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FAST CALCULATION OF THE STATISTICS OF THE FORCED RESPONSE OF MISTUNED BLADED DISK ASSEMBLIES WITH FRICTION CONTACTS

机译:快速计算摩擦触点迷雾的叶片组件的强制响应统计数据

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In turbomachinery one major problem is still the calculation and the optimization of the spatial vibrations of mistimed bladed disk assemblies with friction contacts. Friction contacts are widely used to reduce dynamic stresses in turbine blades. Due to dry friction and the relative motion of the contact planes energy is dissipated. This effect results in a reduction of blade vibration amplitudes. In the case of a tuned bladed disk cyclic boundary conditions can be used for the calculation of the dynamic response. For a mistuned bladed disk the complete system has to be modeled and simulated. To reduce the computation time the so-called substructure method is applied. This method is based on the modal description of each substructure, especially disk and blades, combined with a reduction of the degrees of freedom, to describe the dynamics of each component. The spatial dynamical behavior of each component is considered and described by the mode shapes, natural frequencies and modal damping ratios. Using the Harmonic Balance Method the nonlinear friction forces can be linearized. From here it is possible to calculate the frequency response functions of a mistuned bladed disk assembly with friction contacts. In many cases Monte-Carlo simulations are used to find regions, where the system response is sensitive to parameter uncertainties like the natural frequencies of the blades. These simulations require a large computation time. Therefore, an approximate method is developed to calculate the envelopes of the frequency response functions for statistically varying natural frequencies of the blades. This method is based on a sensitivity analysis and the Weibull-distribution of the vibration amplitudes. From here, a measure for the strength of localization for mistuned cyclic systems is derived. Regions, where localization can occur with a high probability, can be calculated by this method. The mean value and the standard deviation of the vibration amplitudes are calculated by simulation and by the approximate method. The comparisons between the approximate method and the Monte-Carlo simulations show a good agreement. Therefore, applying this method leads to remarkable reduction of computation time and gives a quick insight into the system behavior. The approximate method can also be applied to systems, that include the elasticity of the disk and/or the coupling by shrouds or other friction devices.
机译:在涡轮机械中,一个主要问题仍然是利用摩擦触点的雾化坯料组件的空间振动的计算和优化。摩擦触点被广泛用于减少涡轮机叶片中的动态应力。由于干摩擦和接触平面能量的相对运动被消散。这种效果导致叶片振动振动的减少。在调谐的叶片磁盘循环边界条件的情况下,可以用于计算动态响应。对于雾化的叶片磁盘,必须建模和模拟完整的系统。为了减少计算时间,应用所谓的子结构方法。该方法基于每个子结构的模态描述,尤其是磁盘和叶片,结合减少自由度,以描述每个组件的动态。通过模式形状,自然频率和模态阻尼比来考虑和描述每个组分的空间动力学行为。使用谐波平衡法可以线性化的非线性摩擦力。从这里开始,可以用摩擦触点计算雾化的叶片组件的频率响应函数。在许多情况下,Monte-Carlo模拟用于找到区域,系统响应对参数不确定性敏感,如刀片的自然频率。这些模拟需要大的计算时间。因此,开发了一种近似方法以计算频率响应函数的信封,用于叶片的统计变化的自然频率。该方法基于灵敏度分析和振动振动的威布尔分布。从这里,推导出雾化循环系统的定位强度的措施。可以通过这种方法计算定位的区域,其中定位可以以高概率计算。通过仿真和近似方法计算振动幅度的平均值和标准偏差。近似方法与蒙特卡罗模拟之间的比较表现出良好的一致性。因此,应用该方法导致计算时间的显着降低,并快速深入了解系统行为。近似方法也可以应用于系统,其包括盘的弹性和/或由护罩或其他摩擦装置的联接器。

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