中文版 | English
Title

Fiber Ring Cavity Laser Based on Cascading two Peanut-Shape Structures for Liquid Level Measurement

Author
Corresponding AuthorShao, Liyang
DOI
Publication Years
2022
Conference Name
13th International Conference on Information Optics and Photonics, CIOP 2022
ISSN
0277-786X
EISSN
1996-756X
ISBN
9781510660632
Source Title
Volume
12478
Conference Date
August 7, 2022 - August 10, 2022
Conference Place
Xi'an, China
Publisher
Abstract
In this letter, a new method for liquid level measurement based on in-line Mach Zehnder interferometer (MZI) in fiber ring laser cavity is proposed and experimentally demonstrated. Two cascaded peanut-shaped fiber structures are designed to implement MZI with a length of 25 mm. At the beginning, the broadband light source was used to demonstrate the possibility of MZI as a liquid level sensor. The experimental results show that the liquid level sensitivity of -1.057 nm/cm can be achieved in the detection range of 0-20 mm. However, using broadband light sources to build a sensing system has a large 3-dB spectral bandwidth and low signal-to-noise ratio in the available wavelength range. Therefore, these sensing systems may have poor resolution, low accuracy monitoring and limited detection distance. Therefore, the experiment further uses the fiber ring laser (FRL) cavity to replace the broadband light source to realize the liquid level monitoring. Thanks to narrow laser linewidth and high signal-to-noise ratio, higher detection accuracy can be obtained. MZI acts as a filter and a sensor at the same time. When the liquid level changes, the interference peak shift plays the role of filtering and wavelength selection. The results showed that the detection sensitivity was as high as -1.348 nm/cm. Accompanied by a signal-to-noise ratio of up to 50 dB and a 3-dB linewidth of less than 0.2 nm. Besides, the fiber ring laser cavity can theoretically extend the length of single-mode fiber infinitely in the cavity. Hence, the sensor designed is exemplary and representative for liquid level monitoring in unconventional areas in the far field such as: extreme geological landforms, high temperature and high-pressure regions and anaerobic areas.
© 2022 SPIE.
SUSTech Authorship
First ; Corresponding
Language
English
Indexed By
EI Accession Number
20230413445448
EI Keywords
Fiber lasers ; Level measurement ; Numerical methods ; Ring lasers ; Signal to noise ratio
ESI Classification Code
Information Theory and Signal Processing:716.1 ; Fiber Optics:741.1.2 ; Lasers:744 ; Solid State Lasers:744.4 ; Numerical Methods:921.6 ; Mechanical Variables Measurements:943.2
Data Source
EV Compendex
Citation statistics
Cited Times [WOS]:0
Document TypeConference paper
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/519774
DepartmentDepartment of Electrical and Electronic Engineering
Affiliation
1.Department of Electrical and Electronic Engineering, Southern University of Science and Technology, Shenzhen; 518055, China
2.State Key Laboratory of Analog and Mixed-Signal VLSI, University of Macau, 999078, China
First Author AffilicationDepartment of Electrical and Electronic Engineering
Corresponding Author AffilicationDepartment of Electrical and Electronic Engineering
First Author's First AffilicationDepartment of Electrical and Electronic Engineering
Recommended Citation
GB/T 7714
Lin, Weihao,Sun, Siming,Zhao, Fang,et al. Fiber Ring Cavity Laser Based on Cascading two Peanut-Shape Structures for Liquid Level Measurement[C]:SPIE,2022.
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