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Studies on the Resonance-Enhanced Micro-Actuator with Active Structures

机译:具有主动结构的共振增强微致动器的研究

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The need for actuators that are adaptable for use in a wide array of applications has been the motivation behind actuator development research over the past few years. At the Advanced Aero Propulsion Laboratory at the Florida State University, a novel, fluidic-based micro-actuator has been developed that produces pulsed, supersonic microjets by utilizing a number of micro-scale, flow/acoustic resonance phenomena. This Resonance-Enhanced Microjet (REM) actuator has been tested for flow and noise control in a few flowfields in an open loop manner only. In order to use this actuator in a closed loop, feedback control system, a modified design that incorporates smart materials is being studied. In the design explored here, a set of piezoelectric ceramic stack actuators (piezo-stacks) are integrated to actively control part of the geometry, thus producing changes in the micro-actuator's resonance frequency. By controlling the voltage applied to the piezo-stacks, the frequency of this actuator can be actively and rapidly O(1 ms) tuned over a very large range: frequency shifts greater than 1 kHz are attainable with the current design. The piezoelectric stacks are also shown to enable closed loop control of the micro-actuator's frequency, a nontrivial task for fluidic-based actuators.
机译:对适用于各种应用的执行器的需要是过去几年执行器开发研究的动机。在佛罗里达州立大学的高级航空推进实验室,开发了一种新颖的流体基微型致动器,通过利用许多微尺度,流量/声学共振现象产生脉冲,超音速微进程。该共振增强的微射精(REM)执行器已经在少数流场中以开环方式测试了流动和噪声控制。为了在闭环中使用该执行器,正在研究包含智能材料的改进设计。在这里探索的设计中,一组压电陶瓷堆叠致动器(压电堆叠)被集成以主动控制几何形状,从而产生微致动器的共振频率的变化。通过控制施加到压电堆叠的电压,该致动器的频率可以在非常大的范围内主动且快速地调谐O(1 ms):随着当前的设计,可以实现大于1kHz的频移。还示出了压电堆,以使微致动器频率的闭环控制能够实现流体基致动器的非活动任务。

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