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The aerodynamic optimization design of turbine cascade nonaxisymmetric endwall and the midgap influence assessment

机译:涡轮叶栅非轴对称端壁气动优化设计及中间隙影响评估。

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The nonaxisymmetric endwall profiling has been proven to be an effective tool to reduce the secondary flow loss in turbomachinery. In the present work, first, without considering the endwall midgap in the real machine, an endwall optimization design procedure for reducing secondary flow losses has been developed, which allowed complete three-dimensional parameterization turbine endwall design. The profile of the endwall has been designed using automatic numerical optimization by means of an improved efficient global optimization algorithm based on kriging surrogate model. Next, a large-scale linear cascade with a low-speed wind tunnel has been chosen for the experimental validation of the optimization results. The experimental measurements and numerical simulations both demonstrated that the total pressure loss and secondary flow intensity were reduced with the nonaxisymmetric endwall used in the cascade passage. Then, in order to evaluate the ability of the optimized nonaxisymmetric endwall with the midgap, the midgap was added in for both the baseline flat endwall and the optimized nonaxisymmetric endwall in the numerical simulations analysis. The entropy generation rates analysis were used for the investigation of loss distribution in the passage. For the cascade in the present work, with the midgap added in, the optimized nonaxisymmetric endwall did not perform as well as the situation without the midgap in the loss reduction. In addition, comparing to the baseline flat endwall, the optimized nonaxisymmetric endwall needed more net leakage flow to avoid the ingress of passage flow into the midgap.
机译:非轴对称端壁轮廓已被证明是减少涡轮机械中二次流损失的有效工具。在目前的工作中,首先,在不考虑实际机器中的端壁中间间隙的情况下,开发了用于减少二次流损失的端壁优化设计程序,该程序可以完成完整的三维参数化涡轮机端壁设计。端壁的轮廓已通过基于克里格代理模型的改进的高效全局优化算法,使用自动数值优化进行设计。接下来,已选择具有低速风洞的大型线性级联来对优化结果进行实验验证。实验测量和数值模拟均表明,在级联通道中使用非轴对称端壁可降低总压力损失和二次流动强度。然后,为了评估具有中间间隙的优化非轴对称端壁的能力,在数值模拟分析中,将基线平坦端壁和优化非轴对称端壁都添加了中间间隙。熵产生率分析用于研究通道中的损失分布。对于当前工作中的级联,在添加中间间隙的情况下,优化的非轴对称端壁的性能不如没有中间间隙的情况下降低损耗。此外,与基线平坦端壁相比,优化的非轴对称端壁需要更多的净泄漏流,以避免通道流进入中间间隙。

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