DETECTION DEVICE AND METHOD FOR TINY PARTICLES IN LIQUID
20220412865 · 2022-12-29
Inventors
- Jiyong SUN (Suzhou, Jiangsu, CN)
- Fengfei LIANG (Suzhou, Jiangsu, CN)
- Weidong SHEN (Suzhou, Jiangsu, CN)
Cpc classification
International classification
Abstract
A detection device for tiny particles in a liquid is provided. The detection device comprises includes a flow cell, a laser, a scattered light collection device, a photoelectric detector, a fiber Bragg grating and a first optical fiber coupler, wherein scattered light collected by the scattered light collection device is sent to the fiber Bragg grating through the first optical fiber coupler, and reflected light of the fiber Bragg grating after receiving the scattered light is sent to the photoelectric detector through the first optical fiber coupler. The device can eliminate most scattered light generated by the liquid, and reduce the interference of the scattered light of the liquid to scattered light signals generated by the particles, so that the scattered light signals captured by the photoelectric detector are mainly light signals generated by the particles.
Claims
1. A detection device for tiny particles in liquid, comprising: a flow cell provided with a liquid channel inside for liquid to pass through;..sub.: a laser for generating laser light directed towards the liquid channel; a scattered light collection device for collecting scattered light scattered by the flow cell after being irradiated by a laser beam; a photoelectric detector; and a fiber Bragg grating and a first optical fiber coupler, wherein a reflection wavelength of the fiber Bragg grating is the same as a wavelength emitted by the laser, the fiber Bragg grating and the scattered light collection device and the photoelectric detector are connected via the first optical fiber coupler, wherein the scattered light collected by the scattered light collection device is sent to the fiber Bragg grating through the first optical fiber coupler, and reflected light of the fiber Bragg grating after receiving the scattered light is sent to the photoelectric detector through the first optical fiber coupler.
2. The detection device for tiny particles in liquid according to claim 1, wherein the flow cell is a cuboid made of a transparent material, and the liquid channel is a through hole arranged in the flow cell along length direction.
3. The detection device for tiny particles in liquid according to claim 2, wherein the liquid channel is a circular hole with a diameter between 0.5 mm and 2 mm.
4. The detection device for tiny particles in liquid according to claim 2, wherein the laser beam is injected into a central position of the liquid channel perpendicular to the liquid channel.
5. The detection device for tiny particles in liquid according to claim 2, wherein the scattered light collection device comprises a scattered light converging lens and an optical fiber, the scattered light converging lens converges the scattered light to an end of the optical fiber, and the scattered light is collected by the optical fiber.
6. The detection device for tiny particles in liquid according to claim 5, wherein the scattered light converging lens is glued on a surface of the flow cell, and a center of the liquid channel of the flow cell is on an object plane of the scattered light converging lens.
7. The detection device for tiny particles in liquid according to claim 5, further comprising a light source converging lens for converging light generated by the laser to the liquid channel, and optical axes of the light source converging lens and optical axes of the scattered light converging lens are perpendicular to each other.
8. The detection device for tiny particles in liquid according to claim 2, wherein two sets of scattered light collection devices are provided, and the detection device further comprising a second optical fiber coupler for connecting the two sets of scattered light collection devices and the first optical fiber coupler, scattered light collected by the two sets of scattered light collection devices is combined through the second optical fiber coupler and then sent into the first optical fiber coupler.
9. The detection device for tiny particles in liquid according to claim 8, wherein the two sets of scattered light collection devices respectively collect the light scattered from opposite sides of the flow cell.
10. The detection device for tiny particles in liquid according to claim 1, wherein the detection device further comprises a first light trap for absorbing light, and the first light trap is positioned in an emitted direction of the laser beam after passing through the flow cell.
11. The detection device for tiny particles in liquid according to claim 1, wherein the detection device further comprises a second light trap for absorbing light passing through the fiber Bragg grating
12. The detection device for tiny particles in liquid according to claim 1, wherein: the flow cell is a cuboid made of a transparent material, and the liquid channel is a through hole arranged in the flow cell along a length direction; the liquid channel is a circular hole with a diameter between 0.5 mm and 2 mm; the laser beam is injected into a central position of the liquid channel perpendicular to the liquid channel; the scattered light collection device comprises a scattered light converging lens and an optical fiber, the scattered light converging lens converges the scattered light to an end of the optical fiber, and the scattered light is collected by the optical fiber; the scattered light converging lens is glued on a surface of the flow cell, and a center of the liquid channel of the flow cell is on an object plane of the scattered light converging lens; the detection device comprises a light source converging lens converging light generated by the laser to the liquid channel, and optical axes of the light source converging lens and optical axes of the scattered light converging lens are perpendicular to each other; two sets of scattered light collection devices are provided, and the detection device further comprises a second optical fiber coupler for connecting the two sets of scattered light collection devices and the first optical fiber coupler, scattered light collected by the two sets of scattered light collection devices is combined through the second optical fiber coupler and then sent into the first optical fiber coupler; the two sets of scattered light collection dev ices respectively collect the light scattered from opposite sides of the flow cell; the detection device further comprises a first light trap for absorbing light, and the first light trap is positioned in the emitted direction of the laser beam after passing through the flow cell; and the detection device comprises a second light trap for absorbing light passing through the fiber Bragg grating.
13. A detection method for tiny particles in liquid, comprising: irradiating liquid with laser light and collecting scattered light; reflecting the collected scattered light by a fiber Bragg grating of which a reflection wavelength is the same as wavelength of the laser light; analyzing the reflected light from the fiber Bragg grating using a photoelectric detector; and calculating a quantity and a diameter of particles according to the reflected light received by the photoelectric detector.
Description
BRIEF DESCRIPTION
[0020] Some of the embodiments will be described in detail, with references to the following Figures, wherein like designations denote like members, wherein:
[0021]
[0022]
[0023] In the figures, 1—laser; 2—light source converging lens; 3—flow cell; 31—liquid channel; 4—photoelectric detector; 5—fiber Bragg grating; 6—first optical fiber coupler; 7—second optical fiber coupler; 8—scattered light converging lens; 9—optical fiber; 10—first light trap.
DETAILED DESCRIPTION
[0024] In the following, the present disclosure is further explained in detail combining with specific embodiments shown in the accompanying drawings:
[0025] Referring to
[0026] In this embodiment, the monochromatic light of a wavelength of λ emitted by the laser 1 converges in the detection area of the flow cell 3 and forms a light spot, and the liquid in the flow cell 3 and the particles in the liquid are irradiated by the illumination light when passing through the detection area, and generate scattered light. According to the light scattering theory, the wavelength of the scattered light generated by the particles is λ. The scattered light generated by the liquid is divided into three parts, the wavelength of the first part of the light is λ, the wavelength of the second part of the light is λ1 (λ1=λ+Δλ), and the wavelength of the third part of the light is λ2 (λ2=λ+Δλ). A scattered light collection device collects the scattered light and transmits it to the fiber Bragg grating 5 through the first optical fiber coupler 6, wherein the wavelength of the fiber Bragg grating is λ. Therefore, among the scattered light transmitted to the fiber Bragg grating, only the scattered light of the wavelength of λ is reflected and transmitted to the photoelectric detector 4 through the first optical fiber coupler 6, and then captured by the photoelectric detector. After the scattered light with the wavelength of λ1 and the wavelength of λ2 generated by the liquid passes through the fiber grating, it is captured by a subsequent second light trap. Finally, the quantity and diameter of the particles are calculated according to the reflected light received by the photoelectric detector 4. The signal-to-noise ratio of the device in this embodiment is improved by filtering the scattered light with the wavelength of λ1 and the wavelength of λ2 through the Bragg grating. The detection capability of the detection device for detecting tiny particles is enhanced, so that particles with smaller particle can be detected.
[0027] Referring to
[0028] In this embodiment, the scattered light collection device comprises a scattered light converging lens 8 and an optical fiber 9, the optical axes of the scattered light converging lens 8 and the optical axes of the light source converging lens 2 are arranged perpendicular to each other, and the scattered light converging lens 8 converges the scattered light to an end of the optical fiber 9, and the scattered light is collected by the optical fiber 9. Specifically, the scattered light converging lens 8 is glued on the surface of the flow cell 3, and the center of the liquid channel of the flow cell 3 is on the object plane of the converging lens, so that the installation of the scattered light converging lens 8 is convenient, the scattered light can be better converged, and the accuracy of detection is improved.
[0029] As shown in
[0030] The device can eliminate most scattered light generated by the liquid, and reduce the interference of the scattered light of the liquid to scattered light signals generated by the particles, so that the scattered light signals captured by the photoelectric detector 4 are mainly light signals generated by the particles. The signal-to-noise ratio of the whole detection device is improved. The detection capability of the detection device for detecting tiny particles is enhanced, so that particles with smaller particle size can be detected.
[0031] Although the present invention has been disclosed in the form of preferred embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
[0032] For the sake of clarity, it is to be understood that the use of ‘a’ or ‘an’ throughout this application does not exclude a plurality, and ‘comprising’ does not exclude other steps or elements.