首页> 外文会议>ASME turbo expo: turbomachinery technical conference and exposition >NUMERICAL AND EXPERIMENTAL STUDY OF SHROUDED BLADE DYNAMICS CONSIDERING VARIABLE OPERATING POINTS
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NUMERICAL AND EXPERIMENTAL STUDY OF SHROUDED BLADE DYNAMICS CONSIDERING VARIABLE OPERATING POINTS

机译:考虑可变工作点的带叶片叶片动力学的数值和实验研究

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The optimization of the mechanical design process of turbomachinery has been a subject of research for decades. In this context, many researchers developed efficient numerical methods to calculate the vibration response of bladed disks. In most cases, the studies are restricted to one single operating point of the system, which is sufficient for many applications. For turbomachinery with variable operating points, the conventional computation methods must be extended. Changing the turbine's rotational speed Ω leads to entirely new load conditions. On the one hand, structural mechanical properties (e.g. stiffening effects) depend on the rotational speed. On the other hand, in case of coupled blades, the pressure distributions in the joints are sensitive to the rotational speed. In this paper, a model of a steam turbine blade is investigated numerically and experimentally. Beside the tip shroud contact, multiple contacts at the root of the blade are considered. The steady-state vibration response is calculated by the well-known harmonic balance method (HBM) and an alternating frequency-time scheme (AFT). In case of variable operating conditions, the stiffness matrix can be described as a matrix polynomial of second order in Ω~2. The preload at the joints is based on nonlinear quasistatic finite element analysis and also depends on the rotational speed. For the first time, a computational methodology is presented for the calculation of the forced response of a fully bladed disk with multiple contacts considering rotational speed dependent structural mechanical properties and, in particular, contact pressures. The experimental study is conducted in two steps. Firstly, a single blade model is investigated at non-rotating test conditions. Here, the blade is clamped with two dummies at the shroud. The vibration response is measured for various pressure distributions at the shroud contact. The comparison with simulation results shows a very good agreement. The second step of the experimental study will be the future investigation of a bladed disk assembly on a rotating test rig. An overview of the test rig including operation conditions, excitation methods and measurement techniques is given at the end of the paper.
机译:数十年来,涡轮机械的机械设计过程的优化一直是研究的主题。在这种情况下,许多研究人员开发了有效的数值方法来计算叶片盘的振动响应。在大多数情况下,研究仅限于系统的单个操作点,这对于许多应用而言已足够。对于具有可变工作点的涡轮机械,必须扩展常规的计算方法。改变涡轮机的转速Ω会导致全新的负载条件。一方面,结构机械性能(例如,硬化作用)取决于旋转速度。另一方面,在叶片连接的情况下,接头中的压力分布对转速敏感。本文通过数值和实验研究了汽轮机叶片模型。除了顶部护罩触点之外,还考虑了叶片根部的多个触点。稳态振动响应是通过众所周知的谐波平衡方法(HBM)和交流频率时间方案(AFT)计算的。在变化的工作条件下,刚度矩阵可以描述为Ω〜2的二阶矩阵多项式。接头处的预紧力基于非线性准静态有限元分析,并且还取决于转速。首次提出了一种计算方法,用于计算具有多个触点的全叶片盘的受力响应,其中考虑了取决于转速的结构机械性能,尤其是接触压力。实验研究分两个步骤进行。首先,在非旋转测试条件下研究单个叶片模型。在此,叶片在护罩处被两个假人夹紧。测量护罩触点处各种压力分布的振动响应。与仿真结果的比较显示出很好的一致性。实验研究的第二步将是未来在旋转测试台上对叶片盘组件的研究。在本文的结尾给出了试验台的概述,包括操作条件,激励方法和测量技术。

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