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ASSESSMENT OF THE SEVERITY OF UNSTEADY MACH NUMBER EFFECTS IN A 3-STAGE TRANSONIC COMPRESSOR

机译:三阶段超音速压缩机中非定常马赫数效应的严重性评估

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In this paper results from steady and unsteady CFD simulations of an industrial transonic compressor are compared, in order to gain a better understanding of the cause of the differences in the predicted efficiencies between the steady and unsteady simulations. Initially the first stage is simulated as an isolated compressor stage with inlet guide vanes in order to analyse the effect of individual blade rows on the stage performance. It is found that the rotor efficiency is lower for steady simulations than for unsteady simulations due to stronger shock waves. The stator efficiency is greater in the steady simulations due to not being able to model the interaction of the rotor wakes with the stator blade leading edge and boundary layers. Greater variation between steady and unsteady predictions is found at higher operating speeds. In the 3-stage unsteady simulations, the front stage efficiency characteristic is the same as the efficiency calculated from the isolated unsteady simulations. This shows that the unsteady pressure potential propagating from the downstream stages has no significant effect on the front stage efficiency meaning that the designer does not need to give great consideration to the downstream blade rows when predicting the characteristics of the front stage.
机译:在本文中,对工业跨音速压缩机的稳态和非稳态CFD模拟结果进行了比较,以便更好地了解稳态和非稳态模拟之间预测效率差异的原因。最初,将第一级模拟为带有入口导向叶片的隔离式压缩机级,以便分析各个叶片行对级性能的影响。结果发现,由于冲击波更强,稳态模拟的转子效率要比非稳态模拟的转子效率低。由于无法对转子尾流与定子叶片前缘和边界层的相互作用进行建模,因此在稳定模拟中,定子效率更高。在较高的运行速度下,稳态和非稳态预测之间的差异更大。在三阶段非稳态仿真中,前级效率特性与从隔离式非稳态仿真计算得出的效率相同。这表明,从下游级传播的不稳定压力势对前级效率没有显着影响,这意味着设计人员在预测前级特性时无需考虑下游叶片排。

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