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CFD Modeling and LDA Measurements for the Air-Flow in an Aero Engine Front Bearing Chamber

机译:航空发动机前轴承室中气流的CFD建模和LDA测量

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摘要

The continuous development of aero engines toward lighter but yet more compact designs, without decreasing their efficiency, has led to gradually increasing demands on the lubrication system, such as the bearing chambers of an aero engine. For this reason, it is of particular importance to increase the level of understanding of the flow field inside the bearing chamber in order to optimize its design and improve its performance. The flow field inside a bearing chamber is complicated since there is a strong interaction between the sealing air-flow and the flow of lubrication oil, and both of them are affected by and interacting with the geometry of the chamber and the rotating shaft. In order to understand the flow field development and, as a next step, to optimize the aero engine bearing chamber performance, in relation to the lubrication and heat transfer capabilities, the behavior of this interaction must be investigated. In this work, an investigation of the air-flow field development inside the front bearing chamber of an aero engine is attempted. The front bearing chamber is divided into two separate sections. The flow from the first section passes through the bearing and the bearing holding structure to the second one where the vent and the scavenging system are located. The investigation was performed with the combined use of experimental measurements and computational fluid dynamics (CFD) modeling. The experimental measurements were carried out using a laser Doppler anemometry system in an experimental rig, which consists of a 1:1 model of the front bearing chamber of an aero engine. Tests were carried out at real operating conditions both for the air-flow and for the lubricant oil-flow and for a range of shaft rotating speeds. The CFD modeling was performed using a commercial CFD package. Particularly, the air-flow through the bearing itself was modeled, adopting a porous medium technique, the parameters of which were developed in conjunction with the experiments. A satisfactory quantitative agreement between the experimental measurements and the CFD computations was achieved. At the same time, the effect of the important parameters such as the air and oil mass flow, together with the shaft rotational speed, and the effect of the chamber geometry were identified. The conclusions can be exploited in future attempts in combination with the CFD model developed in order to optimize the efficiency of the lubrication and cooling system. The latter forms the main target of this work, which is the development of a useful engineering tool capable of predicting the flow field inside the aero engine bearing, which can be used subsequently for optimization purposes.
机译:在不降低其效率的情况下,航空发动机朝着更轻便但更紧凑的设计的不断发展已导致对润滑系统(例如航空发动机的轴承腔)的需求逐渐增加。因此,提高对轴承腔内部流场的了解水平以优化其设计并改善其性能尤为重要。轴承腔室内的流场很复杂,因为在密封气流和润滑油流之间存在很强的相互作用,并且两者都受腔室和旋转轴的几何形状影响并相互作用。为了了解流场的发展以及下一步要优化航空发动机轴承室性能(与润滑和传热能力有关),必须研究这种相互作用的行为。在这项工作中,试图研究航空发动机前轴承室内的气流场。前轴承腔分为两个单独的部分。来自第一部分的流体通过轴承和轴承固定结构流向第二部分,排气口和扫气系统位于第二部分。这项研究是结合使用实验测量和计算流体动力学(CFD)建模进行的。实验测量是在实验装置中使用激光多普勒风速计系统进行的,该系统由航空发动机前轴承室的1:1模型组成。在真实的工作条件下对气流和润滑油流以及各种轴转速进行了测试。使用商业CFD软件包执行CFD建模。特别是,采用多孔介质技术对通过轴承本身的气流进行了建模,并结合实验确定了其参数。实验测量值和CFD计算值之间获得了令人满意的定量协议。同时,确定了重要参数的影响,例如空气和油的质量流量,以及轴的转速,以及腔室几何形状的影响。该结论可在将来的尝试中与开发的CFD模型结合使用,以优化润滑和冷却系统的效率。后者构成了这项工作的主要目标,这是开发一种有用的工程工具,该工具能够预测航空发动机轴承内部的流场,随后可将其用于优化目的。

著录项

  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2011年第8期|p.082504.1-082504.8|共8页
  • 作者单位

    Laboratory of Fluid Mechanics and Turbomachinery,Department of Mechanical Engineering,Aristotle University of Thessaloniki,Egnatia Street,54124 Thessaloniki, Greece;

    Laboratory of Fluid Mechanics and Turbomachinery,Department of Mechanical Engineering,Aristotle University of Thessaloniki,Egnatia Street,54124 Thessaloniki, Greece;

    Laboratory of Fluid Mechanics and Turbomachinery,Department of Mechanical Engineering,Aristotle University of Thessaloniki,Egnatia Street,54124 Thessaloniki, Greece;

    Laboratory of Fluid Mechanics and Turbomachinery,Department of Mechanical Engineering,Aristotle University of Thessaloniki,Egnatia Street,54124 Thessaloniki, Greece;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    bearing chamber; aero engine; air-oil-flow; porous media; cfd;

    机译:轴承室航空发动机空气油流多孔介质cfd;

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