Ahmadi Mahdi, Rajamani Rajesh, Sezen Serdar
Department of Mechanical Engineering, University of Minnesota at Twin Cities, Minneapolis, Minnesota, 55455, USA.
St. Cloud State University, St. Cloud, MN 56301, USA.
IEEE Sens Lett. 2017 Oct;1(5). doi: 10.1109/LSENS.2017.2737956. Epub 2017 Aug 15.
Capacitive micro-sensors such as accelerometers, gyroscopes and pressure sensors are increasingly used in the modern electronic world. However, the in vivo use of capacitive sensing for measurement of pressure or other variables inside a human body suffers from significant errors due to stray capacitance. This paper proposes a solution consisting of a transparent thin flexible Faraday cage that surrounds the sensor. By supplying the active sensing voltage simultaneously to the deformable electrode of the capacitive sensor and to the Faraday cage, the stray capacitance during in vivo measurements can be largely eliminated. Due to the transparency of the Faraday cage, the top and bottom portions of a capacitive sensor can be accurately aligned and assembled together. Experimental results presented in the paper show that stray capacitance is reduced by a factor of 10 by the Faraday cage, when the sensor is subjected to a full immersion in water.
诸如加速度计、陀螺仪和压力传感器等电容式微传感器在现代电子领域的应用越来越广泛。然而,由于存在杂散电容,电容式传感在人体内部用于测量压力或其他变量时会产生重大误差。本文提出了一种解决方案,即在传感器周围设置一个透明的薄柔性法拉第笼。通过同时向电容式传感器的可变形电极和法拉第笼提供有源传感电压,可以在很大程度上消除体内测量过程中的杂散电容。由于法拉第笼具有透明性,电容式传感器的顶部和底部可以精确对齐并组装在一起。本文给出的实验结果表明,当传感器完全浸入水中时,法拉第笼可将杂散电容降低10倍。