High precision MI sensor with low energy consumption driven by low-frequency Wiegand pulse

Author:

Yao Ruixuan12ORCID,Takemura Yasushi2ORCID,Uchiyama Tsuyoshi1

Affiliation:

1. Graduate School of Engineering, Nagoya University 1 , Nagoya 464-8601, Japan

2. Division of Electrical and Computer Engineering, Yokohama National University 2 , Yokohama 240-8501, Japan

Abstract

This study introduces a new method to drive high-precision magneto-impedance (MI) sensors with low power consumption using a Wiegand sensor to replace the oscillator circuits of the MI sensor. We studied the characteristics of an MI sensor driven by low-frequency pulses and concluded that pulses with a fast rise time and small excitation current are necessary to induce a significant MI effect. The Wiegand sensor induced 10 Hz low-frequency pulse voltages of approximately 12 V and a constant width of 20 μs when an alternating magnetic field of 5 mT/μ0 alternating magnetic field was applied. A fast rise-time-shaping circuit was designed to shape the Wiegand pulses with a fixed amplitude and rise time of less than 100 ns. The MI sensor exhibited a good output linearity of 0.04 mV/μ0T for detecting magnetic field in the range of ±150 μT when Wiegand pulses of amplitude 1 V were supplied. The power consumption of the MI sensor was reduced from milliwatts (mW) to microwatts (μW) and its usage time was extended by 300% compared to that of the previous design. This newly designed MI sensor is suitable for use in bio-magnetic field measurements, constant vehicle detection devices, and other applications.

Funder

DII Collaborative Graduate Program for Accelerating Innovation in Future Electronics, Nagoya University

Nagoya University Interdisciplinary Frontier Fellowship, Nagoya University

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Reference23 articles.

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2. Ultra-low-power circuit techniques for mm-size wireless sensor nodes with energy harvesting;IEICE Electronics Express,2014

3. J. R. Wiegand and M. Velinsky, “Bistable magnetic device,” U.S. Patent 3820090 (1974).

4. Wiegand wire: New material for magnetic-based devices,1975

5. Development of pico tesla resolution amorphous wire magneto-impedance sensor for bio-magnetic field measurements;Journal of Magnetism and Magnetic Materials,2020

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