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EFFECT OF THE AXIAL SPACING BETWEEN VANES AND BLADES ON THE PERFORMANCE OF A TRANSONIC AXIAL TURBINE

机译:叶片和叶片之间的轴向间距对跨音速涡轮性能的影响

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Unsteady numerical simulations have been conducted to investigate the effect of axial spacing between the stator vanes and the rotor blades on the performance of a transonic, single-stage, high-pressure, axial turbine. Three cases were considered, the reference case, which is based on the geometry of a commercial jet engine and has an axial spacing at 50% blade span equal to 42% of the vane axial chord, as well as two other cases with axial spacings equal to 31 and 52% vane axial chords, respectively. Present interest has focused on the effect of axial gap size on the instantaneous and time-averaged flows as well as on the blade loading and the turbine performance. Decreasing the gap size reduced the pressure and increased the Mach number in the core flows in the gap region. However, the flows near the two endwalls did not follow monotonic trends with the gap size change; instead, the Mach numbers for both the small gap and the large gap cases were lower than that for the reference case. This Mach number decrease was attributed to increased turbulence due to the increased wake strength for the small gap case and the increased wake width for the large gap case. In all considered cases, large pressure fluctuations were observed in the front region of the blade suction sides. These pressure fluctuations were strongest for the smaller spacing. The turbine efficiencies of the cases with the larger and smaller spacings were essentially the same, but both were lower than that of the reference case. The stator loss for the smaller spacing case was lower than the one for the larger spacing case, whereas the opposite was true for the rotor loss.
机译:进行了非稳态数值模拟,以研究定子叶片和转子叶片之间的轴向间距对跨音速,单级,高压轴向涡轮机性能的影响。考虑了三种情况,参考情况是基于商用喷气发动机的几何形状的,在50%叶片跨度时的轴向间距等于叶片轴向弦的42%,另外两种情况是轴向间距相等分别达到31%和52%的叶片轴向弦。当前的兴趣集中在轴向间隙尺寸对瞬时流量和时间平均流量以及叶片负载和涡轮性能的影响上。减小间隙尺寸会减小压力,并会增加间隙区域中堆芯流中的马赫数。然而,随着间隙尺寸的变化,两个端壁附近的流动并没有遵循单调趋势。相反,小间隙情况和大间隙情况下的马赫数均低于参考情况。马赫数的减少归因于湍流的增加,这是由于在小间隙情况下尾流强度增加,而在大间隙情况下尾流宽度增加了。在所有考虑的情况下,在叶片吸力侧的前部区域均观察到较大的压力波动。对于较小的间距,这些压力波动最大。间距较大和较小的情况下的涡轮效率基本相同,但均低于参考情况。较小间隔情况下的定子损耗低于较大间隔情况下的定子损耗,而转子损耗则相反。

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