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Secondary Flow Loss Reduction Method by use of 3D-Fence in a Gas Turbine Cascade

机译:在燃气轮机级联中使用3D栅减少二次流损失的方法

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The aerodynamic loss accounted to the secondary flow, or secondary loss is one of the most prominent causes of the internal losses in turbine cascades. The secondary flow losses are mostly due to the interaction between horseshoe vortex and endwall crossflow. The authors have developed a so-called endwall fence experimentally to reduce the secondary loss in a gas turbine cascade. However, it is very difficult to handle many design parameters simultaneously in experiment. The objective of this research work is to optimize the shape of the 3D-fence with considering many design parameters and clarify the flow mechanism of loss reduction. In addition, one of the most important objectives of this paper is to show this optimization method is effective for the designer of the turbine. In this study, the optimization framework and CFD were applied to the endwall fence (3D-fence) and the effect of it on the crossflow was investigated. As a result, the optimized shape, installation position, and the setting angle of the 3D-fence to mitigate the interaction between the horseshoe vortex and endwall crossflow was specified. In order to validate the effectiveness of the optimization method, total pressure was measured and loss analysis was implemented and flow visualization using oil-film and smoke were implemented. Then, the good agreement can be seen qualitatively between the experimental results and CFD results. It is clarified the 3D-fence delays the confluence between suction side leg and pressure side leg of the horseshoe vortex. Based on both calculation and experiment, it is revealed that the 3D-fence has good effect to reduce the secondary flow loss. Turbine, Cascade, Secondary flow, Optimization
机译:空气动力学损失是造成二次流的原因,或者说二次损失是涡轮机叶栅内部损失的最主要原因之一。二次流损失主要是由于马蹄涡与端壁横流之间的相互作用。作者实验性地开发了一种所谓的端壁围栏,以减少燃气轮机叶栅中的二次损失。但是,在实验中同时处理许多设计参数非常困难。这项研究工作的目的是在考虑许多设计参数的情况下优化3D栅栏的形状,并阐明减少损失的流程机制。此外,本文最重要的目标之一就是证明这种优化方法对涡轮机的设计者是有效的。在这项研究中,将优化框架和CFD应用于端墙围栏(3D围栏),并研究了其对错流的影响。结果,指定了优化的形状,安装位置和3D围墙的设置角度,以减轻马蹄涡与端壁横流之间的相互作用。为了验证优化方法的有效性,测量了总压力并进行了损失分析,并使用油膜和烟气进行了流量可视化。然后,可以定性地看到实验结果和CFD结果之间的良好一致性。明确了3D栅栏延迟了马蹄涡流的吸力侧支腿和压力侧支腿之间的汇合。通过计算和实验,揭示了3D围栏在减少二次流损失方面具有良好的效果。涡轮,叶栅,二次流,优化

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