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Quantitative amplitude-measuring Φ-OTDR with pε/√Hz sensitivity using a multi-frequency pulse train
Optics Letters
|September 15, 2020
Summary
This study introduces a new fiber optic sensor for precise strain measurement. It uses frequency-shifted pulses to achieve higher sensitivity and accuracy in distributed strain sensing.
Area of Science:
- Optical Engineering
- Sensing Technology
- Materials Science
Background:
- Distributed strain sensing is crucial for structural health monitoring.
- Existing phase-sensitive optical time domain reflectometry (PhOTDR) systems have limitations in sensitivity and power.
Purpose of the Study:
- To develop a novel amplitude-measuring Rayleigh-based sensor for quantitative distributed strain measurements.
- To improve sensor sensitivity and overcome limitations of standard PhOTDR systems.
Main Methods:
- Utilizing frequency multiplexing to inject 10 frequency-shifted pulses simultaneously into the fiber.
- Employing amplitude tracking of Rayleigh backscattered light from multiple pulses to recover strain.
- Implementing a sensor with 10 km fiber length, 12 m spatial resolution, and 5 kHz bandwidth.
Main Results:
- Achieved a noise floor of 1.5 pε/√Hz, demonstrating high sensitivity.
- The sensor operates with a dynamic range of 80 dB at 1 kHz.
- Demonstrated high linearity and immunity to interference fading.
Conclusions:
- The developed sensor offers enhanced sensitivity and quantitative distributed strain measurement capabilities.
- The frequency-multiplexing approach enables higher average input power, improving performance.
- This technology presents a robust solution for accurate strain monitoring in various applications.
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