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Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates

机译:基于Metglas / PZT层压板的磁电涡流磁场传感器

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摘要

This paper describes the route, from simulations toward experiments, for optimizing the magnetoelectric (ME) geometries for vortex magnetic field sensors. The research is performed on the base of the Metglas/Piezoelectric (PZT) laminates in both open and closed magnetic circuit (OMC and CMC) geometries with different widths ( ), lengths ( ), and diameters ( ). Among these geometries, the CMC laminates demonstrate advantages not only in their magnetic flux distribution, but also in their sensitivity and in their independence of the position of the vortex center. In addition, the ME voltage signal is found to be enhanced by increasing the magnetostrictive volume fraction. Optimal issues are incorporated to realize a CMC-based ME double sandwich current sensor in the ring shape with × = 6 mm × 1.5 mm and four layers of Metglas. At the resonant frequency of 174.4 kHz, this sensor exhibits the record sensitivity of 5.426 V/A as compared to variety of devices such as the CMC ME sensor family, fluxgate, magnetoresistive, and Hall-effect-based devices. It opens a potential to commercialize a new generation of ME-based current and (or) vortex magnetic sensors.
机译:本文介绍了从模拟到实验的优化涡流磁场传感器磁电(ME)几何形状的途径。该研究是基于Metglas /压电(PZT)层压板进行的,该层压板具有不同的宽度(),长度()和直径()的开式和闭式磁路(OMC和CMC)几何形状。在这些几何形状中,CMC层压板不仅在磁通量分布方面,而且在灵敏度和涡旋中心位置的独立性方面均显示出优势。另外,发现ME电压信号通过增加磁致伸缩体积分数而增强。纳入了优化问题,以实现基于CMC的ME双夹心电流传感器,其环形形状为×= 6 mm×1.5 mm和四层Metglas。在174.4 kHz的谐振频率下,与各种设备(例如CMC ME传感器系列,磁通门,磁阻和基于霍尔效应的设备)相比,该传感器的记录灵敏度为5.426 V / A。它为将新一代基于ME的电流和(或)涡流磁传感器商业化提供了潜力。

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