Convertible control platform

By setting large and small negative pressure ports on the adsorption platform, different adsorption pathways are formed, solving the problem of unadjustable adsorption force, realizing flexible adsorption of different items, protecting items from damage, and improving the reliability of transportation and storage.

CN223784649UActive Publication Date: 2026-01-09FOSHAN YINMEI SUCTION TABLE MFG CO LTD
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Patent Information

Application Number
CN202520133658.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-20
Publication Date
2026-01-09
Estimated Expiration
2035-01-20

AI Technical Summary

Technical Problem

Existing adsorption platforms have a single, inflexible adsorption force control scheme, which makes thin items easily damaged during adsorption, affecting the reliability of transportation and storage.

Method used

Design a convertible control platform that forms macroporous and microporous adsorption pathways by setting up large and small negative pressure ports, providing different adsorption forces to meet the adsorption needs of different items, and maintaining the overall airtightness of the platform through a sealing structure.

Benefits of technology

It enables flexible control of the adsorption force for different items, protecting soft items from deformation while ensuring stable adsorption of large items, thus improving the reliability of transportation and storage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of special transportation operation equipment, in particular to a convertible control platform which comprises a bottom plate layer, a core plate layer, a lining plate layer and a panel layer which are sequentially connected. The bottom plate layer is provided with a large-hole negative-pressure opening and a small-hole negative-pressure opening, an air crossing area is correspondingly formed on the core plate layer, the lining plate layer comprises a bottom lining plate and a face lining plate, the bottom lining plate is provided with an air guide area, the face lining plate is provided with an air guide groove, and the face plate layer is provided with a large air suction opening array and a small air suction opening array; and the air suction port array, the air guide groove, the air guide area and the negative pressure area are communicated to form a large-hole adsorption passage and a small-hole adsorption passage. By adjusting the structure of the control platform, a large-aperture adsorption channel is provided to provide relatively large adsorption force, a small-aperture adsorption channel is provided to provide relatively soft adsorption force, and the adsorption force can be flexibly switched, controlled and adjusted in the using process. And not only can large articles be stably adsorbed, but also relatively light and soft small articles can be protected.
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Description

Technical Field

[0001] This utility model relates to the field of special transportation operation equipment technology, specifically to a convertible control platform. Background Technology

[0002] Conventional conveying equipment or structures use contact conveying, which requires placing items on the conveying platform and keeping the items in contact with the platform to achieve the conveying of items. Similarly, conventional placement and holding equipment or structures for items also use contact solutions, requiring the items to come into contact with the placement platform for clamping or pressing in order to achieve the storage and holding of items.

[0003] However, contact-based conveying and holding methods have significant drawbacks. Thin items are easily damaged or deformed, which is detrimental to improving the reliability of conveying and storage. Therefore, there is a solution that uses an adsorption platform to maintain the shape of items. This method utilizes a balanced negative pressure environment to adsorb items, avoiding mechanical clamping and compression, thereby maintaining the original shape of the items. This is especially effective for thin items, meeting the needs of holding and conveying while preserving their original shape. The stability and reliability are higher than those of mechanical contact methods.

[0004] It is evident that the current adsorption force control scheme of the adsorption platform still has room for improvement and should be optimized to enhance the flexibility of adsorption force control and better meet the adsorption needs of different items. Therefore, a more reasonable technical solution is needed to address the technical problems existing in the current technology. Utility Model Content

[0005] To overcome at least one of the aforementioned defects, this utility model proposes a convertible control platform. By setting negative pressure ports of different diameters, it provides controllable negative pressure. It also sets macroporous adsorption channels and microporous adsorption channels to provide different adsorption forces, which can meet the adsorption needs of different items and prevent items from being damaged during the adsorption process.

[0006] To achieve the above objectives, the adsorption platform disclosed in this utility model can adopt the following technical solution:

[0007] A convertible control platform includes a base plate layer, a core plate layer, a liner plate layer, and a panel layer connected in sequence. The base plate layer has large-hole negative pressure ports and small-hole negative pressure ports. Corresponding to the large-hole and small-hole negative pressure ports, airflow areas are formed on the core plate layer. The liner plate layer includes a bottom liner plate and a top liner plate. The bottom liner plate has large-hole and small-hole airflow guiding areas. The top liner plate has large-hole and small-hole airflow guiding grooves. The panel layer has a large air intake port arrangement and a small air intake port arrangement. The large air intake port arrangement, large-hole airflow guiding grooves, and large-hole airflow guiding areas are connected to the large-hole negative pressure ports to form a large-hole adsorption path. The small air intake port arrangement, small-hole airflow guiding grooves, and small-hole airflow guiding areas are connected to the small-hole negative pressure ports to form a small-hole adsorption path.

[0008] The aforementioned control platform, by forming macroporous and microporous adsorption pathways, can provide different adsorption forces to meet the adsorption needs of different items and reduce damage to them. During application, it is only necessary to switch between the macroporous and microporous negative pressure ports to provide negative pressure adsorption force.

[0009] Furthermore, the core layer structure can take various forms and is not limited to a single structure. Here, we optimize and propose one feasible option: the core layer includes a frame, with multiple installation areas formed within the frame. At least one installation area forms a ventilation zone, and several ventilation cores are arranged within the ventilation zone. In this scheme, the frame forms an outer enclosure structure, and the internal installation areas are continuously arranged. When the frame adopts a quadrilateral structure, the installation areas also adopt a quadrilateral structure, and the installation areas are of the same size within the frame. The air passages of the ventilation cores within the ventilation zone are interconnected, while the air passages of the ventilation cores between adjacent ventilation zones are not interconnected.

[0010] Furthermore, the form of the air-cooling core is diverse, and its structure is not limited to a single type. Here, we propose an optimization and one feasible option: the air-cooling core is continuously laid within the installation area, with several longitudinally penetrating air-cooling holes and several air guide holes communicating with the air-cooling holes. The air guide holes of adjacent air-cooling cores are aligned and connected. When adopting the above scheme, the air-cooling core can have the air-cooling holes arranged in a honeycomb pattern, while the air guide holes are arranged laterally, connecting several air-cooling holes, and the diameter of the air guide holes is larger than the diameter of the air-cooling holes.

[0011] Furthermore, the arrangement of multiple installation areas can be implemented in various ways, and its structure is not limited to a single method. Here, we propose one feasible option: an inner baffle is provided between adjacent installation areas, with air passage holes formed on the inner baffle connecting to the adjacent installation areas. These air passage holes connect to the air guide holes of the air-passing inner core adjacent to the inner baffle. When using the above scheme, the air passage holes on the inner baffle can also be air passage slots.

[0012] Furthermore, the bottom liner can be constructed in various forms, and its structure is not limited to a single one. Here, we optimize and propose one feasible option: the large-hole air guide grooves and small-hole air guide grooves on the surface liner are arranged alternately, and both the large-hole and small-hole air guide grooves extend from the top edge to the bottom edge of the surface liner and penetrate both surfaces of the surface liner. When adopting the above scheme, the surface liner can be a quadrilateral plate, and both the large-hole and small-hole air guide grooves are straight grooves.

[0013] Furthermore, the bottom liner can be constructed in various forms, and its structure is not limited to a single one. Here, we optimize and propose one feasible option: the large-hole air guiding area and the small-hole air guiding area on the bottom liner are arranged from the top edge to the bottom edge of the bottom liner. Both the large-hole air guiding area and the small-hole air guiding area form air passage channels arranged at intervals. The large-hole air passage channels in the large-hole air guiding area are connected to each other, and the small-hole air passage channels in the small-hole air guiding area are connected to each other.

[0014] Furthermore, the air guiding areas of the large and small holes are further defined: the area of ​​both the large and small air guiding areas is half the size of the lining plate.

[0015] Furthermore, in some solutions: the bottom liner is a quadrilateral plate, the width of the large-hole air guiding area and the small-hole air guiding area is half the distance from the top edge to the bottom edge, and the length of the air passage is half the distance from the top edge to the bottom edge.

[0016] Furthermore, the panel is used to contact objects, and the arrangement of its air intakes can take many forms; its structure is not limited to a single one. Here, we optimize and propose one feasible option: the large air intakes on the panel layer correspond to the large-hole air passages connecting the large-hole air guide area, and the small air intakes on the panel layer correspond to the small-hole air passages connecting the small-hole air guide area. Using this scheme, the small air intake arrangement is used for adsorbing relatively light and soft objects, preventing deformation, while the large air intake arrangement is used for adsorbing relatively heavy objects, ensuring sufficient adsorption force.

[0017] Furthermore, to maintain the sealing effect of the entire control platform, sealing is provided for adjacent mating surfaces: the adjacent mating surfaces of the panel, faceplate, bottom liner, frame, and base plate are all equipped with sealing structures. When using the above solution, the sealing structure can be a film sealing structure.

[0018] Compared with the prior art, some of the beneficial effects of the technical solution disclosed in this utility model include:

[0019] This invention, through adjustments to the control platform structure, provides a macroporous adsorption channel offering relatively strong adsorption force, and a microporous adsorption channel offering relatively gentle adsorption force. This allows for flexible switching and adjustment of the adsorption force during use. It achieves stable adsorption of large items while also protecting relatively light and soft small items. Attached Figure Description

[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 A schematic diagram of the control platform from one perspective.

[0022] Figure 2 A schematic diagram of the control platform from another perspective.

[0023] Figure 3 This is a schematic diagram of the control platform panel.

[0024] Figure 4 A schematic diagram of the control platform's base layer.

[0025] Figure 5 This is a schematic diagram of the bottom lining plate.

[0026] Figure 6 This is a schematic diagram of the faceplate.

[0027] Figure 7 An exploded view of the control platform (face panel not shown).

[0028] In the above attached figures, the meanings of each label are as follows:

[0029] 1. Panel layer; 101. Large air intake arrangement; 102. Small air intake arrangement; 2. Liner plate; 201. Large-hole air guide channel; 202. Small-hole air guide channel; 3. Bottom liner plate; 301. Small-hole air passage channel; 302. Large-hole air passage channel; 4. Frame; 401. Installation area; 402. Inner baffle; 403. Air passage hole; 404. Inner core; 405. Air vent; 5. Bottom plate layer; 501. Small-hole negative pressure port; 502. Large-hole negative pressure port. Detailed Implementation

[0030] The following description, in conjunction with the accompanying drawings and specific embodiments, further illustrates this embodiment.

[0031] To address the shortcomings of existing adsorption control platforms, such as their simple structure and unadjustable adsorption force, which lead to inconvenience in adsorbing and moving items, the following embodiments optimize and overcome these deficiencies.

[0032] Example

[0033] like Figures 1 to 7 As shown, this embodiment provides a convertible control platform, including a base plate layer 5, a core plate layer, a liner plate layer, and a panel layer 1 connected in sequence; the base plate layer 5 is provided with a large-hole negative pressure port 502 and a small-hole negative pressure port 501, and the core plate layer forms airflow areas corresponding to the large-hole negative pressure port 502 and the small-hole negative pressure port 501, respectively; the liner plate layer includes a bottom liner plate 3 and a top liner plate 2, and the bottom liner plate 3 is provided with a large-hole airflow guide area and a small-hole airflow guide area. The liner plate 2 is provided with large-hole air guide grooves 201 and small-hole air guide grooves 202, and the panel layer 1 is provided with large air intake arrangement 101 and small air intake arrangement 102; the large air intake arrangement 101, large-hole air guide grooves 201, large-hole air guide area and large-hole negative pressure port 502 are connected to form a large-hole adsorption passage; the small air intake arrangement 102, small-hole air guide grooves 202, small-hole air guide area and small-hole negative pressure port 501 are connected to form a small-hole adsorption passage.

[0034] The control platform disclosed in this embodiment can provide different adsorption forces by forming macroporous adsorption channels and microporous adsorption channels, meeting the adsorption needs of different items and reducing damage to items. During application, it is only necessary to switch between the macroporous negative pressure port 502 and the microporous negative pressure port 501 to provide negative pressure adsorption force.

[0035] The structure of the core layer can take many forms, and its structure is not limited to one. This embodiment optimizes and adopts one of the feasible options: such as Figure 7 As shown, the core board layer includes a frame 4, on which multiple mounting areas 401 are formed. At least one mounting area 401 forms a ventilation area, and several ventilation cores 404 are arranged within the ventilation area. In this configuration, the frame 4 forms an external enclosure structure, and the internal mounting areas 401 are continuously arranged. When the frame 4 adopts a quadrilateral structure, the mounting areas 401 also adopt a quadrilateral structure, and the size of the mounting areas 401 within the frame 4 is the same. The ventilation cores 404 within the ventilation area are interconnected, while the ventilation cores 404 between adjacent ventilation areas are not interconnected.

[0036] Preferably, in this embodiment, the frame 4 is quadrilateral, and six installation areas 401 are formed inside it, including three upper installation areas 401 and three lower installation areas 401, and the three upper installation areas 401 and the three lower installation areas 401 are connected by airflow.

[0037] The air-cooling core 404 can take various forms, and its structure is not limited to a single one. This embodiment optimizes and adopts one feasible option: the air-cooling core 404 is continuously laid in the installation area 401, and the air-cooling core 404 is provided with several longitudinally penetrating air-cooling holes 405, as well as several air guide holes communicating with the air-cooling holes 405. The air guide holes of adjacent air-cooling cores 404 are aligned and connected. When adopting the above scheme, the air-cooling core 404 can be configured with a honeycomb arrangement of air-cooling holes 405, while the air guide holes are arranged horizontally, connecting several air-cooling holes 405, and the diameter of the air guide holes is larger than the diameter of the air-cooling holes 405.

[0038] The arrangement of multiple installation areas 401 can be achieved in various ways, and its structure is not limited to a single one. This embodiment optimizes the arrangement and adopts one feasible option: an inner baffle 402 is provided between adjacent installation areas 401. An air passage hole 403 is formed on the inner baffle 402 and connects to the adjacent installation areas 401. The air passage hole 403 connects to the air guide hole of the air-passing inner core 404 adjacent to the inner baffle 402. When adopting the above scheme, the air passage hole 403 on the inner baffle 402 can also be an air passage groove.

[0039] The faceplate 2 can be constructed in various forms, and its structure is not uniquely limited. This embodiment optimizes and adopts one of the feasible options: such as Figure 5 As shown, the large-hole air guide grooves 201 and small-hole air guide grooves 202 on the faceplate 2 are arranged alternately. Both the large-hole air guide grooves 201 and small-hole air guide grooves 202 extend from the top edge to the bottom edge of the faceplate 2 and penetrate both surfaces of the faceplate 2. When adopting the above scheme, the faceplate 2 can be a quadrilateral plate, and both the large-hole air guide grooves 201 and small-hole air guide grooves 202 are straight grooves.

[0040] The bottom liner 3 can be constructed in various forms, and its structure is not limited to a single one. This embodiment optimizes and adopts one of the feasible options: such as Figure 6 As shown, the large-hole air guiding area and the small-hole air guiding area on the bottom liner 3 are arranged from the top edge to the bottom edge of the top liner 3. Both the large-hole air guiding area and the small-hole air guiding area form air passage channels arranged at intervals. The large-hole air passage channel 302 of the large-hole air guiding area is connected to the large-hole air guiding channel 201, and the small-hole air passage channel 301 of the small-hole air guiding area is connected to the small-hole air guiding channel 202.

[0041] The large-hole air guide area and the small-hole air guide area are further defined as follows: the area of ​​the large-hole air guide area and the small-hole air guide area are both half of the bottom liner plate 3.

[0042] In some designs: the bottom liner 3 is a quadrilateral plate, the width of the large-hole air guide area and the small-hole air guide area is half the distance from the top edge to the bottom edge, and the length of the air passage is half the distance from the top edge to the bottom edge.

[0043] The panel is used to contact objects, and the arrangement of its air intakes can be varied; its structure is not limited to a single method. This embodiment optimizes and adopts one feasible option: such as... Figure 3 As shown, the large air intakes 101 on panel layer 1 correspond to the large-hole air passages 302 connecting the large-hole air guide area, and the small air intakes 102 on panel layer 1 correspond to the small-hole air passages 301 connecting the small-hole air guide area. When using the above scheme, the small air intakes 102 are used for adsorbing relatively light and soft items, preventing deformation of the items, while the large air intakes 101 are used for adsorbing relatively heavy items, ensuring sufficient adsorption force.

[0044] Preferably, in this embodiment, the large air intake arrangement 101 includes a plurality of air holes with a diameter of 5 mm, and the small air intake arrangement 102 includes a plurality of air holes with a diameter of 1.5 mm.

[0045] To maintain the sealing effect of the entire control platform, sealing is provided for adjacent mating surfaces: the adjacent mating surfaces of the panel layer 1, face liner 2, bottom liner 3, frame 4, and bottom plate layer 5 are all equipped with sealing structures. When using the above solution, the sealing structure can be a film sealing structure.

[0046] The above are the embodiments listed in this example. However, this example is not limited to the optional embodiments described above. Those skilled in the art can arbitrarily combine the above methods to obtain other various embodiments. Anyone can derive other various forms of embodiments under the guidance of this example. The above specific embodiments should not be construed as limiting the scope of protection of this example. The scope of protection of this example should be defined in the claims.

Claims

1. A convertible control platform, characterized in that: The system comprises a base plate layer (5), a core plate layer, a liner layer, and a face plate layer (1) connected in sequence. The base plate layer (5) is provided with a large-hole negative pressure port (502) and a small-hole negative pressure port (501). Corresponding to the large-hole negative pressure port (502) and the small-hole negative pressure port (501), the core plate layer forms airflow areas. The liner layer includes a bottom liner plate (3) and a top liner plate (2). The bottom liner plate (3) is provided with a large-hole airflow guide area and a small-hole airflow guide area. The top liner plate (2) is provided with a large-hole airflow guide area. The panel layer (1) is provided with a large air intake arrangement (101) and a small air intake arrangement (102); the large air intake arrangement (101), the large air intake arrangement (201), the large air intake area and the large air intake negative pressure port (502) are connected to form a large air intake adsorption passage; the small air intake arrangement (102), the small air intake arrangement (202), the small air intake area and the small air intake negative pressure port (501) are connected to form a small air intake adsorption passage.

2. The convertible control platform according to claim 1, characterized in that: The core board layer includes a frame (4), and multiple installation areas (401) are formed on the frame (4). At least one installation area (401) forms a ventilation area, and a plurality of ventilation inner cores (404) are arranged in the ventilation area.

3. The convertible control platform according to claim 2, characterized in that: The air-cooled inner core (404) is continuously laid in the installation area (401). Several longitudinally penetrating air-cooled holes (405) are provided on the air-cooled inner core (404), and several air guide holes connected to the air-cooled holes (405) are also provided. The air guide holes of adjacent air-cooled inner cores (404) are aligned and connected.

4. The convertible control platform according to claim 3, characterized in that: An inner baffle (402) is provided between adjacent installation areas (401). An air passage hole (403) is formed on the inner baffle (402) and connects to the adjacent installation area (401). The air passage hole (403) connects to the air guide hole of the air-passing inner core (404) adjacent to the inner baffle (402).

5. The convertible control platform according to claim 1, characterized in that: The large-hole air guide groove (201) and the small-hole air guide groove (202) on the face plate (2) are arranged alternately. Both the large-hole air guide groove (201) and the small-hole air guide groove (202) extend from the top edge to the bottom edge of the face plate (2) and penetrate through both surfaces of the face plate (2).

6. The convertible control platform according to claim 1, characterized in that: The large-hole air guide area and the small-hole air guide area on the bottom liner (3) are arranged from the top edge to the bottom edge of the bottom liner (3). Both the large-hole air guide area and the small-hole air guide area form air passage grooves arranged at intervals. The large-hole air passage groove (302) of the large-hole air guide area is connected to the large-hole air guide groove (201), and the small-hole air passage groove (301) of the small-hole air guide area is connected to the small-hole air guide groove (202).

7. The convertible control platform according to claim 6, characterized in that: The area of ​​the large-hole air guide zone and the small-hole air guide zone are both half of the area of ​​the bottom liner (3).

8. The convertible control platform according to claim 7, characterized in that: The bottom liner (3) is a quadrilateral plate. The width of the large-hole air guide area and the small-hole air guide area is half the distance from the top edge to the bottom edge, and the length of the air passage groove is half the distance from the top edge to the bottom edge.

9. The convertible control platform according to claim 6, characterized in that: The large air intake arrangement (101) on the panel layer (1) corresponds to the large air passage groove (302) connecting the large hole section air guide area, and the small air intake arrangement (102) on the panel layer (1) corresponds to the small air passage groove (301) connecting the small hole section air guide area.

10. The convertible control platform according to claim 1, characterized in that: The adjacent mating surfaces of the panel layer (1), the face liner (2), the bottom liner (3), the frame (4), and the bottom plate layer (5) are all provided with sealing structures.