Multi-specification rotor applicable flow blister tray
By designing multi-specification rotor-compatible blister packs, the problem of high damage rate and resource waste of precision electronic component rotors during logistics transportation has been solved. This has enabled stable placement of rotors and efficient robotic gripping, reducing transportation costs and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANYING GREEN ENERGY (SHANGHAI) SUPPLY CHAIN MANAGEMENT CO LTD
- Filing Date
- 2025-07-24
- Publication Date
- 2026-07-28
AI Technical Summary
In the existing technology, there is a lack of suitable protection schemes for the rotors of precision electronic components during logistics transportation, resulting in a high transportation damage rate and waste of resources. Furthermore, it is difficult to transport rotors of different specifications in a unified manner, which affects production efficiency.
Design a multi-specification rotor-compatible logistics blister tray. The blister tray body has multiple receiving spaces, each containing a receiving groove adapted to different shapes or sizes. The receiving grooves are distributed in a stepped manner along the direction of the receiving space and are equipped with stepped grooves and rotor bottom contacts to support the stable placement of the rotor and the gripping of the robot arm.
This achieves orderly and stable placement of the rotor, reduces transportation damage rate, saves resources and transportation costs, and improves the gripping efficiency of the robotic arm.
Smart Images

Figure CN224563026U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a logistics handling rotor, and more particularly to a multi-specification rotor suitable for logistics blister trays. Background Technology
[0002] In the existing technology, with the development of social economy, in order to pursue economic efficiency, technical expertise, global collaboration and risk management, more and more rotors are assembled from components produced by different companies.
[0003] Many precision electronic component rotors require specific protection during logistics and transportation, but currently, there is a general lack of suitable protection solutions, resulting in a high rate of damage during transport. For example, rotor components are often simply and haphazardly stacked in plastic crates during transport. Continuous jolting during transport can cause coil deformation, insulation wear, or even short circuits. Furthermore, disorderly stacking leads to inconsistent rotor orientation, making it difficult for robotic arms on automated assembly lines to accurately grasp components using vision positioning systems, requiring manual intervention and severely impacting production efficiency.
[0004] Secondly, in logistics and transportation, electronic component rotors are usually not of a single specification, but may involve different shapes or sizes. If each electronic component rotor needs to be handled one-to-one, it will result in a waste of resources and a significant increase in transportation costs.
[0005] Therefore, there is a market demand for a multi-specification rotor-compatible blister pack that supports the orderly and stable placement of precision component rotors and facilitates subsequent robotic gripping operations. Utility Model Content
[0006] The technical problem to be solved by this utility model is to provide a logistics blister tray suitable for multi-specification rotors.
[0007] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: a multi-specification rotor applicable logistics blister tray, including a blister tray body, the blister tray body having multiple receiving spaces for holding rotors, each receiving space being provided with at least two receiving slots adapted to rotors of different shapes or different sizes, the at least two receiving slots being arranged in a stepped manner along the upper and lower center lines of the receiving space, and the size of the at least two receiving slots gradually decreasing from top to bottom.
[0008] In some implementations, each of the receiving slots is circular or a regular polygon.
[0009] In some embodiments, the receiving space has two receiving slots distributed vertically, with the upper receiving slot having a diameter a of 135mm-145mm and the lower receiving slot having a diameter b of 100mm-128mm.
[0010] In some embodiments, each of the receiving spaces has a plurality of step grooves on the step, the side walls of the step grooves forming reinforcing axial forces on the step, and the bottom surface of the receiving space has a plurality of upwardly arched rotor bottom contacts.
[0011] In some embodiments, the plurality of receiving spaces are formed by a downward indentation of the upper surface of the blister tray body, and the plurality of receiving spaces are arranged in a rectangular array, with a recess formed between every four adjacent receiving spaces.
[0012] In some embodiments, each of the receiving spaces has an upper receiving slot and a corresponding recess that connect the two.
[0013] In some embodiments, the recesses corresponding to the four corners of the rectangular blister pack body are adsorption planes that match the suction cups of the robotic arm, while the remaining recesses are desiccant storage compartments.
[0014] In some embodiments, the blister pack has a stacking support structure for supporting and limiting when stacked. The stacking support structure includes multiple stacking upper support blocks formed by the upward protrusion of the upper plane edge of the blister pack body, and a guide ring slope provided at the opening of each of the receiving spaces. When a large-sized rotor is placed in the receiving groove of the receiving space and the blister packs are stacked, the stacking upper support blocks cooperate to achieve planar limitation. When a small-sized rotor is placed in the receiving groove of the bottom of the receiving space and the blister packs are stacked, the guide ring slope cooperates to achieve planar limitation.
[0015] In some embodiments, the blister pack has a stacking support structure for supporting and limiting when stacked. The stacking support structure includes a plurality of stacking side support blocks that protrude laterally along the edge of the blister pack body. When empty blister packs are stacked up and down, the stacking side support blocks cooperate to achieve height limiting.
[0016] The scope of this utility model is not limited to technical solutions formed by specific combinations of the above-mentioned technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-mentioned technical features or their equivalent features. For example, technical solutions formed by substituting the above-mentioned features with (but not limited to) technical features with similar functions disclosed in this application.
[0017] Due to the application of the above technical solution, this utility model has the following advantages compared with the prior art: This utility model provides a blister tray, in which each accommodating space is provided with two or more receiving slots through blister forming, which is specifically adapted to the orderly and stable placement of rotors of corresponding specifications, and facilitates subsequent robotic arm grasping operations, enabling multiple transports of one item, saving resource costs and transportation costs. Attached Figure Description
[0018] Figure 1 A top view of a multi-specification rotor-compatible blister pack for logistics; Figure 2 A side view of a multi-specification rotor-compatible blister pack for logistics. Figure 3 A side view of two multi-specification rotor-compatible blister packs stacked together; Figure 4 A schematic diagram of a three-dimensional structure of a multi-specification rotor-compatible logistics blister tray; Figure 5 for Figure 4 Enlarged view of point A in the middle; The components are: 1. blister tray body; 2. accommodating space; 21. upper receiving groove; 22. upper ventilation notch; 23. bottom receiving groove; 24. stepped groove; 25. rotor bottom contact part; 31. adsorption plane; 32. desiccant storage groove; 41. stacking upper support block; 42. stacking side support block. Detailed Implementation
[0019] To further illustrate the technical means and effects adopted by this utility model in order to achieve the intended utility model purpose, the following detailed description of the specific implementation methods, structure, features and effects of this utility model is provided in conjunction with the accompanying drawings and preferred embodiments.
[0020] A multi-specification rotor-compatible logistics blister tray is provided, with this embodiment taking the rotor assembly as an example.
[0021] Referring to the accompanying drawings, a blister pack suitable for rotor assemblies of multiple sizes includes a blister pack body 1, which is 1195mm long, 995mm wide, and 49.3mm high. The blister pack body 1 has 30 receiving spaces 2 formed by downward indentation based on the upper plane. Each receiving space 2 can hold one rotor in each logistics transportation. The 30 receiving spaces 2 are arranged in a rectangular array.
[0022] As attached Figure 1 Appendix Figure 5As shown, each receiving space 2 is provided with two receiving slots adapted to rotor assemblies of different sizes. The two receiving slots are an upper receiving slot 21 and a lower receiving slot 23, which are distributed in a stepped manner from top to bottom along the upper and lower center lines of the receiving space 2. The upper receiving slot 21 is larger than the lower receiving slot 23. The diameter a of the upper receiving slot 21 is 145mm, and the diameter b of the lower receiving slot 23 is 128mm. The edges of the lower receiving slot 23 form a step, thereby allowing for the stable placement of rotor assemblies of the two diameter sizes. To match the receiving slots of the corresponding rotor assemblies, each receiving slot can be circular or a regular polygon. In this embodiment, as shown in the attached... Figure 1 As shown, both the upper receiving slot 21 and the lower receiving slot 23 are circular.
[0023] As attached Figure 1 Appendix Figure 5 As shown, the bottom receiving groove 23 has a step groove 24 on the step corresponding to the step. The two side walls of the step groove 24 form a reinforcing bar for axial force of the step. At the same time, the bottom step around the edge of the bottom receiving groove 23 forms an open ring. The bottom surface of the bottom receiving groove 23 has four upwardly arched rotor bottom contacts 25. The four arched rotor bottom contacts 25 support the small rotor assembly, and the air circulation facilitates the smooth removal of the small rotor.
[0024] As attached Figure 1 Appendix Figure 5 As shown, a recess is formed between each pair of four adjacent receiving spaces 2. Each receiving space 2 has an upper vent 22 connecting the upper receiving groove 21 and the corresponding recess. The upper step formed around the edge of the upper receiving groove 21 is also an open ring, which facilitates airflow and allows for the smooth removal of large rotors.
[0025] For large-sized rotor assemblies, they are placed vertically in the upper receiving groove 21, with the bottom step supporting them; for small-sized rotor assemblies, they are placed vertically in the lower receiving groove 23, with the rotor bottom contact 25 supporting the small-sized rotor assembly.
[0026] The rotor assembly is placed in an orderly and stable manner using blister packs, which are then packed and transported via logistics.
[0027] As attached Figure 1 As shown, a recess is formed between every four adjacent receiving spaces 2, totaling 20 recesses. At least two of these recesses have two recesses designed as suction surfaces 31 that can match the suction cups of the robotic arm, facilitating the robotic arm's picking up and handling. In this embodiment, as shown in the attached... Figure 1As shown, the recesses near the four corners of the rectangular blister pack body 1 are adsorption planes 31 that match the suction cups of the robotic arm. The diameter of the adsorption planes 31 is 108mm to match the diameter of the suction cups of the robotic arm. The remaining recesses are designed as desiccant storage slots 32 for storing desiccant. Together with the ventilation openings 22, they help keep the rotors in each of the storage spaces 2 dry.
[0028] The blister tray also has a stacking support structure for supporting and limiting when stacked. In this embodiment, the stacking support structure includes a plurality of stacking upper support blocks 41 that are evenly distributed and protrude upward from the edge of the upper plane of the blister tray body 1, a guide ring slope 43 provided at the opening of the receiving groove 21 on each receiving space 2, and a plurality of stacking side support blocks 42 that protrude laterally along the edge of the blister tray body 1.
[0029] As attached Figure 3 As shown, when empty blister packs are stacked, the upper blister pack rests on the stacking side support block 42 around the lower blister pack. The stacking side support block 42 helps to limit the height and facilitates separation.
[0030] When the large rotor is placed in the receiving slot 21 of the receiving space 2 and the blister plates are stacked, the planar positioning is achieved by the cooperation of the stacking support blocks 41. The edge of the upper blister plate surrounds the outside of all the stacking support blocks 41, effectively preventing misalignment due to bumps during transportation.
[0031] When the small rotor is placed in the bottom receiving groove 23 of the receiving space 2, and the blister panels are stacked, the plane is limited by the guide ring slope 43. Because it is a blister product, the receiving space 2 is concave from the front and convex from the back. That is, when stacked, the bottom of the upper blister panel receiving space 2 is embedded in the guide ring slope 43 of the lower blister panel receiving space 2, which effectively prevents it from being shaken and misaligned during transportation.
[0032] Furthermore, as attached Figure 1 As shown, a side groove is provided on the edge of the blister tray body 1 between the positions of two adjacent stacked support blocks 41, which facilitates air circulation between multiple stacked blister trays and makes them easy to separate.
[0033] Once the robotic arm has filled the blister tray with rotor components, or after all the rotor components have been moved, the four suction cups of the robotic arm simultaneously descend to adhere to the four suction surfaces 31, which can then lift the blister tray and transfer and stack it.
[0034] The above embodiments are only for illustrating the technical concept and features of this utility model, and are intended to enable those skilled in the art to understand the content of this utility model and implement it accordingly. They should not be construed as limiting the scope of protection of this utility model. All equivalent changes or modifications made in accordance with the spirit and essence of this utility model should be included within the scope of protection of this utility model.
Claims
1. A multi-specification rotor-compatible blister pack for logistics, characterized in that: The device includes a blister tray body (1), which has multiple receiving spaces (2) for mounting rotors. Each receiving space (2) is provided with at least two receiving slots adapted to rotors of different shapes or sizes. The at least two receiving slots are arranged in a stepped manner along the upper and lower center lines of the receiving space (2) to accommodate rotors of different sizes, and the size of the at least two receiving slots gradually decreases from top to bottom.
2. The multi-specification rotor-compatible blister pack according to claim 1, characterized in that: Each of the receiving slots is circular or a regular polygon.
3. The multi-specification rotor-compatible blister pack according to claim 2, characterized in that: The accommodating space (2) has two accommodating slots distributed vertically, with the upper accommodating slot (21) having a diameter a of 135mm-145mm and the lower accommodating slot (23) having a diameter b of 100mm-128mm.
4. The multi-specification rotor-compatible blister pack according to claim 1, characterized in that: Each of the accommodating spaces (2) has a plurality of step grooves (24) on the step, the side walls of the step grooves (24) form reinforcing bars for axial force on the step, and the bottom surface of the accommodating space (2) has a plurality of upwardly arched rotor bottom contacts (25).
5. The multi-specification rotor-compatible blister pack according to claim 1, characterized in that: The plurality of the accommodating spaces (2) are formed by the downward indentation of the upper plane of the blister tray body (1), and the plurality of accommodating spaces (2) are arranged in a rectangular array, with a recess formed between each of the four adjacent accommodating spaces (2).
6. The multi-specification rotor-compatible blister pack according to claim 5, characterized in that: Each of the accommodating spaces (2) has an upper vent (22) connecting the upper receiving slot (21) and the corresponding recess.
7. A multi-specification rotor-compatible blister pack according to claim 6, characterized in that: The recesses corresponding to the four corners of the rectangular blister pack body (1) are the adsorption planes (31) for matching the robotic arm suction cups, and the remaining recesses are desiccant storage slots (32).
8. A multi-specification rotor-compatible blister pack according to claim 5, characterized in that: The blister pack has a stacking support structure for supporting and limiting when stacked. The stacking support structure includes multiple stacking upper support blocks (41) formed by the upward protrusion of the upper plane edge of the blister pack body (1) and a guide ring slope (43) set at the opening of each of the accommodating spaces (2). When a large-sized rotor is placed in the upper receiving groove (21) of the accommodating space (2), the blister pack is stacked up and down and the planar limitation is achieved by the cooperation of the stacking upper support blocks (41). When a small-sized rotor is placed in the lower receiving groove (23) of the accommodating space (2), the blister pack is stacked up and down and the planar limitation is achieved by the cooperation of the guide ring slope (43).
9. A multi-specification rotor-compatible blister pack according to claim 5, characterized in that: The blister tray has a stacking support structure for supporting and limiting when stacked. The stacking support structure includes a plurality of stacking side support blocks (42) that protrude laterally along the edge of the blister tray body (1). When the empty blister tray is stacked up and down, the stacking side support blocks (42) cooperate to achieve height limitation.