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Flexoelectric barium strontium titanate (BST) hydrophones

机译:钛酸盐锶(BST)Hydrophame

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摘要

Flexoelectric hydrophones offer the possibility of reasonable sensitivity in lead-free systems. In this work, a dense barium strontium titanate ceramic with a Ba:Sr ratio of 70:30 and an effective flexoelectric coefficient, μ_(12) of 105.6 ± 0.6μC/m at room temperature was utilized in a prototype three-point bending hydrophone with dimensions of 77 × 10 × 0.67 mm~3. Tap testing of this hydrophone with a calibrated acoustic hammer showed a resonant frequency of 250 Hz and a maximum sensitivity of 80 pC/N. Finite element analysis (FEA) was employed to verify the experimental results and to refine the predictive modeling capability. FEA was used to predict the resonant frequency of devices based on geometry, boundary conditions, and material properties. The error in resonant frequency between the FEA model and the experiment was 7.6%. FEA also enables calculations of the strain gradient produced in a material, allowing the numerical analysis of the element's expected flexoelectric output. Using this technique, single and three bending point hydrophone designs were compared. The results showed a 43% increase in charge output in the three bending point design vs the single bending point design despite an average strain decrease of 48% in each electrode pair. This design would lower the voltage output by 48% in a voltage-based design unless the voltages could be added in series. FEA studies also found the greatest flexoelectric output at low frequencies with improved high frequency output using larger electrode areas.
机译:FlexoeLeltic Hydrophothers提供了无铅系统中合理敏感性的可能性。在这项工作中,在室温下使用具有Ba:Sr比的钛酸钡钛酸钡钛酸锶钡罐:室温下为105.6±0.6μC/ m的有效屈光度系数,μ_(12)均采用原型三点弯曲室温尺寸为77×10×0.67 mm〜3。用校准的声锤点击测试这种水听器的测试显示,谐振频率为250Hz,最大灵敏度为80 pc / n。采用有限元分析(FEA)来验证实验结果并优化预测性建模能力。 FEA用于基于几何,边界条件和材料特性来预测器件的谐振频率。 FEA模型与实验之间的谐振频率误差为7.6%。 FEA还使得能够计算材料中产生的应变梯度,允许元件的预期柔性输出的数值分析。使用这种技术,比较单个和三个弯曲点水听器设计。结果表明,三个弯曲点设计中的电荷输出增加了43%,而单个弯曲点设计尽管每个电极对中的平均应变降低48%。除非可以串联添加电压,否则该设计将在基于电压的设计中降低48%的电压输出48%。 FEA研究还发现,使用较大电极区域的高频输出改善了低频的最大柔性输出。

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  • 来源
    《Journal of Applied Physics》 |2021年第6期|064504.1-064504.7|共7页
  • 作者单位

    Department of Materials Science and Engineering and Materials Research Institute Pennsylvania State University University Park Pennsylvania 16802 USA;

    Department of Materials Science and Engineering and Materials Research Institute Pennsylvania State University University Park Pennsylvania 16802 USA;

    165 Applied Research Laboratory Pennsylvania State University University Park Pennsylvania 16802 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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