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Twisting measurement and compensation of optical shape sensor based on spun multicore fiber

机译:基于纺制多芯光纤的光学形状传感器的扭曲测量与补偿

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摘要

This study presents a novel method for twisting compensation in optical shape sensing and first reports on twisting sensing by using Fiber Bragg Gratings (FBG) inscribed in a spun Multicore Fiber (MCF). A simple approach, based on Saint-Venant's Torsion Theory for homogeneous circular cylinders, was developed to calculate the fiber twisting from the longitudinal strain sensed in the cores and reconstruct three-dimensional shape taking into account and compensating the twisting, by enhancing the mathematical formulation of the previous approaches. Then, a 44 mm-long pre-twisted fiber optic shape sensor was produced in the Institute for Telecommunications and Multimedia Applications (iTEAM) of the UPV, by writing four FBGs in a spun multicore fiber (diameter of 125.1 u.m) with a pre-twisting of 64.9 rotation/meter. Finally, a series of experiments were performed to validate the method and evaluate the sensor performance. The outcomes of the experiments, perfectly in accordance with the theory, prove the elastic behavior of the sensor, even at high levels of deformation. Moreover, the proposed Spun-MCF-based Shape Sensor resulted able to measure twisting with a sensitivity of 0.23 pm/° and accuracy of 4.81° within a wide dynamic range of ±270° (±6136.4°/m). These new results can notably enhance the accuracy of fiber optic shape sensors and lead to the design of new fiber geometries and sensors.
机译:这项研究提出了一种在光学形状感测中进行扭曲补偿的新方法,并首次报道了通过使用旋涂在多芯光纤(MCF)中的光纤布拉格光栅(FBG)来进行扭曲感测的报道。开发了一种基于Saint-Venant扭转理论的均质圆柱体的简单方法,用于根据芯中检测到的纵向应变来计算纤维的扭曲,并通过增强数学公式来考虑并补偿扭曲,从而重建三维形状以前的方法。然后,在UPV的电信和多媒体应用研究所(iTEAM)中生产了一个44毫米长的预绞光纤形状传感器,方法是在一根带有预电缆的旋转多芯光纤(直径125.1 um)中写入四个FBG。扭曲为64.9转/米。最后,进行了一系列实验以验证该方法并评估传感器性能。完全符合理论的实验结果证明了传感器的弹性行为,即使在高变形水平下也是如此。此外,提出的基于Spun-MCF的形状传感器能够在±270°(±6136.4°/ m)的宽动态范围内以0.23 pm /°的灵敏度和4.81°的精度测量扭曲。这些新结果可以显着提高光纤形状传感器的精度,并导致设计新的光纤几何形状和传感器。

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