A cleaning device for processing blue glass polishing pieces
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-08
- Publication Date
- 2026-08-11
AI Technical Summary
[0005]针对上述存在的技术不足,本实用新型的目的是提供一种蓝玻璃抛光片加工用清洗装置,以解决上述背景技术中提出的上述蓝玻璃抛光片超声波清洗装置在放置多个蓝玻璃抛光片进行清理时,蓝玻璃抛光片需要相互堆叠放置,相互之间容易造成遮挡,导致水无法全面接触抛光片而影响清洁效果的问题
[0038]本实用新型,通过拉动两侧的拉杆可带动活动插杆从插孔中脱离,此时可以将弧形盖拆下来将柱状料框打开,可将若干个蓝玻璃抛光片置于对应的两个隔板之间放置,后续将柱状料框与弧形盖浸入超声波清洗机内的水中时,水能通过条形通孔与蓝玻璃抛光片接触,此时开启超声波清洗机可带动水分子振动来对抛光片进行清理,并且利用隔板可将蓝玻璃抛光片分开存储,水能通过连通孔与蓝玻璃抛光片侧面接触清洗,避免蓝玻璃抛光片堆叠放置时相互遮挡而形成清洗盲区,提升清洗效果。
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Figure CN224614579U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of blue glass polishing sheet processing technology, specifically to a cleaning device for processing blue glass polishing sheets. Background Technology
[0002] Blue glass polishing pads, also known as blue glass abrasive pads or cerium oxide polishing pads, are a key consumable widely used in the ultra-precision polishing of optical glass, display glass, precision glass components and other fields.
[0003] Chinese Patent Publication No. CN214767407U discloses a multi-tank ultrasonic cleaning device for the production of blue glass polishing sheets. The device includes an ultrasonic cleaning machine body, with three ultrasonic generators fixedly installed on the inner bottom wall of the machine body. A cleaning tank is placed inside the machine body, above the ultrasonic generators. This multi-tank ultrasonic cleaning device for blue glass polishing sheet production, when the ultrasonic generators are activated and the cleaning tank vibrates significantly, causes a first spring and a buffer block to collide. The vibration force generated by the cleaning tank is then absorbed by the first spring and the buffer block, thus reducing the amplitude of the vibration. By incorporating wheels and a third spring, the device effectively mitigates vibrations caused by uneven ground when moving the ultrasonic cleaning machine body. Therefore, the device achieves the advantage of reducing vibration and significantly minimizing damage to the blue glass polishing sheets caused by vibration.
[0004] In the aforementioned prior art, blue glass polishing discs can be placed in water within an ultrasonic cleaner. By turning on the ultrasonic cleaner, water molecules can vibrate at high frequencies to clean the blue glass polishing discs. However, the number of polishing discs that can be cleaned at one time is limited. If multiple blue glass polishing discs are placed in a separate compartment for cleaning, they need to be stacked on top of each other. When stacked, adjacent blue glass polishing discs are prone to obstructing each other, and the contact points between the stationary polishing discs and the bottom or side wall of the equipment will also cause obstruction, resulting in water not being able to fully contact the polishing discs and forming cleaning blind spots, thus affecting the cleaning effect. Utility Model Content
[0005] To address the aforementioned technical shortcomings, the purpose of this utility model is to provide a cleaning device for processing blue glass polishing sheets, thereby solving the problem mentioned in the background art where, when multiple blue glass polishing sheets are placed for cleaning, they need to be stacked together, which can easily cause obstruction between them, resulting in water not being able to fully contact the polishing sheets and affecting the cleaning effect.
[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:
[0007] A cleaning apparatus for processing blue glass polishing sheets includes:
[0008] Ultrasonic cleaning machines also include:
[0009] The material placement structure, arranged on the ultrasonic cleaner, is used to place the polishing pad material into the ultrasonic cleaner and to support the material.
[0010] A plug-in structure is arranged on the material placement structure and is used to operate the opening and closing of the material placement structure.
[0011] The flipping structure is arranged on the feeding structure to control the slow rotation of the feeding structure and the material.
[0012] Preferably, the material placement structure includes:
[0013] The cover plate is detachably installed on the ultrasonic cleaner.
[0014] The connecting bracket is located below the cover plate;
[0015] A columnar material frame is rotatably mounted on one side of the connecting frame;
[0016] A closing component, arranged on a columnar frame, is used to close the columnar frame.
[0017] Preferably, the closure component includes:
[0018] The arc-shaped cover can be detachably installed on the columnar material frame;
[0019] Several strip-shaped through holes are evenly distributed on the arc-shaped cover and the columnar material frame to allow water to flow into the columnar material frame.
[0020] Several blue glass polishing discs are located within a columnar frame.
[0021] Preferably, the material placement structure further includes:
[0022] Several partitions are evenly arranged on the inner wall of the columnar frame, with the blue glass polishing sheet located between two adjacent partitions;
[0023] Several connecting holes are formed on the corresponding partitions.
[0024] Preferably, the plug-in structure includes:
[0025] The movable insert rod slides inside the arc-shaped cover;
[0026] A pull rod is located at one end of the movable plug;
[0027] An insertion hole is formed inside the columnar material frame, and one end of the movable insertion rod is inserted into the insertion hole.
[0028] Preferably, the plug-in structure further includes a spring, which is slidably sleeved on the movable plug rod, with both ends of the spring respectively installed between the arc-shaped cover and the pull rod.
[0029] Preferably, the flipping structure includes:
[0030] The limiting shaft is arranged on one side of the columnar material frame and is rotatably installed inside the connecting frame;
[0031] The drive assembly, located on the cover plate, is used to drive the limit shaft to rotate.
[0032] Preferably, the driving component includes:
[0033] The connecting shaft is rotatably mounted inside the cover plate and the connecting frame.
[0034] The bevel gear is located at one end of the connecting shaft;
[0035] A bevel gear ring is fixedly sleeved on the limiting shaft and meshes with the bevel gear;
[0036] The geared motor is mounted on the cover plate, and its output end is mounted on the connecting shaft.
[0037] The beneficial effects of this utility model are as follows:
[0038] This invention allows the movable insert rod to detach from the insertion hole by pulling the levers on both sides. At this point, the arc-shaped cover can be removed to open the columnar material frame, allowing several blue glass polishing sheets to be placed between the corresponding two partitions. Subsequently, when the columnar material frame and arc-shaped cover are immersed in the water in the ultrasonic cleaner, the water can contact the blue glass polishing sheets through the strip-shaped through-hole. Turning on the ultrasonic cleaner at this time can cause the water molecules to vibrate and clean the polishing sheets. Furthermore, the partitions can be used to store the blue glass polishing sheets separately, and the water can contact the sides of the blue glass polishing sheets through the connecting holes for cleaning, avoiding the formation of cleaning blind spots when the blue glass polishing sheets are stacked, thus improving the cleaning effect.
[0039] In this invention, the columnar material frame and the arc-shaped cover can be slowly rotated inside the ultrasonic cleaner by turning on the reduction motor during the cleaning process. Since the size of the blue glass polishing plate is smaller than that of the columnar material frame and the arc-shaped cover, the blue glass polishing plate can slowly roll inside to change its position, so that it can be more fully exposed to the water, allowing the water to clean the previously blocked areas and further improve the cleaning effect. Attached Figure Description
[0040] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0041] Figure 1 A schematic diagram of the structure of a cleaning device for processing blue glass polishing sheets provided in this embodiment of the present invention;
[0042] Figure 2 A schematic diagram of a columnar material frame structure for a cleaning device for processing blue glass polishing sheets provided in an embodiment of this utility model;
[0043] Figure 3 An exploded view of the arc-shaped cover of a cleaning device for processing blue glass polishing sheets, provided as an embodiment of this utility model;
[0044] Figure 4 A schematic diagram of the columnar material frame structure of a cleaning device for processing blue glass polishing sheets provided in this embodiment of the present invention;
[0045] Figure 5 A cleaning device for processing blue glass polishing sheets is provided in this embodiment of the utility model. Figure 4 A schematic diagram of the structure of part A;
[0046] Figure 6 This is a schematic cross-sectional view of the bevel gear ring of a cleaning device for processing blue glass polishing sheets, provided in an embodiment of this utility model.
[0047] Explanation of reference numerals in the attached figures:
[0048] 1. Ultrasonic cleaning machine; 2. Cover plate; 201. Connecting frame; 202. Columnar material frame; 203. Arc-shaped cover; 204. Strip-shaped through hole; 205. Blue glass polishing plate; 206. Partition plate; 207. Connecting hole; 3. Movable insertion rod; 301. Pull rod; 302. Insertion hole; 303. Spring; 4. Limiting shaft; 401. Connecting shaft; 402. Bevel gear; 403. Bevel gear ring; 404. Gear motor. Detailed Implementation
[0049] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0050] Example 1:
[0051] like Figures 1 to 6 As shown, this utility model provides a cleaning device for processing blue glass polishing sheets, including: an ultrasonic cleaner 1 and a material placement structure arranged on the ultrasonic cleaner 1 for placing polishing sheet material into the ultrasonic cleaner 1 and supporting the material.
[0052] The material placement structure includes a cover plate 2 that can be detachably installed on the ultrasonic cleaner 1, a connecting frame 201 arranged below the cover plate 2, a columnar material frame 202 rotatably installed on one side of the connecting frame 201, and a closing component arranged on the columnar material frame 202 for closing the columnar material frame 202. The columnar material frame 202 can be used to support and place materials. When the cover plate 2 is closed, the columnar material frame 202 can move the materials into the ultrasonic cleaner 1. At the same time, when the cover plate 2 is lifted, the columnar material frame 202 is used to carry the materials out.
[0053] Specifically, the closing component includes an arc-shaped cover 203 detachably mounted on the columnar material frame 202, several strip-shaped through holes 204 evenly opened on the arc-shaped cover 203 and the columnar material frame 202 to allow water to flow into the columnar material frame 202, and several blue glass polishing discs 205 located inside the columnar material frame 202. The arc-shaped cover 203 can be used to cover and seal the columnar material frame 202 to prevent the blue glass polishing discs 205 from coming out. Water in the ultrasonic cleaner 1 can contact the blue glass polishing discs 205 through the strip-shaped through holes 204. Turning on the ultrasonic cleaner 1 can drive water molecules to vibrate at high frequency to clean the blue glass polishing discs 205.
[0054] The material placement structure also includes several partitions 206 evenly arranged on the inner wall of the columnar material frame 202. The blue glass polishing sheet 205 is located between two adjacent partitions 206. Several connecting holes 207 are opened on the corresponding partitions 206. The partitions 206 can separate and store each blue glass polishing sheet 205. Water can contact the side of the blue glass polishing sheet 205 through the connecting holes 207, avoiding the stacking and contact between adjacent blue glass polishing sheets 205, which would affect the contact effect with water.
[0055] Example 2:
[0056] Based on Example 1, in order to enable the material placement structure to open and close and facilitate the loading and unloading of blue glass polishing sheet materials, an insertion structure is arranged on the material placement structure.
[0057] The plug-in structure includes a movable plug rod 3 that is slidably installed inside the arc-shaped cover 203, a pull rod 301 arranged at one end of the movable plug rod 3, and a plug hole 302 opened inside the columnar material frame 202. One end of the movable plug rod 3 is inserted into the plug hole 302. The movable plug rod 3 can strengthen the connection between the columnar material frame 202 and the arc-shaped cover 203 and prevent them from separating. By pulling the pull rod 301, the movable plug rod 3 can be disengaged from the plug hole 302, thereby releasing the connection restriction between the columnar material frame 202 and the arc-shaped cover 203.
[0058] The plug-in structure also includes a spring 303 that is slidably sleeved on the movable plug rod 3. The two ends of the spring 303 are respectively installed between the arc-shaped cover 203 and the pull rod 301. When the pull rod 301 moves, it will stretch the spring 303 to store energy. When the pull rod 301 is released, the stretched spring 303 will contract and drive the pull rod 301 to move and reset.
[0059] Example 3:
[0060] Based on Example 1, in order to control the slow rotation of the material placement structure and the material, thereby driving the blue glass polishing sheet material to roll and improve the contact effect with water, a flipping structure is arranged on the material placement structure.
[0061] The flipping structure includes a limiting shaft 4 arranged on one side of the columnar material frame 202 and rotatably installed inside the connecting frame 201, and a driving assembly arranged on the cover plate 2 for driving the limiting shaft 4 to rotate. The columnar material frame 202 can drive the limiting shaft 4 to rotate on the connecting frame 201, so that the limiting shaft 4 can serve as the rotation fulcrum of the columnar material frame 202, enabling the columnar material frame 202 to achieve the effect of rotation.
[0062] The drive assembly includes a connecting shaft 401 rotatably mounted inside the cover plate 2 and the connecting frame 201, a bevel gear 402 arranged at one end of the connecting shaft 401, a bevel gear ring 403 fixedly sleeved on the limiting shaft 4 and meshing with the bevel gear 402, and a reduction motor 404 arranged on the cover plate 2. The output end of the reduction motor 404 is arranged on the connecting shaft 401. Turning on the reduction motor 404 can control the connecting shaft 401 to rotate slowly. The connecting shaft 401 drives the limiting shaft 4 to rotate through the meshing of the bevel gear 402 and the bevel gear ring 403, thereby driving the columnar material frame 202 and the arc-shaped cover 203 to rotate slowly, causing the blue glass polishing disc 205 inside to roll, which helps to ensure that every part of the blue glass polishing disc 205 comes into contact with water.
[0063] Working principle:
[0064] Pulling the levers 301 on both sides causes the movable insert 3 to slide within the arc-shaped cover 203. The spring 303 is in a contracted state. As the levers 301 move, they stretch the spring 303 to store energy, simultaneously causing the movable insert 3 to disengage from the insertion hole 302. This releases the connection between the columnar material frame 202 and the arc-shaped cover 203. Pulling the arc-shaped cover 203 upwards removes it from the columnar material frame 202 and opens it. Then, the blue glass polishing sheet 205 can be placed between the two partitions 206. After replacing the arc-shaped cover 203 and releasing the levers 301 on both sides, the stretched spring 303 will contract and cause the levers 301 to move back to their original position. The movable insert 3 is then reinserted into the insertion hole 302 to re-fix the columnar material frame 202 and the arc-shaped cover 203. At this time, the columnar material frame 202 can be placed in the ultrasonic cleaner 1 and the cover plate 2 can be closed. The water in the ultrasonic cleaner 1 can contact the blue glass polishing sheet 205 through the strip-shaped through hole 204. According to existing technology, turning on the ultrasonic cleaner 1 can cause water molecules to vibrate at high frequency. The vibration of the water will directly act on the blue glass polishing sheet 205, accelerate the removal of dirt, and achieve a cleaning effect. The partition 206 can separate and store each blue glass polishing sheet 205, and the water can contact the side of the blue glass polishing sheet 205 through the connecting hole 207.
[0065] By activating the reduction motor 404, the connecting shaft 401 can be controlled to rotate slowly. The connecting shaft 401 drives the bevel gear 402 to rotate, and the bevel gear 402, through meshing with the bevel gear ring 403, drives the limiting shaft 4 to rotate. This, in turn, causes the limiting shaft 4 to drive the cylindrical material frame 202 and the arc-shaped cover 203 to rotate slowly. (Reference) Figure 4 As shown, the size of the blue glass polishing disc 205 is smaller than the internal space of the partition 206 and the columnar material frame 202. Therefore, when the columnar material frame 202 and the arc-shaped cover 203 rotate, they will cause the blue glass polishing disc 205 inside to roll, which promotes the movement of the blue glass polishing disc 205 inside the columnar material frame 202. This helps to ensure that every part of the blue glass polishing disc 205 can come into contact with water, thus improving the cleaning effect. After cleaning is completed, the columnar material frame 202 and the blue glass polishing disc 205 can be taken out by pulling the cover plate 2 for easy material removal.
[0066] Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.
Claims
1. A cleaning apparatus for processing blue glass polishing sheets, comprising an ultrasonic cleaner (1), characterized in that, Also includes: The material placement structure is arranged on the ultrasonic cleaner (1) and is used to place the polishing pad material into the ultrasonic cleaner (1) and to support the material. A plug-in structure is arranged on the material placement structure and is used to operate the opening and closing of the material placement structure. The flipping structure is arranged on the feeding structure to control the slow rotation of the feeding structure and the material.
2. The cleaning apparatus for processing blue glass polishing sheets as described in claim 1, characterized in that, The material placement structure includes: The cover plate (2) is detachably installed on the ultrasonic cleaner (1); The connecting bracket (201) is arranged below the cover plate (2); A columnar material frame (202) is rotatably mounted on one side of the connecting frame (201); A closing component is arranged on the columnar frame (202) for closing the columnar frame (202).
3. The cleaning apparatus for processing blue glass polishing sheets as described in claim 2, characterized in that, The closure component includes: An arc-shaped cover (203) is detachably mounted on a columnar material frame (202); Several strip-shaped through holes (204) are evenly opened on the arc-shaped cover (203) and the columnar material frame (202) to allow water to flow into the columnar material frame (202); Several blue glass polishing discs (205) are located inside the columnar frame (202).
4. The cleaning apparatus for processing blue glass polishing sheets as described in claim 1, characterized in that, The material placement structure also includes: Several partitions (206) are evenly arranged on the inner wall of the columnar frame (202), and the blue glass polishing sheet (205) is located between two adjacent partitions (206); Several connecting holes (207) are formed on the corresponding partitions (206).
5. The cleaning apparatus for processing blue glass polishing sheets as described in claim 3, characterized in that, The plug-in structure includes: The movable insert (3) is slidably installed inside the arc-shaped cover (203); A pull rod (301) is arranged at one end of the movable plug rod (3).
6. The cleaning apparatus for processing blue glass polishing sheets as described in claim 5, characterized in that, The columnar frame (202) has an insertion hole (302) inside, and one end of the movable insertion rod (3) is inserted into the insertion hole (302).
7. The cleaning apparatus for processing blue glass polishing sheets as described in claim 5, characterized in that, The plug-in structure also includes a spring (303), which is slidably sleeved on the movable plug rod (3). The two ends of the spring (303) are respectively installed between the arc-shaped cover (203) and the pull rod (301).
8. The cleaning apparatus for processing blue glass polishing sheets as described in claim 7, characterized in that, The flipping structure includes a limiting shaft (4) arranged on one side of the columnar material frame (202), the limiting shaft (4) being rotatably installed inside the connecting frame (201).
9. The cleaning apparatus for processing blue glass polishing sheets as described in claim 8, characterized in that, The cover plate (2) is also provided with a drive assembly for driving the limit shaft (4) to rotate.
10. The cleaning apparatus for processing blue glass polishing sheets as described in claim 9, characterized in that, The driving component includes: The connecting shaft (401) is rotatably installed inside the cover plate (2) and the connecting bracket (201); A bevel gear (402) is arranged at one end of the connecting shaft (401); The bevel gear ring (403) is fixedly sleeved on the limiting shaft (4) and meshes with the bevel gear (402); A geared motor (404) is arranged on the cover plate (2), and the output end of the geared motor (404) is arranged on the connecting shaft (401).
Citation Information
Patent Citations
Multi-groove ultrasonic cleaning device for blue glass polished section production
CN214767407U