Optical fiber sensing system for temperature and salinity synchronous measurement
11965821 ยท 2024-04-23
Assignee
Inventors
- Xiaoguang MU (Zhanjiang, CN)
- Lin Sun (Zhanjiang, CN)
- Yuying Zhang (Zhanjiang, CN)
- Yuting Li (Zhanjiang, CN)
- Kun Song (Zhanjiang, CN)
- Jiale Gao (Zhanjiang, CN)
- Yuqiang Yang (Zhanjiang, CN)
Cpc classification
G01N2021/1734
PHYSICS
International classification
Abstract
An optical fiber sensing system for temperature and salinity synchronous measurement is provided, which includes a broad-spectrum light source, an optical fiber circulator, a coupler, a first interferometer, a second interferometer, a third interferometer and a spectrometer; the first interferometer is insensitive to temperature and salinity; the second interferometer is sensitive to both temperature and salinity, and the third interferometer is only sensitive to temperature; light emitted by the broad-spectrum light source passes through the optical fiber circulator and enters the first interferometer; reflected light of the first interferometer passes through the optical fiber circulator and the coupler sequentially, and then enters the second and the third interferometers respectively; the reflected light of the second and the third interferometers enters the spectrometer after passing through the coupler; the temperature and the salinity to be measured are simultaneously obtained by performing spectral analysis of the reflected light entering the spectrometer.
Claims
1. An optical fiber sensing system for temperature and salinity synchronous measurement, comprising a broad-spectrum light source, an optical fiber circulator, a coupler, a first interferometer, a second interferometer, a third interferometer and a spectrometer; wherein the first interferometer is connected in series with the optical fiber circulator and the coupler in sequence; the coupler is respectively connected with the second interferometer, the third interferometer and the spectrometer; the second interferometer is connected in parallel with the third interferometer; the first interferometer is insensitive to the temperature and the salinity; the second interferometer is sensitive to both the temperature and the salinity, and the third interferometer is only sensitive to the temperature; light emitted by the broad-spectrum light source passes through the optical fiber circulator and enters the first interferometer; reflected light of the first interferometer passes through the optical fiber circulator and the coupler in sequence, and then enters the second interferometer and the third interferometer respectively; reflected light of the second interferometer and the third interferometer enters the spectrometer after passing through the coupler; and the temperature to be measured and the salinity to be measured are simultaneously obtained by performing a spectral analysis of the reflected light entering the spectrometer; the spectral analysis of the reflected light entering the spectrometer comprises: respectively obtaining interference spectra of the first interferometer, the second interferometer and the third interferometer based on the reflected light entering the spectrometer; obtaining a first interference spectra envelope between the first interferometer and the second interferometer based on the interference spectrum of the first interferometer and the interference spectrum of the second interferometer; obtaining a second interference spectra envelope between the first interferometer and the third interferometer based on the interference spectrum of the first interferometer and the interference spectrum of the third interferometer; and obtaining the temperature to be measured and the salinity to be measured based on the first interference spectra envelope and the second interference spectra envelope; and obtaining the temperature and the salinity comprises: obtaining a first translation amount of the first interference spectra envelope and a second translation amount of the second interference spectra envelope when the temperature and the salinity change; and obtaining the temperature to be measured and the salinity to be measured based on the first translation amount and the second translation amount.
2. The optical fiber sensing system for temperature and salinity synchronous measurement according to claim 1, wherein the first interferometer comprises a single-mode optical fiber, a hollow optical fiber and a single-mode optical fiber concentrically welded in sequence.
3. The optical fiber sensing system for temperature and salinity synchronous measurement according to claim 1, wherein the second interferometer comprises three single-mode optical fibers welded in a staggered manner in sequence; and a single-mode optical fiber in the middle of the three single-mode optical fibers is welded with the other two single-mode optical fibers at both ends in the staggered manner.
4. The optical fiber sensing system for temperature and salinity synchronous measurement according to claim 1, wherein the third interferometer comprises a single-mode optical fiber and a hollow optical fiber concentrically welded; the hollow optical fiber comprises an air cavity formed after injecting polydimethylsiloxane; and an optical path of the air cavity I s a preset multiple of an optical path of the first interferometer, so a vernier effect between the first interferometer and the third interferometer is generated.
5. The optical fiber sensing system for temperature and salinity synchronous measurement according to claim 1, wherein the interference spectra of the first interferometer, the second interferometer and the third interferometer are as follows:
6. The optical fiber sensing system for temperature and salinity synchronous measurement according to claim 1, wherein the first interference spectra envelope is:
7. The optical fiber sensing system for temperature and salinity synchronous measurement according to claim 1, wherein the first translation amount and the second translation amount are respectively:
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The attached drawings, which constitute a part of the present application, are used to provide a further understanding of the present application. The illustrative embodiments of the present application and the descriptions are used to explain the present application, and do not constitute an improper limitation of the present application. In the drawings:
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(14) It should be noted that the embodiments in the present application and the features in the embodiments may be combined with each other without conflict. The present application will be described in detail with reference to the attached drawings and embodiments.
(15) It should be noted that the steps shown in the flowchart of the drawings may be executed in a computer system such as a set of computer-executable instructions, and although the logical order is shown in the flowchart, in some cases, the steps shown or described may be executed in an order different from here.
(16) The application provides an optical fiber sensing system for temperature and salinity synchronous measurement, including a broad-spectrum light source, an optical fiber circulator, a coupler, a first interferometer, a second interferometer, a third interferometer and a spectrometer.
(17) The first interferometer is connected in series with the optical fiber circulator and the coupler in sequence; the coupler is respectively connected with the second interferometer, the third interferometer and the spectrometer; the second interferometer is connected in parallel with the third interferometer.
(18) The first interferometer is insensitive to the temperature and the salinity; the second interferometer is sensitive to both the temperature and the salinity, and the third interferometer is only sensitive to the temperature.
(19) The light emitted by the broad-spectrum light source passes through the optical fiber circulator and enters the first interferometer; reflected light of the first interferometer passes through the optical fiber circulator and the coupler in sequence, and then enters the second interferometer and the third interferometer respectively; reflected light of the second interferometer and the third interferometer enters the spectrometer after passing through the coupler; the temperature to be measured and the salinity to be measured are simultaneously obtained by performing a spectral analysis of reflected light entering the spectrometer.
(20) Further, the first interferometer includes a single-mode optical fiber, a hollow optical fiber and a single-mode optical fiber concentrically welded in sequence.
(21) Optionally, the second interferometer includes three single-mode optical fibers welded in a staggered manner in sequence; where the single-mode optical fiber in the middle of the three single-mode optical fibers is welded with the other two single-mode optical fibers at both ends in the staggered manner.
(22) Further, the third interferometer includes the single-mode optical fiber and the hollow optical fiber concentrically welded; where, the hollow optical fiber includes an air cavity formed after injecting polydimethylsiloxane; an optical path of the air cavity is a preset multiple of an optical path of the first interferometer, so that a vernier effect between the first interferometer and the third interferometer is generated.
(23) Further, the spectral analysis of the reflected light entering the spectrometer includes: respectively obtaining interference spectra of the first interferometer, the second interferometer and the third interferometer based on the reflected light entering the spectrometer; obtaining a first interference spectra envelope between the first interferometer and the second interferometer based on the interference spectrum of the first interferometer and the interference spectrum of the second interferometer; obtaining a second interference spectra envelope between the first interferometer and the third interferometer based on the interference spectrum of the first interferometer and the interference spectrum of the third interferometer; and obtaining the temperature to be measured and the salinity to be measured based on the first interference spectra envelope and the second interference spectra envelope.
(24) Further, obtaining the temperature and the salinity includes: obtaining a first translation amount of the first interference spectra envelope and a second translation amount of the second interference spectra envelope when the temperature and the salinity change; and obtaining the temperature to be measured and the salinity to be measured based on the first translation amount and the second translation amount.
(25) The sensitivity of a single Fabry-Perot interferometer is limited. In this embodiment, in order to improve the sensitivity of the optical fiber sensor, two interferometers are used to with close but unequal free spectral ranges in series or parallel to produce optical vernier effect, thus using the amplification of the vernier effect to improve the sensitivity. In order to realize the temperature and salinity synchronous measurement, a series-parallel structure of three Fabry-Perot interferometers is designed in this embodiment. This structure may not only produce the vernier effect, but also realize the temperature and salinity synchronous measurement.
(26) Polydimethylsiloxane (PDMS) is a kind of material which is extremely sensitive to the temperature. The PDMS will have the effect of thermal expansion and cold contraction when the temperature changes, and has good light transmittance and refraction. The high thermal expansion and high thermal light characteristics of PDMS are combined with the optical fiber, which may change the length of the cavity at different temperatures and improve the sensitivity of temperature measurement.
(27) This embodiment proposes an optical fiber sensor for temperature and salinity synchronous measurement, which is composed of three interferometers with different structures connected in series and parallel. As shown in
(28) As shown in
(29) The sensor head structures of three different interferometers in the sensor system model of this embodiment are shown in
(30) The preparation process of the sensing system is as follow:
(31) The interferometer 1 (reference cavity FP1) is formed by sequentially welding a single-mode optical fiber, a hollow fiber and a single-mode optical fiber (The diameter of the single-mode optical fiber is 125 microns, and the diameter of fiber core is 8-10 microns. The outer diameter of the hollow fiber is 125 microns and the inner diameter of the hollow fiber is 50 microns).
(32) The interferometer 2 (sensing cavity FP2) is made of three single-mode optical fibers welded in a staggered manner, and the staggered amount is 65.5-67.5 microns. The optical path of the interferometer 2 is about 0.90-0.99 times that of the interferometer 1 to ensure the vernier effect between the interferometer 1 and the interferometer 2.
(33) The interferometer 3 (sensing cavity FP3) is formed by welding the single-mode optical fiber and the hollow optical fiber, and injecting PDMS into the hollow optical fiber to form an air cavity (interferometer FP3). The optical path of the air cavity is about 1.01-1.1 times that of the interferometer 1 to ensure the vernier effect between the interferometer 1 and the interferometer 3.
(34) The beam transmission process and sensing principle are as follows:
(35) As shown in
(36) The interference spectra of the interferometer 1, the interferometer 2 and the interferometer 3 may be expressed as follows:
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(38) where I.sub.1 and I.sub.2 are the light intensities of the two beams of the reflected light of the interferometer 1, respectively; I.sub.3 and I.sub.4 are the light intensities of the two beams of the reflected light of the interferometer 2, respectively; I.sub.5 and I.sub.6 are the light intensities of the two beams of the reflected light of the interferometer 3, respectively; L.sub.1, L.sub.2 and L.sub.3 are the cavity lengths of the interferometer 1, the interferometer 2 and the interferometer 3 respectively; n.sub.1, n.sub.2, and n.sub.3 are the refractive indices of intracavity media of the interferometer 1, the interferometer 2, and the interferometer 3, respectively. The interference spectra received by the spectrometer are complex interference spectra by the superposition of three interference spectra, which may be approximately expressed as:
I=I.sub.1(?)+I.sub.2(?)+I.sub.3(?).
(39) The free spectral ranges of interferometer 1, the interferometer 2 and the interferometer 3 may be expressed as follows:
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(41) Because the free spectral ranges of the interferometer 1 and the interferometer 2 are close but not equal, there will be a vernier effect between the interferometer 1 and the interferometer 2, and the interference spectra envelope I.sub.en-12 presented thereby may be expressed as follows:
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(43) Because the free spectral ranges of the interferometer 1 and the interferometer 3 are close but not equal, there will be a vernier effect between the interferometer 1 and the interferometer 3, and the interference spectra envelope I.sub.en-13 presented thereby may be expressed as follows:
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(45) Because the spectrometer obtains the complex interference spectra of the light source through the series-parallel structure of three interferometers, in order to obtain the interference spectra envelope I.sub.en-12 and the interference spectra envelope I.sub.en-13, it is necessary to perform a spectral analysis for the complex interference spectra to obtain the interference spectra of the three interferometers, and then obtain the interference spectra envelopes I.sub.en-12 and I.sub.en-13 by the superposition of the interference spectra.
(46) When the temperature and salinity change, the translation amounts ??.sub.12 and ??.sub.13 of the interference spectra envelopes I.sub.en-12 and I.sub.en-13 may be expressed as follows:
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(48) The corresponding matrix equation may be expressed as follows:
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(51) The received complex interference spectra after multi-cavity coupling is as shown in
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(54) The above is only the preferred embodiments of this application, but the protection scope of this application is not limited to this. Any changes or replacements that may be easily thought of by a person skilled in the art within the technical scope disclosed in this application may be included in the protection scope of this application. Therefore, the protection scope of this application may be based on the protection scope of the claims.