DocumentCode :
1313165
Title :
Signal Conditioning System With a 4–20 mA Output for a Resonant Magnetic Field Sensor Based on MEMS Technology
Author :
Domínguez-Nicolás, Saùl M. ; Juárez-Aguirre, Raùl ; García-Ramírez, Pedro J. ; Herrera-May, Agustin L.
Author_Institution :
Centro de Investig. en Micro y Nanotecnologia, Univ. Veracruzana, Boca del Río, Mexico
Volume :
12
Issue :
5
fYear :
2012
fDate :
5/1/2012 12:00:00 AM
Firstpage :
935
Lastpage :
942
Abstract :
Several resonant magnetic field sensors based on microelectromechanical systems (MEMS) technology use piezoresistive detection techniques to convert the magnetic field signal into an electrical signal. We present a signal conditioning system implemented in a printed circuit board (PCB) for a resonant magnetic field sensor based on MEMS technology. This sensor is formed by a resonant structure of thin silicon beams (5 μm thick), an aluminum loop (1 μm thick), and a Wheatstone bridge with four p-type piezoresistors. The Wheatstone bridge is biased with an alternating voltage of 2 Vpp at 1 kHz and the aluminum loop is supplied using an alternating current with a root-mean-square (RMS) value of 20 mA. This current is applied to the resonant frequency of the sensor (14.38 kHz) through an oscillator that has a frequency stability of ± 100 ppm at atmospheric temperature and a resolution of 1 Hz. The proposed system obtains the sensor´s electrical response in voltage or current mode, which presents an approximately linear behavior for a range of magnetic field density from -150 to +150 μT. This system minimizes the offset of the sensor´s electrical response and allows the detection of the polarity and magnitude of the magnetic field density. A virtual instrument is designed using Lab VIEW software to visualize the 4-20 mA output of the sensor. The designed system can help the development of portable measurement equipment to detect (at pressure atmospheric) low magnetic field densities with a sensitivity and resolution of 4 V · T-1 and 1 μT, respectively.
Keywords :
magnetic sensors; microsensors; oscillators; printed circuits; signal conditioning circuits; virtual instrumentation; LabVIEW software; MEMS technology; PCB; Wheatstone bridge; aluminum loop; atmospheric temperature; current 4 mA to 20 mA; current mode; electrical signal; frequency 1 kHz; frequency stability; magnetic field density; microelectromechanical system technology; oscillator; piezoresistive detection techniques; printed circuit board; resonant magnetic field sensor; root-mean-square value; sensor electrical response; signal conditioning system; size 1 mum; size 5 mum; thin silicon beams; virtual instrument; voltage 2 V; voltage mode; Aluminum; Bridge circuits; Magnetic field measurement; Magnetic fields; Micromechanical devices; Oscillators; Resonant frequency; MEMS; Wheatstone bridge; resonant magnetic field sensor; signal conditioning system;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2011.2167012
Filename :
6008615
Link To Document :
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