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Dynamic fiber-optic shape sensing using fiber segment interferometry

机译:使用光纤分段干涉法的动态光纤形状感测

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摘要

Dynamic fiber-optic shape sensing, often also referred to as curvature or bend sensing, is demonstrated using fiber segment interferometry, where chains of fiber segments, separated by broadband Bragg grating reflectors, are interrogated using range-resolved interferometry. In this work, the theory of interferometric curvature sensing using fiber segments is developed in detail, including techniques to infer lateral displacements from the measured differential strain data and methods for directional calibration of the sensor. A proof-of-concept experiment is performed, where four fiber strings, each containing four fiber segments of gauge length 20 cm each, are attached to the opposing sides of a flexible support structure and the resulting differential strain measurements are used to determine the lateral displacements of a 0.8 m cantilever test object in two dimensions. Dynamic tip displacement measurements at 40nm . HZ-0.5 noise levels over a 21 kHz bandwidth demonstrate the suitability of this approach for highly sensitive and cost-effective fiber-optic lateral displacement or vibration measurements.
机译:动态光纤形状感测(通常也称为曲率或弯曲感测)是通过使用光纤段干涉测量法演示的,其中,使用距离分辨干涉法来查询由宽带布拉格光栅反射器隔开的光纤段链。在这项工作中,详细开发了使用光纤段的干涉曲率传感理论,包括从测得的差分应变数据推断出横向位移的技术以及传感器方向校准的方法。进行了概念验证实验,其中将四个光纤串(每个包含四个长度为20 cm的纤维段)连接到柔性支撑结构的相对侧,并使用由此产生的差分应变测量值确定横向0.8 m悬臂测试对象在二维上的位移。动态尖端位移测量在40nm。超过21 kHz带宽的HZ-0.5噪声水平证明了该方法适用于高度敏感且经济高效的光纤横向位移或振动测量。

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