Plastic uptake tray capable of being stacked and positioned in multiple layers
By setting sinking grooves, placement grooves and positioning components on the blister discs, and using the coaxial setting of the axial positioning elements, the problem of lack of autonomous positioning of the blister discs when stacking multi-layers is solved, position consistency and efficient stacking are achieved, and production efficiency and product protection are improved.
Patent Information
- Application Number
- CN202421898080.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-08-07
AI Technical Summary
The existing blister discs lack autonomous positioning function when stacking multi-layers, resulting in easy position deviation during material removal.
By providing a sinking groove, a placement groove and a positioning assembly on the blister disk, the axial structure of the first positioning element and the second positioning element are arranged coaxially, and the multi-layered positioning of the blister disk is realized.
Ensure the position consistency of the blister disc during the lamination process, facilitate material removal, improve the efficiency of stacking operation, reduce adjustment and calibration time, reduce collision and friction between stacking discs, and protect the product surface.
Smart Images

Figure CN222906408U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of blister trays, in particular to a blister tray with multi-layer stacking and positioning function. Background Art
[0002] A blister tray is a mold or tooling part used in the blister process. Usually, during the blister molding process, a heat-softened plastic sheet or plastic particles are placed on the blister tray, and then through heating and vacuum adsorption and other means, it is formed into a product with the required shape. The blister tray usually has a flat surface and edges to accommodate and fix the plastic raw material, and maintain stability during the blister process to ensure the quality and accuracy of the formed product.
[0003] The design and material of the blister tray will vary according to specific blister processes and product requirements, and can be made of metal, plastic or other special materials. The blister tray usually has the characteristics of high temperature resistance, wear resistance and corrosion resistance to ensure stable and reliable use during the blister molding process.
[0004] When the blister tray is used on automated equipment, multiple blister trays need to be stacked for use. However, general blister trays do not have an independent multi-layer stacking and positioning function, resulting in easy deviation during the material taking process. Therefore, it is necessary to make new improvements to the existing blister tray structure. Summary of the Utility Model
[0005] To solve the above problems, the utility model positions the blister trays during multi-layer stacking through a positioning component to ensure the consistency of positions during the stacking process, and provides a blister tray with multi-layer stacking and positioning function for easy material taking.
[0006] The technical solution adopted by the utility model is: a blister tray with multi-layer stacking and positioning function, including a blister tray body. A sunken groove is arranged on the upper surface of the blister tray body. Placing grooves are evenly distributed on the groove bottom surface of the sunken groove. A positioning component is arranged on one side of the sunken groove where the placing groove is located. The positioning component includes a first positioning element and a second positioning element. The first positioning element extends towards the sunken groove, and the second positioning element extends towards the reverse direction of the first positioning element; both the first positioning element and the second positioning element are shaft-shaped structures, and the first positioning element and the second positioning element are coaxially arranged.
[0007] Further improvement to the above solution is that a positioning flange is arranged on the outer periphery of the blister tray body where the sunken groove is located, and the positioning flange is used for positioning the blister tray body.
[0008] Further improvement to the above solution is that a reinforcing ring is arranged on the outer periphery of the positioning flange, and the reinforcing ring is a metal structural part.
[0009] Further improvement to the above solution is that an arc angle is arranged at the opening of the placing groove.
[0010] A further improvement to the above solution is that the placement groove includes a main placement position and a lateral placement position, and the positioning component is arranged on one side of the lateral placement position.
[0011] A further improvement to the above solution is that the bottom surface of the placement groove protrudes downward towards the blister tray body.
[0012] A further improvement to the above solution is that the first positioning element includes a fixing ring integrally formed on the sinking groove and a first magnetic attraction element arranged inside the fixing ring.
[0013] A further improvement to the above solution is that the first magnetic attraction element is embedded inside the fixing ring.
[0014] A further improvement to the above solution is that the second positioning element includes a positioning shaft, an embedding groove arranged at the end of the positioning shaft, and a second magnetic attraction element embedded in the embedding groove.
[0015] A further improvement to the above solution is that at least one of the first magnetic attraction element and the second magnetic attraction element is a magnet.
[0016] The beneficial effects of the present utility model are as follows:
[0017] Compared with the existing blister trays, the present utility model positions the blister trays during multi-layer stacking through the positioning component, ensuring the consistency of positions during the stacking process and facilitating material taking. Through the design of the sinking groove, the placement groove and the positioning component, the multi-layer stacking positioning of the blister tray is realized. The shaft-shaped structures of the first positioning element and the second positioning element of the positioning component are coaxially arranged, ensuring the accuracy and stability of the stacking position. The design of the positioning component can effectively prevent the blister trays from being misaligned or shifted during the stacking process, ensuring the alignment and consistency between the stacked trays. The reasonable stacking positioning design helps to improve the efficiency of the stacking operation, reduce the adjustment and calibration time during the stacking process, and improve the production efficiency. The stable stacking positioning can reduce the collision and friction between the stacked trays, which is beneficial to protecting the surface of the product from scratches or damage. This stacking positioning scheme is applicable to various products that need to be stacked for storage or transportation, and has good versatility and applicability. Description of the Drawings
[0018] Figure 1 is a schematic diagram of the stacked state of the multi-layer stacked and positioned blister tray of the present utility model;
[0019] Figure 2 is Figure 1 a three-dimensional schematic diagram of the multi-layer stacked and positioned blister tray in
[0020] Figure 3 is Figure 1Three-dimensional schematic diagram of another perspective of the plastic suction tray with multi-layer stacking and positioning.
[0021] Description of reference numerals: Plastic suction tray body 10, sunken groove 1, placement groove 2, arc angle 21, main placement position 22, lateral placement position 23, positioning assembly 3, first positioning element 31, fixing ring 311, first magnetic attraction element 312, second positioning element 32, positioning shaft 321, second magnetic attraction element 322, positioning flange 4, reinforcement ring 41. Detailed implementation manners
[0022] To facilitate the understanding of the present invention, the present invention will be described more comprehensively below with reference to the relevant drawings. The preferred embodiments of the present invention are shown in the drawings. However, the present invention can be implemented in many different forms and is not limited to the embodiments described herein. On the contrary, these embodiments are provided to make the understanding of the disclosure of the present invention more thorough and comprehensive.
[0023] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly on the other element or there may also be an intermediate element. When an element is considered to be "connected" to another element, it can be directly connected to the other element or there may be an intermediate element at the same time.
[0024] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which the present invention belongs. The terms used in the description of the present invention in this specification are only for the purpose of describing specific embodiments and are not intended to limit the present invention.
[0025] Such as Figures 1 to 3As shown in the figure, in an embodiment of the present utility model, a blister tray for multi-layer stacking and positioning is involved, including a blister tray body 10. A sunken groove 1 is provided on the upper surface of the blister tray body 10. Placing grooves 2 are evenly distributed on the groove bottom surface of the sunken groove 1. A positioning component 3 is provided on one side of the sunken groove 1 where the placing grooves 2 are located. The positioning component 3 includes a first positioning element 31 and a second positioning element 32. The first positioning element 31 extends towards the sunken groove 1, and the second positioning element 32 extends towards the reverse direction of the first positioning element 31. Both the first positioning element 31 and the second positioning element 32 are shaft-shaped structures, and the first positioning element 31 and the second positioning element 32 are coaxially arranged. In this embodiment, the positioning component 3 is used to position the blister trays during multi-layer stacking, ensuring the consistency of positions during the stacking process and facilitating material taking. Through the design of the sunken groove 1, the placing grooves 2 and the positioning component 3, the multi-layer stacking and positioning of the blister tray are realized. The shaft-shaped structures of the first positioning element 31 and the second positioning element 32 of the positioning component 3 are coaxially arranged, ensuring the accuracy and stability of the stacking positions. The design of the positioning component 3 can effectively prevent the blister trays from being misaligned or offset during the stacking process, ensuring the alignment and consistency between the stacked trays. A reasonable stacking and positioning design helps to improve the efficiency of the stacking operation, reduce the adjustment and calibration time during the stacking process, and improve the production efficiency. A stable stacking and positioning can reduce the collision and friction between the stacked trays, which is beneficial to protecting the surface of the product from scratches or damage. This stacking and positioning scheme is applicable to various products that need to be stacked for storage or transportation, and has good versatility and applicability.
[0026] A positioning flange 4 is provided on the outer periphery of the blister tray body 10 where the sunken groove 1 is located. The positioning flange 4 is used for positioning the blister tray body 10. In this embodiment, the setting of the positioning flange 4 can further enhance the positioning stability of the blister tray body 10, ensuring the accuracy and stability of the positions of each blister tray during the stacking process. The setting of the positioning flange 4 on the outer periphery can effectively prevent the blister tray from being offset or swinging laterally, ensuring a smooth alignment during stacking. The design of the positioning flange 4 makes the stacking operation simpler and more convenient, reduces the adjustment and calibration time, and improves the stacking efficiency.
[0027] A reinforcing ring 41 is provided on the outer periphery of the positioning flange 4. The reinforcing ring 41 is a metal structural member. In this embodiment, the metal structural member reinforcing ring 41 can significantly enhance the structural stability of the positioning flange 4, ensuring the stability and durability of the blister tray during stacking and transportation. The design of the reinforcing ring 41 enables the blister tray to withstand greater stacking pressure and weight during stacking, thereby enhancing the load-bearing capacity of the overall structure. The addition of the metal reinforcing ring 41 improves the resistance of the blister tray to vibration and impact, helping to protect the stacked products from the influence of the external environment during transportation and storage.
[0028] An arc angle 21 is provided at the opening of the placement groove 2. In this embodiment, the setting of the arc angle 21 facilitates the putting in and taking out of the product, and at the same time will not cause scratches to the product.
[0029] The placement groove 2 includes a main placement position 22 and a lateral placement position 23, and the positioning component 3 is arranged on one side of the lateral placement position 23. In this embodiment, the design of the main placement position 22 and the lateral placement position 23 enables the plastic suction tray to adopt different stacking methods according to needs, increasing the flexibility and diversity of stacking. By arranging the positioning component 3 on one side of the lateral placement position 23, the positioning accuracy and stability of the plastic suction tray in the lateral placement position 23 are ensured, and the stacking stability is improved.
[0030] The bottom surface of the placement groove 2 protrudes downward towards the plastic suction tray body 10. In this embodiment, it is convenient to form the accommodation space of the placement groove 2, so that the specified height can be set according to the shape and size of the product.
[0031] The first positioning element 31 includes a fixing ring 311 integrally formed on the sinking groove 1 and a first magnetic attraction element 312 arranged inside the fixing ring 311. The first magnetic attraction element 312 is embedded in the fixing ring 311. In this embodiment, the second positioning element 32 includes a positioning shaft 321, an embedding groove arranged at the end of the positioning shaft 321, and a second magnetic attraction element 322 embedded in the embedding groove. At least one of the first magnetic attraction element 312 and the second magnetic attraction element 322 is a magnet. In this embodiment, the design of the fixing ring 311 of the first positioning element 31, the positioning shaft 321 of the second positioning element 32 and the embedding groove, combined with the use of the magnetic attraction element, can achieve the precise positioning of the plastic suction tray and ensure the position accuracy during stacking. By using the magnetic attraction element, the plastic suction tray can be firmly fixed in the positioning position during stacking, preventing movement or deviation during the stacking process and improving the stacking stability. The design of the magnetic attraction element helps to achieve the rapid alignment and adsorption of the plastic suction tray, simplifies the stacking operation process, and improves the stacking efficiency. The use of the magnetic attraction element can adapt to plastic suction trays of different shapes and sizes, has a certain flexibility and versatility, and is applicable to various stacking requirements. Precise magnetic attraction positioning can effectively reduce the error during the stacking process, improve the stacking accuracy, and reduce the time for adjustment and calibration.
[0032] The above embodiments only express several implementation manners of the present utility model, and the description thereof is relatively specific and detailed, but it should not be construed as a limitation on the scope of the patent of the present utility model. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present utility model, several deformations and improvements can still be made, and these all belong to the protection scope of the present utility model. Therefore, the protection scope of the patent of the present utility model shall be subject to the appended claims.
Claims
1. A multi-layer stacked and positioned blister tray, characterized in that: The invention comprises a blister tray body, wherein a sink groove is arranged on the upper surface of the blister tray body, and placement grooves are evenly distributed on the bottom surface of the sink groove, and a positioning assembly is arranged on one side of the sink groove, and the positioning assembly comprises a first positioning element and a second positioning element, wherein the first positioning element extends toward the sink groove, and the second positioning element extends in the opposite direction of the first positioning element; The first positioning element and the second positioning element are both axial structures, and the first positioning element and the second positioning element are coaxially arranged.
2. The multi-layer stacked and positioned blister tray according to claim 1, characterized in that: The blister tray is provided with a positioning flange on the outer periphery of the sink, and the positioning flange is used for positioning the blister tray.
3. The multi-layer stacked and positioned blister tray according to claim 2, characterized in that: A reinforcement ring is arranged on the outer periphery of the positioning flange, and the reinforcement ring is a metal structural part.
4. The multi-layer stacked and positioned blister tray according to claim 1, characterized in that: The opening of the placement groove is provided with an arc angle.
5. The multi-layer stacked and positioned blister tray according to claim 1, characterized in that: The placement slot comprises a main placement position and a lateral placement position, and the positioning component is arranged on one side of the lateral placement position.
6. The multi-layer stacked and positioned blister tray according to claim 1, characterized in that: The bottom surface of the placement groove protrudes toward the bottom of the blister tray.
7. The multi-layer stacked and positioned blister tray according to claim 1, characterized in that: The first positioning element includes a fixing ring integrally formed on the sink and a first magnetic attraction element arranged in the fixing ring.
8. The multi-layer stacked and positioned blister tray according to claim 7, characterized in that: The first magnetic attraction element is embedded in the fixing ring.
9. The multi-layer stacked and positioned blister tray according to claim 8, characterized in that: The second positioning element includes a positioning shaft, an embedding groove arranged at the end of the positioning shaft, and a second magnetic attraction element embedded in the embedding groove.
10. The multi-layer stacked and positioned blister tray according to claim 9, characterized in that: At least one of the first magnetic attraction element and the second magnetic attraction element is a magnet.