Vasić Darko, Rep Ivan, Špikić Dorijan, Kekelj Matija
Faculty of Electrical Engineering and Computing, University of Zagreb, 10000 Zagreb, Croatia.
INETEC Institute for Nuclear Technology, 10250 Zagreb, Croatia.
Sensors (Basel). 2022 Jan 2;22(1):326. doi: 10.3390/s22010326.
Computationally fast electromagnetic models of eddy current sensors are required in model-based measurements, machine interpretation approaches or in the sensor design phase. If a sensor geometry allows it, the analytical approach to the modeling has significant advantages in comparison to numerical methods, most notably less demanding implementation and faster computation. In this paper, we studied an eddy current sensor consisting of a transmitter coil with a finitely long I ferrite core, which was screened with a finitely thick magnetic shield. The sensor was placed above a conductive and magnetic half-layer. We used vector magnetic potential formulation of the problem with a truncated region eigenfunction expansion, and obtained expressions for the transmitter coil impedance and magnetic potential in all subdomains. The modeling results are in excellent agreement with the results using the finite element method. The model was also compared with the impedance measurement in the frequency range from 5 kHz to 100 kHz and the agreement is within 3% for the resistance change due to the presence of the half-layer and 1% for the inductance change. The presented model can be used for measurement of properties of metallic objects, sensor lift-off or nonconductive coating thickness.
在基于模型的测量、机器解释方法或传感器设计阶段,需要计算速度快的涡流传感器电磁模型。如果传感器几何形状允许,与数值方法相比,建模的解析方法具有显著优势,最明显的是实现要求较低且计算速度更快。在本文中,我们研究了一种涡流传感器,它由一个带有有限长I型铁氧体磁芯的发射线圈组成,该磁芯用有限厚度的磁屏蔽进行屏蔽。传感器放置在导电和磁性半层上方。我们使用截断区域本征函数展开的矢量磁位公式,得到了所有子域中发射线圈阻抗和磁位的表达式。建模结果与使用有限元方法的结果非常吻合。该模型还与5 kHz至100 kHz频率范围内的阻抗测量进行了比较,由于半层的存在,电阻变化的一致性在3%以内,电感变化的一致性在1%以内。所提出的模型可用于测量金属物体的特性、传感器提离或非导电涂层厚度。