Magnet Location Estimation Technology in 3D Using MI Sensors

Ju-Hyeok Jo
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Abstract

This paper presents a system for estimating the position of a magnet using a magnetic sensor. An algorithm is presented to analyze the waveform and output voltage values of the magnetic field generated at each position when the magnet moves and to estimate the position of the magnet based on the analyzed data. Here, the magnet is sufficiently small to be inserted into a blood vessel and has a micro-magnetic field of hundreds of nanoteslas owing to the small size and shape of the guide wire. In this study, a highly sensitive magneto-impedance (MI) sensor was used to detect these micro-magnetic fields. Nine MI sensors were arranged in a 3×3 configuration to detect a magnetic field that changes according to the position of the magnet through the MI sensor, and the voltage value output was polynomially regressed to specify a position value for each voltage value. The accuracy was confirmed by comparing the actual position value with the estimated position value by expanding it from a 1D straight line to a 3D space. Additionally, we could estimate the position of the magnet within a 3% error
基于MI传感器的三维磁体定位估计技术
本文提出了一种利用磁传感器估计磁体位置的系统。提出了一种分析磁体运动时在各个位置产生的磁场波形和输出电压值的算法,并根据分析的数据估计磁体的位置。在这里,磁铁足够小,可以插入血管,并且由于导丝的尺寸和形状小,具有数百纳特斯拉的微磁场。本研究采用高灵敏度磁阻抗(MI)传感器来检测这些微磁场。将9个MI传感器排成3×3的构型,通过MI传感器检测随磁体位置变化的磁场,并对输出的电压值进行多项式回归,为每个电压值指定一个位置值。通过将实际位置值与估计位置值进行比较,将其从一维直线扩展到三维空间,验证了精度。此外,我们可以在3%的误差范围内估计磁铁的位置
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CiteScore
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