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Electromechanical characterization of piezoelectric stack actuators

机译:压电叠层致动器的机电特性

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Abstract: The response of five commercial piezoelectric stack actuators under electrical, mechanical, and combined electro-mechanical loading was investigated in this study. The focus was to understand the behavior of piezoelectric materials under the combined electro-mechanical loading scenario, and to determine fundamental properties important for design of actuator systems that incorporate these materials. Parameters that were evaluated include strain output, permittivity, mechanical stiffness, energy density, and coupling coefficients as a function of mechanical preload and electric field values representative of in- service conditions. Stiffness measurements indicate strong dependence on applied electric field and mechanical preload, as well as the number of mechanical cycles. For certain actuators, stiffness values change by as much as 100% depending on the operating conditions. The voltage induced strain output of some of these samples which include both PZT and PLZT compositions exceeds 2,000 microstrain for certain operating conditions (under the constant preload). Initially, the strain output is enhanced with an increase in mechanical preload and the maximum strain values are obtained when the stacks are preloaded between 4 - 6 ksi. High values of output energy density can be achieved for this operating region. Applying a higher preload has the advance effect on the stacks response since mechanical loading impedes domain wall motion reducing the overall strain output. A similar effect is observed under the combined out-of-phase electro-mechanical loading, and we have found that the highest energy density is obtained if the mechanical loading amplitude does not exceed $POM@2.5 ksi.!14
机译:摘要:研究了五个商用压电叠层执行器在电,机械和组合机电负载下的响应。重点是了解压电材料在组合机电负载情况下的性能,并确定对于结合了这些材料的执行器系统的设计非常重要的基本性能。评估的参数包括应变输出,介电常数,机械刚度,能量密度和耦合系数,这些系数是机械预紧力和代表使用条件的电场值的函数。刚度测量表明强烈依赖于施加的电场和机械预紧力以及机械循环的次数。对于某些执行器,刚度值会根据运行条件变化多达100%。对于某些操作条件(在恒定的预紧力下),某些同时包含PZT和PLZT成分的样品的电压感应应变输出超过2,000微应变。最初,随着机械预紧力的增加,应变输出得以提高,并且当叠层在4-6 ksi之间预紧时,可获得最大应变值。对于该工作区域可以实现高的输出能量密度值。由于机械载荷会阻止畴壁运动,从而降低整体应变输出,因此,施加较高的预载荷会对堆响应产生提前影响。在组合的异相机电负载下也观察到类似的效果,并且我们发现,如果机械负载幅度不超过$POM@2.5 ksi,则可以获得最高的能量密度!14

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