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Tip Leakage Flow and Heat Transfer on Turbine Stage Tip and Casing: Effect of Unsteady Stator-Rotor Interactions

机译:涡轮级叶尖和机壳的叶尖泄漏流和传热:不稳定的定子-转子相互作用的影响

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摘要

Unsteady simulations were performed to investigate time dependent behaviors of the leakage flow structures and heat transfer on the rotor blade tip and casing in a single stage gas turbine engine. This paper mainly illustrates the unsteady nature of the leakage flow and heat transfer, particularly, that caused by the stator–rotor interactions. In order to obtain time-accurate results, the effects of varying the number of time steps, sub iterations, and the number of vane passing periods was firstly examined. The effect of tip clearance height and rotor speeds was also examined. The results showed periodic patterns of the tip leakage flow and heat transfer rate distribution for each vane passing. The relative position of the vane and vane trailing edge shock with respect to time alters the flow conditions in the rotor domain, and results in significant variations in the tip leakage flow structures and heat transfer rate distributions. It is observed that the trailing edge shock phenomenon results in a critical heat transfer region on the blade tip and casing. Consequently, the turbine blade tip and casing are subjected to large fluctuations of Nusselt number (about Nu = 2000 to 6000 and about Nu = 1000 to 10000, respectively) at a high frequency (coinciding with the rotor speed).
机译:进行了非稳态仿真,以研究单级燃气轮机发动机中泄漏流结构的时间依赖性行为以及转子叶片叶尖和壳体上的热传递。本文主要说明了泄漏流和传热的不稳定特性,尤其是由定子-转子相互作用引起的。为了获得时间精确的结果,首先研究了改变时间步长,子迭代次数和叶片通过周期数的影响。还检查了叶尖间隙高度和转子速度的影响。结果显示了每个叶片通过时叶尖泄漏流和传热速率分布的周期性模式。叶片和叶片后缘冲击相对于时间的相对位置改变了转子域中的流动条件,并导致尖端泄漏流动结构和传热速率分布的显着变化。可以观察到,后缘冲击现象导致了叶片尖端和壳体上的临界传热区域。因此,涡轮叶片的尖端和壳体在高频下(与转子速度一致)经受较大的努塞尔数波动(分别约为Nu = 2000至6000和约Nu = 1000至10000)。

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