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Unsteady Flow and Whirl-Inducing Forces in Axial-Flow Compressors: Part II—Analysis

机译:轴流压气机中的非定常流动和旋转诱导力:第二部分 - 分析

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摘要

An experimental and theoretical investigation was conducted to evaluate the effects seen in axial-flow compressors when the centerline of the rotor becomes displaced from the centerline of the static structure of the engine, thus creating circumferentially nonuniform rotor-tip clearances. This displacement produces unsteady flow and creates a system of destabilizing forces, which contribute significantly to rotor whirl instability in turbomachinery. These forces were first identified by Thomas (1958. Bull. AIM, 71, No. 11/12, pp. 1039–1063.) for turbines and by Alford (1965. J. Eng. Power, Oct., pp. 333–334) for jet engines. In Part I, the results from an experimental investigation of these phenomena were presented. In this Part II, three analytic models were used to predict both the magnitude and direction of the Thomas/Alford force in its normalized form, known as theb coefficient, and the unsteady effects for the compressors tested in Part I. In addition, the effects of a whirling shaft were simulated to evaluate differences between a rotor with static offset and an actual whirling eccentric rotor. The models were also used to assess the influence of the nonaxisymmetric static pressure distribution on the rotor spool, which was not measured in the experiment. The models evaluated were (1) the two-sector parallelcompressor (2SPC) model, (2) the infinite-segment-parallel-compressor (ISPC) model, and (3) the two-coupled actuator disk (2CAD) model. The results of these analyses were found to be in agreement with the experimental data in both sign and trend. Thus, the validated models provide a general means to predict the aerodynamic destabilizing forces for axial flow compressors in turbine engines. These tools have the potential to improve the design of rotordynamically stable turbomachinery.
机译:进行了实验和理论研究,以评估当转子的中心线偏离发动机的静态结构的中心线时,在轴流式压缩机中看到的效果,从而在圆周上产生不均匀的转子尖端间隙。这种位移会产生不稳定的流动,并产生一个不稳定的力系统,这极大地增加了涡轮机械中转子涡流的不稳定性。这些力量首先由托马斯(1958. Bull。AIM,71,No. 11/12,pp。1039–1063。)和涡轮增压器(Alford)(1965. J. Eng。Power,十月,pp。333–)确定。 334)。在第一部分中,介绍了对这些现象进行实验研究的结果。在第二部分中,使用了三种分析模型来预测标准化状态下的Thomas / Alford力的大小和方向,即theb系数,以及在第一部分中测试的压缩机的非稳态影响。模拟旋转轴的旋转角,以评估具有静态偏移的转子与实际旋转偏心转子之间的差异。该模型还用于评估非轴对称静压分布对转子阀芯的影响,在实验中未进行测量。评估的模型是(1)两扇区并行压缩器(2SPC)模型,(2)无限段并行压缩器(ISPC)模型和(3)双耦合执行器盘(2CAD)模型。发现这些分析的结果在符号和趋势上与实验数据一致。因此,经过验证的模型为预测涡轮发动机轴流式压缩机的空气动力破坏力提供了一种通用手段。这些工具具有改善转子动态稳定涡轮机械设计的潜力。

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