首页> 外文会议>ASME Turbo Expo 2006: Power for Land, Sea, and Air vol.5 pt.B: Structures and Dynamics: Mechanics and Vibration; Unsteady Aerodynamics; Rotor Dynamics and Magnetic Bearings >NUMERICAL AND EXPERIMENTAL DAMPING ASSESSMENT OF A THIN- WALLED FRICTION DAMPER IN THE ROTATING SET-UP WITH HIGH PRESSURE TURBINE BLADES
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NUMERICAL AND EXPERIMENTAL DAMPING ASSESSMENT OF A THIN- WALLED FRICTION DAMPER IN THE ROTATING SET-UP WITH HIGH PRESSURE TURBINE BLADES

机译:高压涡轮叶片旋转装置中薄壁摩擦阻尼器的数值和实验阻尼评估

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摘要

Under-platform friction dampers are preferably solutions for minimizing vibrations of rotating turbine blades. Solid dampers, characterized by their compact dimensions, are frequently used in real applications and often appear in patents in different forms. A different type of the friction damper is a thin-walled structure, which has larger dimensions and smaller contact stresses on a wider contact area in relation to the solid damper. The damping performance of a thin-walled damper, mounted under the platforms of two rotating, freestanding high pressure turbine blades is investigated numerically and experimentally in this paper. The tangential and normal contact stiffness, that are crucial parameters in optimal design of each friction damper, are determined from three-dimensional finite element (FE) computations of the contact behaviour of the thin-walled damper on the platform including friction and centrifugal effects. The computed contact stiffness values are applied to non-linear dynamic simulations of the analysed blades with the friction damper of a specified mass. These numerical analyses are performed in the modal frequency domain with a code, which is based on the Harmonic Balance Method (HBM) for the complex linearisation of friction forces. The blade vibrations are characterised by a set of the lowest FE mode shapes of one freestanding blade without damper. The dynamic results of the calculated blades with the damper are in good agreement with the measured data of the real mistuned system. In the analysed excitation range, the numerical performance curve of the thin-walled damper is obtained within the scatter band of the experimental results. For the known friction coefficients and available FE and HBM tools, the described numerical process confirms its usability in the design of under-platform dampers.
机译:平台下的摩擦阻尼器优选地是用于使旋转的涡轮叶片的振动最小化的解决方案。固体阻尼器以其紧凑的尺寸为特征,经常在实际应用中使用,并且在专利中经常以不同的形式出现。摩擦阻尼器的另一种类型是薄壁结构,其相对于固体阻尼器具有更大的尺寸和更小的接触应力。本文通过数值和实验研究了安装在两个旋转的独立高压涡轮叶片平台下的薄壁阻尼器的阻尼性能。切向和法向接触刚度是每个摩擦阻尼器的最佳设计中的关键参数,它是根据薄壁阻尼器在平台上的接触行为的三维有限元(FE)计算确定的,包括摩擦和离心作用。所计算的接触刚度值将应用于具有指定质量的摩擦阻尼器的分析叶片的非线性动力学模拟。这些数值分析是在模态频域中使用代码进行的,该代码基于用于摩擦力的复杂线性化的谐波平衡方法(HBM)。叶片振动的特征是一个无阻尼叶片的独立叶片的一组最低FE模式形状。带有阻尼器的计算叶片的动力学结果与真实的雾化系统的测量数据非常吻合。在分析的激励范围内,在实验结果的散射带内获得了薄壁阻尼器的数值性能曲线。对于已知的摩擦系数以及可用的有限元和HBM工具,所描述的数值过程证实了其在平台下阻尼器设计中的可用性。

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