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PREDICTIONS OF EXTERNAL HEAT TRANSFER FOR TURBINE VANES AND BLADES WITH SECONDARY FLOWFIELDS

机译:涡轮机叶片的外部传热预测及二次流动场的叶片

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Detailed heat transfer distributions on the endwall and along the vane/blade surface are essential for component mechanical integrity and life predictions. Due to secondary flows, high gradients in heat transfer are present at the endwall and at the vane or blade surface itself where the passage vortex influences the mainstream flow. This paper documents the benchmarking of three turbulence models; (1) k-ε realizable with wall functions (2) k-ε realizable with two layer model, and (3) the V2F model for endwall and surface heat transfer and flowfield predictions. Benchmark experimental data from a scaled-up low speed rig for both a stator and rotor geometry are used for comparisons of heat transfer and flowfield. While the k- e realizable turbulence models give a good prediction of the secondary flow pattern, the heat transfer at the endwall and at the surface is not well predicted due to the inadequate modeling of near wall turbulence. The V2F model gives better agreement with the experiments on the endwall and vane midspan heat transfer is also well predicted, although transition occurs too far upstream on the suction surface. The results from this study represent the feasibility of CFD utilization as a predictive tool for local heat transfer distributions on a vane/blade endwall.
机译:在端壁和沿叶片/刀片表面上的详细传热分布对于部件机械完整性和生命预测是必不可少的。由于二次流动,传热中的高梯度存在于端壁处,并且在叶片或叶片表面本身处存在,其中通道涡流影响主流流动。本文记录了三种湍流模型的基准; (1)k-ε可实现,墙壁功能(2)可实现两层型号,和(3)端壁和表面传热和流场预测的V2F模型。用于定子和转子几何形状的缩小低速钻机的基准实验数据用于传热和流场的比较。虽然K-E可实现的湍流模型具有良好的次流模式预测,但由于近壁湍流的建模不足,因此端壁和表面处的热传递不受欢迎。 V2F模型与内壁上的实验更好地达成一致,并且叶片中间传热也很好地预测,尽管过渡发生在吸入表面上的上游太远。本研究结果代表了CFD利用作为叶片/叶片端部上的局部传热分布的预测工具的可行性。

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