Špikić Dorijan, Švraka Matija, Vasić Darko
Faculty of Electrical Engineering and Computing, University of Zagreb, 10000 Zagreb, Croatia.
Sensors (Basel). 2022 Apr 14;22(8):3000. doi: 10.3390/s22083000.
High-frequency electromagnetic induction (HFEMI) sensors, operating in the frequency range from 300 kHz to 30 MHz, have been proposed for the measurement of soil electrical conductivity and dielectric permittivity that are related to the physical and chemical properties of soil. Because of the high-frequency operation, the capacitive coupling between the sensor transmitter and receiver coils is comparable to inductive coupling, creating the need for electrostatic shielding. The remnant capacitive coupling after the implementation of shielding can lead to significant difficulties in the sensor signal interpretation, because both coupling mechanisms are highly dependent on the geometry of the HFEMI sensor and applied shield. In this paper, we introduce the discussion on the relationship between the sensor geometry, shielding and the coupling mechanisms for HFEMI soil sensing. We theoretically and experimentally evaluate a typical HFEMI sensor and its shielding in the frequency range of up to 20 MHz and propose a method for evaluating the effectiveness of a shield configuration. In the case study, we experimentally analyze the HFEMI sensor above a saline solution for two shield configurations. The results agree well with the results of a finite element method analysis.
已有人提出使用工作频率范围为300千赫至30兆赫的高频电磁感应(HFEMI)传感器来测量与土壤物理和化学性质相关的土壤电导率和介电常数。由于工作频率较高,传感器发射线圈和接收线圈之间的电容耦合与电感耦合相当,因此需要进行静电屏蔽。实施屏蔽后残留的电容耦合会给传感器信号解读带来重大困难,因为这两种耦合机制都高度依赖于HFEMI传感器的几何形状和所应用的屏蔽。在本文中,我们引入了关于HFEMI土壤传感中传感器几何形状、屏蔽与耦合机制之间关系的讨论。我们在高达20兆赫的频率范围内对典型的HFEMI传感器及其屏蔽进行了理论和实验评估,并提出了一种评估屏蔽配置有效性的方法。在案例研究中,我们对两种屏蔽配置下盐溶液上方的HFEMI传感器进行了实验分析。结果与有限元方法分析的结果吻合良好。