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The Fabrication and Material Characterization of PZT Based Functionally Graded Piezoceramics

机译:基于PZT的功能梯度压电陶瓷的制备与材料表征

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Functionally Graded Piezoceramics (FGP) increase actuator lifetime and provide complex deformations; however, to reap these benefits sophisticated grading and fabrication techniques beyond the conventional layered bonding techniques are required. This paper introduces the Dual Electro/Piezo Property (DEPP) gradient technique via MicroFabrication through CoeXtrusion (MFCX). The Dual Electro/Piezo Property (DEPP) grading technique pairs a high displacement lead zirconate titanate (PZT) piezoceramic with a high permittivity barium titanate (BT) dielectric. These compatible materials act synergistically to form dramatic gradients in permittivity across the structure, concentrating the electric field in the more piezoelectrically active region leading to electrically-efficient, large-displacement actuators; with the benefit of increased reliability stemming from the continuous gradients and monolithic nature of the ceramic. The DEPP variation was first evaluated independently of the MFCX process through fabrication and experimental characterization of a powder pressed bimorph. While simple one-dimensionally graded FGPs can be realized by this process, MFCX is needed for any complex, multidimensional gradient. The MFCX process was adapted for DEPP grading and demonstrated by creating a more complex linearly-graded FGP. Both the bimorph and linearly graded specimens had good material quality and generated high displacements correlating well with published FGP theory; with the linear gradient reducing internal stress levels, extending actuator lifetime. This paper presents a general FGP methodology that couples grading and fabrication to generate high yield, low cost monolithic actuators with complicated one-dimensional gradients. Extension of this research will pave the way for more complicated gradients yielding such deformation capabilities as warping, twisting, rippling, and dimpling.
机译:功能梯度压电陶瓷(FGP)可延长执行机构的使用寿命并提供复杂的变形;但是,要获得这些好处,就需要超越常规分层粘结技术的复杂分级和制造技术。本文介绍了通过CoeXtrusion(MFCX)的微细加工实现的双电/压电特性(DEPP)梯度技术。双重电/压电特性(DEPP)分级技术将高位移锆钛酸铅(PZT)压电陶瓷与高介电常数钛酸钡(BT)电介质配对。这些相容的材料协同作用,以在整个结构上形成介电常数的急剧梯度,从而将电场集中在压电性更高的区域,从而产生电效率高,位移大的致动器。由于陶瓷的连续梯度和整体性质,可靠性得到了提高。首先通过粉末压制双压电晶片的制造和实验表征独立于MFCX工艺评估DEPP变化。尽管可以通过此过程实现简单的一维渐变FGP,但任何复杂的多维渐变都需要MFCX。 MFCX工艺适用于DEPP分级,并通过创建更复杂的线性分级FGP进行了演示。双压电晶片和线性梯度试样均具有良好的材料质量,并产生高位移,与已发表的FGP理论密切相关。线性梯度降低了内部应力水平,延长了执行器的使用寿命。本文介绍了一种通用的FGP方法,该方法结合了分级和制造,以生成具有复杂一维梯度的高产量,低成本单片执行器。这项研究的扩展将为更复杂的渐变铺平道路,从而产生诸如变形,扭曲,波纹和凹陷的变形能力。

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