Xin Boyu, Zhang Qianshi, Hu Lizhi, Gao Anran, Duan Chungang, Gong Zhanjiang, Song Erdong, Sun Likai, Jiao Jie
Key Laboratory of Polar Materials and Devices (MOE), Shanghai Center of Brain-Inspired Intelligent Materials and Devices, Department of Electronics, East China Normal University, Shanghai 200241, China.
School of Materials Science and Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
Sensors (Basel). 2025 Jan 30;25(3):829. doi: 10.3390/s25030829.
In this work, a tachometer based on a Metglas/PZT/Metglas magnetoelectric (ME) composite was developed to achieve high-precision rotational speed measurement over a wide temperature range (-70 °C to 160 °C). The tachometer converts external magnetic signals into electrical signals through the ME effect and operates stably in extreme temperature environments. COMSOL Multiphysics software was used for simulation analysis to investigate the ME response characteristics of the composite in such environments. To evaluate the properties of the ME composite under different conditions, its response characteristics at various frequencies, DC bias, and temperatures were systematically investigated. A permanent magnet and a DC motor were used to simulate gear rotation, and the voltage output was analyzed by adjusting the position between the sensor and the DC motor. The results show that the measured values of the ME tachometer closely match the set values, and the tachometer demonstrates high measurement accuracy within the range of 480 to 1260 revolutions per minute (rpm). Additionally, the properties of the ME composite at different temperatures were examined. In the temperature range from -70 °C to 160 °C, the ME coefficients exhibit good regularity and stability, with the measured trend closely matching the simulation results, ensuring the reliability and accuracy of the ME tachometer. To verify its practicality, the measurement capability of the ME tachometer was comprehensively tested under extreme temperature conditions. The results show that in high-temperature environments, the tachometer can accurately measure speed while maintaining a high signal-to-noise ratio (SNR), demonstrating excellent anti-interference ability. The proposed ME tachometer shows promising application potential in extreme temperature conditions, particularly in complex industrial environments that require high reliability and precision.
在这项工作中,开发了一种基于Metglas/PZT/Metglas磁电(ME)复合材料的转速计,以在较宽的温度范围(-70°C至160°C)内实现高精度转速测量。该转速计通过磁电效应将外部磁信号转换为电信号,并在极端温度环境下稳定运行。使用COMSOL Multiphysics软件进行模拟分析,以研究该复合材料在这种环境下的磁电响应特性。为了评估磁电复合材料在不同条件下的性能,系统地研究了其在各种频率、直流偏置和温度下的响应特性。使用永磁体和直流电动机模拟齿轮旋转,并通过调整传感器与直流电动机之间的位置来分析电压输出。结果表明,磁电转速计的测量值与设定值紧密匹配,并且该转速计在每分钟480至1260转(rpm)的范围内显示出高测量精度。此外,还研究了磁电复合材料在不同温度下的性能。在-70°C至160°C的温度范围内,磁电系数表现出良好的规律性和稳定性,测量趋势与模拟结果紧密匹配,确保了磁电转速计的可靠性和准确性。为了验证其实用性,在极端温度条件下对磁电转速计的测量能力进行了全面测试。结果表明,在高温环境中,该转速计能够在保持高信噪比(SNR)的同时准确测量转速,展现出优异的抗干扰能力。所提出的磁电转速计在极端温度条件下显示出有前景的应用潜力,特别是在需要高可靠性和精度的复杂工业环境中。