4.7 Article

Intensity-Modulated Fiber-Optic Strain Sensor Using Multimode Fiber and Microfiber Joint-Assisted Micro-Cavity Interferometer

Journal

IEEE SENSORS JOURNAL
Volume 21, Issue 20, Pages 22728-22734

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSEN.2021.3106944

Keywords

Strain sensing; micro-cavity; micro-fiber; multimode fiber assistance; intensity; crosstalk

Funding

  1. Natural Science Foundation of China [61675066]
  2. Project of the Central Government Supporting the Reform and Development of Local Colleges and Universities [2020YQ01]
  3. Graduate Innovation Research Project of Heilongjiang University [YJSCX2021-065HLJU]

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A novel micro-cavity based Mach-Zehnder interferometer is proposed in this paper, achieving high sensitivity and detection resolution for axial strain monitoring and temperature sensing.
In this paper, a novel micro-cavity based Mach-Zehnder interferometer is proposed by joint-assistance of microfiber and multimode fiber (MMF). The light field distribution is comprehensively investigated, and the quantitative beam expansion range and the length of MMF are obtained. Under the optimized fabrication parameters, a joint-assisted micro-cavity structure is experimentally completed and the axial strain tests are performed. The experimental results show that obvious intensity responses of fringes are exhibited in the range from 0 to 300 (mu epsilon), but with gradually reduced wavelength sensitivities. It is found that a near-zero wavelength drift exists in the fringe of 1589.83 nm with the intensity sensitivity of similar to 0.02 dB/(mu epsilon). Besides, the corresponding temperature response is -81 pm/degrees C with a slight fluctuation of similar to 0.003 dB/degrees C. Such high discrimination between axial strain and temperature brings similar to 0.5 (mu epsilon) detection resolution and ultra-low temperature crosstalk (similar to 0.15 (mu epsilon)/degrees C), simultaneously. With the merits of high sensitivity and practicality, our sensor is very promising and potential in high-precision axial-strain related engineering monitoring and sensing.

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