Gas-liquid reaction bin for producing chlorine dioxide water
By using a plate-shaped drying plate and a rotating disk structure in the chlorine dioxide water production device, the problems of uneven distribution and displacement of the desiccant in the drying chamber are solved, achieving stable and efficient gas drying, and improving the disinfection effect and the utilization rate of the desiccant.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN DAQI DISINFECTION NEW TECH CO LTD
- Filing Date
- 2025-05-29
- Publication Date
- 2026-05-12
AI Technical Summary
In existing technologies, the desiccant is unevenly distributed in the drying chamber and is easily displaced by wind, affecting the gas drying effect and leading to a decrease in disinfection efficiency.
The drying plate is fixed with bolts and combined with a rotating disk and a positioning cone ring structure driven by a motor to achieve stable positioning and position adjustment of the drying plate, ensuring uniform moisture absorption.
It improves the drying effect, ensures that the moisture content in the disinfection gas is reduced, avoids affecting the disinfection effect, and extends the service life of the desiccant.
Smart Images

Figure CN224221087U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of chlorine dioxide production technology, specifically a gas-liquid reaction chamber for the production of chlorine dioxide water. Background Technology
[0002] Chlorine dioxide is a gas ranging in color from yellowish-green to orange. It has an irritating odor similar to chlorine and possesses highly efficient oxidizing and bactericidal capabilities. Using chlorine dioxide gas to disinfect the air is a common practice. Chlorine dioxide often exists in the form of an aqueous solution, and the disinfectant is atomized into a gas and sprayed into the air using an atomizing device. However, the atomized gas has a high moisture content, which increases the air humidity in the disinfection area and affects the disinfection effect.
[0003] In response, Chinese patent application number CN201921679664.X discloses a stable chlorine dioxide gas-liquid integrated reaction device, including a reaction chamber. A liquid inlet pipe with a valve is located on one side of the reaction chamber. An ultrasonic atomizer is located on the inner wall of the bottom of the reaction chamber. A drying plate is located inside the reaction chamber, and a drying chamber is formed within the drying plate. One side of the inner wall of the drying chamber is connected to one side of the drying plate. Several air inlets and outlets are respectively formed at the bottom and top of the drying plate. This stable chlorine dioxide gas-liquid integrated reaction device allows for the addition of a fixed amount of desiccant to the drying chamber. When the atomized gas passes through the drying chamber, the desiccant absorbs the moisture in the gas, reducing the moisture content and preventing any impact on the disinfection effect. When the desiccant in the drying chamber becomes saturated with water, it can be easily and conveniently replaced.
[0004] The device absorbs moisture from the gas by laying a desiccant in the drying chamber. However, when the desiccant is placed in the drying chamber, it is difficult to lay it evenly because it is mostly in granular form. Furthermore, the desiccant is easily displaced by wind and moves away from the air inlet, which affects the drying effect on the gas.
[0005] Therefore, in order to solve the above problems, a gas-liquid reaction chamber for the production of chlorine dioxide water is proposed. Utility Model Content
[0006] The purpose of this invention is to provide a gas-liquid reaction chamber for the production of chlorine dioxide water, in order to solve the problem mentioned in the background art that the prior art device absorbs moisture from the gas by laying a desiccant in the drying chamber. However, when the desiccant is placed in the drying chamber, it is difficult to lay it evenly because the desiccant is mostly granular, and the desiccant is easily displaced by wind and moves away from the air inlet, which will affect the drying effect of the gas.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a gas-liquid reaction chamber for the production of chlorine dioxide water, comprising: a chamber body, an inlet installed on the side wall of the chamber body, and an ultrasonic atomizer installed on the inner bottom of the chamber body;
[0008] The top surface of the chamber is provided with an operating port, and a screw cap is connected to the outside of the operating port by a thread. Two sets of movable grooves are provided on the inner wall of the chamber.
[0009] A drying structure is installed on the inner side of the chamber. The drying structure includes a guide rod, which is fixedly installed on the inner left end of the movable slot. A threaded rod is movably installed on the inner right end of the movable slot via a bearing. A motor is installed on the top surface of the chamber. A rotating disk is movably installed in the middle of the inner side of the chamber. A perforated plate is provided on the bottom surface of the rotating disk. Two sets of positioning cone rings are slidably installed on the outer side of the guide rod. A threaded hole is opened on the top surface of the perforated plate. A drying plate is placed on the top surface of the perforated plate. A mesh plate is placed on the top surface of the drying plate. A bolt is threadedly connected to the top surface of the mesh plate.
[0010] Preferably, the guide rod and the threaded rod are arranged parallel to each other, and the threaded rod is threadedly connected to two sets of positioning cone rings.
[0011] Preferably, the output end of the motor is fixedly connected to the threaded rod.
[0012] Preferably, the rotating disk is horizontally installed between the two sets of movable slots.
[0013] Preferably, the two sets of positioning cone rings are installed symmetrically, one above the other, and the positioning cone rings are movably installed inside the movable groove.
[0014] Preferably, the middle part of the bolt penetrates the drying plate, and the bottom end of the bolt is threadedly connected to the threaded hole.
[0015] Compared with the prior art, the beneficial effects of this utility model are: the drying plate used in this utility model is plate-shaped and fixed by bolts, which has strong stability and can ensure the absorption effect of moisture. In addition, the rotating disk can be flipped to adjust the vertical position of the drying plate, thereby improving the utilization rate of the drying plate.
[0016] This invention features a drying structure. By unscrewing the cap, placing the drying plate downwards on top of the perforated plate, and then covering it with a mesh plate, the bottom of the mesh plate is rotated until it engages with the threaded hole, thus securing the drying plate to the top of the perforated plate. This ensures high stability and effective moisture absorption. Connecting the upper end of the cap to a collection device allows liquid to be added to the inside of the chamber through the inlet. An ultrasonic atomizer atomizes the liquid, and the atomized gas rises, passing through the perforated plate, drying plate, and mesh plate. The drying plate absorbs moisture from the gas, reducing its moisture content and preventing interference with disinfection. Finally, the gas is discharged through the cap. After a period of use, the bottom surface of the drying plate will first... Because the drying plate comes into contact with gas, it absorbs more moisture. Therefore, the bottom surface of the drying plate has a higher moisture content than the top surface, resulting in a lower water absorption rate on the bottom surface compared to the top surface. When the motor is started, it drives the threaded rod to rotate. The threaded rod is threadedly connected to two sets of positioning cone rings on the upper and lower surfaces of the rotating disk. The rotation of the threaded rod causes the positioning cone rings to slide on the guide rod, moving them away from each other and releasing the rotating disk from its fixation. Then, the cap is unscrewed, and the rotating disk is flipped to invert the drying plate. The motor is then reversed, causing the two sets of positioning cone rings to move closer together, clamping and fixing the rotating disk. This keeps the drying plate stationary, allowing the drier side of the drying plate to come into contact with the gas first, improving the utilization rate of the drying plate. Attached Figure Description
[0017] Figure 1 This is a front view schematic diagram of the structure of this utility model;
[0018] Figure 2 This is a front sectional view of the structure of this utility model;
[0019] Figure 3 This is a front view cross-sectional diagram of the drying structure of this utility model;
[0020] Figure 4 This is an exploded cross-sectional view of the drying structure of this utility model.
[0021] In the diagram: 1. Chamber body; 11. Liquid inlet; 12. Operating port; 13. Cap; 14. Ultrasonic atomizer; 15. Movable groove; 2. Drying structure; 21. Guide rod; 22. Threaded rod; 23. Motor; 24. Rotary disk; 25. Orifice plate; 26. Positioning cone ring; 27. Threaded hole; 28. Drying plate; 29. Mesh plate; 210. Bolt. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Please see Figures 1-4 This utility model provides an embodiment of a gas-liquid reaction chamber for the production of chlorine dioxide water:
[0024] The chamber 1, liquid inlet 11, ultrasonic atomizer 14 and motor 23 used in this application are products that can be purchased directly from the market. Their principles and connection methods are existing technologies well known to those skilled in the art, so they will not be described in detail here.
[0025] A gas-liquid reaction chamber for the production of chlorine dioxide water includes: a chamber body 1, an inlet 11 installed on the side wall of the chamber body 1, and an ultrasonic atomizer 14 installed on the inner bottom of the chamber body 1.
[0026] An operation port 12 is provided on the top surface of the compartment 1. A screw cap 13 is connected to the outside of the operation port 12 by a thread. Two sets of movable grooves 15 are provided on the inner wall of the compartment 1.
[0027] A drying structure 2 is installed inside the chamber 1. The drying structure 2 includes a guide rod 21, which is fixedly installed on the left side of the inner side of the movable groove 15. A threaded rod 22 is movably installed on the right side of the inner side of the movable groove 15 via a bearing. A motor 23 is installed on the top surface of the chamber 1. A rotating disk 24 is movably installed in the middle of the inner side of the chamber 1. A perforated plate 25 is provided on the bottom surface of the rotating disk 24. Two sets of positioning cone rings 26 are slidably installed on the outer side of the guide rod 21. A threaded hole 27 is opened on the top surface of the perforated plate 25. A drying plate 28 is placed on the top surface of the perforated plate 25. A mesh plate 29 is placed on the top surface of the drying plate 28. A bolt 210 is threadedly connected to the top surface of the mesh plate 29. The drying plate 28 is plate-shaped and made of silica material. It is fixed by bolts 210, which has strong stability and can ensure the absorption effect of moisture. The rotating disk 24 can be flipped to adjust the vertical position of the drying plate 28 to improve the utilization rate of the drying plate 28.
[0028] Furthermore, the guide rod 21 and the threaded rod 22 are arranged in parallel. The threaded rod 22 is threadedly connected to two sets of positioning cone rings 26. The rotation of the threaded rod 22 can drive the two sets of positioning cone rings 26 to move closer or further apart.
[0029] Furthermore, the output end of the motor 23 is fixedly connected to the threaded rod 22, and the motor 23 provides power for the rotation of the threaded rod 22.
[0030] Furthermore, the rotating disk 24 is horizontally installed between the two sets of movable slots 15. The positioning cone ring 26 in the movable slot 15 can abut against the upper and lower surfaces of the rotating disk 24, which can fix the rotating disk 24 and ensure the sealing between the edge of the rotating disk 24 and the inner wall of the chamber 1.
[0031] Furthermore, the two sets of positioning cone rings 26 are installed symmetrically on the top and bottom. The positioning cone rings 26 are movably installed on the inner side of the movable groove 15. The positioning cone rings 26 can fit against the inner wall of the movable groove 15, which can ensure the sealing between the rotating disk 24 and the inner wall of the chamber 1.
[0032] Furthermore, the middle of the bolt 210 passes through the drying plate 28, and the bottom end of the bolt 210 is threadedly connected to the threaded hole 27. The bolt 210 can be fixed on the hole plate 25 through the drying plate 28, making disassembly and assembly convenient.
[0033] Working principle: During installation, unscrew the cap 13, place the drying plate 28 downward on the top surface of the perforated plate 25, cover the top surface of the drying plate 28 with the mesh plate 29, and rotate the mesh plate 29 so that the bottom end of the mesh plate 29 is screwed into the threaded hole 27, thus fixing the drying plate 28 to the top surface of the perforated plate 25. It has strong stability and can ensure the absorption effect of moisture.
[0034] Before use, connect the upper end of the screw cap 13 to the collection device, add the liquid to the inside of the chamber 1 through the liquid inlet 11, and the liquid in the chamber 1 can be atomized by the ultrasonic atomizer 14. The atomized gas floats upward and passes through the perforated plate 25, the drying plate 28 and the mesh plate 29. The drying plate 28 can absorb the moisture in the gas, reduce the moisture content in the gas, and avoid affecting the disinfection effect. Finally, the gas is discharged through the screw cap 13.
[0035] After a period of use, the bottom surface of the drying plate 28 absorbs more moisture because it is the first to come into contact with the gas. Therefore, the bottom surface of the drying plate 28 has a higher moisture content than the top surface, resulting in a lower water absorption effect compared to the top surface. At this time, the motor 23 is started, which drives the threaded rod 22 to rotate. The threaded rod 22 is threadedly connected to the two sets of positioning cone rings 26 on the upper and lower parts of the rotating disk 24. Therefore, the rotation of the threaded rod 22 causes the positioning cone rings 26 to slide on the guide rod 21, and the two sets of positioning cone rings 26 move away from each other, releasing the fixation on the rotating disk 24. Then, the cap 13 is unscrewed, and the rotating disk 24 is flipped to invert the drying plate 28. The motor 23 is then reversed, causing the two sets of positioning cone rings 26 to move closer together, clamping and fixing the rotating disk 24. This keeps the drying plate 28 fixed, allowing the drier side of the drying plate 28 to come into contact with the gas first, improving the utilization rate of the drying plate 28.
[0036] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model in any way. Those skilled in the art can readily implement this utility model based on the accompanying drawings and the above description. However, any modifications, alterations, or equivalent variations made by those skilled in the art without departing from the scope of the utility model's technical solution, utilizing the disclosed technical content, are considered equivalent embodiments of this utility model. Furthermore, any equivalent changes, alterations, or variations made to the above embodiments based on the essential technology of this utility model are still within the protection scope of this utility model's technical solution.
Claims
1. A gas-liquid reaction chamber for the production of chlorine dioxide water, comprising: The chamber (1) has a liquid inlet (11) installed on its side wall and an ultrasonic atomizer (14) installed on the bottom inner side of the chamber (1). Its features are: The top surface of the chamber (1) is provided with an operation port (12), and the outside of the operation port (12) is connected to a screw cap (13) by a thread. Two sets of movable grooves (15) are provided on the inner wall of the chamber (1). A drying structure (2) is installed on the inner side of the chamber (1). The drying structure (2) includes a guide rod (21). The guide rod (21) is fixedly installed on the inner left end of the movable groove (15). A threaded rod (22) is movably installed on the inner right end of the movable groove (15) through a bearing. A motor (23) is installed on the top surface of the chamber (1). A rotating disk (24) is movably installed in the middle of the inner side of the chamber (1). A perforated plate (25) is provided on the bottom surface of the rotating disk (24). Two sets of positioning cone rings (26) are slidably installed on the outer side of the guide rod (21). A threaded hole (27) is opened on the top surface of the perforated plate (25). A drying plate (28) is placed on the top surface of the perforated plate (25). A mesh plate (29) is placed on the top surface of the drying plate (28). A bolt (210) is threadedly connected to the top surface of the mesh plate (29).
2. The gas-liquid reaction chamber for producing chlorine dioxide water according to claim 1, characterized in that: The guide rod (21) is arranged in parallel with the threaded rod (22), and the threaded rod (22) is threadedly connected to two sets of positioning cone rings (26).
3. The gas-liquid reaction chamber for producing chlorine dioxide water according to claim 1, characterized in that: The output end of the motor (23) is fixedly connected to the threaded rod (22).
4. The gas-liquid reaction chamber for producing chlorine dioxide water according to claim 1, characterized in that: The rotating disk (24) is horizontally installed between two sets of movable slots (15).
5. A gas-liquid reaction chamber for producing chlorine dioxide water according to claim 1, characterized in that: The two sets of positioning cone rings (26) are installed symmetrically on the top and bottom, and the positioning cone rings (26) are movably installed on the inner side of the movable groove (15).
6. The gas-liquid reaction chamber for producing chlorine dioxide water according to claim 1, characterized in that: The middle part of the bolt (210) penetrates the drying plate (28), and the bottom end of the bolt (210) is threadedly connected to the threaded hole (27).