吹扫气流影响下涡轮中心架和叶片架的气动性能评估

F. Merli, Asim Hafizovic, Nicolas Krajnc, Malte Schien, A. Peters, F. Heitmeir, E. Göttlich
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引用次数: 0

摘要

本文研究并比较了涡扇发动机中间涡轮导管(ITD)的两种最先进配置的空气动力学:涡轮中心框架(TCF),这是传统双轴发动机的典型特征,具有对称气动支柱整流罩;涡轮叶片框架(TVF),它直接在导管中集成了一组旋转支柱和分流器,从而在发动机系统层面上实现了长度和重量的优势。用于分析的测量数据是格拉茨科技大学近十年研究的成果,包括在一致的进口条件下使用TCF或TVF设置的多次测试活动。实验测试是在热涡轮机械和机器动力学研究所(格拉茨理工大学)的跨音速测试涡轮机设施中进行的。所有测试车辆不仅包括过渡段(TCF或TVF),还包括最后一个高压涡轮(HPT)级和第一个低压涡轮(LPT)叶片或叶片排,以确保在管道进出口部分具有发动机代表性的条件。为了同样的目的,测试设备向所有定子-转子腔提供吹扫空气,每个腔的温度和质量流都是独立控制的。测量使用气动探头(五孔探头,kiel头耙)在过渡段的入口和出口进行,用于三种不同的HPT吹扫流量。TCF和TVF装置的气动比较基于三个关键主题:风道进出口流场、风道总压损失和LPT动叶上的风道气动激励。对于其中的每一个,在两种配置中对HPT吹扫变化的敏感性进行了评估。由于过渡段内部存在转向支板和分流板,因此过渡段的出口流场比过渡段更为复杂,主要表现为高压过渡段和过渡段二次现象的相互作用。与具有高套管斜率的先进TCF设计相比,TCF总压损失对吹扫变化的敏感性较低。虽然相对于基于tcf的发动机,由高压pt吹扫引起的较弱TVF损失可能会提供非设计工作点的好处,但在TVF出口处的流动不均匀性水平增加,分布在更大范围的发动机订单上,这对第一级LPT转子来说是一个设计挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aerodynamic Assessment of Turbine Center Frames and Turbine Vane Frames Under the Influence of Purge Flows
This paper investigates and compares the aerodynamics of two state-of-the-art configurations for the intermediate turbine duct (ITD) in a turbofan engine: the turbine center frame (TCF), which is typical of conventional dual-spool engines and features symmetric aerodynamic strut fairings, and the turbine vane frame (TVF), which integrates a set of turning struts and splitters directly in the duct, thus enabling length and weight benefits at engine system level. The measurement data utilized for the analysis are a product of almost ten years of research at Graz University of Technology, involving multiple test campaigns with either TCF or TVF setups at consistent inlet conditions. The experimental tests are carried out in the Transonic Test Turbine Facility at the Institute of Thermal Turbomachinery and Machine Dynamics (Graz University of Technology). All test vehicles include not only the ITD (TCF or TVF), but also the last High-Pressure Turbine (HPT) stage and the first Low-Pressure Turbine (LPT) vane or blade row, in order to ensure engine-representative conditions at the duct inlet and outlet sections. For the same purpose, the test facility supplies all the stator-rotor cavities with purge air, with independent control of temperature and mass flows for each cavity. The measurements are performed with pneumatic probes (five-hole probes, Kiel-head rakes) at the inlet and outlet of the ITDs, for three different HPT purge flow rates. The aerodynamic comparison between TCF and TVF setups is based on three key topics: duct inlet and outlet flow fields, duct total pressure losses and duct aerodynamic excitation on the LPT rotor blades. For each one of them, the sensitivity to HPT purge variation in both configurations is evaluated. Due to the presence of turning struts and splitters inside the ITD, the TVF shows a more complex outlet flow field than the TCF, characterized by the interaction of HPT and TVF secondary phenomena. The TVF total pressure loss is less sensitive to purge variation compared to an advanced TCF design with high casing slope. While the weaker TVF loss derivative to HPT purge may provide off-design operating point benefits relative to a TCF-based engine, the increased level of flow nonuniformity at the TVF exit, distributed over a wider range of engine orders, represents a design challenge for the first-stage LPT rotor.
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