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一种涂覆有静电纺丝聚乙烯醇纳米纤维的U形光纤温度传感器:模拟与实验

A U-Shaped Optical Fiber Temperature Sensor Coated with Electrospinning Polyvinyl Alcohol Nanofibers: Simulation and Experiment.

作者信息

Chou Yen-Lung, Wen Hsin-Yi, Weng Yu-Qiao, Liu Yi-Ching, Wu Chao-Wei, Hsu Hsiang-Cheng, Chiang Chia-Chin

机构信息

Department of Mechanical Engineering, National Kaohsiung University of Science and Technology, Kaohsiung 80778, Taiwan.

Department of Green Energy and Environmental Resources, Chang Jung Christian University, Tainan City 71101, Taiwan.

出版信息

Polymers (Basel). 2022 May 22;14(10):2110. doi: 10.3390/polym14102110.

Abstract

This study describes the fabrication of an electrospun, U-shaped optical fiber sensor for temperature measurements. The sensor is based on single mode fibers and was fabricated into a U-shaped optical fiber sensor through flame heating. This study applied electrospinning to coat PVA, a polymer, onto the sensor layer to reduce its sensitivity to humidity. The sensor is used to measure temperature variations ranging from 30 °C to 100 °C. The objectives of this study were to analyze the sensitivity variation of the sensor with different sensor layer thicknesses resulting from different electrospinning durations, as well as to simulate the wavelength signals generated at different electrospinning durations using COMSOL. The results revealed that the maximum wavelength sensitivity, transmission loss sensitivity, and linearity of the sensor were 25 dBm/°C, 70 pm/°C, and 0.956, respectively. Longer electrospinning durations resulted in thicker sensor layers and higher sensor sensitivity, that wavelength sensitivity of the sensor increased by 42%.

摘要

本研究描述了一种用于温度测量的电纺U形光纤传感器的制造方法。该传感器基于单模光纤,通过火焰加热制成U形光纤传感器。本研究采用静电纺丝技术将聚合物聚乙烯醇(PVA)涂覆在传感器层上,以降低其对湿度的敏感性。该传感器用于测量30℃至100℃范围内的温度变化。本研究的目的是分析不同静电纺丝持续时间导致的不同传感器层厚度下传感器的灵敏度变化,并使用COMSOL模拟不同静电纺丝持续时间下产生的波长信号。结果表明,该传感器的最大波长灵敏度、传输损耗灵敏度和线性度分别为25dBm/℃、70pm/℃和0.956。较长的静电纺丝持续时间导致传感器层更厚,传感器灵敏度更高,传感器的波长灵敏度提高了42%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6475/9145072/a7eb0f8fd7ff/polymers-14-02110-g001.jpg

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