磁致伸缩
梅格拉斯
材料科学
光纤布拉格光栅
丝带
磁场
灵敏度(控制系统)
声学
光纤传感器
联轴节(管道)
光纤
纤维
光电子学
电子工程
复合材料
光学
工程类
物理
量子力学
波长
作者
Zach Dejneka,Daniel Homa,Logan Theis,Anbo Wang,Gary Pickrell
出处
期刊:Sensors
[Multidisciplinary Digital Publishing Institute]
日期:2025-01-30
卷期号:25 (3): 841-841
摘要
Fiber-optic sensing has shown promising development for use in detecting magnetic fields for downhole and biomedical applications. Coupling existing fiber-based strain sensors with highly magnetostrictive materials allows for a new method of magnetic characterization capable of distributed and high-sensitivity field measurements. This study investigates the strain response of the highly magnetostrictive alloys Metglas® 2605SC and Vitrovac® 7600 T70 using Fiber Bragg Grating (FBG) acoustic sensors and an applied AC magnetic field. Sentek Instrument’s picoDAS interrogated the distributed FBG sensors set atop a ribbon of magnetostrictive material, and the corresponding strain response transferred to the fiber was analyzed. Using the Vitrovac® ribbon, a minimal detectable field amplitude of 60 nT was achieved. Using Metglas®, an even better sensitivity was demonstrated, where detected field amplitudes as low as 3 nT were measured via the strain response imparted to the FBG sensor. Distributed FBG sensors are readily available commercially, easily integrated into existing interrogation systems, and require no bonding to the magnetostrictive material for field detection. The simple sensor configuration with nanotesla-level sensitivity lends itself as a promising means of magnetic characterization and demonstrates the potential of fiber-optic acoustic sensors for distributed measurements.
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