Tian Zheng, Ren Dahai, You Zheng
Department of Precision Instruments, Tsinghua University, Beijing 100084, China.
Sensors (Basel). 2016 May 21;16(5):744. doi: 10.3390/s16050744.
This paper reports a drive and detection method for Micro-Electro-Mechanical System (MEMS)-based Lorentz-force resonance magnetometers. Based on the proposed MEMS magnetometer, a drive and detection method was developed by using self-oscillation to adjust the mismatch between the mechanical resonance frequency and the coil drive frequency as affected by temperature fluctuations and vibration amplitude changes. Not only was the signal-to-noise ratio enhanced by the proposed method compared to the traditional method, but the test system automatically reached resonance frequency very rapidly when powered on. Moreover, the linearity and the measurement range were improved by the magnetic feedback generated by the coil. Test results indicated that the sensitivity of the proposed magnetometer is 59.6 mV/μT and its noise level is 0.25 μT. When operating in ±65 μT, its nonlinearity is 2.5‰-only one-tenth of the former prototype. Its power consumption is only about 250 mW and its size is only 28 mm × 28 mm × 10 mm, or about one-eighth of the original sensor; further, unlike the former device, it can distinguish both positive and negative magnetic fields. The proposed method can also be applied in other MEMS sensors such as gyroscopes and micromirrors to enhance their frequency tracking ability.
本文报道了一种基于微机电系统(MEMS)的洛伦兹力共振磁力计的驱动与检测方法。基于所提出的MEMS磁力计,通过利用自振荡来调整受温度波动和振动幅度变化影响的机械共振频率与线圈驱动频率之间的失配,开发了一种驱动与检测方法。与传统方法相比,所提方法不仅提高了信噪比,而且测试系统在通电时能非常迅速地自动达到共振频率。此外,通过线圈产生的磁反馈提高了线性度和测量范围。测试结果表明,所提磁力计的灵敏度为59.6 mV/μT,噪声水平为0.25 μT。在±65 μT的磁场中工作时,其非线性为2.5‰,仅为前一代原型的十分之一。其功耗仅约250 mW,尺寸仅为28 mm×28 mm×10 mm,约为原传感器的八分之一;此外,与前一代设备不同的是,它能够区分正磁场和负磁场。所提方法还可应用于其他MEMS传感器,如陀螺仪和微镜,以提高其频率跟踪能力。