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Nonlinear characterization of piezoelectric patches and piezoelectric stacks from vibrations of piezo-actuated structures

机译:压电促动结构振动对压电贴片和压电叠层的非线性表征

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Just as it is indubitably accepted that the piezoelectric actuators do not behave in a linear fashion when subjected to strong electric fields, it was also believed that they behaved in a linear manner at weak electric fields excitations. But this notion was shattered by the experimental evidence offered by researchers in recent years, where it was observed that the piezo-actuators behaved non-linearly even when actuated at voltages which resulted in weak electric fields in the piezoelectric actuator. Most of the experiments, however, were conducted on the piezoelectric patches, and consequently most of the studies were aimed at establishing the non-linear relationship in the "31" electromechanical coupling, and the nonlinear elastic relation of the material along the longitudinal axis. Though this may be expected due to the widespread usage of the patches, the "33" coupling needs to be investigated too -as stack actuators are the preferred ones for the actuation of large structures. This study aims at characterizing the nonlinear behavior both in the patches and the stacks; thereby establishing the nonlinear constitutive equations for both the "31" and "33" coupling. To achieve this, a two-step experimental procedure was followed, wherein, firstly, the mechanical domain was isolated and studied to establish the non-linear elastic behavior. Later, equipped with the nonlinear stress-strain relation, experiments were conducted to identify the nature of the nonlinearity in the electromechanical coupling. Unlike the two-step experimental procedure, which facilitates a separate investigation into the mechanical domain and the electromechanical coupling, the experimental procedures employed in the previous studies yield data which mixes the contributions from both the mechanical domain and the electromechanical coupling. The experiments were conducted to obtain a family of displacement frequency response curves of the bending modes of a piezoelectric-beam and a piezostack-beam. The information from the displacement frequency response curves, and the profile of the backbone curves, obtained from both steps of experimentation, were used to determine the exact nonlinear terms required to represent the observed phenomenon. Eventually the nonlinear constitutive equations were constructed with these terms.
机译:正如人们公认的那样,压电致动器在受到强电场作用时不会以线性方式工作,人们也认为压电致动器在弱电场激励下会以线性方式工作。但是,这一观点被近年来研究人员提供的实验证据所打破,据观察,即使在电压激励下压电致动器也表现出非线性的行为,导致压电致动器中的电场很弱。但是,大多数实验是在压电片上进行的,因此,大多数研究旨在建立“ 31”机电耦合中的非线性关系以及材料沿纵轴的非线性弹性关系。尽管由于贴片的广泛使用而可以预料到这一点,但是“ 33”耦合也需要进行研究,因为堆栈致动器是用于驱动大型结构的首选。这项研究旨在表征斑块和堆叠中的非线性行为。从而建立“ 31”和“ 33”耦合的非线性本构方程。为此,遵循了两步实验程序,其中,首先,对机械域进行了分离和研究,以建立非线性弹性行为。后来,配备了非线性应力-应变关系,进行了实验以确定机电耦合中非线性的性质。与分两步进行的实验过程不同,后者便于对机械域和机电耦合进行单独研究,而先前研究中采用的实验过程产生的数据混合了机械域和机电耦合的贡献。进行实验以获得压电梁和压电叠层梁的弯曲模式的位移频率响应曲线族。从两个实验步骤中获得的位移频率响应曲线的信息和主干曲线的轮廓,用于确定代表观察到的现象所需的确切非线性项。最终,用这些项构造了非线性本构方程。

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