Physical and chemical detection device for solid waste shield powder-based functional wall material
By designing a physicochemical testing device for solid waste shield powder-based functional wall materials that includes a shell for particle size and element detection, the problem of the inability to perform chemical element analysis in existing technologies has been solved. This device enables comprehensive testing of solid waste shield powder-based functional wall materials and has both high efficiency and convenience.
Patent Information
- Application Number
- CN202423037636.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2034-12-10
AI Technical Summary
Existing nanoparticle size potentiometers can only perform single physical detection and cannot analyze the chemical elements of solid waste powder.
A physicochemical testing device for solid waste shield powder-based functional wall material was designed, comprising a particle size detection shell and an element detection shell. The particle size and chemical elements of the solid waste shield powder are detected by a laser emission source, an aspherical convex lens, a reflector, and a photoelectric detector, respectively.
It enables physicochemical testing of solid waste shield powder-based functional wall materials, featuring a compact structure, powerful functions, high testing convenience, rapid calculation of test values, and easy material handling and equipment maintenance.
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Figure CN223711343U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to material physics and chemistry detection technical field relates to solid waste shield powder base functional wall material physics and chemistry detection device. BACKGROUND
[0002] Solid waste base shield powder is the mixture of semi-dry method desulfurization ash and silicon manganese slag, can be applied in functional wall material, needs to detect and evaluate the physical and chemical properties of solid waste base shield powder when implementing the application. The physics and chemistry detection device needs to be used at this time, the patent number for CN202021064748.5 discloses nanometer granularity electric potential analyzer, including laser light source emitter, the inside fixed mounting of laser light source emitter has thermistor, its end fixed mounting has condenser, laser light source emitter emits laser beam and passes through convex aspheric lens and enters the inside of containing piece, the laser beam is refracted to the surface of first plane mirror through containing piece, first plane mirror reflects laser beam to second plane mirror, second plane mirror emits laser beam to focusing lens, the laser beam passes through focusing lens and enters the detector, the analyzer uses effectual, is worth promoting.
[0003] The above-mentioned nanometer granularity electric potential analyzer only has single physical detection, cannot analyze the chemical elements of solid waste shield powder, therefore, we design a kind of solid waste shield powder base functional wall material physics and chemistry detection device. SUMMARY
[0004] The utility model discloses a solid waste shield powder base functional wall material physics and chemistry detection device to solve the problems raised in the above background technology.
[0005] The utility model discloses a solid waste shield powder base functional wall material physics and chemistry detection device, including detection base, laser emission light source, granularity detection shell, element detection shell and flip computer, the corner at the top of detection base is fixedly installed with rotary adjusting seat, the top of rotary adjusting seat is installed with rotary joint, the bottom of laser emission light source is connected with rotary joint and is connected with the joint;
[0006] The granularity detection shell is arranged at one side of the top of the detection base, a first light guide cylinder is mounted on the inner side of the light inlet hole of the granularity detection shell, an aspheric convex lens is mounted in the first light guide cylinder, a material containing cylinder corresponding to the aspheric convex lens is arranged in the middle of the inner cavity of the granularity detection shell, a plane mirror is arranged on one side of the inner cavity of the granularity detection shell, a double-layer focusing lens is arranged at the bottom end of the plane mirror, an opening and closing door is movably arranged at the bottom of one side of the granularity detection shell, two symmetrical sliding mounting seats are arranged on one side of the opening and closing door, and a granularity detector is mounted between the two sliding mounting seats in the granularity detection shell.
[0007] In the solid waste shield powder-based functional wall material physical and chemical detection device, the element detection shell is arranged on the other side of the top end of the detection base, a second light guide cylinder is arranged on the inner side of the light inlet hole of the element detection shell, a reflecting mirror corresponding to the second light guide cylinder is arranged in the middle of the inner cavity of the element detection shell, a drawer plate is arranged in the middle of one side of the element detection shell, an atomizer is arranged in the inner cavity of the element detection shell through the extension of one side of the drawer plate, a light converging cover is arranged on one side of the atomizer, and a photodetector corresponding to the atomizer is arranged at the corner of the inner cavity of the element detection shell.
[0008] In the solid waste shield powder-based functional wall material physical and chemical detection device, the bottom end of the material containing cylinder is provided with a vibration base connected with the particle size detection shell.
[0009] In the solid waste shield powder-based functional wall material physical and chemical detection device, the light inlet hole of the particle size detection shell and the light inlet hole of the element detection shell are both provided with a light shielding conical connecting sleeve connected with the laser emission light source.
[0010] In the solid waste shield powder-based functional wall material physical and chemical detection device, the flip computer is arranged at the other corner of the top end of the detection base and is connected with the particle size detector and the photodetector.
[0011] In the solid waste shield powder-based functional wall material physical and chemical detection device, the middle of the top end of the particle size detection shell is provided with a pull handle connected with the top end of the material containing cylinder through the sealing plate.
[0012] Compared with the prior art, the solid waste shield powder-based functional wall material physical and chemical detection device has the advantages that: the particle size detection shell and the element detection shell are arranged on the detection base, corresponding detection mechanisms are arranged in the inside, a single laser emission light source can be used to complete the physical and chemical detection (particle size and element composition) of the solid waste shield powder-based functional wall material, the whole device has a compact structure, strong functionality, and good detection convenience, the flip computer is used to quickly calculate the corresponding detection values, the drawer plate, the pull handle and the opening and closing door plate are arranged to have good material taking and placing effects, and the particle size detector and the photodetector are convenient to maintain. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 It is a three-dimensional structure schematic view of the solid waste shield powder-based functional wall material physical and chemical detection device.
[0014] Figure 2 It is an internal structure schematic view of the particle size detection shell of the solid waste shield powder-based functional wall material physical and chemical detection device.
[0015] Figure 3 This is a schematic diagram of the internal structure of the element detection shell of the physicochemical testing device for solid waste shield powder-based functional wall material of this utility model.
[0016] In the diagram, 1. Detection base; 2. Rotary adjustment seat; 3. Rotary joint; 4. Laser emission source; 5. Particle size detection housing; 6. Element detection housing; 7. Light-shielding conical connecting sleeve; 8. Handle; 9. Opening and closing door panel; 10. Flip-top computer; 11. First light guide tube; 12. Aspherical convex lens; 13. Material container; 14. Vibration base; 15. Plane reflector; 16. Double-layer focusing lens; 17. Particle size detector; 18. Sliding mounting seat; 19. Second light guide tube; 20. Reflecting mirror; 21. Atomizer; 22. Converging light cover; 23. Photodetector; 24. Drawer panel. Detailed Implementation
[0017] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.
[0018] like Figure 1 , Figure 2 and Figure 3 As shown, this utility model relates to a physical and chemical testing device for solid waste shield powder-based functional wall materials:
[0019] The device includes a detection base 1, a laser emission source 4, a particle size detection housing 5, an element detection housing 6, and a flip-top computer 10. A rotating adjustment seat 2 is fixedly installed at the top corner of the detection base 1, and a rotating joint 3 is installed at the top of the rotating adjustment seat 2. The bottom end of the laser emission source 4 is snapped into connection with the rotating joint 3. The flip-top computer 10 is located at the other corner of the top of the detection base 1 and is connected to the particle size detector 17 and the photoelectric detector 23.
[0020] The particle size detection housing 5 is located on one side of the top of the detection base 1. A first light guide tube 11 is installed inside the light inlet of the particle size detection housing 5. An aspherical convex lens 12 is installed inside the first light guide tube 11. A material container 13 corresponding to the aspherical convex lens 12 is located in the middle of the inner cavity of the particle size detection housing 5. A vibration base 14 connected to the particle size detection housing 5 is installed at the bottom of the material container 13. A plane reflector 15 is located on one side of the inner cavity of the particle size detection housing 5. A double-layer focusing lens 16 is located at the bottom of the plane reflector 15. An opening and closing door plate 9 is movably arranged at the bottom of one side of the particle size detection housing 5. Two symmetrical sliding mounting seats 18 are arranged on one side of the opening and closing door plate 9. The two sliding mounting seats 18 are located inside the particle size detection housing 5 and a particle size detector 17 is installed between the two sliding mounting seats 18.
[0021] The design is as follows: the laser emitted by the laser emitting light source 4 passes through the first light guide cylinder 11 and the aspherical convex lens 12 to reach the material containing cylinder 13, and under the vibration of the vibrating base 14, the material particles can be dispersed, the laser passes through the particles to reach the surface mirror 15, and is reflected to the double-layer focusing lens 16, and is transmitted to the particle size detector 17 by the double-layer focusing lens 16, the particle size is detected and analyzed by reflecting the laser beam, and finally the detection value is displayed by the flip computer 10.
[0022] The element detection shell 6 is arranged at the other side of the top end of the detection base 1, the second light guide cylinder 19 is arranged in the light inlet hole of the element detection shell 6, the mirror 20 corresponding to the second light guide cylinder 19 is arranged in the middle of the inner cavity of the element detection shell 6, the drawer plate 24 is arranged in the middle of one side of the element detection shell 6, the atomizer 21 is arranged in the inner cavity of the element detection shell 6, the light converging cover 22 is arranged on one side of the atomizer 21, and the photodetector 23 corresponding to the atomizer 21 is arranged at the corner of the inner cavity of the element detection shell 6.
[0023] The design is as follows: the laser emitted by the laser emitting light source 4 passes through the second light guide cylinder 19 to reach the mirror 20, is reflected to the atomizer 21 containing the material by the mirror 20, and finally the light is converged by the light converging cover 22 to enter the photodetector 23, so that the element analysis of the material is realized.
[0024] In the embodiment, as shown in Figure 1 In order to better emit the laser emitting light source 4 into the corresponding first light guide cylinder 11 and second light guide cylinder 19, the light-shielding conical connecting sleeve 7 is arranged at the light inlet hole of the particle size detection shell 5 and the light inlet hole of the element detection shell 6, and the light-shielding conical connecting sleeve 7 is connected with the laser emitting light source 4.
[0025] In the embodiment, as shown in Figure 1 In order to facilitate the material to be put into the material containing cylinder 13 and to be taken out, the pull handle 8 is arranged in the middle of the top end of the particle size detection shell 5, and the pull handle 8 is connected with the top end of the material containing cylinder 13 through the sealing plate.
[0026] Working principle: the material is respectively put into the material containing cylinder 13 and the atomizer 21, the power is turned on, the flip computer 10 is connected with the particle size detector 17 and the photoelectric detector 23, the laser emitting light source 4 emits laser, the laser emitting light source 4 is sleeved with the light shielding conical connecting sleeve 7 connected with the particle size detection shell 5, the laser enters the first light guide cylinder 11, the laser passes through the aspherical convex lens 12 of the first light guide cylinder 11 to reach the material containing cylinder 13, under the vibration of the vibration base 14, the material particles can be dispersed, the laser passes through the particles to reach the surface mirror 15, the reflected laser is transmitted to the double-layer focusing lens 16, the double-layer focusing lens 16 is transmitted to the particle size detector 17, the particle size is detected and analyzed through the reflection of the laser beam, finally the detection value is displayed by the flip computer 10; after the detection is finished, the laser emitting light source 4 is sleeved with the light shielding conical connecting sleeve 7 connected with the element detection shell 6, the laser enters the second light guide cylinder 19, passes through the second light guide cylinder 19 to reach the reflecting mirror 20, is reflected to the atomizer 21 containing the material, finally the light is converged by the converging light cover 22 and enters the photoelectric detector 23, the element analysis of the material is realized, the detection value is displayed by the flip computer 10.
[0027] The contents not described in detail in the specification belong to the prior art known to those skilled in the art. The specific embodiments described herein are only illustrative of the spirit of the utility model. Those skilled in the art to which the utility model belongs can make various modifications or supplements to the described specific embodiments or replace them with similar ways, but will not deviate from the spirit of the utility model or exceed the scope defined by the appended claims.
Claims
1. A solid waste shield powder-based functional wall material physical and chemical detection device, comprising a detection base (1), a laser emitting light source (4), a particle size detection shell (5), an element detection shell (6) and a flip computer (10), characterized in that, The rotating adjusting base (2) is fixedly installed at the corner of the top end of the detection base (1), the rotating joint (3) is installed at the top end of the rotating adjusting base (2), and the bottom end of the laser emitting light source (4) is connected with the rotating joint (3) in a clamping mode. The first light guide cylinder (11) is installed in the inside of the light inlet hole of the granularity detection shell (5), the aspheric convex lens (12) is installed in the inside of the first light guide cylinder (11), the material containing cylinder (13) corresponding to the aspheric convex lens (12) is arranged in the middle of the inner cavity of the granularity detection shell (5), the plane mirror (15) is arranged on one side of the inner cavity of the granularity detection shell (5), the double-layer focusing lens (16) is arranged at the bottom end of the plane mirror (15), the opening and closing door plate (9) is movably arranged at the bottom of one side of the granularity detection shell (5), the two symmetrical sliding mounting bases (18) are arranged on one side of the opening and closing door plate (9), the granularity detector (17) is arranged between the two sliding mounting bases (18) in the inside of the granularity detection shell (5).
2. The solid waste shield powder-based functional wall material physical and chemical detection device according to claim 1, characterized in that, The element detection shell (6) is arranged at the other side of the top end of the detection base (1), the second light guide cylinder (19) is installed in the inside of the light inlet hole of the element detection shell (6), the mirror piece (20) corresponding to the second light guide cylinder (19) is arranged in the middle of the inner cavity of the element detection shell (6), the drawer plate (24) is arranged at the middle of one side of the element detection shell (6), the atomizer (21) is arranged on one side of the drawer plate (24) extending into the inner cavity of the element detection shell (6), the converging light cover (22) is arranged on one side of the atomizer (21), and the photodetector (23) corresponding to the atomizer (21) is arranged at the corner of the inner cavity of the element detection shell (6).
3. The solid waste shield powder-based functional wall material physical and chemical detection device according to claim 1, characterized in that, The vibration base (14) connected with the granularity detection shell (5) is arranged at the bottom end of the material containing cylinder (13).
4. The solid waste shield powder-based functional wall material physical and chemical detection device according to claim 1, characterized in that, The light-shielding conical connecting sleeve (7) is arranged at the light inlet hole of the granularity detection shell (5) and the light inlet hole of the element detection shell (6) and is connected with the laser emitting light source (4).
5. The solid waste shield powder-based functional wall material physical and chemical detection device according to claim 2, characterized in that, The flip computer (10) is arranged at the other corner of the top end of the detection base (1) and is connected with the granularity detector (17) and the photodetector (23) in a data mode.
6. The solid waste shield powder-based functional wall material physical and chemical detection device according to claim 1, characterized in that, The pull handle (8) is arranged at the middle of the top end of the granularity detection shell (5) and is connected with the top end of the material containing cylinder (13) through the sealing plate.
Citation Information
Patent Citations
Nanometer granularity potential analyzer
CN212748638U