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首页> 外文期刊>Journal of Lightwave Technology >High-responsivity fiber-optic flexural disk accelerometers
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High-responsivity fiber-optic flexural disk accelerometers

机译:高响应性光纤挠性盘加速度计

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摘要

This paper presents performance measurements of fiber-optic flexural disk accelerometers. The flexural disk acts as a mass-spring element to which the fiber is bonded, such that an acceleration causes a strain to be imposed on the fiber which is measured interferometrically. Simple analytical models have been written to calculate the responsivity and resonant frequency of disks under various boundary conditions and the results of the models have been shown to be in good agreement with the measured responsivity for the case of moderately thick disks. Six optical fiber accelerometers based on flexural disks of different thickness and supports have been demonstrated to exhibit a responsivity in the range from 28 to 39 dB re 1 rad/g with a resonant frequency between 2.4 kHz to greater than 5 kHz, respectively. Of the designs considered, the centrally supported disk is shown to give the highest combination of responsivity and bandwidth. A centrally supported disk has been demonstrated to exhibit a flat response up to 2 kHz and a responsivity of 37 dB re 1 rad/g which when combined with an interferometric phase resolution of 6 /spl mu/rad//spl radic/Hz, would give a minimum detectable acceleration of 84 ng//spl radic/Hz. We have attempted to cover all aspects of the sensor design including responsivity, bandwidth, cross-responsivity, phase response and size and find that a complicated compromise between all of these design parameters is required to achieve the optimum performance.
机译:本文介绍了光纤挠曲盘加速度计的性能测量。挠性盘用作纤维结合到其上的质量弹簧元件,使得加速度引起应变施加到纤维上,该应变是通过干涉测量的。已经编写了简单的分析模型来计算在各种边界条件下磁盘的响应度和共振频率,并且对于中厚磁盘,该模型的结果与测得的响应度非常吻合。已经证明了六个基于不同厚度和支撑的挠性盘的光纤加速度计,它们的响应度分别在28至39 dB re 1 rad / g之间,谐振频率在2.4 kHz至大于5 kHz之间。在所考虑的设计中,显示了集中支持的磁盘可提供最高的响应速度和带宽组合。中心支撑的磁盘已被证明具有高达2 kHz的平坦响应和37 dB re 1 rad / g的响应度,当与6 / spl mu / rad // spl radic / Hz的干涉相位分辨率结合使用时,将具有给出的最小可检测加速度为84 ng // spl radic / Hz。我们试图涵盖传感器设计的所有方面,包括响应度,带宽,交叉响应度,相位响应和尺寸,并发现要获得最佳性能,所有这些设计参数之间都必须做出复杂的折衷。

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