...
首页> 外文期刊>Journal of turbomachinery >The Application of Flow Control to an Aft-Loaded Low Pressure Turbine Cascade With Unsteady Wakes
【24h】

The Application of Flow Control to an Aft-Loaded Low Pressure Turbine Cascade With Unsteady Wakes

机译:流控制在尾部非定常尾流低压涡轮叶栅中的应用

获取原文
获取原文并翻译 | 示例
           

摘要

The synchronous application of flow control in the presence of unsteady wakes was studied on a highly loaded low pressure turbine blade. At low Reynolds numbers, the blade exhibits a nonreattaching separation bubble under steady flow conditions without upstream wakes. Unsteady wakes from an upstream vane row are simulated with a moving row of bars. The separation zone is modified substantially by the presence of unsteady wakes, producing a smaller separation zone and reducing the area-averaged wake total pressure loss by more than 50%. The wake disturbance accelerates transition in the separated shear layer but stops short of reattaching the flow. Rather, a new timeaveraged equilibrium location is established for the separated shear layer. The focus of this study was the application of pulsed flow control using two spanwise rows of discrete vortex generator jets. The jets were located at 59% C_x, approximately the peak c_p location, and at 72% C_x. The most effective separation control was achieved at the upstream location. The wake total pressure loss decreased 60% from the wake-only level and the c_p distribution fully recovered its high Reynolds number shape. The jet disturbance dominates the dynamics of the separated shear layer, with the wake disturbance assuming a secondary role only. When the pulsed jet actuation was initiated at the downstream location, synchronizing the jet to actuate between wake events was key to producing the most effective separation control. Evidence suggests that flow control using vortex generator jets (VGJs) will be effective in the highly unsteady low pressure turbine environment of an operating gas turbine, provided the VGJ location and amplitude are adapted for the specific blade profile.
机译:在高负荷低压涡轮叶片上研究了在存在非稳定尾流的情况下流量控制的同步应用。在低雷诺数下,叶片在稳定的流动条件下会表现出不重新附着的分离气泡,而没有上游尾流。来自上游叶片行的非稳定尾流用移动的横条模拟。由于存在不稳定的尾流,因此对分离区进行了实质性修改,从而产生了较小的分离区,并使面积平均的尾流总压力损失降低了50%以上。尾流扰动会加速分离的剪切层中的过渡,但会在没有重新附着流的情况下停止。而是为分离的剪切层建立了新的时间平均平衡位置。这项研究的重点是应用脉冲流控制技术,该技术使用了两排沿行方向的离散涡流发生器射流。射流位于C_x的59%处,大约位于c_p峰值位置,C_x的位置为72%。在上游位置实现了最有效的分离控制。尾流总压力损失从仅尾流水平降低了60%,c_p分布完全恢复了其高雷诺数形状。射流扰动支配着分离剪切层的动力学,而尾流扰动仅起次要作用。当在下游位置启动脉冲式射流致动时,使射流同步以在唤醒事件之间致动是产生最有效分离控制的关键。有证据表明,使用涡流发生器射流(VGJs)进行的流量控制将在运行中的燃气轮机的高度不稳定低压涡轮机环境中有效,只要VGJ的位置和振幅适合于特定叶片轮廓即可。

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