4.4 Article

Stress-Driven Magnetic Barkhausen Noise Generation in FeCo Magnetostrictive Alloy

期刊

IEEE TRANSACTIONS ON MAGNETICS
卷 58, 期 1, 页码 -

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TMAG.2021.3126898

关键词

Domain wall movement; dynamic force sensor; inverse magnetostrictive effect; magnetostrictive materials; stress-driven magnetic Barkhausen noise (MBN)

资金

  1. Japan Society for the Promotion of Science (JSPS) [17H03140, 19J02078, 20K14607]
  2. Grants-in-Aid for Scientific Research [17H03140, 20K14607, 19J02078] Funding Source: KAKEN

向作者/读者索取更多资源

This study provides an in-depth understanding of the responsiveness of stress-driven magnetic Barkhausen noise (MBN) to external stress. It demonstrates that ferromagnetic materials with a high magnetostriction constant can be used to develop a high-sensitivity force sensor. By changing the stress rate level, the relationship between the stress rate and the root-mean-square (rms) value of MBN output voltages is determined, showing high sensitivity and acceptable linearity. This research will aid in the development of novel applications for high-sensitivity force sensors.
Stress-driven magnetic Barkhausen noise (MBN) can be potentially used to develop a high-sensitivity dynamic force sensor. MBN is a compositional pulse due to the domain wall movement in ferromagnetic material induced by the external field. In this study, we provide an in-depth understanding of the responsiveness of MBN to external stress using ferromagnetic materials with a high magnetostriction constant (lambda). We demonstrate stress-driven MBN from strong textured Fe29Co71 alloy wires (lambda(s) = 117 ppm)/epoxy resin composite via uniaxial compression testing by changing the stress rate level from 0.55 to 28 GPa/s under a static bias magnetic field of 55 mT. The relationship between the stress rate of the external force and root-mean-square (rms) value of MBN output voltages showed high sensitivity, i.e., V-rms = 0.00441(d sigma/dt), and acceptable linearity that could be used to quantitatively evaluate the dynamic force. This stress-driven MBN generation mechanism could be based on the domain wall movement induced by the inverse magnetostrictive effect of FeCo alloys. We believe that this study will aid in the research focusing on the dynamic magnetostrictive mechanism and development of novel applications for high-sensitivity force sensors that have no batteries.

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