用于环境监测的磁弹性微传感器

C. Grimes, M. Jain, R.S. Singh, Q. Cai, A. Mason, K. Takahata, Y. Gianchandani
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引用次数: 29

摘要

本文报道了一种基于磁弹性材料的新型无源无线微传感器平台的工作特性及其应用。利用微电火花加工技术制备了磁弹性微传感器阵列。在时变磁场作用下,非晶铁磁磁弹性薄膜有效地将磁能转化为弹性能。弹性波使传感器发生机械变形,对于带状元件,传感器的机械共振频率是其长度、弹性和材料密度的函数。由于磁弹性材料也是磁致伸缩的,当传感器机械变形时,它产生的磁通量可以延伸到设备周围,这可以通过拾取线圈检测到。这种传感器技术的远程查询能力使许多新的监测应用成为可能,包括原位和体内实验。裸传感器能够测量环境温度和压力、液体密度、液体粘度和流体流速。该传感器平台与变质量化学响应层结合使用,可用于化学传感。使用一组磁弹性传感器可以同时确定多种环境条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetoelastic microsensors for environmental monitoring
This paper reports on the operational characteristics, and application, of a new passive wireless micro-sensor platform based on magnetoelastic materials. We have used micro-electro-discharge machining (micro-EDM) to fabricate magnetoelastic micro-sensor arrays. In response to a time varying magnetic field, amorphous ferromagnetic magnetoelastic thin films efficiently convert magnetic energy into elastic energy. The elastic waves mechanically deform the sensor which, for ribbon shaped elements, has a characteristic mechanical resonant frequency that is a function of its length, elasticity, and material density. Since the magnetoelastic material is also magnetostrictive, as the sensor mechanically deforms it generates magnetic flux that extends remotely about the device, which can be detected by a pickup coil. The remote query capability of this sensor technology enables a host of new monitoring applications including in-situ and in-vivo experiments. The bare sensor is capable of measuring ambient temperature and pressure, liquid density, liquid viscosity, and fluid flow velocity. The sensor platform can be used for chemical sensing when used in combination with mass-changing chemically responsive layers. Using an array of the magnetoelastic sensors one can determine multiple environmental conditions simultaneously.
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