Wang Q M, Du X H, Xu B, Cross L E
Lexmark International, Inc., Lexington, KY, 40550, USA.
IEEE Trans Ultrason Ferroelectr Freq Control. 1999;46(3):638-46. doi: 10.1109/58.764850.
Electromechanical coupling mechanisms in piezoelectric bending actuators are discussed in this paper based on the constitutive equations of cantilever bimorph and unimorph actuators. Three actuator characteristic parameters, (e.g., electromechanical coupling coefficient, maximum energy transmission coefficient, and maximum mechanical output energy) are discussed for cantilever bimorph and unimorph actuators. In the case of the bimorph actuator, if the effect of the bonding layer is negligible, these parameters are directly related to the transverse coupling factor lest. In the case of the unimorph actuator, these parameters also depend on the Young's modulus and the thickness of the elastic layer. Maximum values for these parameters can be obtained by choosing proper thickness ratio and Young's modulus ratio of elastic and piezoelectric layers. Calculation results on four unimorph actuators indicate that the use of stiffer elastic material is preferred to increase electromechanical coupling and output mechanical energy in unimorph actuators.
本文基于悬臂双压电晶片和单压电晶片致动器的本构方程,讨论了压电弯曲致动器中的机电耦合机制。针对悬臂双压电晶片和单压电晶片致动器,讨论了三个致动器特性参数,即机电耦合系数、最大能量传输系数和最大机械输出能量。对于双压电晶片致动器,若粘结层的影响可忽略不计,则这些参数与横向耦合因子 lest 直接相关。对于单压电晶片致动器,这些参数还取决于杨氏模量和弹性层的厚度。通过选择弹性层和压电层合适的厚度比和杨氏模量比,可获得这些参数的最大值。对四个单压电晶片致动器的计算结果表明,在单压电晶片致动器中,使用更硬的弹性材料有利于提高机电耦合和输出机械能。