Ultra-long-distance high-spatial-resolution Raman fiber dual-parameter sensing system and method
A high spatial resolution, Raman optical fiber technology, applied in the direction of measuring heat, measuring devices, thermometers with physical/chemical changes, etc., can solve the problem that the measurement accuracy is greatly affected, the spatial resolution is difficult to break through 1m, and the sensing distance is difficult Break through 100km and other problems to achieve the effect of improving the signal-to-noise ratio of the system
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Embodiment 1
[0039] Embodiment 1 of the present invention provides an ultra-long-distance high-spatial-resolution Raman fiber dual-parameter sensing system, which is based on the measurement principle of differential pulse laser combined with chaotic laser modulation, which can realize long sensing distance and high spatial resolution , Measurement results with high measurement accuracy.
[0040] Such as figure 1 As shown, an ultra-long-distance high-spatial resolution Raman fiber dual-parameter sensing system provided by Embodiment 1 of the present invention includes a pulsed laser source 1, a chaotic laser source 2, a first optical switch 3, an isolator 4, Semiconductor optical amplifier 5, pulse erbium-doped fiber amplifier 6, first coupler 7, second coupler 8, wavelength division multiplexer 9, second optical switch 10, first semiconductor laser 11, second semiconductor laser 12, the first Three optical fiber coupler 13, the fourth optical fiber coupler 14, sensing fiber 15, first pho...
Embodiment 2
[0084] Embodiment 2 of the present invention provides a sensing method for an ultra-long-distance high-spatial-resolution Raman optical fiber dual-parameter sensing system described in Embodiment 1.
[0085] Including the step of strain measurement and the step of temperature measurement, wherein, the step of temperature measurement is:
[0086] S101. Through the first optical switch 3, the pulsed laser light output by the pulsed laser source with a pulse width of M is controlled to enter the second coupler 8, and then enter the sensing fiber through the wavelength division multiplexer 9 in sequence, and use the first photoelectric The detector 16 receives the anti-Stokes light output from the sensing fiber; then, the second optical switch 10 is changed so that the next pulse is injected from the other end of the sensing fiber, and the first photodetector 16 is used to receive the light again. Anti-Stokes light output from the sensing fiber;
[0087] S102. Change the pulse wi...
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