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EXPERIMENTAL ANALYSIS OF AIR/OIL SEPARATOR PERFORMANCE

机译:气/油分离器性能的实验分析

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Within the European research project ATOS (Advanced Transmission and Oil System Concepts) a systematic study of the separation efficiency of a typical aero-engine air/oil separator design was conducted. The main objectives were to obtain a basic understanding of the main separation mechanisms and to identify the relevant parameters affecting the separation efficiency. The results of the study contribute to an optimised separator technology. Nonintrusive optical measurement techniques like laser diffraction and multiple wavelength extinction were applied to analyse the separation efficiency and identify potential optimisation parameters. Oil mist with defined oil droplet size distribution was supplied to the breather. By simultaneously measuring particle size and oil concentration upstream and downstream of the breather the separation mechanism was analysed and the separation efficiency was assessed. In addition, the pressure drop across the separator was measured. The pressure drop is an important design feature and has to be minimised for proper sealing of the engine bearing chambers. The experimental programme covered a variation of airflow, oil flow, shaft speed, and droplet size. The main emphasis of the investigations was on the separation of small droplets with a diameter of up to 10 μm. The following trends on separation efficiency of small droplets were observed: the separation efficiency increases with increasing rotational speed, with increasing particle size and with decreasing air flow rate. In parallel, the pressure drop across the breather increases with increasing speed and increasing airflow.
机译:在欧洲研究项目ATOS(高级变速箱和油系统概念)中,对典型航空发动机气/油分离器设计的分离效率进行了系统研究。主要目的是对主要的分离机理有基本的了解,并确定影响分离效率的相关参数。研究结果有助于优化分离器技术。应用非侵入式光学测量技术(例如激光衍射和多波长消光)来分析分离效率并确定潜在的优化参数。将具有确定的油滴尺寸分布的油雾供应给通气孔。通过同时测量呼吸器上游和下游的粒度和油浓度,分析了分离机理并评估了分离效率。另外,测量了穿过分离器的压降。压降是重要的设计特征,必须最小化以适当密封发动机轴承室。实验程序涵盖了气流,油流,轴速度和液滴尺寸的变化。研究的主要重点是分离直径最大为10μm的小液滴。观察到了小液滴分离效率的以下趋势:分离效率随着转速的增加,粒径的增加和空气流速的降低而增加。同时,通气口上的压降随速度和气流的增加而增加。

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