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Finite element modelling of bilayer porous PZT structures with improved hydrostatic figures of merit

机译:具有改善的静水力学性能的双层多孔PZT结构的有限元建模

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摘要

A finite element model is presented in which bilayer lead zirconate titanate (PZT) structures that are formed from a dense layer and a porous layer are investigated for their hydrostatic sensing properties. The model simulates the poling of the porous ferroelectric material to determine the distribution of poled material throughout the structure. The fraction of PZT successfully poled is found to be closely related to resulting piezoelectric and dielectric properties of the composite. Structures with high layer porosity (>40 vol.%) and porous layer relative thickness (>0.5) were found to have a significantly improved hydrostatic piezoelectric coefficient, d, hydrostatic voltage coefficient, g, and hydrostatic figure of merit, d.g. The highest d.g of 7.74 × 10 m/N was observed in the structure with a porous layer relative thickness of 0.6 and porosity of 60 vol.%, which was more than 100 times higher than that for dense PZT (d.g = 0.067 × 10 m/N) and over three times that of PZT with 60 vol.% porosity with 3-3 connectivity (d.g = 2.19 × 10 m/N). The results demonstrate the potential for layered porous materials for use in hydrophones.
机译:提出了一个有限元模型,其中研究了由致密层和多孔层形成的双层锆钛酸铅钛酸盐(PZT)结构的静水传感特性。该模型模拟多孔铁电材料的极化,以确定极化材料在整个结构中的分布。发现成功极化的PZT的比例与复合材料的压电和介电性能密切相关。发现具有高层孔隙率(> 40vol。%)和多孔层相对厚度(> 0.5)的结构具有显着改善的静水压电系数d,静水电压系数g和静水品质因数d.g。在多孔层相对厚度为0.6,孔隙率为60 vol。%的结构中,观察到的最高dg为7.74×10 m / N,比致密PZT的最高dg高100倍(dg = 0.067×10 m / N)和孔隙率60%的PZT的三倍以上,连通性为3-3(dg = 2.19×10 m / N)。结果证明了用于水听器的层状多孔材料的潜力。

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