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Piezoelectric-Based Vibration Reduction of Turbomachinery Bladed Disks via Resonance Frequency Detuning
38
Citations
22
References
2012
Year
EngineeringResonance Frequency DetuningMechanical EngineeringPiezoelectric-based Resonance FrequencyRotor DynamicBlade WeightUnwanted VibrationMechanicsNonlinear Vibration ControlVibration IsolationNonlinear VibrationStructural VibrationElectrical EngineeringEnergy HarvestingPiezoelectric-based Vibration ReductionMechatronicsActive Vibration ControlPiezoelectricityTurbomachinery Bladed DisksMechanical SystemsStructural MechanicsVibration Control
Piezoelectric-based resonance frequency detuning can alleviate unwanted vibration of turbomachinery blades, thus reducing the dangers of high-cycle fatigue while also decreasing the blade weight. This semiactive approach applies to structures that are subjected to frequency-sweep excitation and involves altering the structural stiffness (here, by switching the piezoelectric electrical boundary conditions) to avoid a resonant condition, thus limiting the blade response. Detuning requires two switches per resonance/excitation frequency crossing, including a switch back to the original the original state,many fewer than other semiactive approaches that require four switches per cycle of vibration.Resonance frequencydetuningapplies to anymode of vibrationwith apositive electromechanical coupling coefficient, and it provides the greatest normalized vibration reduction for slow sweeps, low damping, and high coupling coefficient. Yet even for amoderate sweep rate 10 4 andmodal damping 0:1%, optimally detuning a structure with an electromechanical coupling coefficient k 10% provides the same vibration reduction as increasing either the sweep rate ormodal damping by an order of magnitude.With a lower sweep rate 10 5 and modal damping 0:01%, detuning with a coupling coefficient of only k 3% provides equivalent vibration reduction as an order of magnitude increase in sweep rate or modal damping.
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