论文标题

基于$δ$ e效应的悬臂型磁弹性传感器的相位灵敏度和相位噪声

Phase Sensitivity and Phase Noise of Cantilever-Type Magnetoelastic Sensors Based on the $Δ$E Effect

论文作者

Durdaut, Phillip, Rubiola, Enrico, Friedt, Jean-Michel, Müller, Cai, Spetzler, Benjamin, Kirchhof, Christine, Meyners, Dirk, Quandt, Eckhard, Faupel, Franz, McCord, Jeffrey, Knöchel, Reinhard, Höft, Michael

论文摘要

自30多年以来,用于检测低频和低振幅磁场的磁弹性传感器是研究的重点。为了最大程度地减少此类传感器系统的检测极限(LOD),理解和能够量化相关的噪声源至关重要。在这一贡献中,全面研究和数学描述了悬臂型电力和磁弹性谐振器,不仅在它们的相灵敏度方面,而且在传感器 - 内膜相噪声方面尤其是在数学上进行了描述。测量和计算都表明,由于谐振器的热机械噪声,即通过热诱导的悬臂的随机振动以及压电材料的热电噪声,基本LOD受到添加期噪声的限制。但是,由于磁性材料的损失,参数闪烁相位噪声会限制整体性能。特别是表明,LOD实际上与磁灵敏度无关,但仅由磁损耗决定。代替敏感性,以材料有效的复合物渗透性为代表的磁损耗应被视为将来进一步改善此类传感器的最重要参数。这种含义不仅对磁弹性悬臂有效,而且适用于任何类型的磁弹性谐振器。

Magnetoelastic sensors for the detection of low-frequency and low-amplitude magnetic fields are in the focus of research since more than 30 years. In order to minimize the limit of detection (LOD) of such sensor systems, it is of high importance to understand and to be able to quantify the relevant noise sources. In this contribution, cantilever-type electromechanic and magnetoelastic resonators, respectively, are comprehensively investigated and mathematically described not only with regard to their phase sensitivity but especially to the extent of the sensor-intrinsic phase noise. Both measurements and calculations reveal that the fundamental LOD is limited by additive phase noise due to thermal-mechanical noise of the resonator, i.e. by thermally induced random vibrations of the cantilever, and by thermal-electrical noise of the piezoelectric material. However, due to losses in the magnetic material parametric flicker phase noise arises, limiting the overall performance. In particular it is shown that the LOD is virtually independent of the magnetic sensitivity but is solely determined by the magnetic losses. Instead of the sensitivity, the magnetic losses, represented by the material's effective complex permeability, should be considered as the most important parameter for the further improvement of such sensors in the future. This implication is not only valid for magnetoelastic cantilevers but also applies to any type of magnetoelastic resonator.

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