Jin Fang, Tu Xin, Wang JinChao, Yang Biao, Dong KaiFeng, Mo WenQin, Hui YaJuan, Peng JunWen, Jiang JieFeng, Xu Lei, Song JunLei
School of Automation, China University of Geosciences, Wuhan 430074, China.
Hubei key Laboratory of Advanced Control and Intelligent Automation for Complex Systems, Wuhan 430074, China.
Sensors (Basel). 2020 Feb 11;20(4):960. doi: 10.3390/s20040960.
The detection resolution of a giant magneto-impedance (GMI) sensor is mainly limited by its equivalent input magnetic noise. The noise characteristics of a GMI sensor are evaluated by noise modeling and simulation, which can further optimize the circuit design. This paper first analyzes the noise source of the GMI sensor. It discusses the noise model of the circuit, the output sensitivity model and the modeling process of equivalent input magnetic noise. The noise characteristics of three modules that have the greatest impact on the output noise are then simulated. Finally, the simulation results are verified by experiments. By comparing the simulated noise spectrum curve and the experimental noise spectrum curve, it is demonstrated that the preamplifier and the multiplier contribute the most to the output white noise, and the low-pass filter plays a major role in the output 1/f noise. These modules should be given priority in the optimization of the noise of the conditioning circuit. The above results provide technical support for the practical application of low-noise GMI magnetometers.
巨磁阻抗(GMI)传感器的检测分辨率主要受其等效输入磁噪声的限制。通过噪声建模与仿真对GMI传感器的噪声特性进行评估,可进一步优化电路设计。本文首先分析了GMI传感器的噪声源。讨论了电路的噪声模型、输出灵敏度模型以及等效输入磁噪声的建模过程。然后对三个对输出噪声影响最大的模块的噪声特性进行了仿真。最后通过实验对仿真结果进行验证。通过比较仿真噪声频谱曲线和实验噪声频谱曲线,结果表明前置放大器和乘法器对输出白噪声的贡献最大,低通滤波器在输出1/f噪声中起主要作用。在调理电路的噪声优化中应优先考虑这些模块。上述结果为低噪声GMI磁力计的实际应用提供了技术支持。