Slicing mechanism applied to rhinestone hot-fix rhinestone blister sheet grinding and polishing machine
By designing segmentation suction cups and feeding suction cups for the segmentation mechanism, the problem of discontinuous material transfer in the grinding and polishing machine was solved, achieving precise separation and efficient transfer of materials, and improving production efficiency.
Patent Information
- Application Number
- CN202520147278.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-21
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-01-21
AI Technical Summary
Existing grinding and polishing machines are prone to cascading adsorption during material transfer, resulting in low production efficiency, requiring machine shutdown for separation, and affecting the continuity of material transfer.
A slitting mechanism was designed, including a slitting suction cup, a feeding suction cup, and a tray. The slitting suction cup is driven by a telescopic cylinder to separate stacked materials. The conveyor belt and rotating arm work together to achieve precise separation and transfer of materials, reducing downtime for separation steps.
It improves the continuity of material transfer, reduces feeding time, and increases the production efficiency of the grinding and polishing machine.
Smart Images

Figure CN223776821U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of rhinestone and hot-rhinestone grinding and polishing technology, specifically to a slitting mechanism applied to a rhinestone and hot-rhinestone blister pad grinding and polishing machine. Background Technology
[0002] Rhinestone hot-fix blister sheets are a type of craft used to decorate the surface of textiles, leather, or other materials. They typically need to be polished on a polishing machine to give them a more exquisite appearance and enhance their overall gloss and visual effect.
[0003] In related technologies, existing grinding and polishing machines use suction cups to grip materials and move them between the grinding and polishing station and the material hopper to achieve loading and unloading. During the production process, in order to save storage space, materials such as blister packs are usually stacked. However, when the suction cups are gripping materials, they can easily overlap and adhere to two or more blister packs, requiring the machine to be stopped to separate the overlapping blister packs. This affects the continuity of material transfer and results in low production efficiency of the grinding and polishing machine. Utility Model Content
[0004] The purpose of this invention is to provide a slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine, in order to solve the problem of insufficient material transfer continuity in the polishing machine.
[0005] To achieve the above objectives, the present invention provides a slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine, which adopts the following technical solution:
[0006] A slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine includes a housing located on one side of the polishing machine. A conveyor belt is rotatably mounted on the housing, and a tray is mounted on the conveyor belt. The conveyor belt drives the tray to reciprocate and translate along the length of the housing.
[0007] A feeding hopper is located at the end of the machine housing away from the grinding and polishing machine, and the feeding hopper contains stacked materials to be processed;
[0008] The segmented suction cup is reciprocatingly slidably disposed at the top of the machine housing. The segmented suction cup is used to transfer materials from the feeding hopper to the tray. A telescopic cylinder is vertically disposed at the center of the segmented suction cup, and a separation paddle is sleeved on the periphery of the end of the telescopic cylinder facing the tray.
[0009] A feeding suction cup, reciprocatingly sliding at the top of the machine housing, is used to transfer materials from the tray to the feeding station of the grinding and polishing machine.
[0010] As an optimization of the slitting mechanism applied to the rhinestone hot-rhine vacuum forming sheet grinding and polishing machine, a rotating arm is rotatably connected to the end of the machine housing away from the feeding bin, and a feeding suction cup is fixedly connected to the end of the rotating arm away from the machine housing. The feeding suction cup is used to remove the material from the feeding station of the grinding and polishing machine.
[0011] As an optimization of the slitting mechanism applied to the rhinestone hot-rhine vacuum forming sheet grinding and polishing machine, a rotating arm is rotatably connected to the end of the machine housing away from the feeding bin, and a feeding suction cup is fixedly connected to the end of the rotating arm away from the machine housing. The feeding suction cup is used to remove the material from the feeding station of the grinding and polishing machine.
[0012] As an optimization of the slitting mechanism applied to the rhinestone and hot-rhine blister polishing machine, a sensor is installed on the machine housing. The sensor is located at one end of the conveyor belt near the feeding hopper. When the pallet is located at the end of the conveyor belt near the feeding hopper, the sensor is used to weigh the pallet.
[0013] As an optimization of the slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet grinding and polishing machine, at least two feeding bins are provided, and a rotating disk is rotatably provided on the machine housing. The multiple feeding bins are distributed at equal intervals along the circumference of the rotating disk.
[0014] As an optimization of the slitting mechanism applied to the grinding and polishing machine for rhinestone hot-rhine blister sheets, a lifting plate is provided at the bottom center of the feeding bin, and the lifting plate is used to push the material in the feeding bin out.
[0015] As an optimization of the sliding mechanism applied to a rhinestone and hot-rhinestone vacuum forming sheet polishing machine, the sliding direction of the sliding suction cup and the sliding direction of the feeding suction cup are both on the same straight line as the sliding direction of the tray.
[0016] As an optimization of the slitting mechanism applied to a rhinestone and hot-rhinestone vacuum forming sheet polishing machine, the telescopic cylinder has a telescopic frequency range of 0.1 seconds / time to 0.5 seconds / time.
[0017] Compared to existing technologies, the advantages of this invention are as follows: When feeding the polishing machine, the slit suction cups grab the material from the feeding bin. Driven by a telescopic cylinder, a separating paddle separates the stacked blister sheets attached to the slit suction cups, ensuring that the slit suction cups only grab single blister sheets. The slit suction cups then place the material on a tray, which is moved to the outside of the polishing machine by a conveyor belt. Finally, the feeding suction cups transfer the material from the tray to the feeding station of the polishing machine, thus completing the feeding process. During the feeding process, the slit suction cups separate the material, the tray is transferred, and the feeding suction cups feed the material. This not only reduces the need to stop the machine to separate the stacked blister sheets, but also ensures that all three processes are coordinated and synchronized, reducing feeding time and improving the continuity of material transfer, which is beneficial to improving the production efficiency of the polishing machine. Attached Figure Description
[0018] 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.
[0019] Figure 1 This is a schematic diagram of the installation position structure of the segmentation mechanism according to an embodiment of this application;
[0020] Figure 2 This is a schematic diagram of the overall structure of the segmentation mechanism according to an embodiment of this application;
[0021] Figure 3 Examples of embodiments of this application Figure 1 Enlarged view of point A in the middle.
[0022] In the diagram: 1. Chassis; 10. Grinding and polishing machine; 11. Conveyor belt; 12. Pallet; 13. Sensor; 2. Feeding hopper; 21. Lifting plate; 3. Segmented suction cup; 31. Telescopic cylinder; 32. Separation lever; 4. Feeding suction cup; 5. Linear drive module; 51. Guide rail; 52. Lifting cylinder; 53. Drive belt; 6. Rotating arm; 61. Adjustable distance component; 7. Unloading suction cup; 8. Rotary disc; 9. Trolley. Detailed Implementation
[0023] To make the technical solution and advantages of this utility model clearer, the present utility model and its beneficial effects will be described in further detail below with reference to specific embodiments and accompanying drawings. However, the embodiments of this utility model are not limited thereto.
[0024] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between 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.
[0025] All standard parts used in this utility model can be purchased from the market, and irregular parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art, and the circuit connection adopts conventional connection methods in the prior art, which will not be described in detail here.
[0026] The following is in conjunction with the appendix Figure 1-3 This application will be described in further detail below.
[0027] This application provides a slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine, which adopts the following technical solution:
[0028] Reference Figure 1 and Figure 2 The slicing mechanism includes a chassis 1, a feeding bin 2, slicing suction cups 3, and a feeding suction cup 4. In related technologies, the polishing machine 10 generally includes a feeding station, a processing station, and a discharging station. The feeding station is the beginning of the polishing process, and the discharging station is the end of the polishing process. The feeding station is adjacent to the discharging station. The chassis 1 is rectangular in shape. A control main board is installed inside the chassis 1. The control main board is electrically connected to the electrical components on the chassis 1 to coordinate the material handling process of the polishing machine 10. The chassis 1 is placed on one side of the polishing machine 10, corresponding to the feeding station of the polishing machine 10. A conveyor belt 11 is embedded in the top of the chassis 1. The conveyor belt 11 is driven by a motor to rotate on the chassis 1, and the conveyor belt 11 can reciprocate along the length of the chassis 1. A tray 12 is fixedly installed on the conveyor belt 11. The tray 12 has a circular surface that matches the rhinestone and hot-rhinestone blister pack. The blister pack can be fitted onto the tray 12. The tray 12 moves back and forth along the length of the machine housing 1 at both ends of the machine housing 1 with the conveyor belt 11. The feeding bin 2 is installed at the end of the machine housing 1 away from the grinding and polishing machine 10. The feeding bin 2 is formed by multiple baffles arranged in a circle. The material to be processed is stacked inside the feeding bin 2. Furthermore, a lifting plate 21 is installed at the bottom center of the feeding bin 2. The lifting plate 21 is driven by a cylinder. The lifting plate 21 can push the material in the feeding bin 2 upward to the same height as the grinding and polishing machine 10, which is convenient for the material to be grasped.
[0029] Reference Figure 1 and Figure 2 Two linear drive modules 5 are also fixedly installed on the top surface of the chassis 1. Each linear drive module 5 includes a guide rail 51, a lifting cylinder 52 and a drive belt 53. The guide rail 51 is fixedly connected to the top of the chassis 1 and extends along the length of the chassis 1. The lifting cylinder 52 is slidably connected to the guide rail 51. The drive belt 53 drives the lifting cylinder 52 to reciprocate along the guide rail 51.
[0030] Reference Figure 1 and Figure 3In one of the linear drive modules 5, a segmented suction cup 3 is fixedly connected to a lifting cylinder 52. The segmented suction cup 3 can adsorb materials in the loading bin 2. The horizontal position of the segmented suction cup 3 is adjusted by the drive belt 53 and the guide rail 51, and the vertical height of the segmented suction cup 3 is adjusted by the lifting cylinder 52, which can transfer materials from the loading bin 2 to the tray 12. Several rubber multi-stage suction nozzles are installed on the edge of the segmented suction cup 3, and the rubber multi-stage suction nozzles are symmetrical about the center of the segmented suction cup 3. A telescopic cylinder 31 is vertically installed at the center of the segmented suction cup 3. The telescopic rod of the telescopic cylinder 31 faces the tray 12, and a separation lever 32 is sleeved on the telescopic rod. The telescopic cylinder 31 is controlled by a high-frequency solenoid valve. The telescopic frequency of the telescopic cylinder 31 ranges from 0.1 seconds / cycle to 0.5 seconds / cycle. In practical applications, the telescopic frequency of the telescopic cylinder 31 is selected as 0.2 seconds / cycle. When the segmented suction cup 3 picks up material from the feeding bin 2, several rubber multi-stage suction nozzles adsorb the flat corners of the top layer of blister sheet, flattening the blister sheet. The telescopic cylinder 31 drives the telescopic rod at a telescopic frequency of 0.2 seconds / time, and the telescopic rod penetrates the center of the blister sheet. The separation paddle 32 pushes the lower attached blister sheet downwards and separates it. Through the repeated paddle movement of the separation paddle 32, only the top layer of blister sheet remains on the segmented suction cup 3. The blister sheet is then transferred to the tray 12 for transportation, thereby achieving precise separation and clamping of the blister sheet, reducing the steps of stopping to separate overlapping blister sheets, which is beneficial to improving the feeding efficiency of the grinding and polishing machine 10 and improving the continuity of material transfer.
[0031] Reference Figure 1 and Figure 2 On another linear drive module 5, the feeding suction cup 4 is fixedly connected to the lifting cylinder 52. The position adjustment of the feeding suction cup 4 is the same as that of the segmented suction cup 3, and will not be described in detail here. Through the linear drive module 5, the feeding suction cup 4 can transfer the material on the tray 12 to the feeding station of the grinding and polishing machine 10, thereby realizing the feeding process of the grinding and polishing machine 10.
[0032] Furthermore, referring to Figure 1 and Figure 2 Two linear drive modules 5 are located on the same straight line. Each linear drive module 5 operates independently. One linear drive module 5 is used to drive the segmented suction cup 3, and the other linear drive module 5 is used to drive the loading suction cup 4, so that the sliding direction of the segmented suction cup 3 and the sliding direction of the loading suction cup 4 are both on the same straight line as the sliding direction of the tray 12.
[0033] In the preferred embodiment of this application, reference is made to Figure 1 and Figure 2A rotating arm 6 is rotatably connected to the end of the casing 1 furthest from the hopper. The rotating arm 6 is driven by a motor to rotate around the connection point. A feeding suction cup 7 is fixedly installed at the end of the rotating arm 6 furthest from the casing 1. To facilitate material gripping, a lifting cylinder 52 is usually installed at the end of the rotating arm 6 to adjust the vertical height of the feeding suction cup 7. When the grinding and polishing machine 10 needs to feed material, the rotating arm 6 transfers the feeding suction cup 7 to the feeding station of the grinding and polishing machine 10 to grip the processed material. Then, by rotating the rotating arm 6, the feeding suction cup 7 is transferred to the material collection trolley 9 for stacking, thereby realizing the feeding process of the grinding and polishing machine 10, reducing other separate feeding steps, and improving the continuity of material transfer.
[0034] Furthermore, referring to Figure 1 and Figure 2 The end of the rotating arm 6 away from the housing 1 is fixedly mounted with an adjusting component 61 by screws. The adjusting component 61 can be a cylinder or a hydraulic cylinder. The feeding suction cup 7 is fixedly mounted on the adjusting component 61. The distance between the feeding suction cup 7 and the housing 1 can be adjusted by the adjusting component 61. This allows the feeding suction cup 7 to adapt to the distance between the housing 1 and the polishing machine 10, and also to adapt to the distance between the housing 1 and the material collection trolley 9 during rotation. This improves the flexibility of the housing 1's position, reduces the machine adjustment time, and helps improve the efficiency of material transfer.
[0035] In the preferred embodiment of this application, reference is made to Figure 1 and Figure 2 A sensor 13 is also installed on the top surface of the chassis 1. The sensor 13 is electrically connected to the control main board and is located at the end of the conveyor belt 11 near the loading bin 2. When the tray 12 is transported unloaded to the end of the conveyor belt 11 near the loading bin 2, the tray 12 presses down on the sensor 13, and the sensor 13 records the weight of the tray 12 as gross weight data and feeds it back to the control main board. When the slitting suction cup 3 places the material on the tray 12, the sensor 13 records the weight of the tray 12 as total weight data and feeds it back to the control main board for processing. The control main board subtracts the gross weight from the total weight to obtain the weight of the material. If the weight of the material is within the weight range of a single blister sheet, the conveyor belt 11 operates normally. If the weight of the material exceeds the weight range of a single blister sheet, the chassis 1 will issue an error indicator light and require manual inspection, which helps to improve the accuracy of the slitting step.
[0036] In the preferred embodiment of this application, reference is made to Figure 1 and Figure 2The machine housing 1 has at least two feeding bins 2. A rotating disk 8 is also rotatably installed on the machine housing 1. The rotating disk 8 is driven by a motor. Multiple feeding bins 2 are arranged at equal intervals along the circumference of the rotating disk 8. Under the rotation of the rotating disk 8, multiple bins can rotate. One feeding bin 2 provides material for the grinding and polishing machine 10, while the other feeding bins 2 can be replenished simultaneously, which is beneficial to improving the continuity of material transfer.
[0037] The experimental principle of this embodiment is as follows: When material transfer is required to the polishing machine 10, the layered material in the loading bin 2 is separated by the segmented suction cup 3, and the single piece of material is placed on the tray 12. The conveyor belt 11 drives the tray 12 to transfer the material to the side of the polishing machine 10, and then the loading suction cup 4 transfers the material to the loading station of the polishing machine 10, thus completing the loading step. At the same time, the unloading suction cup 7, driven by the rotating arm 6, rotates and moves the material on the unloading station of the polishing machine 10 to the material collection trolley 9, thus completing the unloading step simultaneously. Through the synchronous operation of the rotating disc 8, the segmented suction cup 3, the tray 12, the loading suction cup 4, and the unloading suction cup 7, the processes of replenishing, segmenting, transferring, loading, and unloading are performed simultaneously, reducing the material transfer time, improving the continuity of material transfer, and helping to improve the production efficiency of the polishing machine 10.
[0038] Based on the disclosure and teachings of the above specification, those skilled in the art can make changes and modifications to the above embodiments. Therefore, this utility model is not limited to the specific embodiments described above, and any obvious improvements, substitutions, or modifications made by those skilled in the art based on this utility model are within the protection scope of this utility model. Furthermore, although some specific terms are used in this specification, these terms are only for convenience of explanation and do not constitute any limitation on this utility model.
Claims
1. A slitting mechanism for use in a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10), characterized in that, include A housing (1) is located on one side of a polishing machine (10). A conveyor belt (11) is rotatably mounted on the housing (1). A tray (12) is mounted on the conveyor belt (11). The conveyor belt (11) drives the tray (12) to reciprocate along the length of the housing (1). The feeding bin (2) is located at one end of the machine housing (1) away from the grinding and polishing machine (10), and the material to be processed is stacked in the feeding bin (2); The segmented suction cup (3) is reciprocally slidably disposed at the top of the machine housing (1). The segmented suction cup (3) is used to transfer materials from the feeding bin (2) to the tray (12). A telescopic cylinder (31) is vertically disposed in the center of the segmented suction cup (3). A separation paddle (32) is sleeved on the periphery of one end of the telescopic cylinder (31) facing the tray (12). The feeding suction cup (4) is reciprocatingly slidably disposed at the top of the machine housing (1). The feeding suction cup (4) is used to transfer materials from the tray (12) to the feeding station of the grinding and polishing machine (10).
2. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 1, characterized in that, A rotating arm (6) is rotatably connected to one end of the housing (1) away from the feeding bin (2). A feeding suction cup (7) is fixedly connected to one end of the rotating arm (6) away from the housing (1). The feeding suction cup (7) is used to remove the material from the feeding station of the grinding and polishing machine (10).
3. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 2, characterized in that, An adjusting member (61) is fixedly connected to one end of the rotating arm (6) away from the housing (1). The adjusting member (61) is used to drive the unloading suction cup (7) to slide along the length extension direction of the rotating arm (6).
4. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 1, characterized in that, A sensor (13) is provided on the chassis (1). The sensor (13) is located at one end of the conveyor belt (11) near the loading bin (2). When the pallet (12) is located at one end of the conveyor belt (11) near the loading bin (2), the sensor (13) is used to weigh the pallet (12).
5. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 1, characterized in that, At least two feeding bins (2) are provided, and a rotating disk (8) is rotatably provided on the chassis (1). The multiple feeding bins (2) are distributed at equal intervals along the circumference of the rotating disk (8).
6. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 1, characterized in that, The bottom center of the feeding hopper (2) is provided with a lifting plate (21), which is used to push the material in the feeding hopper (2) out.
7. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 1, characterized in that, The sliding direction of the segmented suction cup (3) and the sliding direction of the feeding suction cup (4) are both on the same straight line as the sliding direction of the tray (12).
8. The slitting mechanism for a rhinestone and hot-rhinestone vacuum forming sheet polishing machine (10) according to claim 1, characterized in that, The telescopic cylinder (31) has a telescopic frequency range of 0.1 seconds / time to 0.5 seconds / time.