首页> 外文会议>Conference on Smart Structures and Materials 2000 Active Materials: Behavior and Mechanics 6-9 March 2000 Newport Beach, USA >Understanding mechanics and stress effects in Rainbow and Thunder stress-biased actuators
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Understanding mechanics and stress effects in Rainbow and Thunder stress-biased actuators

机译:了解Rainbow和Thunder应力偏置执行器中的力学和应力影响

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Rainbow and Thunder actuators constitute a family of "stress-biased" devices that display enhanced strain and load-bearing capabilities in comparison to traditional flextensional devices. For both of these actuators, doming occurs during the cooling phase of the fabrication process to relieve thermal expansion mismathc between the metallic and piezoelectric layers. Accompanying dome formation is the development of a tensile stress within the surface region of he piezoelectric layer that can approach 400 MPa. This tensile stress affects the ferroelectric domain configuration and improves the 90 deg domain wall movement within the surface region of the piezoelectric under an applied electric field/ It has been reported that this effect is tesponsible for the enhanced electromechanical performance of these devices. The reuslts of the present study, however, suggest that in addition to stress, other mechanical and mass loading efects may also play a role in the enhanced performance of these devices. Equivalent circuit and finite element modeling studies of these stress-biased actuators are reported, and in particular, the effects of specimen geometry on internal stress in the piezoelectric layer are discussed. Finite element analysis shows that in the surface region of the piezoelectric, the highest tensile stresses are, in fact, predicted for those devices that display the greatest displacmeent performance; i.e., devices that have a piezoelectric layer that is approxiamtely twice as thick as the "metallic" layer. However, equivalnet circuit studies show that the highest predicted strains should also be observed for samples with similar geometries yet this approach doe not include stress effects. this implies that not only stres, but also mass loading and other mechanical effects must also be considered in predicting optimum design geometries.
机译:Rainbow和Thunder执行器构成“应力偏置”设备系列,与传统的挠性拉伸设备相比,它们具有增强的应变和承重能力。对于这两种致动器,在制造过程的冷却阶段都会发生隆起现象,以减轻金属层和压电层之间的热膨胀误差。伴随圆顶形成的是在压电层的表面区域内的拉伸应力的发展,该拉伸应力可以接近400MPa。这种拉应力会影响铁电畴的结构,并在施加电场的情况下改善压电表面区域内90度畴壁的运动。据报道,这种效应对这些器件的增强的机电性能是有利的。然而,本研究的重用表明,除了压力之外,其他机械和质量负载效应也可能在这些设备的性能提高中起作用。报告了这些应力偏置执行器的等效电路和有限元建模研究,尤其是讨论了样品几何形状对压电层内部应力的影响。有限元分析表明,在压电的表面区域中,实际上,对于那些表现出最大位移性能的器件,可以预测出最高的拉应力;这是可以预测的。即具有压电层的装置的厚度大约是“金属”层的两倍。然而,等效电路研究表明,对于具有相似几何形状的样品,也应观察到最高的预测应变,但这种方法不包括应力影响。这意味着在预测最佳设计几何形状时,不仅应考虑应力,还应考虑质量载荷和其他机械效应。

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