Cloud intelligent control full-automatic dosing detection device

By using a dosing tank and liquid seal pipe structure, the problems of gas overflow and backflow during time-segmented dosing in traditional dosing devices are solved, achieving stable dosing, extending equipment life, and reducing operating costs.

CN223887963UActive Publication Date: 2026-02-10SHENZHEN NANFENG WATER TREATMENT SERVICE
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Patent Information

Application Number
CN202520415920.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-02-10
Estimated Expiration
2035-03-11

AI Technical Summary

Technical Problem

Traditional dosing detection devices are prone to causing harmful gas spills and temperature changes when adding chemicals multiple times at different times. Furthermore, gases produced by chemical reactions may flow back and affect the chemicals, leading to a shortened equipment lifespan and compromised chemicals.

Method used

The design incorporates a dosing tank and a liquid seal pipe structure. The dosing tank allows for timed dosing without opening the reaction vessel, while the liquid seal pipe prevents gas backflow, maintains a stable temperature inside the reaction vessel, and prevents gas overflow and backflow.

Benefits of technology

This allows for multiple additions of chemicals without opening the reaction vessel, preventing harmful gas spillage and backflow, extending equipment life, maintaining chemical effectiveness, and reducing operating costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a cloud intelligent control full-automatic dosing detection device which comprises a reaction tank, the reaction tank is provided with a support frame, the reaction tank is provided with a feed port and a discharge port, and the reaction tank is provided with a mixing component; the reaction tank is provided with a dosing tank, the dosing tank is provided with a mounting groove, the mounting groove is provided with a dosing bottle, the mounting groove is connected with a vertical pipe, and the vertical pipe is connected with a guide pipe; a motor is installed on the dosing box, a rotating rod is installed at the power output end of the motor, a driving bevel gear is installed on the rotating rod, a threaded rod is installed on the vertical pipe, a driven bevel gear meshed with the driving bevel gear is installed on the threaded rod, and a first sliding block matched with the vertical pipe is installed on the threaded rod in a threaded mode. The cross section of the vertical pipe is rectangular, and the first sliding block is a rectangular block matched with the vertical pipe.
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Description

Technical Field

[0001] This utility model relates to the technical field of pharmaceutical dosing equipment, specifically to a cloud-based intelligent control fully automatic dosing and detection device. Background Technology

[0002] The Cloud-based Intelligent Control Fully Automatic Dosing and Detection Device is a high-tech equipment integrating intelligent control, precise dosing, and real-time monitoring functions. It is primarily used in water treatment, chemical, and environmental protection fields. Its core function is to achieve precise dosing of chemicals and real-time water quality monitoring through an automated system, ensuring stable and efficient treatment results. The device employs advanced sensor technology and intelligent algorithms to monitor water quality parameters in real time and dynamically adjust the chemical dosage based on the monitoring data, ensuring water quality meets standards. Its high-precision metering and control system avoids chemical waste, reduces operating costs, and supports remote monitoring and automated operation, reducing manual intervention and improving work efficiency. Furthermore, the device has fault alarm and data analysis functions, facilitating maintenance and management. The Cloud-based Intelligent Control Fully Automatic Dosing and Detection Device has broad application prospects in municipal waterworks, sewage treatment plants, and industrial water treatment. For example, in sewage treatment, it can effectively remove suspended solids and harmful substances; in drinking water treatment, it can ensure water quality safety. With increasing environmental protection requirements and the development of intelligent technologies, this device will become an important tool in the water treatment industry, driving the industry towards high efficiency, energy saving, and intelligent development. The cloud-based intelligent control fully automatic dosing and detection device not only improves the efficiency and accuracy of water treatment, but also provides strong technical support for environmental protection and industrial development, and has huge market potential in the future.

[0003] Existing dosing detection devices suffer from the following problems due to structural deficiencies:

[0004] 1. Traditional dosing detection devices usually do not take into account the need for multiple dosing sessions at different times. Frequent opening of the mixing container can cause harmful gases produced by the chemical reaction inside the container to escape, and at the same time, the temperature changes inside the container can affect the chemical reaction.

[0005] 2. Traditional dosing detection devices usually do not take into account the situation where harmful gases generated by chemical reactions inside the container flow back to the dosing components, which can affect some of the chemicals. Utility Model Content

[0006] In view of the problems mentioned in the background technology above, the purpose of this utility model is to provide a cloud-based intelligent control fully automatic dosing and detection device to solve the problems existing in the prior art.

[0007] To achieve the above-mentioned technical objectives, the technical solution adopted by this utility model is as follows:

[0008] The cloud-based intelligent control fully automatic dosing and detection device includes a reaction tank, which is equipped with a support frame, an inlet and an outlet, and a mixing component.

[0009] The reaction vessel is equipped with a dosing tank, the dosing tank is provided with an installation slot, the installation slot is equipped with a dosing bottle, the installation slot is connected to a vertical pipe, and the vertical pipe is connected to a guide pipe;

[0010] The dosing tank is equipped with a motor, and a rotating rod is installed at the power output end of the motor. The rotating rod is equipped with a driving bevel gear. The vertical tube is equipped with a threaded rod, and a driven bevel gear that meshes with the driving bevel gear is installed on the threaded rod. A first slider that matches the vertical tube is threadedly installed on the threaded rod. The vertical tube has a rectangular cross-section, and the first slider is a rectangular block that matches the vertical tube.

[0011] Furthermore, the vertical tube has a circular cross-section, the first slider is a cylinder that matches the vertical tube, the vertical tube is equipped with a limiting rod, and the first slider is provided with a limiting groove that matches the limiting rod. This structural design makes the movement of the first slider within the vertical tube more stable.

[0012] Furthermore, the guide pipe is connected to a liquid seal pipe. This structural design prevents gases generated by the chemical reaction inside the reaction vessel from flowing back into the guide pipe and affecting the components inside the dosing tank, thus extending the service life of the equipment.

[0013] Further specifying, the dosing tank is provided with a first sliding groove, the first sliding groove is equipped with a first spring, the first spring is equipped with a limit block, the dosing bottle is provided with a limit groove that matches the limit block, the dosing tank is provided with a second sliding groove, the second sliding groove is equipped with a second spring, the second spring is equipped with a second slider, the second slider is equipped with a button and a sliding rod, and the limit block is equipped with an interactive block that matches the sliding rod. This structural design makes the installation and removal of the dosing bottle more convenient and quick.

[0014] The present invention has the following advantages:

[0015] This invention, by incorporating a dosing tank, enables the addition of chemicals in multiple stages without opening the reaction vessel, thus preventing gas leakage and maintaining the temperature inside the reaction vessel.

[0016] This invention, by incorporating a liquid seal tube, achieves the effect of preventing gas backflow and thus protecting the pharmaceutical agent from adverse effects. Attached Figure Description

[0017] This utility model can be further illustrated by the non-limiting embodiments given in the accompanying drawings;

[0018] Figure 1 This is a schematic diagram of the structure of the cloud-controlled fully automatic dosing and detection device described in this utility model;

[0019] Figure 2 This is a front cross-sectional view of the dosing box of the cloud-controlled fully automatic dosing and detection device described in this utility model;

[0020] Figure 3 yes Figure 2 Enlarged view of region A in the middle;

[0021] Figure 4 This is a front cross-sectional view of the dosing tank of the second embodiment of the cloud-controlled fully automatic dosing and detection device of this utility model.

[0022] The symbols for the main components are explained as follows: 1. Reaction vessel; 2. Support frame; 3. Inlet; 4. Outlet; 5. Mixing component; 6. Dosing tank; 7. Mounting groove; 8. Dosing bottle; 9. Vertical pipe; 10. Guide pipe; 11. Motor; 12. Rotating rod; 13. Driving bevel gear; 14. Threaded rod; 15. Driven bevel gear; 16. First slider; 17. Liquid seal pipe; 18. First slide groove; 19. First spring; 20. Limiting block; 21. Limiting groove; 22. Second slide groove; 23. Second spring; 24. Second slider; 25. Button; 26. Slide rod; 27. Interactive block; 28. Limiting rod; 29. ​​Limiting groove. Detailed Implementation

[0023] To enable those skilled in the art to better understand this utility model, the technical solution of this utility model will be further described below in conjunction with the accompanying drawings and embodiments.

[0024] like Figures 1-4 As shown, the cloud-controlled fully automatic dosing and detection device includes a reaction tank 1, a support frame 2 installed on the reaction tank 1, an inlet 3 and an outlet 4 provided on the reaction tank 1, and a mixing component 5 installed on the reaction tank 1.

[0025] The reaction vessel 1 is equipped with a dosing tank 6, the dosing tank 6 is provided with an installation slot 7, the installation slot 7 is equipped with a dosing bottle 8, the installation slot 7 is connected to a vertical pipe 9, and the vertical pipe 9 is connected to a guide pipe 10.

[0026] The dosing tank 6 is equipped with a motor 11. A rotating rod 12 is installed at the power output end of the motor 11. A driving bevel gear 13 is installed on the rotating rod 12. A threaded rod 14 is installed on the vertical tube 9. A driven bevel gear 15 that meshes with the driving bevel gear 13 is installed on the threaded rod 14. A first slider 16 that matches the vertical tube 9 is threaded onto the threaded rod 14. The vertical tube 9 has a rectangular cross-section. The first slider 16 is a rectangular block that matches the vertical tube 9.

[0027] Working principle explanation:

[0028] Example 1, as Figure 1 and Figure 2 As shown, the material is fed into the reaction tank 1 through the feed inlet 3. The material reacts in the reaction tank 1. The mixing component 5 accelerates the mixing reaction. It is worth noting that when it is necessary to add medicine, the motor 11 is started to rotate the rotating rod 12. The rotation of the rotating rod 12 drives the driving bevel gear 13 to rotate. Therefore, the driven bevel gear 15, which meshes with the driving bevel gear 13, rotates. The driven bevel gear 15 drives the threaded rod 14 to rotate, causing the first slider 16 to move in the vertical tube 9. After the first slider 16 descends from the position of blocking the guide tube 10, the medicine flows from the dosing bottle 8 through the vertical tube 9 and the guide tube 10 and is discharged into the reaction tank 1.

[0029] Example 2, as Figure 1 and Figure 4 As shown, this embodiment adds the following structure based on embodiment 1: the cross-section of the vertical tube 9 is circular, the first slider 16 is a cylinder that matches the vertical tube 9, the vertical tube 9 is equipped with a limiting rod 28, and the first slider 16 is provided with a limiting groove 29 that matches the limiting rod 28. It is worth noting that the limiting rod 28 plays a role in limiting and guiding the first slider 16 during operation. This structural design makes the first slider 16 move more stably in the vertical tube 9.

[0030] Example 3, as Figure 1 and Figure 2 As shown, this embodiment adds the following structure to the embodiment 1: the guide pipe 10 is connected to the liquid seal pipe 17. This structural design prevents the gas generated by the chemical reaction in the reaction tank 1 from flowing back into the guide pipe 10 and affecting the components in the dosing tank 6, thus extending the service life of the equipment.

[0031] Example 4, as Figure 1 , Figure 2 and Figure 3 As shown, this embodiment adds the following structure based on embodiment 1: the dosing tank 6 is provided with a first slide groove 18, a first spring 19 is installed in the first slide groove 18, a limit block 20 is installed in the first spring 19, the dosing bottle 8 is provided with a limit groove 21 that matches the limit block 20, the dosing tank 6 is provided with a second slide groove 22, a second spring 23 is installed in the second slide groove 22, a second slider 24 is installed in the second spring 23, a button 25 and a slide rod 26 are installed in the second slider 24, and an interactive block 27 that matches the slide rod 26 is installed in the limit block 20. It is worth noting that when it is necessary to disassemble or install the dosing bottle 8, pressing the button 25 causes the second slider 24 to compress the second spring 23 and simultaneously drive the slide rod 26 to move. The slide rod 26 contacts the interactive block 27, and the interactive block 27 drives the limit block 20 to compress the first spring 19. The limit block 20 disengages from the limit groove 21, and the dosing bottle 8 can be removed at this time. This structural design makes the installation and disassembly of the dosing bottle 8 more convenient and quick.

[0032] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.

Claims

1. A cloud-controlled fully automatic dosing and detection device, comprising a reaction vessel (1), characterized in that: The reaction vessel (1) is equipped with a support frame (2), the reaction vessel (1) is provided with a feed inlet (3) and a discharge outlet (4), and the reaction vessel (1) is equipped with a mixing component (5); The reaction vessel (1) is equipped with a dosing tank (6), the dosing tank (6) is provided with an installation slot (7), the installation slot (7) is equipped with a dosing bottle (8), the installation slot (7) is connected to a vertical pipe (9), and the vertical pipe (9) is connected to a guide pipe (10). The dosing tank (6) is equipped with a motor (11), and a rotating rod (12) is installed at the power output end of the motor (11). The rotating rod (12) is equipped with a driving bevel gear (13). The vertical tube (9) is equipped with a threaded rod (14). The threaded rod (14) is equipped with a driven bevel gear (15) that meshes with the driving bevel gear (13). The threaded rod (14) is threaded with a first slider (16) that matches the vertical tube (9). The vertical tube (9) has a rectangular cross-section, and the first slider (16) is a rectangular block that matches the vertical tube (9).

2. The cloud-controlled fully automatic dosing and detection device according to claim 1, characterized in that: The vertical tube (9) has a circular cross-section, the first slider (16) is a cylinder that matches the vertical tube (9), the vertical tube (9) is equipped with a limit rod (28), and the first slider (16) is provided with a limit groove (29) that matches the limit rod (28).

3. The cloud-controlled fully automatic dosing and detection device according to claim 1, characterized in that: The guide tube (10) is connected to a liquid seal tube (17).

4. The cloud-controlled fully automatic dosing and detection device according to claim 3, characterized in that: The dosing tank (6) is provided with a first slide groove (18), the first slide groove (18) is equipped with a first spring (19), the first spring (19) is equipped with a limit block (20), the dosing bottle (8) is provided with a limit groove (21) that matches the limit block (20), the dosing tank (6) is provided with a second slide groove (22), the second slide groove (22) is equipped with a second spring (23), the second spring (23) is equipped with a second slider (24), the second slider (24) is equipped with a button (25) and a slide rod (26), and the limit block (20) is equipped with an interactive block (27) that matches the slide rod (26).