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Numerical Analysis of Bladed Disk-Casing Contact With Friction and Wear

机译:叶片盘式壳体与摩擦磨损的数值分析

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摘要

In order to increase the aerodynamic performances of their engines, aircraft engine manufacturers try to minimize the clearance between rotating and stationary parts in axial and centrifugal compressors. Consequently, the probability of contact increases, leading to undesirable phenomena caused by forced excitation of the natural modes or by modal interaction. Due to the complexity of these phenomena, many numerical studies have been conducted to gain a better understanding of the physics associated with them, looking primarily at their respective influence on potential unstable behaviors. However, the influence of other physical phenomena, such as friction and wear, remains poorly understood. The aim of this work is to show some effects associated with friction and wear on the dynamic behavior resulting from blade-to-casing interaction. The numerical study reported here is based on a simplified finite element model of a rotating bladed disk and a flexible casing. The contact algorithm uses an explicit time marching scheme with the Lagrange multipliers method. Friction and wear are formulated using, respectively, Coulomb's and Archard's laws. The rotational speed is set to critical speed giving rise to modal interaction between a backward mode of the casing and a counter-rotating mode of the bladed disk with one nodal diameter (ND). Contact is initiated by a dynamic excitation of the stator. In the presence of friction, the system becomes unstable when a sideband of the excitation frequency coincides with 1ND mode of the bladed disk. The introduction of wear leads to a vibration reduction, while the abradable material is removed by the wear process. The number of wear lobes produced on the casing is related to the ratio between the vibration frequency of the blades and the rotating speed. The ratio obtained by means of the FE model corroborates experimental observations.
机译:为了提高其发动机的空气动力学性能,飞机发动机制造商试图使轴向和离心式压缩机中旋转部件与固定部件之间的间隙最小。因此,接触的可能性增加,导致由自然模式的强制激发或模式相互作用引起的不良现象。由于这些现象的复杂性,已经进行了许多数值研究,以更好地了解与它们相关的物理学,主要研究它们各自对潜在的不稳定行为的影响。但是,其他物理现象(例如摩擦和磨损)的影响仍然知之甚少。这项工作的目的是显示与摩擦和磨损相关的一些影响,这些影响是由于叶片与壳体之间的相互作用而产生的。此处报告的数值研究基于旋转叶片盘和柔性外壳的简化有限元模型。接触算法使用带有Lagrange乘数方法的显式时间行进方案。摩擦和磨损分别使用库仑定律和阿卡德定律制定。旋转速度设置为临界速度,从而导致外壳的后向模式与具有一个节点直径(ND)的叶片盘的反向旋转模式之间的模态相互作用。通过定子的动态励磁来启动接触。在存在摩擦的情况下,当励磁频率的边带与叶片盘的1ND模式重合时,系统变得不稳定。磨损的引入导致减振,而可磨损材料则通过磨损过程去除。在壳体上产生的磨损凸角的数量与叶片的振动频率和转速之间的比率有关。通过有限元模型获得的比率证实了实验观察。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第12期|122802.1-122802.11|共11页
  • 作者单位

    SAFRAN Turbomeca, Avenue Joseph Szydlowski, Bordes Cedex 64511, France;

    Ecole Centrale de Lyon, Laboratoire de Tribologie et Dynamique des Systemes, 36 Avenue Guy de Collongue, Ecully Cedex 69134, France;

    Ecole Centrale de Lyon, Laboratoire de Tribologie et Dynamique des Systemes, 36 Avenue Guy de Collongue, Ecully Cedex 69134, France;

    Ecole Centrale de Lyon, Laboratoire de Tribologie et Dynamique des Systemes, 36 Avenue Guy de Collongue, Ecully Cedex 69134, France;

    SAFRAN Turbomeca, Avenue Joseph Szydlowski, Bordes Cedex 64511, France;

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

    blade-casing contact; abradable coating; wear; spectral analysis; traveling waves;

    机译:刀片壳体触点;耐磨涂层穿;光谱分析行波;

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