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Magnetic Properties of Ferromagnetic Particles under Alternating Magnetic Fields: Focus on Particle Detection Sensor Applications

机译:交变磁场下铁磁颗粒的磁性能:专注于颗粒检测传感器的应用

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摘要

The electromagnetic wear particles detection sensor has been widely studied due to its ability to monitor the wear status of equipment in real time. To precisely estimate the change of the magnetic energy of the sensor coil caused by the wear particles, the magnetic property models of wear particles under the alternating magnetic field was established. The models consider the hysteresis effect and the eddy current effect of the wear particles. The analysis and experimental results show that with the increase of the effective field frequency, the change of the magnetic energy caused by the wear particles gradually decrease, which makes the induced electromotive force output by the sensor reduce with the decrease of the particle speed, so a signal compensation method is presented to obtain a unified signal when the same wear particle passing through the sensor in different speeds. The magnetic coupling effect between the two adjacent wear particles is analyzed. The result illustrates that the change of the magnetic energy caused by the dual wear particles system is larger than the sum of the energy variation caused by two independent wear particles, and with the increase of the interparticle distance, the magnetic coupling effect gradually weakens and disappears.
机译:电磁磨损颗粒检测传感器具有实时监测设备磨损状态的能力,因此得到了广泛的研究。为了精确估计磨损颗粒引起的传感器线圈磁能的变化,建立了交变磁场下磨损颗粒的磁性能模型。这些模型考虑了磨损颗粒的磁滞效应和涡流效应。分析和实验结果表明,随着有效场频的增加,由磨损颗粒引起的磁能变化逐渐减小,使得传感器输出的感应电动势随着颗粒速度的减小而减小,因此提出了一种信号补偿方法,当相同的磨损颗粒以不同的速度通过传感器时,获得统一的信号。分析了两个相邻磨损颗粒之间的磁耦合效应。结果表明,双磨粒系统引起的磁能变化大于两个独立磨粒引起的能量变化之和,并且随着颗粒间距离的增加,磁耦合效应逐渐减弱并消失。 。

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