Quantitative feeding reaction kettle for producing fingerprint-resistant liquid
By designing filter mesh, slope, stirring paddle, vibration motor, scraper and return components in the quantitative feeding reactor for fingerprint-resistant liquid production, the problem of insufficient screening of large-particle materials is solved, efficient screening of raw materials and full utilization of resources is achieved, and the reaction effect and stability of the reactor are improved.
Patent Information
- Application Number
- CN202421863110.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-02
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-02
AI Technical Summary
The existing quantitative feeding reactor for fingerprint-resistant liquid production cannot effectively treat large-particle materials, resulting in insufficient screening and accumulation of agglomerated materials, which affects the use efficiency.
A quantitative feeding reactor including a filter and a slope is designed. The raw materials fall along the filter and are screened under the action of gravity. Combined with the use of a stirring paddle and a vibration motor, the screening effect is improved, and the secondary screening and full utilization of the raw materials are achieved through the design of scrapers and return components.
It effectively improves the fineness of the screening of raw materials and improves the reaction effect. Through the design of secondary screening and return components, it makes full use of resources, reduces vibration transmission, and improves the stability of the reactor.
Smart Images

Figure CN223027281U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of reactor equipment, and particularly relates to a quantitative feeding reactor for producing fingerprint-resistant liquid. Background Technique
[0002] Fingerprint-resistant liquid is a special liquid product used for surface treatment to enhance the fingerprint resistance of materials, improve their appearance quality and durability. During the production process, a quantitative feeding reactor is required to precisely control the ratio of raw materials and reaction conditions to ensure product quality and production efficiency. Therefore, a quantitative feeding reactor for producing fingerprint-resistant liquid is needed.
[0003] Chinese Utility Model Patent Publication No.: CN 217016553 U, discloses: a quantitative feeding reactor. This quantitative feeding reactor filters out large-particle materials while quantitatively feeding, increasing the reaction speed. Soft materials are used to connect each device to prevent mutual influence between the front and rear devices. However, after filtering out large-particle materials, this quantitative feeding reactor cannot perform secondary sieving, cannot make full use of them, some agglomerated materials accumulate on the sieve mesh, and vibration cannot shake the materials off, affecting the use efficiency. Summary of the Invention
[0004] The technical problem to be solved by the utility model is to provide a quantitative feeding reactor for producing fingerprint-resistant liquid, which can effectively solve the problems in the prior art.
[0005] The technical solution adopted by the utility model is: a quantitative feeding reactor for producing fingerprint-resistant liquid, including a reactor body. A bracket is fixedly connected to the outside of the reactor body. An under-support frame is fixedly connected to the upper end of the bracket. A spring is fixedly connected to the upper end of the under-support frame. An upper-support frame is fixedly connected to the upper end of the spring. A top frame is fixedly connected to the upper end of the upper-support frame. A feed bin is fixedly connected to the front end of the top frame. A slope is fixedly connected inside the feed bin. A filter screen is arranged at the upper end of the slope. A feed pipe and a motor one are fixedly connected to the upper end of the feed bin. A stirring paddle is fixedly connected to the output end of the motor one. A cylinder is fixedly connected to the left side of the feed bin. A scraper is fixedly connected to the output end of the cylinder. A return material assembly is fixedly connected to the right side of the feed bin. A quantitative assembly one, a quantitative assembly two, and a quantitative assembly three are fixedly connected to the lower end of the feed bin. A vibration motor is fixedly connected to the rear end of the top frame;
[0006] The return material assembly includes a return material pipe, a motor two, a spiral shovel, a blanking pipe, and a feeding pipe. A motor two is fixedly connected to the front end of the return material pipe. A spiral shovel is fixedly connected to the output end of the motor two. A blanking pipe is fixedly connected to the upper end of the return material pipe. A feeding pipe is fixedly connected to the rear end of the blanking pipe;
[0007] The first metering component includes a metering bin, a top groove, a bottom groove, a discharge pipe, an observation window, a first electric push rod, a first plug board, a second electric push rod and a second plug board. A top groove and a bottom groove are formed at the rear end of the metering bin. The lower end of the metering bin is fixedly connected with a discharge pipe. An observation window is arranged at the front end of the metering bin. A first electric push rod and a second electric push rod are arranged behind the first metering component. The output end of the first electric push rod is fixedly connected with a first plug board. The output end of the second electric push rod is fixedly connected with a second plug board.
[0008] Preferably, the filter screen is parallel to the slope, and the stirring paddle is arranged above the filter screen.
[0009] Through the above technical solution, a filter screen and a slope are provided. When feeding materials, the raw materials are injected from the feed pipe and fall along the filter screen under the action of gravity. During this process, the raw materials become finer after sieving, improving the reaction effect. A stirring paddle and a vibration motor are provided. The stirring paddle is started to stir the raw materials, and the vibration motor is started to generate an exciting force and conduct it to the material bin, improving the sieving effect.
[0010] Preferably, the length of the scraper is equal to the length of the filter screen, and the scraper is made of polytetrafluoroethylene material.
[0011] Through the above technical solution, a scraper is provided. The cylinder is started to drive the scraper to scrape along the filter screen, scraping the raw materials on the filter screen and entering the return material component for recycling.
[0012] Preferably, the material bin is communicated with the feeding pipe, and the output end of the feeding pipe is communicated with the material bin.
[0013] Through the above technical solution, the raw materials enter the return pipe. The first motor is started to drive the stirring paddle to rotate, pushing the raw materials and returning them to the material bin through the feeding pipe for secondary sieving, improving the use effect.
[0014] Preferably, the first plug board is inserted and connected with the top groove, and the second plug board is inserted and connected with the bottom groove.
[0015] Through the above technical solution, a first plug board and a second plug board are provided. The space formed by the first plug board, the second plug board and the metering bin is the metering volume. Thus, metering feeding is carried out. When carrying out metering feeding, first start the second electric push rod to insert the second plug board into the metering bin. The raw materials fill the metering bin. Observe the situation in the bin through the observation window. Start the first electric push rod to insert the first plug board into the metering bin. Start the second electric push rod to move the second plug board backward. The raw materials are discharged into the reaction kettle body from the discharge pipe. Repeat this process. The amount of each feeding is a constant value, which is convenient for statistics.
[0016] Preferably, the second metering component and the third metering component have the same structure as the first metering component, but the volume of the first metering component is lower than the volumes of the second metering component and the third metering component.
[0017] Through the above technical solution, a quantitative component II and a quantitative component III are provided, which cooperate with the quantitative component I to set three volume amounts for easy selection and use.
[0018] Preferably, there are four identical groups of the lower support frame, the spring and the upper support frame.
[0019] Through the above technical solution, a lower support frame, a spring and an upper support frame are provided. The bracket is softly connected to the upper support frame to reduce the transmission of vibration and improve the stability of the reactor body.
[0020] Compared with the prior art, the present utility model provides a quantitative feeding reactor for producing fingerprint-resistant liquid, which has the following beneficial effects:
[0021] 1. For the quantitative feeding reactor for producing fingerprint-resistant liquid, a filter screen and a slope are provided. When feeding materials, the raw materials are injected from the feed pipe. Under the action of gravity, the raw materials fall along the filter screen. During this process, the raw materials become finer after sieving, improving the reaction effect. A stirring paddle and a vibration motor are provided. The stirring paddle is started to stir the raw materials, and the vibration motor is started to generate an exciting force and conduct it to the material bin to improve the sieving effect. A scraper is provided. The cylinder is started to drive the scraper to scrape along the filter screen to scrape off the raw materials on the filter screen and enter the return material assembly for recovery. The raw materials enter the return pipe, and the motor I is started to drive the stirring paddle to rotate to push the raw materials and return them to the material bin through the feeding pipe for secondary sieving, making full use of resources. A lower support frame, a spring and an upper support frame are provided. The bracket is softly connected to the upper support frame to reduce the transmission of vibration and improve the stability of the reactor body;
[0022] 2. For the quantitative feeding reactor for producing fingerprint-resistant liquid, a plug board I and a plug board II are provided. The space formed by the plug board I, the plug board II and the quantitative bin is the quantitative volume, and thus quantitative feeding is carried out. When carrying out quantitative feeding, first start the electric push rod II to insert the plug board II into the quantitative bin. The raw materials fill the quantitative bin. The situation inside the bin is observed through the observation window. Then start the electric push rod I to insert the plug board I into the quantitative bin. Start the electric push rod II to move the plug board II backward. The raw materials are discharged into the reactor body from the discharge pipe. Repeat this process. The amount of each feeding is a constant value, which is convenient for statistics. A quantitative component II and a quantitative component III are provided, which cooperate with the quantitative component I to set three volume amounts for easy selection and use. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 Schematic three-dimensional structure of the present utility model Figure 1 ;
[0024] Figure 2 Schematic three-dimensional structure of the present utility model Figure 2 ;
[0025] Figure 3 Schematic enlarged structure of the top frame and the material bin of the present utility modelFigure 1 ;
[0026] Figure 4 Schematic diagram of the split structure of the silo and the material return assembly of the present utility model Figure 1 ;
[0027] Figure 5 Schematic diagram of the split structure of the silo and the material return assembly of the present utility model Figure 2 ;
[0028] Figure 6 Schematic diagram of the split structure of the first quantitative assembly of the present utility model.
[0029] Wherein: 1. Reactor body; 2. Support; 3. Lower support frame; 4. Spring; 5. Upper support frame; 6. Top frame; 7. Silo; 8. Slope; 9. Filter screen; 10. Feed pipe; 11. Motor I; 12. Stirring paddle; 13. Cylinder; 14. Scraper; 15. Material return assembly; 1501. Material return pipe; 1502. Motor II; 1503. Spiral shovel; 1504. Feed pipe; 1505. Loading pipe; 16. First quantitative assembly; 1601. Quantitative bin; 1602. Top groove; 1603. Bottom groove; 1604. Discharge pipe; 1605. Observation window; 1606. Electric push rod I; 1607. Plug board I; 1608. Electric push rod II; 1609. Plug board II; 17. Second quantitative assembly; 18. Third quantitative assembly; 19. Vibration motor. Specific embodiments
[0030] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0031] Example 1: As Figures 1-6As shown in the figure, a quantitative feeding reactor for producing fingerprint-resistant liquid provided by the utility model includes a reactor body 1. A bracket 2 is fixedly connected to the outside of the reactor body 1. An under-support frame 3 is fixedly connected to the upper end of the bracket 2. A spring 4 is fixedly connected to the upper end of the under-support frame 3. An upper-support frame 5 is fixedly connected to the upper end of the spring 4. A top frame 6 is fixedly connected to the upper end of the upper-support frame 5. A feed bin 7 is fixedly connected to the front end of the top frame 6. A slope 8 is fixedly connected inside the feed bin 7. A filter screen 9 is arranged at the upper end of the slope 8. A feed pipe 10 and a first motor 11 are fixedly connected to the upper end of the feed bin 7. A stirring paddle 12 is fixedly connected to the output end of the first motor 11. A cylinder 13 is fixedly connected to the left side of the feed bin 7. A scraper 14 is fixedly connected to the output end of the cylinder 13. A material return assembly 15 is fixedly connected to the right side of the feed bin 7. A first quantitative assembly 16, a second quantitative assembly 17 and a third quantitative assembly 18 are fixedly connected to the lower end of the feed bin 7. A vibration motor 19 is fixedly connected to the rear end of the top frame 6;
[0032] The material return assembly 15 includes a material return pipe 1501, a second motor 1502, a spiral shovel 1503, a blanking pipe 1504 and a feeding pipe 1505. A second motor 1502 is fixedly connected to the front end of the material return pipe 1501. A spiral shovel 1503 is fixedly connected to the output end of the second motor 1502. A blanking pipe 1504 is fixedly connected to the upper end of the material return pipe 1501. A feeding pipe 1505 is fixedly connected to the rear end of the blanking pipe 1504;
[0033] The first quantitative assembly 16 includes a quantitative bin 1601, a top groove 1602, a bottom groove 1603, a discharge pipe 1604, an observation window 1605, a first electric push rod 1606, a first plug board 1607, a second electric push rod 1608 and a second plug board 1609. A top groove 1602 and a bottom groove 1603 are opened at the rear end of the quantitative bin 1601. A discharge pipe 1604 is fixedly connected to the lower end of the quantitative bin 1601. An observation window 1605 is arranged at the front end of the quantitative bin 1601. A first electric push rod 1606 and a second electric push rod 1608 are arranged behind the first quantitative assembly 16. A first plug board 1607 is fixedly connected to the output end of the first electric push rod 1606. A second plug board 1609 is fixedly connected to the output end of the second electric push rod 1608.
[0034] Specifically, the filter screen 9 is parallel to the slope 8, and the stirring paddle 12 is arranged above the filter screen 9. The advantages are that the filter screen 9 and the slope 8 are provided. When feeding materials, the raw materials are injected from the feed pipe 10, and the raw materials fall along the filter screen 9 under the action of gravity. During this process, the raw materials become finer after sieving, improving the reaction effect. The stirring paddle 12 and the vibration motor 19 are provided. The stirring paddle 12 is started to stir the raw materials, and the vibration motor 19 is started to generate an exciting force and conduct it into the feed bin 7, improving the sieving effect.
[0035] Specifically, the length of the squeegee 14 is equal to the length of the filter screen 9, and the squeegee 14 is made of polytetrafluoroethylene material. The advantage is that the squeegee 14 is provided. The starting cylinder 13 drives the squeegee 14 to scrape along the filter screen 9, scraping the raw materials on the filter screen 9 and entering the return material assembly 15 for recycling.
[0036] Specifically, the storage bin 7 is in communication with the feeding pipe 1504, and the output end of the feeding pipe 1505 is in communication with the storage bin 7. The advantage is that the raw materials enter the return pipe 1501. The starting motor one 11 drives the stirring paddle 12 to rotate, pushing the raw materials and returning them to the storage bin 7 through the feeding pipe 1505 for secondary sieving, improving the use effect.
[0037] Embodiment 2: As Figures 2-6 shown, as an improvement over the previous embodiment.
[0038] Specifically, the first plug board 1607 is plugged and connected to the top groove 1602, and the second plug board 1609 is plugged and connected to the bottom groove 1603. The advantage is that the first plug board 1607 and the second plug board 1609 are provided. The space formed by the first plug board 1607, the second plug board 1609 and the metering bin 1601 is the metering volume. Thus, for metering feeding, first start the second electric push rod 1608 to insert the second plug board 1609 into the metering bin 1601. When the raw materials fill the metering bin 1601, observe the situation inside the bin through the observation window 1605. Start the first electric push rod 1606 to insert the first plug board 1607 into the metering bin 1601. Start the second electric push rod 1608 to move the second plug board 1609 backward. The raw materials are discharged into the reaction kettle body 1 from the discharge pipe 1604. Repeat this process, and the amount of each feeding is a constant value, which is convenient for statistics.
[0039] Specifically, the second metering assembly 17 and the third metering assembly 18 have the same structure as the first metering assembly 16, but the volume of the first metering assembly 16 is lower than that of the second metering assembly 17 and the third metering assembly 18. The advantage is that the second metering assembly 17 and the third metering assembly 18 are provided and cooperate with the first metering assembly 16 to set three volume amounts, which is convenient for selection and use.
[0040] Specifically, there are four identical sets of the lower support frame 3, the spring 4 and the upper support frame 5. The advantage is that the lower support frame 3, the spring 4 and the upper support frame 5 are provided. The support 2 and the upper support frame 5 are in soft connection, reducing the transmission of vibration and improving the stability of the reaction kettle body 1.
[0041] Working principle: When feeding, raw materials are injected from the feed pipe 10. Under the action of gravity, the raw materials fall along the filter screen 9. During this process, the raw materials become finer after sieving, improving the reaction effect. Then, the stirring paddle 12 is started to stir the raw materials. The vibration motor 19 is started to generate an exciting force and conduct it to the bin 7 to improve the sieving effect. A scraper 14 is provided. The air cylinder 13 is started to drive the scraper 14 to scrape along the filter screen 9, scraping the raw materials on the filter screen 9 and sending them into the return material assembly 15 for recycling. The raw materials enter the return material pipe 1501. The motor 11 is started to drive the stirring paddle 12 to rotate, pushing the raw materials and returning them to the bin 7 through the feeding pipe 1505 for secondary sieving, making full use of resources. A first plug plate 1607 and a second plug plate 1609 are provided. The space formed by the first plug plate 1607, the second plug plate 1609 and the metering bin 1601 is the metering volume, and thus metering feeding is carried out. When carrying out metering feeding, first start the second electric push rod 1608 to insert the second plug plate 1609 into the metering bin 1601. The metering bin 1601 is filled with raw materials. The situation inside the bin is observed through the observation window 1605. Then start the first electric push rod 1606 to insert the first plug plate 1607 into the metering bin 1601. Start the second electric push rod 1608 to move the second plug plate 1609 backward. The raw materials are discharged into the reaction kettle body 1 from the discharge pipe 1604. Repeat this process, and the amount of each feeding is a constant value, which is convenient for statistics. A second metering component 17 and a third metering component 18 are provided, which cooperate with the first metering component 16 to set three volume amounts for easy selection and use.
[0042] 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 quantitative feeding reactor for producing anti-fingerprint liquid, comprising a reactor body (1), characterized in that: The outside of the reactor body (1) is fixedly connected to a bracket (2); the upper end of the bracket (2) is fixedly connected to a lower bracket (3); the upper end of the lower bracket (3) is fixedly connected to a spring (4); the upper end of the spring (4) is fixedly connected to an upper bracket (5); the upper end of the upper bracket (5) is fixedly connected to a top bracket (6); the front end of the top bracket (6) is fixedly connected to a silo (7); the interior of the silo (7) is fixedly connected to a slope (8); the upper end of the slope (8) is provided with a filter screen (9); the upper end of the silo (7) is fixedly connected to a filter screen (9); A feed pipe (10) and a motor 1 (11) are connected, the output end of the motor 1 (11) is fixedly connected to a stirring paddle (12), the left side of the silo (7) is fixedly connected to a cylinder (13), the output end of the cylinder (13) is fixedly connected to a scraper (14), the right side of the silo (7) is fixedly connected to a return component (15), the lower end of the silo (7) is fixedly connected to a quantitative component 1 (16), a quantitative component 2 (17) and a quantitative component 3 (18), and the rear end of the top frame (6) is fixedly connected to a vibration motor (19); The return material assembly (15) comprises a return material pipe (1501), a second motor (1502), a spiral shovel (1503), a feed pipe (1504) and a feed pipe (1505); the front end of the return material pipe (1501) is fixedly connected to the second motor (1502); the output end of the second motor (1502) is fixedly connected to the spiral shovel (1503); the upper end of the return material pipe (1501) is fixedly connected to the feed pipe (1504); and the rear end of the feed pipe (1504) is fixedly connected to the feed pipe (1505); The quantitative component 1 (16) comprises a quantitative bin (1601), a top groove (1602), a bottom groove (1603), a discharge pipe (1604), an observation window (1605), an electric push rod 1 (1606), a plug board 1 (1607), an electric push rod 2 (1608) and a plug board 2 (1609). The top groove (1602) and the bottom groove (1603) are formed at the rear end of the quantitative bin (1601). 01) is fixedly connected to a discharge pipe (1604) at the lower end, an observation window (1605) is provided at the front end of the quantitative bin (1601), an electric push rod 1 (1606) and an electric push rod 2 (1608) are provided at the rear of the quantitative component 1 (16), the output end of the electric push rod 1 (1606) is fixedly connected to a plug plate 1 (1607), and the output end of the electric push rod 2 (1608) is fixedly connected to a plug plate 2 (1609).
2. The quantitative feeding reactor for producing anti-fingerprint liquid according to claim 1, characterized in that: The filter screen (9) and the slope (8) are parallel to each other, and the stirring paddle (12) is arranged above the filter screen (9).
3. The quantitative feeding reactor for producing anti-fingerprint liquid according to claim 1, characterized in that: The length of the scraper (14) is equal to the length of the filter screen (9), and the scraper (14) is made of polytetrafluoroethylene material.
4. The quantitative feeding reactor for producing anti-fingerprint liquid according to claim 1, characterized in that: The silo (7) is in communication with the lower feeding pipe (1504), and the output end of the upper feeding pipe (1505) is in communication with the silo (7).
5. The quantitative feeding reactor for producing anti-fingerprint liquid according to claim 1, characterized in that: The plug board 1 (1607) is plug-connected with the top slot (1602), and the plug board 2 (1609) is plug-connected with the bottom slot (1603).
6. The quantitative feeding reactor for producing anti-fingerprint liquid according to claim 1, characterized in that: The quantitative component 2 (17) and the quantitative component 3 (18) have the same structure as the quantitative component 1 (16), but the volume of the quantitative component 1 (16) is lower than the volume of the quantitative component 2 (17) and the quantitative component 3 (18).
7. The quantitative feeding reactor for producing anti-fingerprint liquid according to claim 1, characterized in that: The lower support frame (3), the spring (4) and the upper support frame (5) are provided in four identical groups.
Citation Information
Patent Citations
Quantitative feeding reaction kettle
CN217016553U