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利用铁磁流体和光纤连接器进行磁传感。

Magnetic sensing with ferrofluid and fiber optic connectors.

作者信息

Homa Daniel, Pickrell Gary

机构信息

Department of Materials Science and Engineering, Virginia Tech, Blacksburg, VA 24061, USA.

出版信息

Sensors (Basel). 2014 Feb 25;14(3):3891-6. doi: 10.3390/s140303891.

Abstract

A simple, cost effective and sensitive fiber optic magnetic sensor fabricated with ferrofluid and commercially available fiber optic components is described in this paper. The system uses a ferrofluid infiltrated extrinsic Fabry-Perot interferometer (EFPI) interrogated with an infrared wavelength spectrometer to measure magnetic flux density. The entire sensing system was developed with commercially available components so it can be easily and economically reproduced in large quantities. The device was tested with two different ferrofluid types over a range of magnetic flux densities to verify performance. The sensors readily detected magnetic flux densities in the range of 0.5 mT to 12.0 mT with measurement sensitivities in the range of 0.3 to 2.3 nm/mT depending on ferrofluid type. Assuming a conservative wavelength resolution of 0.1 nm for state of the art EFPI detection abilities, the estimated achievable measurement resolution is on the order 0.04 mT. The inherent small size and basic structure complimented with the fabrication ease make it well-suited for a wide array of research, industrial, educational and military applications.

摘要

本文介绍了一种采用铁磁流体和市售光纤组件制造的简单、经济高效且灵敏的光纤磁传感器。该系统使用注入铁磁流体的非本征法布里-珀罗干涉仪(EFPI),并通过红外波长光谱仪进行检测,以测量磁通密度。整个传感系统采用市售组件开发,因此能够轻松且经济地大量复制。该装置在一系列磁通密度范围内,使用两种不同类型的铁磁流体进行了测试,以验证其性能。根据铁磁流体类型的不同,这些传感器能够轻松检测出0.5 mT至12.0 mT范围内的磁通密度,测量灵敏度在0.3至2.3 nm/mT之间。假设对于现有技术的EFPI检测能力,保守的波长分辨率为0.1 nm,则估计可实现的测量分辨率约为0.04 mT。其固有的小尺寸和基本结构,再加上易于制造的特点,使其非常适合广泛的研究、工业、教育和军事应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff13/4003921/d78f5d9b5fa5/sensors-14-03891f1.jpg

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