论文标题

光纤多模具干扰感应:全面表征及其对应变不敏感的潜力

Fiber-optic multimode interference sensing: comprehensive characterization and its potential for strain-insensitive temperature sensing

论文作者

Wang, Kun, Mizuno, Yosuke, Dong, Xingchen, Kurz, Wolfgang, Fink, Maximilian, Lee, Heeyoung, Jakobi, Martin, Koch, Alexander W.

论文摘要

根据对MMFS特征的全面研究,提出了基于使用标准多模纤维(MMF)的多模干扰的不敏感温度传感器。在实验中研究了对核心直径,数值孔径(NA)的温度和应变依赖性,以及单模 - 模式 - 单个模式(SMS)纤维结构中的MMF截面的长度。结果表明,MMF的较大核心直径会导致较高的温度灵敏度,但应变灵敏度较低(绝对值);较高的NA不会影响温度敏感性,但会导致应变灵敏度的绝对值较高。较长的MMF部分带来了较低的温度灵敏度,但对应变灵敏度没有影响。这些发现也有助于对SMS纤维传感器中长度依赖性的理论分析。此外,表征研究的结果表明,应变敏感性相对较低,这带来了开发不敏感温度传感器的可能性。所提出的传感器用于温度传感,而应变从0到1100 $με$,步骤为100 $με$。测得的结果与综合研究一致。平均温度灵敏度为6.14 pm/$^{\ circ} $ C,标准偏差为0.39 pm/$^{\ Circ} $ C,这证明所提出的温度传感器表现出良好的稳定性,并且对应变不敏感。我们预计这些结果将为基于多模具干扰的光纤传感器提供深刻的指南。

A strain-insensitive temperature sensor based on multimode interference using standard multimode fibers (MMFs) is proposed according to the comprehensive study of the characteristics of the MMFs. The temperature and strain dependences on the core diameter, numerical aperture (NA), and the length of the MMF section in the single-mode--multimode--single-mode (SMS) fiber structure are investigated experimentally. The results indicate that the larger core diameter of the MMF leads to higher temperature sensitivity but lower strain sensitivity (absolute values); the higher NA does not influence the temperature sensitivity but results in higher absolute value of strain sensitivity; the longer MMF section brings lower temperature sensitivity but does not have an impact on strain sensitivity. These findings also contribute to the theoretical analysis of the length dependence in the SMS fiber sensors. Besides, the results of the characterization study show that the strain sensitivity is relatively low, which brings a possibility to develop a strain-insensitive temperature sensor. The proposed sensor is used for temperature sensing while the strain is constantly applied from 0 to 1100 $με$ with steps of 100 $με$. The measured results are consistent with the comprehensive study. The mean temperature sensitivity is 6.14 pm/$^{\circ}$C with a standard deviation of 0.39 pm/$^{\circ}$C, which proves that the proposed temperature sensor exhibits good stability and is insensitive to strain. We expect that these results will provide a profound guideline to fiber sensors based on multimode interference.

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