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    郭嘉豪, 武明明, 叶安, 李晓林, 钮月萍, 龚尚庆. 拉锥光纤在传感中的弯曲损耗[J]. 华东理工大学学报(自然科学版). DOI: 10.14135/j.cnki.1006-3080.20230611001
    引用本文: 郭嘉豪, 武明明, 叶安, 李晓林, 钮月萍, 龚尚庆. 拉锥光纤在传感中的弯曲损耗[J]. 华东理工大学学报(自然科学版). DOI: 10.14135/j.cnki.1006-3080.20230611001
    GUO Jiahao, WU Mingming, YE An, LI Xiaolin, NIU Yueping, GONG Shangqing. Research on bending loss of tapered optical fiber in sensing[J]. Journal of East China University of Science and Technology. DOI: 10.14135/j.cnki.1006-3080.20230611001
    Citation: GUO Jiahao, WU Mingming, YE An, LI Xiaolin, NIU Yueping, GONG Shangqing. Research on bending loss of tapered optical fiber in sensing[J]. Journal of East China University of Science and Technology. DOI: 10.14135/j.cnki.1006-3080.20230611001

    拉锥光纤在传感中的弯曲损耗

    Research on bending loss of tapered optical fiber in sensing

    • 摘要: 拉锥光纤在光学传感,尤其是压力传感器方面应用广泛,这是利用了光纤受到外力弯曲后的功率损失。本论文使用有限元方法模拟了绝热直线型拉锥光纤各个位置,特别是锥形过渡区域的弯曲损耗。数值模拟结果表明,相较于其他区域,光纤的芯模截止区弯曲损耗更大,压力灵敏度更高,这是因为该位置的临界锥角取值小,绝热条件在弯曲下更容易被破坏。该结果将为拉锥光纤传感器设计中传感点的选取提供新思路。

       

      Abstract: Tapered optical fiber is widely used in optical sensors, especially pressure sensors, which take advantage of the power loss of the fiber after being bent by external force. The bending loss of the adiabatic linearly tapered optical fiber at various positions, especially in the transition region, are simulated by finite element method in this paper. The beam envelope method of the wave optics module of the simulation software is used to study the bending loss, which ensures the accuracy of the calculation and reduces the calculation amount greatly. It shows that the core mode cutoff region of the fiber is particularly sensitive to bending and the bending loss is very large. The sensitivity under stress in this region is greater than other regions. This is because that there is mode evolution process in this region, the critical angle takes the smallest value and the adiabatic condition is most easily broken. Therefore, the pressure sensor can select this specific region as the sensing location to achieve higher sensitivity. In addition, the diameter of the fiber in the core mode cutoff region is tens of microns, which can provide better mechanical structure strength compared with the waist region, so as to achieve higher mechanical stability. Moreover, the fiber with higher bending sensitivity can be found by changing the profile of the transition region of the tapered optical fiber, that is, the size of the local tapered angle, for the experimental fabrication of the sensor. These preliminary theoretical simulation results can provide valuable reference for the design and application of tapered optical fiber sensors.

       

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