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ANALYSIS OF GAS TURBINE ROTATING CAVITIES: ESTIMATION OF ROTOR DISK PUMPED MASS FLOW RATE

机译:燃气轮机旋转腔的分析:估算转子盘泵的质量流量

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The dependable design of secondary air system is one of the main tasks for the safety, reliability and performance of gas turbine engines. To meet the increasing demands of gas turbine design, improved tools in prediction of the secondary air system behaviour over a wide range of operating conditions are needed. A real gas turbine secondary air system includes several components, therefore its analysis is not carried out using a complete CFD approach. Usually, these predictions are performed using codes, based on simplified approach which allows to evaluate the flow characteristics in each branch of the air system requiring very poor computational resources and little calculation time. Generally the available simplified commercial packages allow to correctly solve only some of the components of a real air system and often the elements with a more complex flow structure cannot be studied; among such elements, the analysis of rotating cavities is very hard. This paper deals with a design-tool developed at the University of Florence for the simulation of rotating cavities. This simplified in-house code solves the governing equations for a steady one-dimensional axysimmetric flow using experimental correlations both to incorporate flow phenomena caused by multidimensional effects, like heat transfer and flow field losses, and to evaluate the circumferential component of velocity. The simplified calculation tool was designed to simulate the flow in a rotating cavity with radial outflow both with a Batchelor and/or Stewartson flow structures. Several studies have been carried out by the authors to develop suitable correlations for the discs friction coefficients and for co-rotation factor evaluation. The results of these analyses are available in the literature. In the present paper the authors develop, using CFD tools, reliable correlation for rotor disk pumped mass flow rate and provide a full ID-code validation comparing, due to a lack of experimental data, the in-house design code predictions with those evaluated by CFD.
机译:二次空气系统的可靠设计是燃气涡轮发动机安全性,可靠性和性能的主要任务之一。为了满足日益增长的燃气轮机设计需求,需要在广泛的运行条件下预测二次空气系统性能的改进工具。实际的燃气轮机二次空气系统包含多个组件,因此,不能使用完整的CFD方法进行分析。通常,这些预测是基于简化方法使用代码执行的,该方法允许评估需要非常差的计算资源和很少的计算时间的空气系统每个分支中的流动特性。通常,可用的简化商业软件包仅允许正确解决实际空气系统的某些组件,并且通常无法研究具有更复杂的流动结构的元素。在这些元素中,旋转腔的分析非常困难。本文介绍了佛罗伦萨大学开发的一种用于模拟旋转型腔的设计工具。这种简化的内部代码使用实验相关性求解稳定的一维轴对称流的控制方程,既可以合并由多维效应(例如传热和流场损失)引起的流动现象,又可以评估速度的圆周分量。简化的计算工具旨在通过Batchelor和/或Stewartson流动结构来模拟具有径向流出的旋转空腔中的流动。作者已经进行了数项研究,以开发适用于碟片摩擦系数和同向旋转系数评估的相关性。这些分析的结果可从文献中获得。在本文中,作者使用CFD工具开发了转子盘泵送质量流量的可靠相关性,并提供了完整的ID代码验证,由于缺乏实验数据,将内部设计代码预测与通过FFD评估的内部设计代码预测进行了比较差价合约

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