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Torsional actuator based on mechanically amplified shear piezoelectric response

机译:基于机械放大剪切压电响应的扭转执行器

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摘要

A torsional actuator, based on the concept of mechanical amplification of piezoelectric shear strain and capable of generating large angular displacement, was proposed and studied experimentally. The actuator is a tube consisting of an even number of the segments poled along the length, which are adhesively bonded together, and the joints act as electrodes to apply the driving voltage. The experimental data measured on the prototype actuators (i) prove the proposed concept of mechanical amplification of small piezoelectric shear strain to generate large torsional motion, (ii) show that the actuator functions well both without load and under the torque load and (iii) demonstrate that the actuator can operate continuously for a long period of time without drop in its performance. Also, the results demonstrated that the proposed torsional actuator is capable of producing both large torque and large angular displacement in a compact package, sufficient to meet many smart structures requirements, and can be tailored for a variety of application requirements. Finally, one of the obvious advantages of the present design of the actuator is its simplicity: the piezoelectric shear strain is transformed directly into the angular displacement, whereas in the previously reported actuators, the conversion mechanism into the torsional motion was rather complicated which thus required a sophisticated design of the whole system.
机译:提出并基于压电剪切应变的机械放大概念,能够产生大的角位移的扭转致动器,并进行了实验研究。致动器是一个管,由沿长度方向偶数个段组成,这些段被粘接在一起,并且接头充当电极以施加驱动电压。在原型执行器上测得的实验数据(i)证明了提出的机械放大小压电剪切应变以产生大扭转运动的概念,(ii)表明执行器在无负载和扭矩负载下均能良好工作,并且(iii)证明执行器可以长时间连续运行而不会降低其性能。而且,结果表明,所提出的扭转致动器能够在紧凑的封装中产生大的扭矩和大的角位移,足以满足许多智能结构要求,并且可以针对各种应用要求进行定制。最后,执行器当前设计的明显优势之一是它的简单性:压电剪切应变直接转换为角位移,而在先前报道的执行器中,向扭转运动的转换机制相当复杂,因此需要整个系统的复杂设计。

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