Reaction kettle capable of uniformly mixing and proportioning and used for producing water purification material

By introducing a radial displacement mechanism and a feeding hose into the reactor used for producing water purification materials, the problem of uneven material falling caused by the fixed discharge port of the bearing plate was solved, achieving uniform material distribution and mixing, and improving production efficiency.

CN223888014UActive Publication Date: 2026-02-10SHAOGUAN JIESHENG WATER PURIFICATION MATERIAL CO LTD
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Patent Information

Application Number
CN202520182298.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-05
Publication Date
2026-02-10
Estimated Expiration
2035-02-05

AI Technical Summary

Technical Problem

The discharge port of the support plate in the existing reaction vessel used for water purification material production is in a fixed position, which results in uneven material falling and makes it difficult to achieve uniform dispersion.

Method used

A radial displacement mechanism is installed on the underside of the bearing plate. The radial displacement mechanism drives the material feeding ring to move in the radial position of the bearing plate, adjusting the material falling position. The material is guided through the feeding hose, and the radial screw driven by the motor realizes the synchronous approach or departure of the feeding ring, ensuring that the material is evenly distributed.

Benefits of technology

This process ensures that materials are evenly distributed during the rotation of the support disc, improving mixing efficiency and stability, and enhancing the uniformity and consistency of material feeding.

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Abstract

The utility model relates to the technical field of reaction kettles for producing water purification materials, and discloses a reaction kettle capable of uniformly mixing and proportioning for producing water purification materials, which comprises a processing reaction tank, a reaction cover, a driving shaft rod, a bearing disc, a discharge hole, a radial displacement mechanism, a blanking ring and a blanking hose. During use, materials are borne in the bearing disc and moved to the discharging ring through the discharging hose, the discharging ring is driven by the radial displacement mechanism to move in the radial displacement direction of the bearing disc, and therefore the radial position of the discharging ring is adjusted in the rotating process of the bearing disc. By the adoption of the structure, the discharging ring can be driven to move in the radial position of the bearing disc through the radial displacement mechanism, so that the falling position of the materials is adjusted, and compared with the situation that the position of a discharging port is fixed, uniform scattering of the materials can be further achieved; and meanwhile, due to the arrangement of the discharging hose, the discharging ring which moves in the radial direction can be guided.
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Description

Technical Field

[0001] This utility model relates to the technical field of reaction kettles for the production of water purification materials, specifically a reaction kettle for the production of water purification materials that can uniformly mix and proportion materials. Background Technology

[0002] Water purification materials are fundamental materials used in wastewater treatment. They remove pollutants from wastewater through adsorption, filtration, and sedimentation, maintaining the water source in a relatively clean state. During the production and processing of water purification materials, the entry of raw materials into the reaction vessel is controlled, as are the temperature, humidity, and rotation speed of the reaction equipment. The raw materials are mixed and reacted. The reaction vessel, through mechanical processing, allows for rapid and controlled production of the water purification materials, resulting in high production efficiency. Patent document CN 217368119U discloses a reaction vessel for the production of water purification materials that allows for uniform mixing and proportioning. It includes a processing reaction tank, a reaction cover, a drive shaft, and a support plate, enabling the drive shaft to rotate the support plate accordingly. The rotating support plate allows the materials to be more evenly dispersed inside the processing reaction tank.

[0003] However, the aforementioned existing technology still has the drawback that the discharge port on the bearing plate is in a fixed position. During the rotation of the bearing plate, the range of material falling from the discharge ports on both sides is a circular area extending outward from the discharge port as the inner edge. Therefore, it is still not possible to achieve a relatively uniform dispersion and scattering. Utility Model Content

[0004] This utility model mainly provides a reaction vessel for the production of water purification materials that can uniformly mix and proportion materials. It solves the problem that in the existing technology, the discharge port on the support plate is in a fixed position, and the range of material falling from the discharge ports on both sides during the rotation of the support plate is only a circular area extending outward from the discharge port as the inner edge, which still cannot achieve a relatively uniform dispersion.

[0005] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:

[0006] A reaction vessel for producing water purification materials that can uniformly mix and proportion materials includes a processing tank, a reaction cover, a drive shaft, a support plate, and a discharge port. The discharge port is located on the support plate. A radial displacement mechanism is radially arranged on the lower side of the support plate, and a feeding ring is arranged on the radial displacement mechanism. The feeding ring is connected to the discharge port via a feeding hose, and the feeding ring is radially displaced by the radial displacement mechanism. In use, the support plate contains materials, which are moved to the feeding ring via the feeding hose. The feeding ring is then displaced radially on the support plate by the radial displacement mechanism, thereby adjusting the radial position of the feeding ring as the support plate rotates. Using the structure of this application, the radial displacement mechanism can drive the feeding ring to move radially on the support plate, thereby adjusting the position of the falling material. Compared to a fixed discharge port position, this further achieves more uniform material distribution. Simultaneously, the feeding hose guides the radially displacing feeding ring.

[0007] Furthermore, the device includes at least two feeding rings, which are simultaneously moved closer to or further away from the drive shaft in the diametrical direction by the radial displacement mechanism. The diametrical direction of the drive shaft is the radial direction of the bearing disc, and their axes coincide. This structure can accelerate the feeding rate from both sides, ensuring feeding stability; and the simultaneous movement of the feeding rings closer to or further away ensures that the feeding range on both sides is consistent.

[0008] Furthermore, the radial displacement mechanism includes two sets of mounting brackets arranged on the bearing plate with the diameter of the drive shaft as the axis of symmetry. A radial guide rod is fixedly connected to one set of mounting brackets, and a radial screw is rotatably connected to the other set of mounting brackets. A motor is mounted on the mounting bracket at either end of the radial screw, and the motor drives the radial screw to rotate. Both feeding rings are threadedly connected to the radial screw, and the threaded connections of the two feeding rings are in opposite directions. This structure allows the radial screw to rotate via a motor, thereby cooperating with the radial guide rod to displace the two feeding rings. The overall structure is simple and practical.

[0009] Furthermore, the outer wall of the support plate is rotatably connected to the inner wall of the large end of the processing reaction vessel. The large end of the processing reaction vessel refers to the position with the longest inner diameter within the processing reaction vessel. This structure ensures that the support plate can hold a sufficient amount of material and allows for the maximum travel distance of the radial displacement mechanism driving the feeding ring.

[0010] Furthermore, a bulk feed inlet is provided on the processing reaction vessel located below the support plate. With this structure, when large-scale material processing is required, the material can enter directly from the bulk feed inlet to avoid interference from the support plate.

[0011] Beneficial effects: The structure of this application enables the material feeding ring to move radially on the bearing plate through the radial displacement mechanism, thereby adjusting the position of the material falling. Compared with the case where the discharge port position is fixed, it can further achieve uniform material distribution. At the same time, the setting of the material feeding hose can guide the radially displaced material feeding ring. Attached Figure Description

[0012] Figure 1 This is a cross-sectional schematic diagram of the processing reaction vessel in this embodiment;

[0013] Figure 2 This is a bottom view of the support plate in this embodiment.

[0014] Attached reference numerals: 1. Processing reaction vessel; 2. Reaction cover; 3. Drive shaft; 4. Bearing plate; 5. Discharge port; 6. Feeding ring; 7. Feeding hose; 8. Radial guide rod; 9. Radial screw; 10. Motor; 11. Large batch feed port. Detailed Implementation

[0015] The following will provide a more detailed description of the technical solution of a reaction vessel for the production of water purification materials that can be uniformly mixed and proportioned, in conjunction with the embodiments of this utility model.

[0016] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0017] like Figure 1 , Figure 2As shown in this embodiment, a reaction vessel for producing water purification materials capable of uniform mixing and proportioning includes a processing reaction tank 1, a reaction cover 2, a drive shaft 3, a support plate 4, and a discharge port 5. The discharge port 5 is disposed on the support plate 4. A radial displacement mechanism is radially disposed on the lower side of the support plate 4, and a feeding ring 6 is disposed on the radial displacement mechanism. The feeding ring 6 is connected to the discharge port 5 through a feeding hose 7. The feeding ring 6 is radially displaced by the radial displacement mechanism. At least two feeding rings 6 are included, and the two feeding rings 6 are simultaneously moved closer to or further away from the drive shaft 3 in the diametrical direction by the radial displacement mechanism. The diametrical direction of the drive shaft 3 is the radial direction of the support plate 4, and their axes coincide. The radial displacement mechanism includes two sets of mounting brackets arranged on the bearing plate with the diameter of the drive shaft 3 as the axis of symmetry. One set of mounting brackets is fixedly connected to a radial guide rod 8, and the other set of mounting brackets is rotatably connected to a radial screw 9. A motor 10 is mounted on the mounting bracket at either end of the radial screw 9, and the motor 10 drives the radial screw 9 to rotate. Both feeding rings 6 are threadedly connected to the radial screw 9, and the threaded connections of the two feeding rings 6 are in opposite directions. The outer wall of the bearing plate 4 is rotatably connected to the inner wall of the large end of the processing reaction tank 1. A large-volume feed port 11 is provided on the processing reaction tank 1 corresponding to the position below the bearing plate 4. In use, the bearing plate 4 carries material, which is moved to the feeding ring 6 via the feeding hose 7. The feeding ring 6 is displaced radially on the bearing plate 4 by the radial displacement mechanism, thereby adjusting the radial position of the feeding ring 6 during the rotation of the bearing plate 4. By adopting the structure of this application, the radial displacement mechanism can drive the feeding ring 6 to move in the radial position of the bearing plate 4, thereby adjusting the position of the material falling. Compared with the case where the position of the discharge port 5 is fixed, it can further achieve uniform material distribution. At the same time, the feeding hose 7 can guide the radially displaced feeding ring 6.

[0018] Although embodiments of the present 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 present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A reaction vessel for producing water purification materials that can uniformly mix and proportion materials, comprising a processing reaction tank, a reaction cover, a drive shaft, a support plate, and a discharge port, characterized in that: The discharge port is located on the support plate. A radial displacement mechanism is provided on the lower side of the support plate. A feeding ring is provided on the radial displacement mechanism. The feeding ring is connected to the discharge port through a feeding hose. The feeding ring is radially displaced by the radial displacement mechanism.

2. The reaction vessel for producing water purification materials with uniform mixing ratio according to claim 1, characterized in that: It includes at least two feeding rings, and the two feeding rings move closer or further away from each other in the diametrical direction of the drive shaft simultaneously by the radial displacement mechanism.

3. The reaction vessel for producing water purification materials with uniform mixing ratio according to claim 2, characterized in that: The radial displacement mechanism includes two sets of mounting brackets arranged on the bearing plate with the diameter of the drive shaft as the axis of symmetry. A radial guide rod is fixedly connected to one set of mounting brackets, and a radial screw is rotatably connected to the other set of mounting brackets. A motor is provided on the mounting bracket at either end of the radial screw, and the motor is used to drive the radial screw to rotate. Both feeding rings are threadedly connected to the radial screw, and the threaded connection directions of the two feeding rings are opposite.

4. The reaction vessel for producing water purification materials with uniform mixing ratio according to claim 1, characterized in that: The outer wall of the bearing plate is rotatably connected to the inner wall of the large end of the processing reaction vessel.

5. The reaction vessel for producing water purification materials with uniform mixing ratio according to claim 4, characterized in that: A large batch feed port is provided on the processing reaction vessel located below the bearing plate.

Citation Information

Patent Citations

  • Reaction kettle capable of uniformly mixing and proportioning and used for producing water purification material

    CN217368119U