Optical lens cleaning material grinding structure

By incorporating a cross-shaped partition plate and a linkage gear system within the grinding structure, simultaneous grinding of four materials is achieved, solving the problem of low production efficiency in existing technologies and improving production efficiency and speed.

CN224573854UActive Publication Date: 2026-07-31GUANGDONG GUANGXIN NEW MATERIAL TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG GUANGXIN NEW MATERIAL TECHNOLOGY CO LTD
Filing Date
2025-08-26
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing cleaning agent material grinding structures can only process one type of material in a single batch, resulting in low production efficiency and requiring repeated loading, unloading, cleaning, and grinding processes.

Method used

The grinding structure is divided into four independent areas by a cross-shaped partition plate. Combined with a rotating grinding disc and a fixed grinding ring, it can grind four kinds of materials at the same time, preventing cross-contamination of materials. Synchronous rotation is achieved through linkage gears and a drive system.

Benefits of technology

It enables the simultaneous independent grinding of four materials, improving production efficiency, reducing repetitive loading, unloading and cleaning processes, and increasing production speed.

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Abstract

This utility model relates to the field of material processing technology for cleaning machines, and in particular to a grinding structure for optical lens cleaning agents. It includes a shell, a crushing component, and a grinding component. The grinding component includes a rotating grinding disc and a fixed grinding ring. A cross-shaped partition plate in the middle of the shell divides the inner side of the shell into four independent areas. The fixed grinding ring is distributed within each independent area. A grinding chamber matching the rotating grinding disc is located in the middle of the fixed grinding ring, and the rotating grinding disc is placed inside the grinding chamber. The bottom surface of the shell has a bottom opening, covered by a bottom shell. Linkage gears are distributed on the bottom surface of the bottom shell, and a drive gear is also provided. Through the design of the cross-shaped partition plate, the inner side of the shell is divided into four independent areas. Simultaneously, a rotating grinding disc and a fixed grinding ring are placed within each independent area, achieving the effect of independently grinding four different materials at the same time. This eliminates the need for repeated loading, unloading, cleaning, and grinding processes, while also accelerating production.
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Description

Technical Field

[0001] This utility model relates to the field of material processing technology for cleaning machines, and in particular to a grinding structure for optical lens cleaning agent materials. Background Technology

[0002] Lens cleaner is a cleaning liquid specifically designed for cleaning optical lenses (such as camera lenses, microscope lenses, telescope lenses, etc.). It can effectively remove fingerprints, oil stains, dust and other dirt while avoiding scratches on the lens surface.

[0003] The production and processing of lens cleaning agents includes raw material preparation, formula mixing, filtration and packaging. In the raw material preparation and formula mixing, some fixed raw material particles are often large or difficult to dissolve. Therefore, in order to speed up the production process, manufacturers use grinding structures to grind the raw materials used for mixing. Grinding can improve the dissolution rate and uniformity, and avoid precipitation in the cleaning agent.

[0004] Existing grinding structures for cleaning agents typically grind materials separately to ensure the properties of the raw materials and prevent cross-contamination. However, these structures can only process one type of material per batch, requiring repeated loading, unloading, cleaning, and grinding processes during production, resulting in low production efficiency. To address these issues, the inventors have proposed a grinding structure for optical lens cleaning agents. Utility Model Content

[0005] The purpose of this utility model is achieved through the following method: a grinding structure for optical lens cleaning agent materials, including a shell, a crushing component, and a grinding component. The crushing component is installed in the upper part of the inner side of the shell, and the grinding component is located in the lower part of the inner side of the shell. The grinding component includes a rotating grinding disc and a fixed grinding ring. A cross-shaped partition plate is provided in the middle of the inner side of the shell, dividing the inner side of the shell into four independent areas. The fixed grinding ring is distributed in the independent areas, and the side wall of the fixed grinding ring is fixedly connected to the side wall of the cross-shaped partition plate and the wall of the inner side of the shell, respectively. The middle of the fixed grinding ring is provided with a grinding cavity that matches the rotating grinding disc. The disc is rotatably set inside the grinding chamber. The bottom surface of the outer shell has a bottom opening, and a bottom shell is covered on the bottom opening. The top edge of the bottom shell has a surrounding protrusion. The middle of the top surface of the bottom shell, near the independent area, has a pouring plate that matches the independent area. The bottom surface of the bottom shell has a linkage gear near the midpoint of the bottom surface of the rotating grinding disc. The middle of the bottom surface of the bottom shell has a drive gear that meshes with the linkage gear. The linkage gear is connected to the rotating grinding disc by rotating through the bottom shell and the pouring plate via a rotating shaft. Both sides of the outer surface of the outer shell have opening and closing cylinders, and the push rods of the opening and closing cylinders are fixedly connected to the outer surface of the bottom shell.

[0006] In a further embodiment of the above description, a power motor is installed on the bottom surface of the base shell near the drive gear. The drive shaft of the power motor is connected to the drive gear. A support frame is installed below the base shell, with the middle part of the support frame connected to the bottom of the power motor. The edges of the support frame are fixedly connected to the bottom surface of the base shell through connecting rods. When the power motor is turned on, it drives the drive shaft to rotate. When the drive shaft rotates, it synchronously drives the linkage gear to rotate. Since the linkage gear is connected to the rotating shaft, the drive gear drives the rotating shaft and the rotating grinding discs to rotate synchronously, thus achieving the effect of synchronously driving the four rotating grinding discs to rotate through the power motor.

[0007] In a further embodiment of the above description, the material pouring plates are provided with a partition groove that matches the cross partition plate. The corner of the material pouring plate away from the center point of the cross partition plate adopts an inclined structure. The outer side of the raised enclosure is provided with a pouring port near the inclined corner of the material pouring plate. The top surface of the material pouring plate is provided with a clearance position that matches the rotating shaft near the rotating shaft. The ground material powder falls onto the material pouring plate, and finally the material dust slides towards the inclined structure provided at the corner of the material pouring plate away from the center point of the cross partition plate, and is finally poured out from the pouring port.

[0008] In a further embodiment of the above description, the top surface of the outer shell is provided with a feed inlet, and a discharge funnel is provided on the top surface of the outer shell near the feed inlet. A cross-shaped dividing bar is provided in the middle of the discharge funnel, and the cross-shaped dividing bar is aligned with the cross-shaped dividing plate. Support feet are provided on both sides of the outer surface of the outer shell, and the support feet extend towards the bottom surface of the outer shell. When different materials are poured into the discharge funnel, the cross-shaped dividing bar can effectively separate the different materials and prevent cross-contamination.

[0009] In a further embodiment of the above description, the crushing assembly includes a crushing shaft and a mounting base. The mounting bases are distributed at both ends of the inner side of the housing. The crushing shaft is rotatably disposed between the mounting bases and distributed at both ends of the mounting bases. A smooth rod position is provided on the crushing shaft near the cross partition plate. A support hole matching the smooth rod position is provided on the cross partition plate near the smooth rod position. The smooth rod position is used to cooperate with the cross partition plate and also provides support for the middle part of the crushing shaft.

[0010] In a further embodiment of the above description, a connecting block is provided on one side of the outer surface of the housing near the mounting base. Both ends of the connecting block are equipped with transmission gears at positions concentric with the crushing shaft. The transmission gears rotate synchronously with the crushing shaft and mesh with each other. A drive motor is located on the side of the transmission gears away from the housing. The drive shaft of the drive motor is connected to the transmission gears. A fixing plate is located on the side of the drive motor away from the transmission gears. The fixing plate has an L-shaped structure, and the other end of the fixing plate away from the drive motor is fixedly connected to the outer surface of the housing. When the drive motor is turned on, it drives one of the transmission gears at both ends to rotate. Through the gear meshing relationship, it then drives the other transmission gear to rotate, and finally drives the crushing shaft to rotate, thus realizing the rotation of the crushing shaft.

[0011] Compared with the prior art, the beneficial effects of this utility model are: by designing a cross-shaped partition plate, the inner side of the outer shell is divided into four independent areas, and a rotating grinding disc and a fixed grinding ring are set in each independent area, so as to achieve the effect of independently grinding four different materials at the same time. This eliminates the need to repeatedly perform loading, unloading, cleaning and grinding processes, and also speeds up the production process. Attached Figure Description

[0012] Figure 1 This is a three-dimensional structural diagram of the grinding structure of an optical lens cleaning agent material according to this utility model; Figure 2 This is a three-dimensional structural schematic diagram of the material grinding structure of an optical lens cleaning agent according to this utility model from another perspective; Figure 3 This is an exploded structural diagram of the grinding structure of an optical lens cleaning agent material according to this utility model; Figure 4 This is an exploded structural diagram of the grinding structure of an optical lens cleaning agent material according to another perspective of this utility model. Figure 5 This is a schematic diagram of the internal structure of a grinding structure for an optical lens cleaning agent according to this utility model; Figure 6 This is a schematic diagram of the internal structure of the optical lens cleaning agent material grinding structure from another perspective of this utility model; Figure 7 This is a schematic diagram of the structural assembly of a grinding structure for an optical lens cleaning agent according to this utility model; In the diagram: 1-outer shell, 2-rotating grinding disc, 3-fixed grinding ring, 4-cross partition plate, 5-grinding chamber; 6-Bottom opening, 7-Bottom shell, 8-Enclosure protrusion, 9-Discharge plate, 10-Linkage gear, 11-Drive gear; 12-Opening and closing cylinder, 13-Power motor, 14-Support frame, 15-Connecting rod, 16-Divider groove; 17-Discharge port, 18-Walkaway position, 19-Inlet, 20-Discharge funnel, 21-Cross divider; 22-Support foot, 23-Crushing shaft, 24-Mounting base, 25-Smooth rod position, 26-Support hole, 27-Connecting block; 28-Transmission gear, 29-Drive motor, 30-Fixed plate, 31-Rotating shaft. Detailed Implementation

[0013] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0014] For this embodiment, please refer to Figures 1-7 The present invention relates to a grinding structure for an optical lens cleaning agent, comprising a housing 1, a crushing component, and a grinding component. The crushing component is installed on the upper part of the inner side of the housing 1, and the grinding component is located on the lower part of the inner side of the housing 1. The grinding component includes a rotating grinding disc 2 and a fixed grinding ring 3. A cross-shaped partition plate 4 is provided in the middle of the inner side of the housing 1, dividing the inner side of the housing 1 into four independent areas. The fixed grinding ring 3 is distributed in the independent areas, and the side wall of the fixed grinding ring 3 is fixedly connected to the side wall of the cross-shaped partition plate 4 and the inner wall of the housing 1, respectively. A grinding cavity 5 matching the rotating grinding disc 2 is provided in the middle of the fixed grinding ring 3. The rotating grinding disc 2 is rotatably disposed in the grinding cavity 5. The bottom surface of shell 1 is provided with a bottom opening 6, and a bottom shell 7 is covered on the bottom opening 6. The top edge of the bottom shell 7 is provided with a retaining protrusion 8. The middle of the top surface of the bottom shell 7 is provided with a pouring plate 9 that matches the independent area. The bottom surface of the bottom shell 7 is provided with a linkage gear 10 near the midpoint of the bottom surface of the rotating grinding disc 2. The middle of the bottom surface of the bottom shell 7 is provided with a drive gear 11, which meshes with the linkage gear 10. The linkage gear 10 passes through the bottom shell 7 and the pouring plate 9 via a rotating shaft 31 and is connected to the rotating grinding disc 2 for synchronous rotation. The outer sides of the outer shell 1 are provided with opening and closing cylinders 12, and the push rods of the opening and closing cylinders 12 are fixedly connected to the outer side of the bottom shell 7. A power motor 13 is provided on the bottom surface of the bottom shell 7 near the drive gear 11. The drive shaft of the power motor 13 is connected to the drive gear 11. A support frame 14 is provided below the bottom shell 7. The middle part of the support frame 14 is connected to the bottom of the power motor 13. The edges of the support frame 14 are fixedly connected to the bottom surface of the bottom shell 7 through connecting rods 15. Specifically, when the power motor 13 is turned on, the drive shaft of the power motor 13 drives the drive gear 11 to rotate. As the drive gear 11 rotates, it will drive the linkage gear 10 and the rotating shaft 31 to rotate synchronously in sequence. The rotating shaft 31 will drive the rotating grinding disc 2 to rotate synchronously, thereby achieving the grinding of the poured material. When cleaning is required, the opening and closing cylinder 12 can be activated. The opening and closing cylinder 12 drives the bottom shell 7 to move downward. At the same time, it drives the rotating grinding disc 2, the pouring plate 9 and the power motor 13 to move downward, thereby separating the rotating grinding disc 2 from the fixed grinding ring 3, making it easier for the staff to carry out cleaning operations.

[0015] A partition groove 16 matching the cross partition plate 4 is provided between the pouring plates 9. The corner of the pouring plate 9 away from the center point of the cross partition plate 4 adopts an inclined structure. A pouring port 17 is opened on the outer side of the enclosure protrusion 8 near the inclined corner of the pouring plate 9. A clearance position 18 matching the rotating shaft 31 is provided on the top surface of the pouring plate 9 near the rotating shaft 31.

[0016] The top surface is provided with a feed inlet 19. The top surface of the outer shell 1 is provided with a pouring funnel 20 near the feed inlet 19. The middle of the pouring funnel 20 is provided with a cross divider 21. The cross divider 21 is aligned with the cross divider plate 4. Both sides of the outer surface of the outer shell 1 are provided with support feet 22. The support feet 22 extend toward the bottom surface of the outer shell 1. Specifically, during the feeding operation, the staff can pour the material at the four corners of the feeding funnel 20. At the same time, the cross divider 21 can effectively prevent the materials from mixing.

[0017] The crushing assembly includes a crushing shaft 23 and a mounting base 24. The mounting base 24 is distributed at both ends inside the housing 1. The crushing shaft 23 is rotatably disposed between the mounting bases 24 and is distributed at both ends of the mounting base 24. The crushing shaft 23 is provided with a smooth rod position 25 near the cross partition plate 4. The cross partition plate 4 is provided with a support hole 26 that matches the smooth rod position 25 near the smooth rod position 25.

[0018] A connecting block 27 is provided on one side of the outer surface of the housing 1 near the mounting base 24. Both ends of the connecting block 27 are provided with transmission gears 28 at positions concentric with the crushing shaft 23. The transmission gears 28 rotate synchronously with the crushing shaft 23 and mesh with each other. A drive motor 29 is provided on the side of the transmission gear 28 away from the housing 1. The drive shaft of the drive motor 29 is connected to the transmission gear 28. A fixing plate 30 is provided on the side of the drive motor 29 away from the transmission gear 28. The fixing plate 30 has an L-shaped structure. The other end of the fixing plate 30 away from the drive motor 29 is fixedly connected to the outer surface of the housing 1. Specifically, when the material enters the feed inlet 19 through the discharge funnel 20, the drive motor 29 is turned on. The drive motor 29 drives the transmission gear 28 at one end to rotate. Through the gear meshing relationship, it drives the transmission gear 28 at the other end to rotate. Finally, it drives the crushing shaft 23 to rotate to crush the material, so that the fixed grinding ring 3 and the rotating grinding disc 2 can grind the material.

[0019] The working process of this utility model is as follows: When the material is poured into the pouring funnel 20, the drive motor 29 is turned on. The drive motor 29 drives the transmission gear 28 at one end to rotate. Through the gear meshing relationship, it drives the transmission gear 28 at the other end to rotate. Finally, it drives the crushing shaft 23 to rotate to crush the material. After the crushed material enters the top surface of the fixed grinding ring 3, it slides into the grinding chamber 5 of the fixed grinding ring 3 through the inclined structure of the top surface of the fixed grinding ring 3. At the same time, the power motor 13 is turned on, and the drive shaft of the power motor 13 drives the drive gear 11 to rotate. While the drive gear 11 is rotating, it will drive the linkage gear 10 and the rotating shaft 31 to rotate synchronously. The rotating shaft 31 will drive the rotating grinding disc 2 to rotate synchronously, thereby realizing the grinding of the poured material. The ground material enters the top surface of the pouring plate 9 through the gap between the fixed grinding ring 3 and the rotating grinding disc 2, and finally exits from the pouring port 17.

[0020] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0021] Furthermore, in the description of the embodiments of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" 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. In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0022] Finally, it should be noted that the above embodiments are merely specific implementations of this utility model, used to illustrate the technical solution of this utility model, and not to limit it. The protection scope of this utility model is not limited thereto. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that any person skilled in the art can still modify or easily conceive of changes to the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features, within the technical scope disclosed in this utility model. These modifications, changes, or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model, and should all be covered within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. An optical lens cleaning agent material grinding structure comprising a housing, a crushing assembly and a grinding assembly, the crushing assembly is installed on the upper part of the inner side of the housing, and the grinding assembly is arranged on the lower part of the inner side of the housing, characterized in that: The grinding assembly includes a rotating grinding disc and a fixed grinding ring. A cross-shaped partition plate is provided in the middle of the inner side of the outer shell, dividing the inner side of the outer shell into four independent areas. The fixed grinding ring is distributed in the independent areas, and the side wall of the fixed grinding ring is fixedly connected to the side wall of the cross-shaped partition plate and the inner wall of the outer shell, respectively. The middle of the fixed grinding ring is provided with a grinding cavity that matches the rotating grinding disc. The rotating grinding disc is rotatably set in the grinding cavity. The bottom surface of the outer shell is provided with a bottom opening, and a bottom shell is covered on the bottom opening. The top edge of the bottom shell is provided with a retaining protrusion. The middle of the top surface of the bottom shell is provided with a pouring plate that matches the independent area. The bottom surface of the bottom shell is provided with a linkage gear near the midpoint of the bottom surface of the rotating grinding disc. The middle of the bottom surface of the bottom shell is provided with a drive gear, which meshes with the linkage gear. The linkage gear passes through the bottom shell and the pouring plate via a rotating shaft and is synchronously connected to the rotating grinding disc. Opening and closing cylinders are provided on both sides of the outer side of the outer shell, and the push rods of the opening and closing cylinders are fixedly connected to the outer side of the bottom shell.

2. The material grinding structure of the optical lens cleaning agent according to claim 1, wherein: A power motor is located on the bottom surface of the base shell near the drive gear. The drive shaft of the power motor is connected to the drive gear. A support frame is located below the base shell. The middle part of the support frame is connected to the bottom of the power motor. The edges of the support frame are fixedly connected to the bottom surface of the base shell through connecting rods.

3. The material grinding structure of optical lens cleaning agent according to claim 2, wherein: The material pouring plates are provided with a partition groove that matches the cross partition plate. The corner of the material pouring plate away from the center point of the cross partition plate is inclined. The outer side of the raised enclosure is provided with a material pouring port near the inclined corner of the material pouring plate. The top surface of the material pouring plate is provided with a clearance position that matches the rotating shaft near the rotating shaft.

4. The abrasive structure of claim 1, wherein: The top surface of the outer shell is provided with a feed inlet, and a discharge funnel is provided on the top surface of the outer shell near the feed inlet. A cross-shaped dividing bar is provided in the middle of the discharge funnel, and the cross-shaped dividing bar is aligned with the cross-shaped dividing plate. Support feet are provided on both sides of the outer outer surface, and the support feet extend towards the bottom surface of the outer shell.

5. The abrasive structure of claim 1, wherein: The crushing assembly includes a crushing shaft and a mounting base. The mounting bases are distributed at both ends of the inner side of the housing. The crushing shaft is rotatably disposed between the mounting bases and is distributed at both ends of the mounting bases. A smooth rod position is provided on the crushing shaft near the cross partition plate. A support hole matching the smooth rod position is provided on the cross partition plate near the smooth rod position.

6. The material grinding structure of optical lens cleaning agent according to claim 5, wherein: A connecting block is provided on one side of the outer surface of the housing near the mounting base. Both ends of the connecting block are equipped with transmission gears at positions concentric with the crushing shaft. The transmission gears rotate synchronously with the crushing shaft and mesh with each other. A drive motor is provided on the side of the transmission gear away from the housing. The drive shaft of the drive motor is connected to the transmission gear. A fixing plate is provided on the side of the drive motor away from the transmission gear. The fixing plate has an L-shaped structure. The other end of the fixing plate away from the drive motor is fixedly connected to the outer surface of the housing.