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Shunted Piezoelectric Vibration Damping Analysis Including Centrifugal Loading Effects

机译:包括离心载荷效应的并联压电振动阻尼分析

摘要

Excessive vibration of turbomachinery blades causes high cycle fatigue problems which require damping treatments to mitigate vibration levels. One method is the use of piezoelectric materials as passive or active dampers. Based on the technical challenges and requirements learned from previous turbomachinery rotor blades research, an effort has been made to investigate the effectiveness of a shunted piezoelectric for the turbomachinery rotor blades vibration control, specifically for a condition with centrifugal rotation. While ample research has been performed on the use of a piezoelectric material with electric circuits to attempt to control the structural vibration damping, very little study has been done regarding rotational effects. The present study attempts to fill this void. Specifically, the objectives of this study are: (a) to create and analyze finite element models for harmonic forced response vibration analysis coupled with shunted piezoelectric circuits for engine blade operational conditions, (b) to validate the experimental test approaches with numerical results and vice versa, and (c) to establish a numerical modeling capability for vibration control using shunted piezoelectric circuits under rotation. Study has focused on a resonant damping control using shunted piezoelectric patches on plate specimens. Tests and analyses were performed for both non-spinning and spinning conditions. The finite element (FE) shunted piezoelectric circuit damping simulations were performed using the ANSYS Multiphysics code for the resistive and inductive circuit piezoelectric simulations of both conditions. The FE results showed a good correlation with experimental test results. Tests and analyses of shunted piezoelectric damping control, demonstrating with plate specimens, show a great potential to reduce blade vibrations under centrifugal loading.
机译:涡轮机械叶片的过度振动会导致高周疲劳问题,需要进行减震处理以减轻振动水平。一种方法是使用压电材料作为被动或主动阻尼器。基于从先前的涡轮机械转子叶片研究中学习到的技术挑战和要求,已做出努力来研究并联压电在涡轮机械转子叶片振动控制中的有效性,特别是在离心旋转条件下的有效性。尽管已经对使用压电材料和电路来控制结构减振进行了充分的研究,但是关于旋转效应的研究却很少。本研究试图填补这一空白。具体而言,本研究的目标是:(a)创建和分析用于发动机强制运行条件的谐波强制响应振动分析和并联压电电路的有限元模型,(b)用数值结果验证实验测试方法,反之反之亦然,以及(c)建立使用旋转的并联压电电路进行振动控制的数值建模能力。研究集中于在平板试样上使用分流压电片的谐振阻尼控制。针对非纺丝和纺丝条件进行了测试和分析。使用ANSYS Multiphysics代码对两种情况下的电阻和电感电路压电仿真进行了有限元(FE)并联压电电路阻尼仿真。有限元结果与实验测试结果具有良好的相关性。分流式压电阻尼控制的测试和分析(与板样本一起演示)显示了减少离心载荷下叶片振动的巨大潜力。

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