Gypsum distributing equipment

By setting up a magnet layer and a tensioning wheel frame on the material distribution conveyor belt, the problem of separation of iron materials in gypsum powder is solved, and the effective separation of iron materials and gypsum powder is achieved, which improves the purity and performance stability of gypsum powder.

CN223133165UActive Publication Date: 2025-07-22CHONGQING HEBANG ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202422081258.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-26
Publication Date
2025-07-22
Estimated Expiration
2034-08-26

AI Technical Summary

Technical Problem

In the prior art, iron materials mixed in gypsum powder are difficult to effectively separate, which affects the stability of gypsum powder performance.

Method used

A material distribution conveyor belt is designed, with a cutting pulley and a tensioning wheel frame with a magnet layer. The iron material is adsorbed through the magnet layer, and the rotation of the tensioning wheel frame drives the ring belt to shake to achieve the separation of the iron material and gypsum powder.

Benefits of technology

The irrigated material in gypsum powder is achieved, and the purity and performance stability of gypsum powder are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses gypsum distributing equipment, which relates to the field of distributing equipment, and adopts the technical scheme that the gypsum distributing equipment comprises a distributing conveying belt, and the distributing conveying belt comprises a feeding belt wheel, a discharging belt wheel and an annular belt; the feeding belt wheel and the discharging belt wheel are oppositely arranged through a support, a magnet layer is arranged on the outer wall of the discharging belt wheel, and the feeding belt wheel and the discharging belt wheel are connected in a winding mode through an annular belt. A tensioning wheel frame is arranged between the feeding belt wheel and the discharging belt wheel, the tensioning wheel frame is rotationally matched with a support, the tensioning wheel frame is driven by a motor, a plurality of rotating rollers are evenly distributed on the periphery of a rotating shaft of the tensioning wheel frame, and when the tensioning wheel frame rotates, the rotating rollers sequentially abut against and make contact with the inner side of the upper portion of the annular belt. And iron materials in the gypsum powder can be fully separated.
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Description

Technical Field

[0001] The utility model relates to a gypsum material distributing device, mainly relating to the field of material distributing devices. Background Art

[0002] When processing gypsum powder, impurity particles that may be mixed in the gypsum powder need to be separated. For example, iron materials are mixed with the gypsum powder, affecting the stability of the performance of the gypsum powder. Currently, the devices for other main material distribution all focus on the material distribution of other materials, and there is no material distribution for iron materials. Summary of the Utility Model

[0003] Aiming at the deficiencies of the above prior art, the utility model provides a gypsum material distributing device, which can fully separate the iron materials in the gypsum powder.

[0004] To achieve the above object, the technical solution of the utility model is: it includes a material distributing conveyor belt, and the material distributing conveyor belt includes a feeding pulley, a discharging pulley and an endless belt;

[0005] The feeding pulley and the discharging pulley are oppositely arranged through a bracket, a magnet layer is arranged on the outer wall of the discharging pulley, and the feeding pulley and the discharging pulley are connected by winding with the endless belt;

[0006] A tensioning wheel frame is arranged between the feeding pulley and the discharging pulley, the tensioning wheel frame is rotationally matched with the bracket, the tensioning wheel frame is driven by a motor, and a plurality of rollers are uniformly arranged on the periphery of the rotating shaft of the tensioning wheel frame. When the tensioning wheel frame rotates, the rollers sequentially abut against the inner side of the upper part of the endless belt.

[0007] The technical principle and beneficial effects of the utility model are as follows:

[0008] When in use, the gypsum powder to be distributed enters the endless belt from one end of the feeding pulley, and then is transported to one end of the discharging pulley through the endless belt. The discharging pulley is provided with a magnet layer. Therefore, when the gypsum powder approaches the discharging pulley, the iron materials therein will be attracted, while the gypsum powder can normally fall from the discharging pulley. When the endless belt is separated from the discharging pulley, the iron materials fall downward due to the lack of attraction of the magnet layer, thereby realizing the separation of the iron materials of the gypsum. On the one hand, the tensioning wheel frame is used to provide tension for the endless belt. On the other hand, since the rollers arranged on the tensioning wheel frame are in direct contact with the endless belt, when the tensioning wheel frame rotates, the tensioning force on the endless belt is not constant and is in a state of switching between tight and loose, thereby driving the upper part of the endless belt to vibrate, and further driving the gypsum powder on the endless belt to vibrate, so that the iron materials therein move relative to the gypsum powder and are fully adsorbed by the magnet layer. This solution can fully separate the iron materials in the gypsum powder.

[0009] Preferably, the magnet layer includes strip magnets evenly arranged on the outer wall of the blanking pulley, and the strip magnets are arranged along the axial direction of the blanking pulley. It is convenient to fix and can distribute magnets as much as possible to fully adsorb iron materials.

[0010] Preferably, a number of strip protrusions are distributed on the outer wall of the annular belt, and the strip protrusions are disposed relative to the length of the annular belt. So as to increase the friction of the annular belt for transporting gypsum powder and avoid slipping and jamming of iron materials near the blanking pulley.

[0011] Preferably, the strip protrusions are in arc transition with the outer surface of the annular belt. To prevent gypsum powder from getting stuck in the inner corners of the strip protrusions.

[0012] Preferably, a magnet area is provided on the inner side of the lower part of the annular belt, and the magnet area is close to the side of the blanking pulley. So as to transport iron materials away from the blanking pulley and fully separate them from gypsum powder.

[0013] Preferably, the number of the rotating rollers is 4-8. So as to provide sufficient vibration while providing tension. Description of the Drawings

[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only one of the drawings of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0015] Figure 1 It is a schematic diagram of an embodiment of the present invention.

[0016] Among them, the feeding pulley 1, the blanking pulley 2, the magnet layer 3, the magnet area 4, the tensioning pulley frame 5, the rotating roller 6, the annular belt 7, the strip protrusion 8. Detailed Embodiments

[0017] The following will clearly and completely describe the technical solutions in the present invention with reference to the drawings. Obviously, the described embodiments are only the preferred embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0018] Embodiment

[0019] As Figure 1As shown in the figure, an embodiment of the present utility model includes a material distribution conveyor belt, and the material distribution conveyor belt includes a feeding pulley 1, a discharging pulley 2, and an endless belt 7; the feeding pulley 1 and the discharging pulley 2 are oppositely arranged through a bracket, a magnet layer 3 is arranged on the outer wall of the discharging pulley 2, and the feeding pulley 1 and the discharging pulley 2 are connected by winding with the endless belt 7; a tensioning wheel frame 5 is arranged between the feeding pulley 1 and the discharging pulley 2, the tensioning wheel frame 5 is rotationally matched with the bracket, the tensioning wheel frame 5 is driven by a motor, and a plurality of rollers 6 are uniformly arranged on the circumference around the rotating shaft of the tensioning wheel frame 5. When the tensioning wheel frame 5 rotates, the rollers 6 are sequentially in abutting contact with the inner side of the upper part of the endless belt 7.

[0020] The technical principle and beneficial effects of the present utility model are as follows:

[0021] When in use, the gypsum powder to be distributed enters the endless belt 7 from one end of the feeding pulley 1, and then is transported to one end of the discharging pulley 2 through the endless belt 7. The discharging pulley 2 is provided with a magnet layer 3. Therefore, when the gypsum powder approaches the discharging pulley 2, the iron materials therein will be attracted, and the gypsum powder can normally fall from the discharging pulley 2. When the endless belt 7 is separated from the discharging pulley 2, the iron materials will fall downward due to the lack of attraction of the magnet layer 3, so as to realize the separation of the iron materials in the gypsum. The tensioning wheel frame 5 is used to provide tension for the endless belt 7 on the one hand. On the other hand, since the rollers 6 arranged on the tensioning wheel frame 5 are in direct contact with the endless belt 7, when the tensioning wheel frame 5 rotates, the tension on the endless belt 7 is not constant and is in a state of switching between tight and loose. Thus, it will drive the upper part of the endless belt 7 to shake, and then drive the gypsum powder on the endless belt 7 to shake, so that the iron materials therein move relative to the gypsum powder and are fully adsorbed by the magnet layer 3.

[0022] The magnet layer 3 includes strip magnets uniformly arranged on the outer wall of the discharging pulley 2, and the strip magnets are arranged along the axial direction of the discharging pulley 2. It is convenient to fix and can distribute the magnets as much as possible to fully adsorb the iron materials.

[0023] A plurality of strip protrusions 8 are distributed on the outer wall of the endless belt 7, and the strip protrusions 8 are arranged along the length direction of the endless belt 7. So as to improve the friction force of the endless belt 7 for transporting the gypsum powder and avoid the iron materials from slipping and jamming near the discharging pulley 2.

[0024] The strip protrusions 8 are in arc transition with the outer surface of the endless belt 7. To avoid the gypsum powder from getting stuck in the inner corners of the strip protrusions 8.

[0025] A magnet area 4 is arranged corresponding to the inner side of the lower part of the endless belt 7, and the magnet area 4 is close to one side of the discharging pulley 2. So as to transport the iron materials away from the discharging pulley 2 and fully separate them from the gypsum powder.

[0026] The number of the rotating rollers 6 is 4 - 8, so as to provide sufficient vibration while providing tension.

[0027] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A gypsum batching device, characterized in that, It includes a material distribution conveyor belt, and the material distribution conveyor belt includes a feeding pulley (1), a discharging pulley (2) and an endless belt (7); The feeding pulley (1) and the discharging pulley (2) are oppositely arranged through a bracket. A magnet layer (3) is arranged on the outer wall of the discharging pulley (2). The feeding pulley (1) and the discharging pulley (2) are connected by winding with the endless belt (7); A tensioning wheel frame (5) is arranged between the feeding pulley (1) and the discharging pulley (2). The tensioning wheel frame (5) is rotationally matched with the bracket. The tensioning wheel frame (5) is driven by a motor. A plurality of rollers (6) are evenly distributed on the circumference around the rotating shaft of the tensioning wheel frame (5). When the tensioning wheel frame (5) rotates, the rollers (6) sequentially abut against and contact the inner side of the upper part of the endless belt (7).

2. The gypsum batching equipment according to claim 1, wherein: The magnet layer (3) includes strip magnets evenly distributed on the outer wall of the discharging pulley (2), and the strip magnets are arranged along the axial direction of the discharging pulley (2).

3. The gypsum batching equipment according to claim 1, characterized in that: A plurality of strip protrusions (8) are distributed on the outer wall of the endless belt (7), and the strip protrusions (8) are arranged along the length direction of the endless belt (7).

4. The gypsum batching device according to claim 3, wherein: The strip protrusions (8) are in arc transition with the outer surface of the endless belt (7).

5. The gypsum batching equipment according to claim 1, characterized in that: A magnet area (4) is arranged corresponding to the inner side of the lower part of the endless belt (7), and the magnet area (4) is close to one side of the discharging pulley (2).

6. The gypsum batching equipment according to claim 1, characterized in that: The number of the rollers (6) is 4 - 8.