Hernandez Arroyo Alexis, Overton George, Mulholland Anthony J, Hughes Robert R
School of Electronic, Electrical and Mechanical Engineering, Faculty of Engineering, University of Bristol, Bristol BS8 1TR, UK.
School of Engineering Mathematics and Technology, Faculty of Engineering, University of Bristol, Bristol BS8 1TR, UK.
Sensors (Basel). 2025 Mar 14;25(6):1822. doi: 10.3390/s25061822.
This paper presents the theory and key experimental findings for investigating the generation of bimodal resonance (frequency-splitting) phenomena in mutually over-coupled inductive sensors and its exploitation to evaluate relative separation and angular displacement between coils. This innovative measurement technique explores the bimodal resonant phenomena observed between two coil designs-solenoid and planar coil geometries. The proposed sensors are evaluated against first-order analytical functions and finite element models, before experimentally validating the predicted phenomenon for the different sensor configurations. The simulated and experimental results show excellent agreement, and first-order best-fit functions are employed to predict displacement variables experimentally. Co-planar separation and angular displacement are shown to be experimentally predictable to within ±1 mm and ±1° using this approach. This study validates the first-order physics-based models employed and demonstrates the first proof of principle for using resonant phenomena in inductive array sensors for evaluating relative displacement between array elements.
本文介绍了研究相互过耦合电感式传感器中双峰共振(频率分裂)现象的产生及其用于评估线圈之间相对间距和角位移的理论和关键实验结果。这种创新的测量技术探索了在两种线圈设计——螺线管和平板线圈几何形状之间观察到的双峰共振现象。在对不同传感器配置的预测现象进行实验验证之前,将所提出的传感器与一阶解析函数和有限元模型进行了评估。模拟和实验结果显示出极好的一致性,并采用一阶最佳拟合函数对位移变量进行实验预测。使用这种方法,共面间距和角位移在实验中可预测到±1毫米和±1°以内。本研究验证了所采用的基于一阶物理的模型,并证明了在电感阵列传感器中利用共振现象评估阵列元件之间相对位移的首个原理证明。