Raw material impurity removing device for glass production

Through the design of the turning glass raw material, the hydraulic cylinder and motor-driven device is used to solve the problem of difficulty in removing impurities in a stationary state, and achieve a fast and efficient impurity removal effect.

CN223055815UActive Publication Date: 2025-07-04SHAANXI CNG NEW TECH LTD
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Patent Information

Application Number
CN202421822774.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-30
Publication Date
2025-07-04
Estimated Expiration
2034-07-30

AI Technical Summary

Technical Problem

In the existing glass production raw material removal device, the glass raw material in a stationary state causes the iron-containing impurities to be completely adsorbed by the magnetic block, resulting in a long removal time.

Method used

A device for removing impurities for glass production is designed. The cage is driven down through the hydraulic cylinder, the motor drives the screw to rotate, and the screw sleeve drives the fixing roller and the magnetic block to move back and forth, turning the glass raw materials, and the magnetic blocks absorb iron-containing impurities during the turn.

Benefits of technology

It realizes the rapid and effective removal of iron-containing impurities inside the material box, avoiding the accumulation of impurities at the bottom and cannot be adsorbed, and improving the removal efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass production, in particular to a raw material impurity removing device for glass production, and adopts the technical scheme that the raw material impurity removing device comprises a material box and a screw sleeve, a fixed frame is welded at the top of the material box, bearings I are embedded into two sides of the fixed frame, and screw rods are fixedly mounted on inner rings of the two bearings I; a hydraulic cylinder is installed at the bottom of the threaded sleeve, a retainer is installed at the bottom of the hydraulic cylinder, second bearings are installed on the front side and the rear side of the retainer in an embedded mode, fixed rollers are fixedly installed on inner rings of the two second bearings, and a second motor is installed on the front side of the top of the retainer; connecting frames are welded to the two sides of the holding frame. The material box has the advantages that glass raw materials in the material box can be turned over, and iron-containing impurities are prevented from being accumulated at the bottom end in the material box and cannot be adsorbed by the magnetic blocks.
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Description

Technical Field

[0001] The utility model relates to the technical field of glass production, in particular to an impurity removing device for glass production raw materials. Background Technique

[0002] The impurity removing device for glass production raw materials is usually called "the selection equipment for glass raw materials". Its main function is to remove impurities from raw materials to ensure the production of high-quality glass products. These devices can include various sieves, magnets, air separators, etc., which are used to filter, separate or remove impurities and impure substances in raw materials, making the glass products more pure and of better quality.

[0003] When using a magnetic block to adsorb iron-containing impurities inside glass raw materials, only a part of the iron impurities are exposed on the surface under the static glass raw materials, and they cannot be effectively adsorbed and removed, resulting in a longer time required to completely remove all iron impurities. Content of the Utility Model

[0004] The purpose of the utility model is to provide an impurity removing device for glass production raw materials, which has the advantages of being able to turn the glass raw materials inside the material box to avoid the accumulation of iron-containing impurities at the bottom end inside the material box and being unable to be adsorbed by the magnetic block, and solves the problem that when removing iron-containing impurities in glass raw materials, the glass raw materials do not flow, resulting in a longer removal time.

[0005] To achieve the above purpose, the utility model provides the following technical scheme: an impurity removing device for glass production raw materials, including a material box and a screw sleeve. A fixing frame is welded on the top of the material box. Two bearings are embedded on both sides of the fixing frame. The inner rings of the two bearings are fixedly installed with a lead screw. The screw sleeve is meshed with the lead screw. A hydraulic cylinder is installed at the bottom of the screw sleeve. A retaining frame is installed at the bottom of the hydraulic cylinder. Two bearings are embedded on the front and rear sides of the retaining frame. The inner rings of the two bearings are fixedly installed with a fixed roller. A motor two is installed on the front side of the top of the retaining frame. Connecting frames are welded on both sides of the retaining frame.

[0006] When using the impurity removing device for glass production raw materials in this technical scheme, after moving the material box to a suitable position through the casters, the glass raw materials are added into the material box through the opening at the top of the material box. The hydraulic cylinder drives the retaining frame to descend to a suitable height. The magnetic blocks on both sides of the retaining frame adsorb the iron-containing impurities in the glass raw materials inside the material box. The motor one drives the lead screw to rotate through the transmission structure. The screw sleeve moves back and forth on the rotating lead screw. The screw sleeve drives the fixed roller and the magnetic block to move back and forth. The motor two drives the fixed roller to rotate through the belt. The fixed roller turns the glass raw materials inside the material box to disperse the accumulated glass raw materials. During the turning process, the magnetic blocks adsorb the iron-containing impurities onto the surface.

[0007] Preferably, the top of the material box is provided with an open and unclosed opening. The glass raw materials are added into the interior of the material box through the opening at the top of the material box.

[0008] Preferably, a first motor is installed on the side of the fixing frame, and the transmission structure of the first motor is fixedly connected to the lead screw. The first motor drives the lead screw to rotate through the transmission structure.

[0009] Preferably, a positioning rod is welded to the rear side of the top of the cage, a positioning sleeve is welded to the rear side of the screw sleeve, and the top of the positioning rod passes through the positioning sleeve. The positioning rod limits the cage. When the cage moves up and down, the positioning rod moves inside the positioning sleeve to prevent the cage from shaking.

[0010] Preferably, the transmission structure of the second motor is movably connected to the fixed roller through a belt. The second motor drives the fixed roller to rotate through the belt.

[0011] Preferably, magnetic blocks are installed at the bottoms of both connecting frames, and there is a distance between the two magnetic blocks and the fixed roller. The two magnetic blocks absorb the iron-containing impurities in the glass raw materials. When the fixed roller rotates, it will not interfere with the fixed roller.

[0012] Preferably, a discharge pipe is embedded and installed at the bottom of the material box, and the discharge pipe is communicated with the interior of the material box. The glass raw materials inside the material box can be discharged through the discharge pipe.

[0013] Preferably, support plates are installed on both sides of the bottom of the material box on both sides of the discharge pipe, and casters are symmetrically installed at the bottoms of the two support plates. The casters facilitate the movement of the material box.

[0014] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0015] By setting the magnetic blocks and the fixed roller in the present utility model, when the magnetic blocks adsorb the iron-containing impurities in the glass raw materials inside the material box, the second motor drives the fixed roller to rotate through the belt, and the fixed roller flips the glass raw materials inside the material box to disperse the accumulated glass raw materials. During the flipping process, the magnetic blocks adsorb the iron-containing impurities onto the surface, achieving the effect of being able to flip the glass raw materials inside the material box and preventing the iron-containing impurities from accumulating at the bottom end of the material box and being unable to be adsorbed by the magnetic blocks. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic three-dimensional structure diagram of the first angle of the present utility model;

[0017] Figure 2 is a schematic three-dimensional structure diagram of the second angle of the present utility model;

[0018] Figure 3 is a schematic three-dimensional structure diagram of the third angle of the present utility model;

[0019] Figure 4Schematic diagram of the cage structure of the present utility model.

[0020] In the figure: 1, material box; 2, fixed frame; 3, first bearing; 4, lead screw; 5, nut sleeve; 6, first motor; 7, support plate; 8, caster; 9, positioning rod; 10, second motor; 11, cage; 12, hydraulic cylinder; 13, magnetic block; 14, discharge pipe; 15, connecting frame; 16, positioning sleeve; 17, fixed roller; 18, belt; 19, second bearing. Specific embodiments

[0021] In order to make the above objects, features and advantages of the present utility model more obvious and understandable, the specific embodiments of the present utility model will be described in detail below with reference to the accompanying drawings.

[0022] In the following description, many specific details are set forth in order to fully understand the present utility model. However, the present utility model can also be implemented in other ways different from those described herein. Those skilled in the art can make similar promotions without departing from the connotation of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed below.

[0023] Secondly, the present utility model will be described in detail with reference to the schematic diagrams. When detailing the embodiments of the present utility model, for the convenience of explanation, the cross-sectional views showing the device structure will be enlarged locally out of proportion, and the schematic diagrams are only examples and should not limit the scope of protection of the present utility model herein. In addition, in actual production, three-dimensional spatial dimensions including length, width and depth should be included.

[0024] In order to make the purpose, technical solution and advantages of the present utility model clearer, the embodiments of the present utility model will be further described in detail below with reference to the accompanying drawings.

[0025] Embodiment 1

[0026] As Figures 1-4As shown in the figure, an impurity removing device for raw materials used in glass production proposed by the present utility model includes a material box 1 and a screw sleeve 5. A fixed frame 2 is welded to the top of the material box 1. On both sides of the fixed frame 2, a first bearing 3 is embedded and installed. The inner rings of the two first bearings 3 are fixedly installed with a lead screw 4. A first motor 6 is installed on the side of the fixed frame 2. The transmission structure of the first motor 6 is fixedly connected to the lead screw 4. The screw sleeve 5 is meshed with the lead screw 4. A hydraulic cylinder 12 is installed at the bottom of the screw sleeve 5. A cage 11 is installed at the bottom of the hydraulic cylinder 12. On the front and rear sides of the cage 11, a second bearing 19 is embedded and installed. The inner rings of the two second bearings 19 are fixedly installed with a fixed roller 17. A second motor 10 is installed on the front side of the top of the cage 11. The transmission structure of the second motor 10 is movably connected to the fixed roller 17 through a belt 18. Connection frames 15 are welded to both sides of the cage 11. Magnets 13 are installed at the bottoms of the two connection frames 15. There is a distance between the two magnets 13 and the fixed roller 17. The top of the material box 1 is provided with an open and unclosed opening. A discharge pipe 14 is embedded and installed at the bottom of the material box 1. The discharge pipe 14 is communicated with the inside of the material box 1. Support plates 7 are installed on both sides of the bottom of the material box 1 on both sides of the discharge pipe 14. Casters 8 are symmetrically installed at the bottoms of the two support plates 7.

[0027] In this embodiment, after the material box 1 is moved to a suitable position through the casters 8, the glass raw materials are added into the inside of the material box 1 from the opening at the top of the material box 1. The hydraulic cylinder 12 drives the cage 11 to descend to a suitable height. The magnets 13 on both sides of the cage 11 adsorb the iron-containing impurities in the glass raw materials inside the material box 1. The first motor 6 drives the lead screw 4 to rotate through the transmission structure. The screw sleeve 5 moves back and forth on the rotating lead screw 4. The screw sleeve 5 drives the fixed roller 17 and the magnets 13 to move back and forth. The second motor 10 drives the fixed roller 17 to rotate through the belt 18. The fixed roller 17 turns over the glass raw materials inside the material box 1 to disperse the accumulated glass raw materials. During the turning process, the magnets 13 adsorb the iron-containing impurities onto the surface.

[0028] Embodiment Two

[0029] As Figures 1-4 shown in the figure, an impurity removing device for raw materials used in glass production proposed by the present utility model. Compared with Embodiment One, this embodiment further includes: a positioning rod 9 and a positioning sleeve 16. A positioning rod 9 is welded to the rear side of the top of the cage 11. A positioning sleeve 16 is welded to the rear side of the screw sleeve 5. The top of the positioning rod 9 passes through the positioning sleeve 16.

[0030] In this embodiment, the cage 11 is limited by the positioning rod 9. When the cage 11 moves up and down, the positioning rod 9 moves inside the positioning sleeve 16 to prevent the cage 11 from shaking.

[0031] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or perform equivalent replacements for some of the technical features. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. An impurity removing device for raw materials used in glass production, comprising a material box (1) and a screw sleeve (5), characterized in that: A fixing frame (2) is welded to the top of the material box (1). One bearing (3) is embedded and installed on each side of the fixing frame (2). A lead screw (4) is fixedly installed on the inner rings of the two bearings (3). The screw sleeve (5) is meshed and connected with the lead screw (4). A hydraulic cylinder (12) is installed at the bottom of the screw sleeve (5). A cage (11) is installed at the bottom of the hydraulic cylinder (12). One bearing (19) is embedded and installed on each of the front and rear sides of the cage (11). A fixed roller (17) is fixedly installed on the inner rings of the two bearings (19). A second motor (10) is installed on the front side of the top of the cage (11). Connecting frames (15) are welded to both sides of the cage (11).

2. The raw material impurity removal device for glass production according to claim 1, wherein: The top of the material box (1) is provided with an opening that is not closed.

3. An impurity removal device for raw materials used in glass production according to claim 1, characterized in that: A first motor (6) is installed on the side of the fixing frame (2). The transmission structure of the first motor (6) is fixedly connected to the lead screw (4).

4. The raw material impurity removal device for glass production according to claim 1, characterized in that: A positioning rod (9) is welded to the rear side of the top of the cage (11). A positioning sleeve (16) is welded to the rear side of the screw sleeve (5). The top of the positioning rod (9) passes through the positioning sleeve (16).

5. The impurity removing device for raw materials used in glass production according to claim 1, characterized in that: The transmission structure of the second motor (10) is movably connected to the fixed roller (17) through a belt (18).

6. The impurity removing device for raw materials used in glass production according to claim 1, wherein: Magnets (13) are installed at the bottoms of the two connecting frames (15). A distance is left between the two magnets (13) and the fixed roller (17).

7. The impurity removing device for raw materials used in glass production according to claim 1, characterized in that: A discharge pipe (14) is embedded and installed at the bottom of the material box (1). The discharge pipe (14) is communicated with the inside of the material box (1).

8. An impurity removing device for raw materials used in glass production according to claim 7, characterized in that: Support plates (7) are installed on both sides of the bottom of the material box (1) on both sides of the discharge pipe (14). Casters (8) are symmetrically installed at the bottoms of the two support plates (7).