HIGH RESOLUTION POLARIZED LOW-COHERENCE INTERFERENCE PRESSURE MEASUREMENT DEVICE AND METHOD THEREOF
20180283969 ยท 2018-10-04
Assignee
Inventors
- Shuang Wang (Tianjin, CN)
- Tiegen Liu (Tianjin, CN)
- Junfeng Jiang (Tianjin, CN)
- Mengnan Xiao (Tianjin, CN)
- Kun Liu (Tianjin, CN)
- Pan HE (Tianjin, CN)
Cpc classification
International classification
G01L9/00
PHYSICS
Abstract
The present invention discloses a high-resolution polarized low-coherence interference pressure measurement device and method, which comprise a broadband light source (1), an optical fiber coupler (2), an optical fiber Fabry-Perot sensor (3), a collimating lens (4), a polarizer (5), a birefringence wedge (6) having a spatial dip angle, an analyzer (7), a matrix camera (8), and a signal processing unit (9), which are successively provided from an input end to an output end; wherein light emitted from the broadband light source (1) passes through the optical fiber coupler (2) and arrives at the optical fiber Fabry-Perot sensor (3), and returned light emitted from the optical fiber Fabry-Perot sensor (3) is led into a demodulation interferometer; a change in pressure is transformed into a change in length of a Fabry-Perot cavity by the optical fiber Fabry-Perot sensor (3), and different pressures correspond to different lengths of the Fabry-Perot cavity; the collimating lens (4), the polarizer (5), the birefringence wedge (6) having a spatial dip angle, the analyzer (7), and the matrix camera (8) together form a demodulation interferometer; the collimating lens (4) is disposed at the forefront end of the demodulation interferometer to converge and collimate light beams; input signal light collimated by the collimating lens is polarized by the polarizer (5); and the linearly polarized light passes through the birefringence wedge (6) having a spatial dip angle to generate two orthogonal linearly polarized lights which have a optical path difference linearly distributed along the thickness variation direction of the optical wedge; thus achieving low-coherence interferometric fringes zooming to different extents in horizontal and vertical directions by a two-dimensional angle of the birefringence wedge (6) having a spatial dip angle. The present invention also discloses a method for measuring pressure of a high-resolution polarized low-coherence interference system.
Claims
1. A high-resolution polarized low-coherence interference pressure measurement device, comprising a broadband light source (1), an optical fiber coupler (2), an optical fiber Fabry-Perot sensor (3), a collimating lens (4), a polarizer (5), a birefringence wedge (6) having a spatial dip angle, an analyzer (7), a matrix camera (8), and a signal processing unit (9), which are successively provided from an input end to an output end, wherein, light emitted from the broadband light source (1) passes through the optical fiber coupler (2) and arrives at the optical fiber Fabry-Perot sensor (3), and returned light emitted from the optical fiber Fabry-Perot sensor (3) is led into an demodulation optical path; a change in pressure is transformed into a change in length of a Fabry-Perot cavity by the optical fiber Fabry-Perot sensor (3), and different pressures correspond to different lengths of the Fabry-Perot cavity; the collimating lens (4), the polarizer (5), the birefringence wedge (6) having a spatial dip angle, the analyzer (7), and the matrix camera (8) together form a demodulation interferometer; the collimating lens (4) is disposed at the forefront end of the demodulation interferometer to converge and collimate light beams; input signal light collimated by the collimating lens is polarized by the polarizer (5); and the linearly polarized light passes through the birefringence wedge (6) having a spatial dip angle to generate two orthogonal linearly polarized lights which have a spatial optical path difference linearly distributed along the thickness variation direction of the optical wedge; thus achieving low-coherence interferometric fringes zooming to different extents in horizontal and vertical directions by a two-dimensional angle of the birefringence wedge (6) having a spatial dip angle, and expanding the measurement ranges via compressing the interferometric fringes in one direction, and improving the measurement resolution via broadening the local interferometric fringes in the other direction; the two orthogonal linearly polarized light are projected by the analyzer (7) in a same direction and generate interferometric fringes; and then the generated interferometric fringes are collected by the matrix camera (8) and are processed by the signal processing unit (9) to finally obtain a pressure measurement result.
2. A method for measuring pressure of a high-resolution polarized low-coherence interference system, comprising the following steps: Step 1: light emitted from a broadband light source passes through an optical fiber coupler and arrives at an optical fiber Fabry-Perot sensor; Step 2: a light signal modulated by the optical fiber Fabry-Perot sensor emits from the outlet of the coupler and collimates by a collimating lens, then goes through a polarizer to be linearly polarized light; then the light enters into a birefringence wedge having a spatial dip angle; wherein a polarization axis of the polarizer and an optical axis of the birefringence wedge having a spatial dip angle are placed in 45 degrees; in the birefringence wedge having a spatial dip angle, the polarized light is divided into two orthogonal linearly polarized light, i.e., o-light and e-light; and two components generate an optical path difference in the birefringence wedge having a spatial dip angle, the expression is as follows:
l(x,y)=d(x,y).Math.(n.sub.en.sub.o), Wherein, x is a transverse distance from a light incident point to an apex of the wedge, y is a longitudinal distance from a light incident point to the apex of the wedge, n.sub.o and n.sub.e are refraction indexes of o-light and e-light of a birefringent crystal, respectively, d(x, y) represents the wedge thickness at the light incident point, expressed by:
d(x,y)=x tan +y tan +d.sub.0, Wherein, and are angles of the optical wedge in the horizontal and vertical directions, respectively, and d.sub.0 is the thickness of the optical wedge at a fixed point thereof; Thus expanding the measurement ranges by designing a wide angle in one direction for compressing the interferometric fringes, and improving the measurement resolution by designing a small angle in the other direction for broadening the local interferometric fringes; Step 3: the light passes through the analyzer which is placed in an angle of 45 degrees to an optical axis of the birefringence wedge having a spatial dip angle, and superposes the orthogonal o-light and e-light which are transmitted through the birefringence wedge having a spatial dip angle in a polarization detecting direction to generate interferometric fringes which are then received by a matrix camera; Step 4: the two-dimensional interferometric fringe signal output by the matrix camera is processed by the signal processing unit; the rough peak position is obtained through the low-coherence interferometric signal in the direction of the large angle; based on coordinates of the rough peak position, through the low-coherence interferometric signal in the direction of the small angle, the precise peak position of the fringe is obtained to finally extract the length information of an Fabry-Perot cavity and to obtain a corresponding pressure measurement result, thus achieving the high-resolution pressure demodulation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021] In which:
[0022] 1: broadband light source; 2: optical fiber coupler; 3: optical fiber Fabry-Perot sensor; 4: collimated lens; 5: polarizer; 6: birefringence wedge having a spatial dip angle; 7: analyzer; 8: matrix camera; and 9: signal processing unit.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
Embodiment 1
[0023] A High-Resolution Polarized Low-Coherence Interference Pressure Measurement Device Based on a Matrix Camera
[0024] As shown in
[0025] During this experiment, the broadband light source 1 is a SLED light source module with a central wavelength of 750 nm, the optical fiber coupler 2 is a 22 multimode coupler, the polarizer 5 and the analyzer 7 are Glan Thompson prisms, the birefringence wedge 6 having a spatial dip angle is made of LiNbO3, and the matrix camera 8 adopts a matrix CCD which the size of the pixels thereof being 3.45 m*3.45 m and the number of pixels being 2456*2058.
Embodiment 2
[0026] A High-Resolution Polarized Low-Coherence Interference Pressure Measurement Method Based on a Matrix Camera
[0027] The above method for measuring pressure is as follows:
[0028] Step 1: light emitted from a broadband light source 1 passes through an optical fiber coupler 2 and arrives at an optical fiber Fabry-Perot sensor 3 which is configured to sense atmospheric pressure; and two reflecting surfaces of the Fabry-Perot cavity form a sensing interferometer, and the distance between the two reflecting surfaces of the Fabry-Perot cavity are linearly related to the atmospheric pressure.
[0029] Step 2: a light signal modulated by the optical fiber Fabry-Perot sensor 3 is led out from the outlet of the optical fiber coupler 2, and collimates by a collimating lens 4, then goes through a polarizer 5 to be linearly polarized light; then, the light enters into a birefringence wedge 6 having a spatial dip angle; wherein a polarization axis of the polarizer 5 and an optical axis of the birefringence wedge 6 having a spatial dip angle are placed in 45 degrees; in the birefringence wedge 6 having a spatial dip angle, the polarized light is divided into two orthogonal linearly polarized light, i.e., o-light and e-light, both of which have different optical paths in spite of a same transmission distance; and the two components generate an optical path difference in the birefringence wedge 6 having a spatial dip angle, the expression is as follows: l(x,y)=d(x,y).Math.(n.sub.en.sub.o), wherein, x is a transverse distance from a light incident point to an apex of the wedge, y is a longitudinal distance from a light incident point to the apex of the wedge, n.sub.o and n.sub.e are refraction indexes of o-light and e-light of a birefringent crystal, respectively, d(x, y) represents the wedge thickness at the light incident point, expressed by: d(x,y)=x tan +y tan +d.sub.0, wherein, and are angles of the optical wedge in the horizontal and vertical directions, respectively, and d.sub.0 is the thickness of the optical wedge at a fixed point thereof; the present invention achieves zooming the low-coherence interferometric fringes to different extents in horizontal and vertical directions by adopting the birefringent effect which is provided by the birefringence wedge 6 having a spatial dip angle, and expands the measurement ranges via compressing the interferometric fringes in one direction; and improves the measurement resolution via broadening the local interferometric fringes in the other direction; during the experiment, the angle of the LiNbO3 wedge in the horizontal direction is 4, and the angle in the vertical direction is 1, d.sub.0=1.5 mm, so the wedge thickness corresponding to a certain point on a receiving surface of the matrix camera 8 can be expressed by:
d(x,y)=x tan 4+y tan 1+1.5 mm0.0699x+0.0175y+1.5 mm.
[0030] Step 3: the light passes through the analyzer 7 which is placed in an angle of 45 degrees to an optical axis of the birefringence wedge 6 having a spatial dip angle, and superposes the orthogonal o-light and e-light which are transmitted through the birefringence wedge 6 having a spatial dip angle in a polarization detecting direction to generate interferometric fringes which are then received by the matrix camera 8;
[0031] Step 4: the two-dimensional interferometric fringe signal output by the matrix camera 8 is processed by the signal processing unit 9. First, in the direction of a wide angle, i.e., the horizontal direction, the signal processing unit 9 extracts the line data, and obtains a rough peak position by processing a low-coherence interferometric signal in the direction of the wide angle; based on coordinates of the rough peak position, the signal processing unit 9 extracts column data in the direction of the small wedge angle, i.e., the vertical direction; and by processing the low-coherence interferometric signal in the direction of the small angle obtains the precise peak position of the fringe, thus finally extracting the length information of an Fabry-Perot cavity, obtaining a corresponding pressure measurement result, and achieving the high-resolution pressure demodulation.
[0032] During the experiment, the optical fiber Fabry-Perot sensor is placed in a pressure chamber, with a pressure change ranges from 5 kPa to 265 kPa and a changing step of 2 kPa.
[0033] By extracting data in the line 1020 (the original signal is as shown in
[0034] With regard to 150 images obtained under 101 kPa, signals in line 1020.sup.th are extracted for processing. As shown in
[0035] With regard to 150 images obtained under 101 kPa, signals in column 1044.sup.th are extracted for processing. As shown in
[0036] In the high-resolution polarized low-coherence interference system based on a matrix camera of the present invention:
[0037] The broadband light source may be an LED light source or an SLD light source;
[0038] The birefringent crystal may be LiNbO3 crystal, MgF2 crystal, calcite crystal or YVO4 crystal;
[0039] The polarizer and the analyzer may be polarizing prisms such as a Glan Taylor prism and a Glam Thompson prism, or a polarizer sheet;
[0040] The matrix camera may be a matrix CMOS camera or a matrix CCD;
[0041] The processing unit may be implemented by an embedded system, in addition to a computer; and
[0042] The optical fiber devices and optical devices may be replaced with corresponding space optical devices.