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Piezoelectric-Based Vibration Reduction on Pre-Twisted Blades with Centrifugal Loads

机译:带有离心载荷的预扭曲叶片上基于压电的减振

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Turbomachinery blades experience large periodic aerodynamic loads that can lead to high-cycle fatigue and possibly catastrophic failure. Piezoelectric-based vibration reduction represents a possible solution to increase blade lifetime and reduce risk of premature failure. Integrating piezoelectric material into the blade enables tailoring of structural properties. Ideal manipulation of the electrical boundary conditions can effectively detune the structural resonance frequency from the excitation frequency, reducing vibration. Previous analyses of piezoelectric-based vibration reduction of turbomachinery blades provide results for simplified mechanical systems, and do not consider blade twist or centrifugal loading. This paper uses an assumed modes model with a span-chord-normal coordinate system to capture the effects of blade twist and centrifugal loading on piezoelectric-based vibration reduction. Specifically, this study investigates how the electromechanical coupling coefficient varies with increasing blade twist and rotation speed. Overall, rotation speed can significantly affect coupling, making it critical to ensure the piezoelectric material has good coupling at the rotation speed associated with each resonance crossing.
机译:涡轮机械叶片会承受较大的周期性空气动力负荷,这会导致高周疲劳和可能的灾难性故障。基于压电的减振是延长叶片寿命并降低过早失效风险的一种可行解决方案。将压电材料集成到叶片中可以调整结构性能。电边界条件的理想操纵可以有效地使结构共振频率与激励频率失谐,从而减少振动。以前对涡轮机械叶片基于压电的减振进行的分析为简化的机械系统提供了结果,并且没有考虑叶片扭曲或离心载荷。本文使用跨跨弦法线坐标系的假设模式模型来捕获叶片扭曲和离心载荷对基于压电的减振的影响。具体而言,本研究调查了机电耦合系数如何随着叶片扭曲和旋转速度的增加而变化。总体而言,转速会严重影响耦合,因此至关重要的是确保压电材料在与每个共振交叉点相关的转速下均具有良好的耦合。

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