Hydrodynamic pressing of ab-mixtures

CN122582816APending Publication Date: 2026-08-18HUNAN CHLOQU BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202610750748.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-05-28
Publication Date
2026-08-18

AI Technical Summary

Technical Problem

1混合的过程中,混合操作繁琐,需要手动倾倒、搅拌,容易洒漏,混合均匀度差

Benefits of technology

1、混合高效:通过流体力学指按压+导流结构,A、B剂混合均匀度高(≥95%),混合时间短(≤3秒)。

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Abstract

The application discloses an implementation device of a fluid mechanics indicating press type AB mixture material, relates to the technical field of mixture material releasing devices, and comprises an upper cover, a lower cover, a middle functional plate, two side plates, a front plate and a rear plate. An identification pattern is arranged on the upper cover. An array of air permeable holes is arranged on the surface of the upper cover. A press indication area is arranged on the upper cover. The lower cover is spliced with the upper cover through a mortise and tenon structure. An AB material containing cavity and a fluid guiding structure are arranged in the lower cover. The middle functional plate is located between the upper cover and the lower cover. The middle functional plate is limited by the mortise and tenon buckle structure of the lower cover and the upper cover. A fluid guiding groove is arranged on the lower surface of the middle functional plate. The outer sides of the two side plates, the front plate and the rear plate are spliced with the upper cover, the lower cover and the middle functional plate through the mortise and tenon structure to form a box body. The application is efficient in mixing, convenient in activation, controllable in releasing, beautiful in structure, portable and durable, and convenient and fast in processing.
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Description

Technical Field

[0001] This invention relates to the field of mixture release device technology, specifically a fluid dynamics-based press-type AB mixture implementation device. Background Technology

[0002] In existing technologies, solid-liquid mixed AB materials, such as chlorine dioxide effervescent tablets + water, two-component adhesives + curing agents, and pharmaceutical mixtures, have the following drawbacks when mixed in a mixing device: 1. The mixing process is cumbersome, requiring manual pouring and stirring, which is prone to spillage and results in poor mixing uniformity.

[0003] 2. Activation and release remain unchanged. Traditional devices require additional tools, such as joysticks and stirring rods, or rely on complex structures, resulting in a poor user experience.

[0004] 3. Poor sealing and leak-proof performance: It is easy for liquid to leak when solid and liquid are mixed, or for gas to leak after mixing, such as carbon dioxide.

[0005] 4. Bulky structure and lack of aesthetics: Most existing ones are made of plastic bottles, metal cans or complex mechanical structures, which are bulky, inconvenient, and lack a sense of design.

[0006] 5. Poor fluid control: Liquid fluids are easily wasted or not mixed sufficiently with solid particles.

[0007] Therefore, there is an urgent need for a device and method for implementing solid-liquid AB mixtures that is convenient to mix, easy to activate, controllable to release, leak-proof, and aesthetically pleasing. Summary of the Invention

[0008] The purpose of this invention is to provide a fluid dynamics-based pressing device for implementing AB mixtures, in order to solve the problems mentioned in the background art.

[0009] To achieve the above objectives, the present invention provides the following technical solution: a fluid dynamics-based pressing device for mixing AB materials, comprising an upper cover, a lower cover, a middle functional plate, two side plates, a front plate, and a rear plate. The upper cover has an identification pattern and an array of ventilation holes on its surface. The upper cover also has a pressing indicator area. The lower cover is joined to the upper cover by a mortise and tenon structure. The lower cover has an AB material receiving cavity and a fluid guiding structure inside. The middle functional plate is located between the upper and lower covers and is limited by a mortise and tenon snap-fit ​​structure with the lower and upper covers. The lower surface of the middle functional plate has a fluid guiding groove. The outer sides of the two side plates, the front plate, and the rear plate are assembled with the upper cover, the lower cover, and the middle functional plate to form a box body by a mortise and tenon structure.

[0010] Furthermore, the array of vent holes consists of multiple sets of hexagonal or circular vent holes.

[0011] Furthermore, the fluid guiding structure is provided as a wave-shaped or honeycomb-shaped flow channel or a shear groove structure.

[0012] Furthermore, the surfaces of the two side panels, the front panel, and the rear panel are provided with reinforcing ribs or decorative patterns.

[0013] Furthermore, the mortise and tenon structure includes a dovetail tenon structure, a straight tenon structure, and a slot limiting structure. The upper cover, front plate, rear plate, and side plate are connected by a dovetail tenon structure, the lower cover, front plate, rear plate, and side plate are connected by a straight tenon structure, and the middle functional plate is connected to the upper cover and lower cover by a slot limiting structure.

[0014] A method for implementing a fluid dynamics-based press-type AB mixture includes the following steps: S. Assembly: Assemble the top cover, bottom cover, middle functional panel, front panel, rear panel and two side panels using mortise and tenon joints to ensure that the middle functional panel can move up and down. S. Adding materials: Open the top cover and add 2~10ml of agent A and 2~10ml of agent B to the A and B material receiving cavities, respectively; S. Press: Gently press the middle function plate with your finger. Agent A and Agent B mix in the fluid guiding structure and release gas. S. Release: Gas diffuses evenly through the vents, covering the surrounding space; S. Storage: Release the press, the middle functional panel will return to its original position, disassemble the mortise and tenon structure, clean it, and it can be reused.

[0015] The technical effects and advantages of this invention are as follows: 1. Highly efficient mixing: Through the fluid dynamics finger pressing + flow guiding structure, the A and B agents are mixed with high uniformity (≥95%) and short mixing time (≤3 seconds).

[0016] 2. Easy activation: The mixture can be activated simply by pressing your finger, without the need for any additional tools, making it easy to operate.

[0017] 3. Controllable release: The vent array design ensures uniform gas release, avoiding premature leakage or uneven release.

[0018] 4. Aesthetically pleasing structure: The mortise and tenon assembly structure is simple and can be set with brand logos and arrays of ventilation holes, thus combining practicality and design.

[0019] 5. Portable and durable: The seven-piece assembly structure is small in size and light in weight. The mortise and tenon joints are sturdy and can be reused or folded for storage.

[0020] 6. Convenient and fast processing: Based on laser cutting of sheet metal, it has low cost, fast processing speed, and convenient assembly. It can be pre-assembled in the factory or assembled by the user, increasing the interaction between the customer and the product. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a schematic diagram of the structure of the intermediate functional board of the present invention; Figure 3 This is a partial structural diagram of the lower cover of the present invention; Figure 4 This is a schematic diagram of the internal structure of the lower cover of the present invention.

[0022] In the diagram: 1. Top cover, 2. Bottom cover, 3. AB material receiving cavity, 4. Fluid guiding structure, 5. Middle functional plate, 6. Rear plate, 7. Side plate, 8. Front plate. Detailed Implementation

[0023] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Example

[0024] This invention provides, for example Figure 1-4 The device shown is a fluid dynamics-based press-type AB mixture implementation device, including an upper cover 1, a lower cover 2, a middle functional plate 5, two side plates 7, a front plate 8, and a rear plate 6. The upper cover 1 is provided with an identification pattern, and the surface of the upper cover 1 is provided with an array of vent holes, which consists of multiple sets of hexagonal or circular vent holes. The upper cover 1 is provided with a press indicator area.

[0025] The lower cover 2 and the upper cover 1 are joined by a mortise and tenon structure. The interior of the lower cover 2 is provided with an AB material receiving cavity 3 and a fluid guiding structure 4. The fluid guiding structure 4 is set in a wave-shaped or honeycomb-shaped flow channel or shear groove structure.

[0026] The intermediate functional plate 5 is located between the upper cover 1 and the lower cover 2, and the intermediate functional plate 5 is limited to the lower cover 2 and the upper cover 1 by a tenon and mortise snap-fit ​​structure. A fluid guide groove is provided on the lower surface of the intermediate functional plate 5.

[0027] The outer sides of the two side panels 7, the front panel 8, and the rear panel 6 are assembled with the upper cover 1, the lower cover 2, and the middle functional panel 5 through mortise and tenon joints to form a box. The surfaces of the two side panels 7, the front panel 8, and the rear panel 6 are provided with reinforcing ribs or decorative patterns.

[0028] The mortise and tenon structure includes dovetail tenon structure, straight tenon structure and slot limiting structure. The upper cover 1, front plate 8, rear plate 6 and side plate 7 are connected by dovetail tenon structure, the lower cover 2, front plate 8, rear plate 6 and side plate 7 are connected by straight tenon structure, and the middle functional plate 5 is connected to the upper cover 1 and lower cover 2 by slot limiting structure.

[0029] A method for implementing a fluid dynamics-based press-type AB mixture includes the following steps: S. Assembly: Assemble the upper cover 1, lower cover 2, middle functional panel 5, front panel 8, rear panel 6 and two side panels 7 using mortise and tenon joints to ensure that the middle functional panel can move up and down. S. Adding materials: Open the top cover 1 and add ml of solid chlorine dioxide and ml of acidic solution to the AB material receiving chamber 3 respectively; S. Press: Gently press the middle function plate 5 with your finger, and ml of chlorine dioxide solid and ml of acidic solution will mix in the fluid guiding structure 4, releasing chlorine dioxide gas; S. Release: Chlorine dioxide gas diffuses evenly through the vents, covering the surrounding space and achieving disinfection; S. Storage: Release the press, the middle functional panel 5 will reset, disassemble the mortise and tenon structure, clean it and reuse it.

[0030] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A fluid dynamics-based pressing device for implementing AB mixtures, characterized in that, include: The top cover (1) is provided with an identification pattern, the surface of the top cover (1) is provided with an array of ventilation holes, and the top cover (1) is provided with a pressing indicator area; The lower cover (2) is joined to the upper cover (1) by a tenon and mortise structure. The lower cover (2) is provided with an AB material receiving cavity (3) and a fluid guiding structure (4). The intermediate functional plate (5) is located between the upper cover (1) and the lower cover (2), and the intermediate functional plate (5) is limited by the mortise and tenon buckle structure with the lower cover (2) and the upper cover (1). The lower surface of the intermediate functional plate (5) is provided with a fluid guide groove. Two side panels (7), a front panel (8), and a rear panel (6) are assembled with the upper cover (1), the lower cover (2), and the middle functional panel (5) through a mortise and tenon structure to form a box body.

2. The fluid dynamics-based pressing device for implementing AB mixtures according to claim 1, characterized in that: The array of vents consists of multiple sets of hexagonal or circular vents.

3. The fluid dynamics-based pressing-type AB mixture implementation device according to claim 1, characterized in that: The fluid guiding structure (4) is set in a wave-shaped or honeycomb-shaped flow path or a shear groove structure.

4. The fluid dynamics-based pressing-type AB mixture implementation device according to claim 1, characterized in that: The surfaces of the two side plates (7), the front plate (8), and the rear plate (6) are provided with reinforcing ribs or decorative patterns.

5. The fluid dynamics-based pressing-type AB mixture implementation device according to claim 1, characterized in that: The mortise and tenon structure includes a dovetail tenon structure, a straight tenon structure, and a slot limiting structure. The upper cover (1), front plate (8), rear plate (6), and side plate (7) are connected by a dovetail tenon structure. The lower cover (2), front plate (8), rear plate (6), and side plate (7) are connected by a straight tenon structure. The middle functional plate (5) is connected to the upper cover (1) and the lower cover (2) by a slot limiting structure.

6. A method for implementing a fluid dynamics-based, press-type AB mixture according to any one of claims 1-5, characterized in that: Includes the following steps: S1. Assembly: Assemble the upper cover (1), lower cover (2), middle functional plate (5), front plate (8), rear plate (6) and two side plates (7) using mortise and tenon joints to ensure that the middle functional plate (5) can move up and down. S2. Adding: Open the top cover (1) and add 2~10ml of agent A and 2~10ml of agent B to the AB material receiving chamber (3) respectively; S3. Press: Gently press the middle functional plate (5) with your finger. Agent A and Agent B mix in the fluid guiding structure (4) and release gas. S4. Release: Gas diffuses evenly through the vents, covering the surrounding space; S5. Storage: Release the press, the middle functional board (5) is reset, disassemble the tenon and mortise structure, clean it and reuse it.