高压涡轮级下游轮毂轮缘密封的空气动力学与密封性能

IF 1.3 Q2 ENGINEERING, AEROSPACE International Journal of Turbomachinery, Propulsion and Power Pub Date : 2023-07-10 DOI:10.3390/ijtpp8030020
F. Merli, Nicolas Krajnc, Asim Hafizovic, M. Patinios, E. Göttlich
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引用次数: 0

摘要

本文的目的是表征高压涡轮(HPT)级转子-下游轮毂空腔边缘密封的气动特性。实验数据是在格拉茨科技大学的跨音速涡轮测试设施中获得的:测试装置包括两个发动机代表性的涡轮级(最后一个HPT级和第一个LPT级),中间是涡轮导管。所有定子-转子腔都由二次空气系统提供吹扫气流,该系统模拟了真实发动机压气机级的放气。HPT下游轮毂腔在不同的径向和周向位置安装了壁面抽头和皮托管,从而可以对不同的吹扫质量流量和HPT叶片时钟位置进行稳定的压力和种子气体浓度测量。此外,采用小型压力传感器评估非定常压力分布,并进行油流可视化以获取车轮空间结构的附加信息。环空压力的不对称性取决于高压高压叶片的时钟,但这对密封空腔所需的最小吹扫质量流量的影响可以忽略不计。然而,轮毂压力分布驱动着涡轮通道内空腔出口的分布。非定常压力场以叶片同步振荡为主。没有检测到具有可比强度的非同步组件。
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Aerodynamics and Sealing Performance of the Downstream Hub Rim Seal in a High-Pressure Turbine Stage
The purpose of the paper is to characterize the aerodynamic behavior of a rotor-downstream hub cavity rim seal in a high-pressure turbine (HPT) stage. The experimental data are acquired in the Transonic Test Turbine Facility at the Graz University of Technology: the test setup includes two engine-representative turbine stages (the last HPT stage and first LPT stage), with the intermediate turbine duct in between. All stator-rotor cavities are supplied with purge flows by a secondary air system, which simulates the bleeding air from the compressor stages of the real engine. The HPT downstream hub cavity is provided with wall taps and pitot tubes at different radial and circumferential locations, which allows the performance of steady pressure and seed gas concentration measurements for different purge mass flows and HPT vanes clocking positions. Moreover, miniaturized pressure transducers are adopted to evaluate the unsteady pressure distribution, and an oil flow visualization is performed to retrieve additional information on the wheel space structures. The annulus pressure asymmetry depends on the HPT vane clocking, but this is shown to have negligible impact on the minimum purge mass flow required to seal the cavity. However, the hub pressure profile drives the distribution of the cavity egress in the turbine channel. The unsteady pressure field is dominated by blade-synchronous oscillations. No non-synchronous components with comparable intensity are detected.
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来源期刊
CiteScore
2.30
自引率
21.40%
发文量
29
审稿时长
11 weeks
期刊最新文献
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