Title :
Design of a Low-Power Micromachined Fluxgate Sensor Using Localized Core Saturation Method
Author :
Wu, Pei-Ming ; Ahn, Chong H.
Author_Institution :
Univ. of Cincinnati, Cincinnati
fDate :
3/1/2008 12:00:00 AM
Abstract :
Design of a low-power micromachined ring-type flux- gate sensor with localized saturation cores has been made and optimized in this work. The design is accomplished by using the electromagnetic simulation software, MagnetTM, which is capable of establishing a quantitative connection between the sensor parameters and the geometrical parameters of the model. Using recently developed data extraction techniques, the design with low power (19 mW) and high sensitivity (590 V/T at 60 muT) can be achieved after a series of simulations. For comparison, an actual device has been fabricated with sensitivity of 650 V/T at 60 muT, power consumption of 14 mW. The good agreement between the simulation and the experimental results validate our new approach for the design of low-power fluxgate. In addition, measurements using a second-harmonics-based detection circuit have been performed so that the noise, stability, and perming effect of the fabricated device are explored.
Keywords :
low-power electronics; micromachining; microsensors; data extraction technique; electromagnetic simulation software; localized core saturation method; low-power micromachined fluxgate sensor; second-harmonics-based detection circuit; Circuit simulation; Data mining; Design methodology; Design optimization; Electromagnetic modeling; Energy consumption; Magnetic cores; Magnetic sensors; Saturation magnetization; Solid modeling; Fluxgate sensor; low-power consumption; microelectromechanical systems (MEMS); ring-type fluxgate;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2008.917490