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Static and dynamic analysis of a flextensional transducer with an axial piezoelectric actuation

机译:带有轴向压电驱动的挠性传感器的静态和动态分析

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The objective of this paper is to describe the mathematical modelling and numerical testing of the static behaviour and natural frequency of a flexure hinge transducer. The actuator is constructed of two parallel beams mounted by stiff links with an offset to a piezoceramic rod. A monolithic hinge lever mechanism is applied by cutting constricted hinges at the links to generate and magnify the in-plane displacement created by the application of a voltage to the piezorod. This mechanism enables the piezoelectric transducers to amplify displacement efficiently. A non-linear analytical model of the actuator is developed on the basis of Hamilton's principle and solved with use of the perturbation method. During the numerical analysis, the static deflection and internal axial force generated by the electric field application are determined by changing actuator properties such as the distance between the beams and the rod as well as the stiffness of the constricted hinges. It is shown that for the flextensional actuator with a very high flexibility of constricted hinges, the generated transverse displacement is limited by the maximum electric field as the characteristic property for each piezoceramic material. In the dynamic analysis, the fundamental vibration frequency and the adequate modes are studied in relation to the piezoelectric force. The natural vibration frequency, affected by the piezoelectric force, also depends on the stiffness of the beam supports, the matched beam and rod materials, the ratio of the cross section of the rod to the beam and the direction of the electric field.
机译:本文的目的是描述挠性铰链换能器的静态行为和固有频率的数学建模和数值测试。致动器由两个平行梁构成,这些平行梁通过刚性连杆安装,并与压电陶瓷杆偏置。通过在链节上切割收缩的铰链来应用整体式铰链杠杆机构,以产生并放大通过向压电杆施加电压而产生的平面内位移。这种机制使压电换能器能够有效地放大位移。根据汉密尔顿原理建立了执行器的非线性分析模型,并利用摄动法对其进行了求解。在数值分析过程中,通过改变执行器特性(例如梁和杆之间的距离以及约束铰链的刚度)来确定电场施加所产生的静态挠度和内部轴向力。已经表明,对于具有非常高的挠性铰链挠性的挠性拉伸致动器,所产生的横向位移受到最大电场的限制,这是每种压电陶瓷材料的特性。在动力学分析中,研究了基本振动频率和适当模式与压电力的关系。受压电力影响的固有振动频率还取决于梁支架的刚度,匹配的梁和杆材料,杆的横截面与梁的截面之比以及电场方向。

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