压气机旋转腔内瞬态流动现象的实验研究

IF 1.9 3区 工程技术 Q3 ENGINEERING, MECHANICAL
Mikolaj Pernak, Tom Nicholas, Jake Williams, Richard Jackson, Hui Tang, Gary D Lock, James Scobie
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引用次数: 1

摘要

在航空发动机加速过程中,压气机叶尖间隙是下一代发动机结构设计的一个重要问题。瞬态间隙取决于压缩盘的径向膨胀,这与非定常和不稳定浮力诱导流动控制的同向旋转盘的共轭换热直接相关。本文讨论了利用巴斯压气机空腔钻机对某型轴流压气机在流体动力学条件下进行的实验和建模研究。该钻机是专门为发动机设计人员产生实际感兴趣的传热并验证计算代码而设计的。这项工作首次研究了瞬态条件下的基本流体动力学和传热现象。旋流结构以气旋/反气旋涡旋对的相干对为特征;这些非定常结构的强度、旋转频率、稳定性和数量随瞬态旋转雷诺数和格拉什夫数的变化而变化。这些结构,通过非定常压力传感器在旋转参照系中测量,只有当旋转腔内的流动以浮力为主时才存在。Nusselt数和径向质量流量的实验相关性与Grashof数相关。值得注意的是,实验显示稳态和瞬态条件在很大的Gr范围内具有一致的相关性。研究结果可实际应用于发动机设计的热力学模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EXPERIMENTAL INVESTIGATION OF TRANSIENT FLOW PHENOMENA IN ROTATING COMPRESSOR CAVITIES
Abstract The clearance of compressor blade tips during aero-engine accelerations is an important design issue for next-generation engine architectures. The transient clearance depends on the radial expansion of the compressor discs, which is directly coupled to conjugate heat transfer in co-rotating discs governed by unsteady and unstable buoyancy-induced flow. This paper discusses an experimental and modeling study using the Bath Compressor Cavity Rig, which simulates a generic axial compressor at fluid-dynamically scaled conditions. The rig was specifically designed to generate heat transfer of practical interest to the engine designer and validate computational codes. This work presents the first study of the fundamental fluid dynamic and heat transfer phenomena under transient conditions. The rotating flow structure was seen to be characterized by coherent pairs of cyclonic/anticyclonic vortex pairs; the strength, rotational frequency, stability, and number of these unsteady structures changed with changing rotational Reynolds and Grashof numbers during the transients. These structures, measured by unsteady pressure transducers in the rotating frame of reference, were only present when the flow in the rotating cavity was dominated by buoyancy. Experimental correlations of both Nusselt number and radial mass flowrate in the rotating core were correlated against Grashof number. Remarkably, the experiments revealed a consistent correlation for both steady-state and transient conditions over a wide range of Gr. The results have a practical application to thermo-mechanical models for engine design.
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来源期刊
CiteScore
4.70
自引率
11.80%
发文量
168
审稿时长
9 months
期刊介绍: The Journal of Turbomachinery publishes archival-quality, peer-reviewed technical papers that advance the state-of-the-art of turbomachinery technology related to gas turbine engines. The broad scope of the subject matter includes the fluid dynamics, heat transfer, and aeromechanics technology associated with the design, analysis, modeling, testing, and performance of turbomachinery. Emphasis is placed on gas-path technologies associated with axial compressors, centrifugal compressors, and turbines. Topics: Aerodynamic design, analysis, and test of compressor and turbine blading; Compressor stall, surge, and operability issues; Heat transfer phenomena and film cooling design, analysis, and testing in turbines; Aeromechanical instabilities; Computational fluid dynamics (CFD) applied to turbomachinery, boundary layer development, measurement techniques, and cavity and leaking flows.
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