Preparation device of functional slurry for fluorocarbon coating
By designing a functional slurry preparation device for fluorocarbon coatings with a V-shaped inner cavity and a flip of 180°, combined with the rotation of the spiral blade rod, the problem of low mixing efficiency between powder and powder in existing equipment is solved, efficient and uniform mixing of multiple materials is achieved, and the applicability and production efficiency of the equipment are improved.
Patent Information
- Application Number
- CN202510626083.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing fluorocarbon coating production equipment has shortcomings in terms of mixing efficiency and applicability, especially the fact that it is impossible to achieve uniform mixing between powder and powder.
A preparation device for functional slurry for fluorocarbon coatings was designed, using a V-shaped inner cavity and a 180° flip design, combined with the rotation of the spiral blade rod, to achieve efficient mixing of powder and powder. The device realizes automatic flow diversion and discharge of materials through the lower-row assembly, improving production efficiency and mixing uniformity.
It realizes efficient mixing of powder and powder, which is suitable for mixing liquid and liquid, liquid and powder, improves the applicability and mixing uniformity of the equipment, and reduces the risks of manual intervention and cross-contamination.
Smart Images

Figure CN120204995A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of paint production, and particularly to a preparation device for a functional slurry for fluorocarbon paint. Background Art
[0002] Fluorocarbon paint refers to a paint with fluororesin as the main film-forming substance, also known as fluorocarbon paint, fluorine paint, fluororesin paint, etc. Functional paints are mostly divided into weather resistance, corrosion prevention, strong adhesion, and high decoration. In the existing paint production, materials are mostly mixed according to requirements, and corresponding colorants are added according to usage requirements. However, the existing production mixing equipment mostly mixes by simply agitating with a spiral blade rod, which takes a certain amount of time to achieve uniform mixing. Moreover, some equipment can only be used for liquid-liquid and liquid-powder mixing, and cannot achieve powder-powder mixing, resulting in low functionality and efficiency. Summary of the Invention
[0003] The purpose of the present invention is to solve the technical problems of low mixing efficiency and limited applicability mentioned in the above background art, and provide a preparation device for a functional slurry for fluorocarbon paint. To achieve the purpose of the present invention, the following technical solutions are adopted.
[0004] To achieve the above solution, the present invention provides the following technical solution: A preparation device for a functional slurry for fluorocarbon paint, including a base. The base is rectangular, and an arc-shaped embedding port is provided in the middle of the front end of the base. A pair of trapezoidal sliding grooves are symmetrically provided at the front end of the base, and the sliding grooves are respectively located on the left and right sides of the embedding port. Stirring structures are symmetrically arranged on the upper wall of the base. A lower discharge structure is communicated between the pair of stirring structures. A locking component is arranged in the middle of the front end of the upper wall of the base. The preparation device for the functional slurry for fluorocarbon paint further includes a pair of material pumps, a tray, two pairs of universal wheels, and a material barrel. The pair of material pumps are respectively fixedly arranged on the upper walls at the left and right ends of the base, and the material pumps are connected to the lower discharge structure through pipelines. The tray can be embedded in the embedding port. The two pairs of universal wheels are respectively equidistantly arranged on the lower wall of the tray. The material barrel is detachably placed on the tray, and the material barrel can be embedded in the embedding port. Among them, the stirring structure is used for rapid mixing, the lower discharge structure is used for discharging after mixing and connecting the two stirring structures to form a shunt mixing, and the locking component is used for fixing the material barrel.
[0005] Preferably, the stirring structure includes a bracket, a turning shaft, a first motor, a fixing ring, a stirring cylinder, a second motor, and a spiral blade rod; one end of the bracket is fixedly arranged on the upper wall of the base, close to the left end and on the left side of the sliding groove. The other end of the bracket is internally embedded with a bearing. One end of the turning shaft fixedly penetrates through the middle of the bearing at the other end of the bracket. The first motor is fixedly arranged on the other end of the bracket, and the driving end of the first motor is connected to one end of the turning shaft. The fixing ring is obliquely arranged on the other end of the turning shaft. One end of the stirring cylinder fixedly penetrates through the fixing ring, and the other end of the stirring cylinder is obliquely downward. One end of the stirring cylinder is internally embedded with a bearing, and the inner wall of the other end of the stirring cylinder is provided with threads. The second motor is fixedly arranged on one end of the stirring cylinder, and the driving end of the second motor fixedly penetrates through the middle of the bearing at one end of the stirring cylinder. The spiral blade rod is movably inserted into the stirring cylinder, and one end of the spiral blade rod is fixedly connected to the driving end of the second motor.
[0006] Preferably, the lower discharging structure includes a communicating box, a pair of communicating pipes, a pair of solenoid valves, and a lower discharging component; a lower discharging port is opened in the middle of the lower wall of the communicating box. One end of each of the pair of communicating pipes is obliquely arranged on the left and right side walls of the communicating box respectively, and the communicating pipes are communicated with the communicating box. The other end of each of the pair of communicating pipes is rotatably connected to the other end of the stirring cylinder respectively. One end of each of the pair of solenoid valves is fixedly arranged on the upper wall of the communicating box and is communicated with the communicating box. The lower discharging component is fixedly arranged on the rear side wall of the communicating box, and the lower discharging component seals the lower discharging port.
[0007] Preferably, the lower discharging component includes a first turning frame, a second turning frame, a hydraulic cylinder, a guiding box, and a sealing seat; one end of the first turning frame is fixedly arranged at the top of the rear side wall of the communicating box. Both the left and right ends of the first turning frame are T-shaped. The second turning frame is movably arranged on the first turning frame and is located below the first turning frame. One end of the hydraulic cylinder is movably embedded in the middle of the rear end of the first turning frame, and the telescopic end of the hydraulic cylinder is movably connected to the middle of the rear end of the second turning frame. The guiding box is of a semi-cylindrical structure. One end of the guiding box is fixedly arranged on the front end of the second turning frame. The width of the guiding box is greater than the lower discharging port. One end of the sealing seat is fixedly arranged on the lower wall of the guiding box and is close to one end. The other end of the sealing seat fits on the lower wall of the communicating box and is located at the position of the lower discharging port.
[0008] Preferably, the locking assembly includes an electric push rod, a tooth rack, a pair of sliding seats, a pair of gears, and a pair of clamping arms; the electric push rod is fixedly arranged on the upper wall at the rear end of the base and located in the middle, the tooth rack is concave, and tooth teeth are arranged on the opposite side walls at both ends of the tooth rack. The middle of the tooth rack is fixedly arranged on the telescopic end of the electric push rod, and both ends of the tooth rack are attached to the upper wall of the base. A pair of the sliding seats are respectively fixedly arranged on the lower walls at both ends of the tooth rack, and the sliding seats are movably inserted into the sliding grooves. A pair of the gears are respectively movably arranged on the upper wall of the base and located on the left and right sides of the insertion opening. A pair of the gears are respectively engaged with both ends of the tooth rack. A pair of the clamping arms are respectively fixedly arranged on the gears, and the clamping arms rotate through the gears.
[0009] Preferably, the material barrel is limited in the insertion opening by the relative flipping of the clamping arms.
[0010] Preferably, the discharge ends of the material pumps are respectively connected to the solenoid valves through pipelines, and feeding pipelines are arranged at the feeding ends of the material pumps.
[0011] Preferably, the other end of the diversion box is turned downward through a hydraulic cylinder, and the other end of the diversion box can be attached to the upper wall at the rear end of the material cylinder.
[0012] A preparation device for a functional slurry for fluorocarbon coatings proposed by the present invention has the beneficial effects that: through the symmetrical design of the stirring structure and the connection with the lower discharge structure, a V-shaped inner cavity is formed. When materials enter, they converge in the middle of the inner cavity; by flipping the inner cavity by 180 degrees to form an inverted V-shaped inner cavity, the materials are then dispersed at both ends to form a split flow. With the help of alternating flipping and shaking, a certain degree of mixing can be achieved; at the same time, the materials dispersed at both ends are accelerated and mixed by the rotation of the corresponding internal spiral leaf rods, and in combination with the flipping, the production mixing speed and uniformity of the materials are improved; at the same time, the mixed materials can also be guided through the lower discharge assembly directly into the material barrel for loading, realizing the function of automatic feeding; due to the above mixing characteristics, it is not only applicable to the mixing of liquid-liquid, liquid-powder, but also applicable to the mixing of powder-powder, which can meet the mixing requirements in coating production and improve the applicability of the equipment; in summary, the present invention has: 1. The materials are converged through the V-shaped inner cavity and then flipped 180° to form an inverted V shape, so that the materials are naturally dispersed under the action of gravity, improving the mixing uniformity. The dispersed materials are further intensively mixed by the rotation of the spiral leaf rods, reducing dead corners and ensuring the full fusion of different material liquids / powders. Combining the flipping and shaking with the rotation of the spiral leaf rods to form a dynamic mixing environment, which is more efficient than the traditional stirring method.
[0013] 2. It is not only applicable to the mixing of liquid-liquid and liquid-powder, but also can handle the mixing of powder-powder, meeting the diverse requirements in coating production, such as the mixing of resin, pigment, and filler in fluorocarbon coatings. It can reduce the sticking of materials to the wall, and the spiral leaf rods can break up agglomerates, being suitable for high-viscosity coatings or easily agglomerated powder materials.
[0014] 3. The mixed materials are directly diverted to the material bucket through the lower discharge component, reducing manual intervention, achieving continuous production, reducing the risk of cross-contamination. The V-shaped cavity and the flipping action make full use of gravity to disperse the materials, which is more energy-efficient than pure mechanical stirring. The multiple mixing mechanisms of convergence-dispersion-mechanical stirring ensure consistency between batches, especially for high-demand fluorocarbon coatings such as pigment dispersion and resin homogeneity. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the first assembly structure of the present invention; Figure 2 It is a schematic diagram of the second assembly structure of the present invention; Figure 3 It is a schematic diagram of the split structure of the stirring structure of the present invention; Figure 4 It is a schematic diagram of the split structure of the lower discharge structure of the present invention; Figure 5 It is a schematic diagram of the tray and the material bucket display structure of the present invention; Figure 6 It is a schematic diagram of the partial enlarged structure at A of the present invention.
[0016] In the figure: 1. Base, 2. Stirring structure, 21. Bracket, 22. Rotating shaft, 23. First motor, 24. Fixed ring, 25. Stirring cylinder, 26. Second motor, 27. Spiral leaf rod, 3. Lower discharge structure, 31. Connecting box, 32. Connecting pipe, 33. Solenoid valve, 34. Lower discharge component, 341. First flipping frame, 342. Second flipping frame, 343. Hydraulic cylinder, 344. Diversion box, 345. Sealing seat, 4. Locking component, 41. Electric push rod, 42. Tooth rack, 43. Slide seat, 44. Gear, 45. Clamping arm, 5. Feed pump, 6. Tray, 7. Universal wheel, 8. Material bucket, 10. Insertion port, 11. Sliding groove, 12. Lower discharge port. DETAILED DESCRIPTION OF THE INVENTION
[0017] The following will Figures 1-6 give a detailed description of the specific embodiments of the present invention.
[0018] As Figure 1As shown in the figure, the present invention provides a technical solution: a preparation device for a functional slurry for fluorocarbon coatings, including a base 1. The base 1 is rectangular, and an arc-shaped embedding opening 10 is provided in the middle of the front end of the base 1. A pair of trapezoidal sliding grooves 11 are symmetrically provided at the front end of the base 1, and the sliding grooves 11 are respectively located on the left and right sides of the embedding opening 10. A stirring structure 2 is symmetrically arranged on the upper wall of the base 1. A lower discharge structure 3 is communicated between a pair of the stirring structures 2. A locking component 4 is arranged in the middle of the front end of the upper wall of the base 1. The preparation device for the functional slurry for fluorocarbon coatings further includes a pair of material pumps 5, a tray 6, two pairs of universal wheels 7, and a material bucket 8. A pair of the material pumps 5 are respectively fixedly arranged on the upper walls at the left and right ends of the base 1, and the material pumps 5 are connected to the lower discharge structure 3 through pipelines. The tray 6 can be embedded in the embedding opening 10. Two pairs of the universal wheels 7 are respectively arranged equidistantly on the lower wall of the tray 6. The material bucket 8 is detachably placed on the tray 6, and the material bucket 8 can be embedded in the embedding opening 10. Among them, the stirring structure 2 is used for rapid mixing, the lower discharge structure 3 is used for discharging after mixing and connecting two stirring structures 2 to form a shunt mixing, and the locking component 4 is used for fixing the material bucket 8.
[0019] As a further solution of the present invention, the stirring structure 2 includes: a bracket 21, a turning shaft 22, a first motor 23, a fixing ring 24, a stirring cylinder 25, a second motor 26, and a spiral blade rod 27. One end of the bracket 21 is fixedly arranged on the upper wall of the base 1 and close to the left end and located on the left side of the sliding groove 11. The other end of the bracket 21 is internally embedded with a bearing. One end of the turning shaft 22 is fixedly penetrated through the middle of the bearing at the other end of the bracket 21. The first motor 23 is fixedly arranged on the other end of the bracket 21, and the driving end of the first motor 23 is connected to one end of the turning shaft 22. The fixing ring 24 is inclined and arranged on the other end of the turning shaft 22. One end of the stirring cylinder 25 is fixedly penetrated through the fixing ring 24, and the other end of the stirring cylinder 25 is inclined downward. A bearing is embedded in the middle of one end of the stirring cylinder 25, and a thread is arranged on the inner wall of the other end of the stirring cylinder 25. The second motor 26 is fixedly arranged on one end of the stirring cylinder 25, and the driving end of the second motor 26 is fixedly penetrated through the middle of the bearing at one end of the stirring cylinder 25. The spiral blade rod 27 is movably inserted into the stirring cylinder 25, and one end of the spiral blade rod 27 is fixedly connected to the driving end of the second motor 26. When the first motor 23 is started, the turning shaft 22 drives the fixing ring 24 and the stirring cylinder 25 to rotate around the bearing at the end of the bracket 21, realizing the switching of the 180° flipping of the stirring cylinder 25 between the positive V-shaped and inverted V-shaped postures. At the same time, the second motor 26 drives the spiral blade rod 27 to rotate, applying an axial thrust to the materials in the cylinder, and combining the gravity shunt of the materials with the mechanical stirring through the flipping action, significantly improving the mixing efficiency and uniformity.
[0020] As a further solution of the present invention, the lower discharge structure 3 includes: a communication box 31, two communication pipes 32, two solenoid valves 33 and a lower discharge assembly 34; a lower discharge port 12 is provided in the middle of the lower wall of the communication box 31, one end of a pair of the communication pipes 32 is respectively inclined and arranged on the left and right side walls of the communication box 31, and the communication pipes 32 are communicated with the communication box 31, the other ends of the pair of communication pipes 32 are respectively screwed on the other end of the stirring cylinder 25, one end of a pair of the solenoid valves 33 is respectively fixedly arranged on the upper wall of the communication box 31 and communicated with the communication box 31, the lower discharge assembly 34 is fixedly arranged on the rear side wall of the communication box 31, and the lower discharge assembly 34 seals the lower discharge port 12; during the material mixing process, the solenoid valves 33 control the flow rate and timing of the material entering the communication box 31 from the stirring cylinder 25 according to the set program; the sealing seat of the lower discharge assembly 34 remains in a sealed state to prevent the premature discharge of the material. When the mixing is completed, the control system issues an instruction, and the driving mechanism of the lower discharge assembly 34 acts to open the lower discharge port 12, and the mixed material flows out through the lower discharge port 12 under the action of gravity, realizing the discharge of the material. The design of the lower discharge structure 3 makes the mixing and discharge processes of the material more efficient and controllable, improving the production efficiency and product quality.
[0021] As a further solution of the present invention, the lower discharge assembly 34 includes: a first flipping frame 341, a second flipping frame 342, a hydraulic cylinder 343, a diversion box 344 and a sealing seat 345; one end of the first flipping frame 341 is fixedly arranged at the top of the rear side wall of the communication box 31, both the left and right ends of the first flipping frame 341 are T-shaped, the second flipping frame 342 is movably arranged on the first flipping frame 341 and is located below the first flipping frame 341, one end of the hydraulic cylinder 343 is movably embedded in the middle of the rear end of the first flipping frame 341, and the telescopic end of the hydraulic cylinder 343 is movably connected to the middle of the rear end of the second flipping frame 342, the diversion box 344 is of a semi-cylindrical structure, one end of the diversion box 344 is fixedly arranged on the front end of the second flipping frame 342, the width of the diversion box 344 is greater than that of the lower discharge port 12, one end of the sealing seat 345 is fixedly arranged on the lower wall of the diversion box 344 and is close to one end, and the other end of the sealing seat 345 fits on the lower wall of the communication box 31 and is located at the position of the lower discharge port 12; during the material mixing stage, the hydraulic cylinder 343 is in an extended state, at this time the second flipping frame 342 drives the diversion box 344 and the sealing seat 345 to move upward, so that the sealing seat 345 closely fits at the lower discharge port 12 on the lower wall of the communication box 31, realizing the sealing of the lower discharge port 12; when the material needs to be discharged after the mixing is completed, the piston rod of the hydraulic cylinder 343 contracts, driving the second flipping frame 342 to flip downward, so that the sealing seat 345 leaves the lower discharge port 12, the lower discharge port 12 is opened, and the mixed material flows into the diversion box 344 under the action of gravity and is guided to a specified collection container through the diversion box 344, completing the discharge process of the material; this design enables the lower discharge assembly 34 to accurately control the discharge timing and flow direction of the material, improving the use efficiency and reliability of the equipment.
[0022] As a further solution of the present invention, the locking assembly 4 includes: an electric push rod 41, a tooth rack 42, a pair of sliding seats 43, a pair of gears 44 and a pair of clamping arms 45; the electric push rod 41 is fixedly arranged on the upper wall at the rear end of the base 1 and located in the middle, the tooth rack 42 is concave, and tooth teeth are arranged on the opposite side walls at both ends of the tooth rack 42. The middle of the tooth rack 42 is fixedly arranged on the telescopic end of the electric push rod 41, and both ends of the tooth rack 42 are in contact with the upper wall of the base 1. A pair of the sliding seats 43 are respectively fixedly arranged on the lower walls at both ends of the tooth rack 42, and the sliding seats 43 are movably inserted into the sliding grooves 11. A pair of the gears 44 are respectively movably arranged on the upper wall of the base 1 and located on the left and right sides of the insertion opening 10. A pair of the gears 44 are respectively engaged with both ends of the tooth rack 42. A pair of the clamping arms 45 are respectively fixedly arranged on the gears 44, and the clamping arms 45 rotate through the gears 44; before the equipment starts to work, place the material barrel at the insertion opening 10 of the base 1, and then start the electric push rod 41 to make its telescopic end extend, driving the tooth rack 42 to move forward. Due to the engagement between the tooth rack 42 and the gears 44, the gears 44 start to rotate, and then drive the clamping arms 45 to rotate inward until the clamping arms 45 tightly clamp the material barrel, ensuring that the material barrel will not shake or displace during the material mixing process; when the material mixing is completed and the material barrel needs to be taken out, start the electric push rod 41 to make its telescopic end contract, driving the tooth rack 42 to move backward, the gears 44 rotate in the reverse direction, and the clamping arms 45 rotate outward to release the material barrel for taking out the material barrel; this design of the locking assembly 4 can realize the rapid and stable clamping and loosening of the material barrel, improving the use efficiency and reliability of the equipment.
[0023] As a further solution of the present invention, the material barrel 8 is limited in the insertion opening 10 by the relative flipping of the clamping arms 45 for the use of limiting and fixing requirements.
[0024] As a further solution of the present invention, the discharge ends of the pumps are respectively connected to the solenoid valves 33 through pipelines, and feeding pipelines are arranged at the feeding ends of the material pumps 5 for the design of feeding connection use.
[0025] As a further solution of the present invention, the other end of the diversion box 344 is turned downward through the hydraulic cylinder 343, and the other end of the diversion box 344 can be attached to the upper wall at the rear end of the material cylinder for the demand of automatic feeding.
[0026] The detailed connection means are well-known techniques in the art. The following mainly introduces the working principle and process, and the specific work is as follows.
[0027] Through the stable support of the base 1, the material pumps 5 of the equipment are respectively connected to the corresponding feeding pipelines for the material pumps 5 to extract the corresponding materials, and the materials are supplied to the communication box 31 through the closing of the solenoid valves 33; After the material enters the connecting box 31 in the lower row structure 3, since the lower row structure 3 connects the two stirring structures 2 in a butt joint to form a V-shaped inner cavity effect, when the connecting box 31 is located below, the inner cavity is a positive V shape, and thus the materials converge in the connecting box 31. When the connecting box 31 is full, the materials will evenly enter the connecting pipes 32 on both sides and the stirring cylinder 25, and the liquid levels are kept flat. The first motor 23 on the driving bracket 21 drives the turning shaft 22 to rotate, and then through the connection of the fixing ring 24, the two stirring structures 2 are synchronously turned over and drive the lower row structure 3 to turn over 180 degrees, so that the inner cavity forms an inverted V shape. Then the materials converging in the middle will flow into the stirring cylinders 25 at both ends, and the second motor 26 is driven to drive the spiral blade rod 27 to rotate to stir and accelerate the mixed and shunted materials, improving the mixing speed. The rotation of the spiral blade rod 27 and the alternating turning over of the V-shaped inner cavity, with the impact and shunting of gravity convection, further improve the mixing speed and uniformity. During the material mixing process, the solenoid valve 33 needs to be closed to prevent backflow; after the materials are mixed, the hydraulic cylinder 343 in the lower row assembly 34 contracts to drive the second turning frame 342 to turn over on the first turning frame 341, so that the sealing seat 345 provided at one end of the diversion box 344 descends to open the lower discharge port 12. At the same time, the other end of the diversion box 344 turns downward and fits on the upper wall at the rear end of the material bucket 8, so that the materials flow out and are diverted into the material bucket 8 to complete the unloading after being loaded. After discharging the materials, the electric push rod 41 in the locking assembly 4 is driven to contract, and the tooth rack 42 moves backward to the rear end of the base 1 in the sliding groove 11 by means of the sliding seat 43. The movement of the tooth rack 42 engages with the gear 44 to drive the clamping arm 45 above the gear 44 to turn over in the opposite direction to open, unlocking the material bucket 8, and then the material bucket 8 can be removed from the embedding port 10. When using it again, the material bucket 8 is placed in the embedding port 10, or the material bucket 8 is placed on the pallet. It is moved through the universal wheels 7, and the pallet 6 and the material bucket 8 are both clamped into the embedding port 10. Then the electric push rod 41 is driven to extend, and the clamping arm 45 is turned over relatively for clamping and limiting to fix it. During the movement after the material bucket 8 is loaded, it can be moved by means of the universal wheels 7 to save manpower.
[0028] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A device for preparing functional slurry for fluorocarbon coating, characterized in that: The invention comprises a base (1), wherein the base (1) is rectangular, and an arc-shaped embedding opening (10) is provided in the middle of the front end of the base (1), and a pair of trapezoidal sliding grooves (11) are symmetrically provided in the front end of the base (1), and the sliding grooves (11) are respectively located on the left and right sides of the embedding opening (10), and stirring structures (2) are symmetrically provided on the upper wall of the base (1), and a lower row structure (3) is provided between the pair of stirring structures (2), and a locking assembly (4) is provided in the middle of the front end of the upper wall of the base (1); The device for preparing the functional slurry for fluorocarbon coatings further comprises a pair of material pumps (5), a tray (6), two pairs of universal wheels (7) and a material barrel (8); A pair of the material pumps (5) are respectively fixedly arranged on the upper walls at the left and right ends of the base (1), and the material pumps (5) are connected to the lower row structure (3) through a pipeline. The tray (6) can be embedded in the embedding opening (10). The two pairs of universal wheels (7) are respectively equidistantly arranged on the lower wall of the tray (6). The material barrel (8) can be detachably arranged on the tray (6), and the material barrel (8) can be embedded in the embedding opening (10). The stirring structure (2) is used for rapid mixing, the lower row structure (3) is used for discharging after mixing and connecting the two stirring structures (2) to form divisible mixing, and the locking assembly (4) is used to fix the barrel (8).
2. The device for preparing a functional slurry for fluorocarbon coating according to claim 1, characterized in that: The stirring structure (2) comprises a bracket (21), a turning shaft (22), a first motor (23), a fixing ring (24), a stirring cylinder (25), a second motor (26) and a spiral blade rod (27); One end of the bracket (21) is fixedly arranged on the upper wall of the base (1) and is close to the left end and located on the left side of the sliding groove (11); the other end of the bracket (21) is embedded with a bearing; one end of the flip shaft (22) is fixedly passed through the middle of the bearing at the other end of the bracket (21); the first motor (23) is fixedly arranged on the other end of the bracket (21) and the driving end of the first motor (23) is connected to one end of the flip shaft (22); the fixing ring (24) is obliquely arranged on the other end of the flip shaft (22); one end of the stirring cylinder (25) The stirring cylinder (25) is fixedly passed through the fixing ring (24), and the other end of the stirring cylinder (25) is tilted downward, a bearing is embedded in the middle of one end of the stirring cylinder (25), and the inner wall of the other end of the stirring cylinder (25) is provided with a thread, the second motor (26) is fixedly arranged on one end of the stirring cylinder (25), and the driving end of the second motor (26) is fixedly passed through the middle of the bearing at one end of the stirring cylinder (25), the spiral blade rod (27) is movably inserted in the stirring cylinder (25), and one end of the spiral blade rod (27) is fixedly connected to the driving end of the second motor (26).
3. The device for preparing a functional slurry for fluorocarbon coating according to claim 1, characterized in that: The lower row structure (3) comprises a connecting box (31), a pair of connecting pipes (32), a pair of solenoid valves (33) and a lower row component (34); A lower discharge port (12) is provided in the middle of the lower wall of the connecting box (31); one end of a pair of connecting pipes (32) are respectively arranged obliquely on the left and right side walls of the connecting box (31), and the connecting pipes (32) are connected to the connecting box (31); the other ends of the pair of connecting pipes (32) are respectively screwed to the other end of the stirring cylinder (25); one end of a pair of solenoid valves (33) are respectively fixedly arranged on the upper wall of the connecting box (31) and are connected to the connecting box (31); the lower discharge assembly (34) is fixedly arranged on the rear side wall of the connecting box (31), and the lower discharge port (12) is sealed by the lower discharge assembly (34).
4. The device for preparing a functional slurry for fluorocarbon coating according to claim 3, characterized in that: The lower row assembly (34) comprises a first turning frame (341), a second turning frame (342), a hydraulic cylinder (343), a guide box (344) and a sealing seat (345); One end of the first flip frame (341) is fixedly arranged on the top of the rear side wall of the connecting box (31); both left and right ends of the first flip frame (341) are T-shaped; the second flip frame (342) is movably arranged on the first flip frame (341) and is located below the first flip frame (341); one end of the hydraulic cylinder (343) is movably embedded in the middle of the rear end of the first flip frame (341); and the telescopic end of the hydraulic cylinder (343) is movably connected to the middle of the rear end of the second flip frame (342); the guide box (344) is a semi-cylindrical structure; one end of the guide box (344) is fixedly arranged on the front end of the second flip frame (342); the width of the guide box (344) is greater than the lower outlet (12); one end of the sealing seat (345) is fixedly arranged on the lower wall of the guide box (344) and is close to one end; the other end of the sealing seat (345) is attached to the lower wall of the connecting box (31) and is located at the lower outlet (12).
5. The device for preparing a functional slurry for fluorocarbon coating according to claim 1, characterized in that: The locking assembly (4) comprises an electric push rod (41), a gear rack (42), a pair of slide seats (43), a pair of gears (44) and a pair of clamping arms (45); The electric push rod (41) is fixedly arranged on the rear end upper wall of the base (1) and is located in the middle part. The gear rack (42) is concave, and teeth are arranged on opposite side walls at both ends of the gear rack (42). The middle part of the gear rack (42) is fixedly arranged on the telescopic end of the electric push rod (41), and the two ends of the gear rack (42) are in contact with the upper wall of the base (1). A pair of slide seats (43) are respectively fixedly arranged on the lower walls at both ends of the gear rack (42), and the slide seats (43) are movably inserted into the sliding groove (11). A pair of gears (44) are respectively movably arranged on the upper wall of the base (1) and are located on the left and right sides of the embedding opening (10). A pair of gears (44) are respectively engaged with the two ends of the gear rack (42). A pair of clamping arms (45) are respectively fixedly arranged on the gears (44), and the clamping arms (45) are rotated through the gears (44).
6. The device for preparing a functional slurry for fluorocarbon coating according to claim 4, characterized in that: The material barrel (8) is positioned in the insertion opening (10) by relatively turning over the clamping arms (45).
7. The device for preparing a functional slurry for fluorocarbon coating according to claim 3, characterized in that: The discharge ends of the material pumps (5) are connected to the electromagnetic valves (33) via pipelines, and the feed ends of the material pumps (5) are provided with feed pipelines.
8. The device for preparing a functional slurry for fluorocarbon coating according to claim 4, characterized in that: The other end of the guide box (344) is turned downward by the hydraulic cylinder (343), and the other end of the guide box (344) can be attached to the upper wall of the rear end of the barrel.