基于简单电容-相位转换器的新型电容式传感器接口

Frank J Van Kann, Alexey V Veryaskin
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引用次数: 0

摘要

我们提出并成功测试了一种新型室温电容式传感器接口电路,该电路采用改进的全通滤波器结构,结合具有适度 Q 因子的简单串联谐振槽电路。该电路由一个耗散小的分立电感器与一个接地电容器作为传感元件产生共振,从而在 10 - 30 pF 的电容范围内获得 ∆C ~ 2 zF 的分辨率。电路将电容的变化转换为载波信号相位的变化,载波信号的频率范围以水箱电路的谐振频率为中心,并被配置为理想全通滤波器的近似值。当载波信号未完全调谐到共振频率时,可消除振幅调制的影响。所提出的电容式传感器接口是专门为超精密机械位移测量系统开发的前端元件,如加速度计、地震仪、重力仪和重力梯度仪等,这些系统经常使用移动板接地气隙电容器。该电路还可应用于电场测量(传感电容器取决于外加电场)和具有成本效益的电容式气体传感器。此外,该电路还可以很容易地适用于非常小的电容值(1 - 2 pF),这在基于 MEMS 的传感器中非常典型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Capacitive Sensor Interface Based on a Simple Capacitance-to-Phase Converter
A novel room temperature capacitive sensor interface circuit is proposed and successfully tested, which uses a modified All-Pass filter architecture combined with a simple series resonant tank circuit with a moderate Q-factor. It is fashioned from a discrete inductor with small dissipation resonating with a grounded capacitor acting as the sensing element to obtain a resolution of ∆C ~ 2 zF in a capacitance range of 10 – 30 pF. The circuit converts the change in capacitance to the change in the phase of a carrier signal in a frequency range with a central frequency set up by the tank circuit’s resonant frequency and is configured to act as a close approximation of the ideal All-Pass filter. This cancels out the effects of amplitude modulation when the carrier signal is imperfectly tuned to the resonance. The proposed capacitive sensor interface has been specifically developed for use as a front-end constituent in ultra-precision mechanical displacement measurement systems, such as accelerometers, seismometers, gravimeters and gravity gradiometers, where moving plate grounded air gap capacitors are frequently used. Some other applications of the proposed circuit are possible including the measurement of the electric field, where the sensing capacitor depends on the applied electric field, and cost effective capacitive gas sensors. In addition, the circuit can be easily adapted to function with very small capacitance values (1 - 2 pF) as is typical in MEMS-based transducers.
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