,高压和湍流的影响,包括分流的过渡。因此,有必要在由于这些效应的综合而引起的复杂的流动和传热现象下提高叶片的冷却性能。实际上,这些对高压涡轮机叶片的影响是由几个因素控制的,例如涡轮机入口温度,压力比,湍流强度和长度比例,叶片曲率和表面粗糙度。此外,如果通过薄膜冷却来冷却叶片,则孔的形状和吹气比也是重要的因素。这些因素可以改变叶片运行的空气热条件。本工作旨在利用带共轭热的计算流体力学(CFD)在数值和压力系数,冷却液入口温度以及叶片表面粗糙度高度这三个参数引起的空气动力学和热变化的情况下,对第一级喷嘴导流叶片的冷却性能的敏感性进行数值预测。转移(CHT)方法。数值结果表明,冷却液入口温度和叶片表面粗糙度参数对叶片温度有显着影响,从而显着敏感地影响叶片的冷却性能。

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