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The Design and Optimization of a Compressive-Type Vector Sensor Utilizing a PMN-28PT Piezoelectric Single-Crystal

机译:利用PMN-28PT压电单晶的压缩型矢量传感器的设计与优化

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摘要

Underwater sensors that detect the distance and direction of acoustic sources are critical for surveillance monitoring and target detection in the water. Here, we propose an axial vector sensor that utilizes a small (~1 cm ) compressive-type piezoelectric accelerometer using piezoelectric single crystals. Initially, finite element analysis (FEA) was used to optimize the structure that comprised piezoelectric Pb(Mb Nb )O -28%PbTiO single crystals on a tungsten seismic mass. The receiving voltage sensitivity (RVS) was enhanced through geometric optimization of the thickness and sensing area of the piezoelectric material and the seismic mass. The estimated maximum RVS of the optimized vector sensor was −212 dB. FEA simulations and practical measurements were used to verify the directivity of the vector sensor design, which exhibited a dipole pattern. The dipole beam pattern was used to obtain cardioid patterns using the simulated and measured results for comparison. The results clearly showed the feasibility of using the proposed piezoelectric single-crystal accelerometer for a compressive-type vector sensor.
机译:检测声源距离和方向的水下传感器对于水中的监视监视和目标检测至关重要。在这里,我们提出了一种轴向矢量传感器,该传感器利用了使用压电单晶的小型(〜1 cm)压缩型压电加速度计。最初,使用有限元分析(FEA)来优化结构,该结构包括在钨质地震质量块上的压电Pb(Mb Nb)O -28%PbTiO单晶。通过对压电材料的厚度和传感区域以及地震质量进行几何优化,可以提高接收电压灵敏度(RVS)。优化矢量传感器的估计最大RVS为-212 dB。 FEA仿真和实际测量用于验证矢量传感器设计的方向性,该矢量传感器表现出偶极子模式。使用偶极子光束图样,通过模拟和测量结果进行比较来获得心形图样。结果清楚地表明了将所提出的压电单晶加速度计用于压缩型矢量传感器的可行性。

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