Stacking mechanism for paperboard production

By designing a stacking mechanism including a load seat, a shift plate, a groove shell and a limiting plate, the rotational cooperation of the screw and the adjustment rod is used to solve the problem of insufficient application in the prior art, and efficient stacking of cardboards of different specifications is achieved.

CN222974525UActive Publication Date: 2025-06-13DONGGUAN HOUDE PAPER PROD CO LTD
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Patent Information

Application Number
CN202422297843.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-06-13
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

The existing stacking device for cardboard production can only stack rectangular cardboard with a certain specification range, and the scope of application is not comprehensive enough.

Method used

A stacking mechanism including a load seat, a first shifting plate, a second shifting plate, a transverse groove shell, a longitudinal groove shell, a slide plate and a limiting plate are designed. Through the rotation of the transverse screw and the longitudinal screw, combined with the coordination of the adjustment rod and the clamping rod, limit stacking of cardboards of different specifications is realized.

Benefits of technology

It can limit stacking of several cardboards according to the specifications and sizes of the cardboard, which has a larger scope of application and improves work efficiency.

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    Figure CN222974525U_ABST
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Abstract

The utility model discloses a stacking mechanism for paperboard production, and relates to the technical field of paperboard production, the stacking mechanism comprises a bearing seat, two groups of first moving plates and two groups of second moving plates, the upper ends of the two groups of first moving plates are fixedly connected with transverse groove shells, and the inner sides of the two groups of transverse groove shells are provided with first sliding plates; first limiting plates are arranged on the upper sides of the two sets of first sliding plates, longitudinal groove shells are fixedly connected to the upper ends of the two sets of second moving plates, second sliding plates are arranged on the inner sides of the two sets of longitudinal groove shells, second limiting plates are arranged on the upper sides of the two sets of second sliding plates, a limiting groove is formed in the bearing seat, and a transverse threaded rod and a longitudinal threaded rod are arranged on the bearing seat in a penetrating mode; and the external threads of the transverse screw rod and the longitudinal screw rod are symmetrically arranged. The paperboard stacking device has the advantages that a plurality of paperboards can be stacked in a limited mode according to the specifications and sizes of the paperboards, the application range is larger, the function of rapidly taking the stacked paperboards is achieved, and the working efficiency can be improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of cardboard production, in particular to a stacking mechanism for cardboard production. Background Art

[0002] The stacking device for cardboard production is a finishing device used in the cardboard production line, which is designed to stack the produced cardboard in an orderly manner to improve production efficiency and reduce manual operations. The device is usually located at the end of the cardboard production line, and realizes the positioning and stacking of cardboard through a series of mechanical and electronic control systems.

[0003] After searching, the patent number is CN217807834U, which discloses a stacking device for carton cardboard production. By setting four identical stacking components, a rectangular limiting device can be formed together, which plays a guiding and limiting role when the cardboard is placed, avoiding the cardboard from tilting and tipping when the height of the cardboard increases. In addition, each stacking component can slide along the T-shaped adjustment groove to change the spacing between the stacking components, so as to adapt to cardboards of different sizes. However, when the stacking device is in use, the rectangular limiting device formed by its stacking components can only stack rectangular cardboards within a certain specification range, and the scope of application is not comprehensive enough. Utility Model Content

[0004] The technical problem to be solved by the utility model is to provide a stacking mechanism for cardboard production. When the existing stacking device is in use, the rectangular limiting device formed by its stacking assembly can only stack rectangular cardboards within a certain specification range, and the application range is not comprehensive enough.

[0005] In order to solve the above technical problems, the technical solution of the utility model is a stacking mechanism for cardboard production, including a bearing seat, and also including two groups of first shifting plates and two groups of second shifting plates, the upper ends of the two groups of the first shifting plates are fixedly connected with a transverse groove shell, the inner sides of the two groups of the transverse groove shells are provided with a first slide plate, the upper sides of the two groups of the first slide plates are provided with a first limiting plate, the upper ends of the two groups of the second shifting plates are fixedly connected with a longitudinal groove shell, the inner sides of the two groups of the longitudinal groove shells are provided with a second slide plate, the upper sides of the two groups of the second slide plates are provided with a second limiting plate, and a limiting groove is provided on the bearing seat.

[0006] As a further solution of the utility model: a transverse screw and a longitudinal screw are arranged through the bearing seat, the external threads of the transverse screw and the longitudinal screw are arranged symmetrically, and the transverse screw and the longitudinal screw are arranged perpendicular to each other.

[0007] As a further solution of the utility model: both groups of the first moving plates are in threaded connection with the horizontally arranged screw rod, both groups of the second moving plates are in threaded connection with the vertically arranged screw rod, and the lower ends of both groups of the first moving plates and both groups of the second moving plates are located inside the limiting groove, and the limiting groove is arranged in a cross shape.

[0008] As a further solution of the utility model: first adjusting rods are respectively arranged through both groups of the horizontal groove shells, and both groups of the first sliding plates are in threaded connection with both groups of the first adjusting rods respectively; second adjusting rods are respectively arranged through both groups of the vertical groove shells, and both groups of the second sliding plates are in threaded connection with both groups of the second adjusting rods respectively.

[0009] As a further solution of the utility model: a first hinge is connected between the first limiting plate and the first sliding plate; a first connecting plate is arranged on the outer side of the first sliding plate; two first clamping rods are fixedly connected to the inner side of the first connecting plate; a second hinge is connected between the second limiting plate and the second sliding plate; a second connecting plate is arranged on the outer side of the second sliding plate; two second clamping rods are fixedly connected to the inner side of the second connecting plate.

[0010] As a further solution of the utility model: the rotation range of the first limiting plate through the first hinge is 0-90°; first clamping holes are respectively formed through the first limiting plate and the first sliding plate, and the two first clamping rods are respectively located inside the two first clamping holes.

[0011] As a further solution of the utility model: the rotation range of the second limiting plate through the second hinge is 0-90°; second clamping holes are respectively formed through the second limiting plate and the second sliding plate, and the two second clamping rods are respectively located inside the two second clamping holes.

[0012] Compared with the prior art, the beneficial effects of the utility model are as follows: when the cardboard specification is small, rotate the first adjusting rods on the two groups of horizontal groove shells to drive the two groups of first sliding plates to move relatively respectively, so as to drive the two groups of first limiting plates to move relatively, then rotate the second adjusting rods on the two groups of vertical groove shells to drive the two groups of second sliding plates to move relatively respectively, so as to drive the two groups of second limiting plates to move relatively, until a number of smaller cardboard are limited and stacked; when the cardboard specification is large, move the first sliding plate and the second sliding plate to the outermost sides of the horizontal groove shell and the vertical groove shell respectively, and then rotate the horizontally arranged screw rod on the bearing seat to drive the two groups of first moving plates to move relatively away from each other under the cooperation of the symmetric external threads, so as to drive the two groups of horizontal groove shells to move relatively away from each other, and further drive the two groups of first limiting plates to move relatively away from each other. Then rotate the vertically arranged screw rod on the bearing seat to drive the two groups of second moving plates to move relatively away from each other under the cooperation of the symmetric external threads, so as to drive the two groups of vertical groove shells to move relatively away from each other, and further drive the two groups of second limiting plates to move relatively away from each other, until a number of larger cardboard are limited and stacked. It can limit and stack a number of cardboard according to the specification size of the cardboard, and has a wider application range.

[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows: The first clamping rod on the first connecting plate cooperates with two groups of first clamping holes, enabling the first limiting plate to be separated from the first sliding plate. Then, through the first hinge, the two groups of first limiting plates are respectively rotated by 90°. Next, the second clamping rod on the second connecting plate cooperates with two groups of second clamping holes, enabling the second limiting plate to be separated from the second sliding plate. Then, through the second hinge, the two groups of second limiting plates are respectively rotated by 90°, realizing the function of quickly taking materials from the stacked cardboard, which helps to improve work efficiency. Description of the Drawings

[0014] Figure 1 It is a schematic structural diagram of a stacking mechanism for cardboard production in an embodiment of the present utility model;

[0015] Figure 2 It is a schematic connection structure diagram of a horizontal groove housing in an embodiment of the present utility model;

[0016] Figure 3 It is a schematic connection structure diagram of a vertical groove housing in an embodiment of the present utility model;

[0017] Figure 4 It is a schematic connection structure diagram of a first limiting plate and a second limiting plate in an embodiment of the present utility model.

[0018] In the figure: 1, bearing seat; 2, horizontal screw; 3, first moving plate; 4, horizontal groove housing; 5, first adjusting rod; 6, first sliding plate; 7, first limiting plate; 8, vertical screw; 9, second moving plate; 10, vertical groove housing; 11, second adjusting rod; 12, second sliding plate; 13, second limiting plate; 14, limiting groove; 15, first hinge; 16, first clamping hole; 17, first connecting plate; 18, first clamping rod; 19, second hinge; 20, second clamping hole; 21, second connecting plate; 22, second clamping rod. Specific Embodiments

[0019] The following further describes the specific embodiments of the present utility model with reference to the drawings. It should be noted here that the description of these embodiments is for helping to understand the present utility model, but does not constitute a limitation to the present utility model. In addition, the technical features involved in the various embodiments of the present utility model described below can be combined with each other as long as they do not conflict with each other.

[0020] Embodiment 1, please refer to Figures 1-4, a stacking mechanism for cardboard production, including a bearing seat 1, and also including two groups of first moving plates 3 and two groups of second moving plates 9. At the upper ends of the two groups of first moving plates 3, horizontal groove shells 4 are fixedly connected. Inside the two groups of horizontal groove shells 4, first sliding plates 6 are arranged. On the upper sides of the two groups of first sliding plates 6, first limiting plates 7 are arranged. At the upper ends of the two groups of second moving plates 9, vertical groove shells 10 are fixedly connected. Inside the two groups of vertical groove shells 10, second sliding plates 12 are arranged. On the upper sides of the two groups of second sliding plates 12, second limiting plates 13 are arranged. A limiting groove 14 is formed on the bearing seat 1.

[0021] A horizontal screw rod 2 and a vertical screw rod 8 are arranged through the bearing seat 1. The external threads of the horizontal screw rod 2 and the vertical screw rod 8 are both symmetrically arranged, and the horizontal screw rod 2 and the vertical screw rod 8 are arranged perpendicular to each other. The two groups of first moving plates 3 are both threadedly connected to the horizontal screw rod 2. The two groups of second moving plates 9 are both threadedly connected to the vertical screw rod 8. And the lower ends of the two groups of first moving plates 3 and the two groups of second moving plates 9 are both located inside the limiting groove 14. The limiting groove 14 is arranged in a cross shape.

[0022] In this embodiment, the two groups of first moving plates 3 and the two groups of second moving plates 9 move relatively through the horizontal screw rod 2 and the vertical screw rod 8.

[0023] First adjusting rods 5 are arranged through the two groups of horizontal groove shells 4. And the two groups of first sliding plates 6 are respectively threadedly connected to the two groups of first adjusting rods 5. Second adjusting rods 11 are arranged through the two groups of vertical groove shells 10. And the two groups of second sliding plates 12 are respectively threadedly connected to the two groups of second adjusting rods 11.

[0024] In this embodiment, the first sliding plates 6 and the second sliding plates 12 are moved and used through the first adjusting rods 5 and the second adjusting rods 11.

[0025] Specifically, when the cardboard specification is small, rotate the first adjusting rods 5 on the two groups of horizontal groove shells 4 to drive the two groups of first sliding plates 6 to move relatively, thereby driving the two groups of first limiting plates 7 to move relatively. Then rotate the second adjusting rods 11 on the two groups of vertical groove shells 10 to drive the two groups of second sliding plates 12 to move relatively, thereby driving the two groups of second limiting plates 13 to move relatively until a number of smaller cardboard sheets are limited and stacked. When the cardboard specification is large, move the first sliding plate 6 and the second sliding plate 12 to the outermost sides of the horizontal groove shell 4 and the vertical groove shell 10 respectively, and then rotate the horizontal screw rod 2 on the bearing seat 1 to drive the two groups of first moving plates 3 to move relatively away from each other under the cooperation of the symmetric external threads, thereby driving the two groups of horizontal groove shells 4 to move relatively away from each other, and further driving the two groups of first limiting plates 7 to move relatively away from each other. Then rotate the vertical screw rod 8 on the bearing seat 1 to drive the two groups of second moving plates 9 to move relatively away from each other under the cooperation of the symmetric external threads, thereby driving the two groups of vertical groove shells 10 to move relatively away from each other, and further driving the two groups of second limiting plates 13 to move relatively away from each other until a number of larger cardboard sheets are limited and stacked. It can limit and stack a number of cardboard sheets according to the size of the cardboard specification, and has a wider application range.

[0026] Example 2, please refer to Figures 1-4 , a stacking mechanism for cardboard production. A first hinge 15 is connected between the first limiting plate 7 and the first sliding plate 6. A first connecting plate 17 is arranged outside the first sliding plate 6. Two groups of first clamping rods 18 are fixedly connected to the inner side of the first connecting plate 17. A second hinge 19 is connected between the second limiting plate 13 and the second sliding plate 12. A second connecting plate 21 is arranged outside the second sliding plate 12. Two groups of second clamping rods 22 are fixedly connected to the inner side of the second connecting plate 21.

[0027] The rotation range of the first limiting plate 7 through the first hinge 15 is 0 - 90°. First card holes 16 are respectively formed through the first limiting plate 7 and the first sliding plate 6, and the two groups of first clamping rods 18 are respectively located inside the two groups of first card holes 16.

[0028] In this embodiment, the first clamping rods 18 on the first connecting plate 17 cooperate with the two groups of first card holes 16 to fix the positions of the first limiting plate 7 and the first sliding plate 6.

[0029] The rotation range of the second limiting plate 13 through the second hinge 19 is 0 - 90°. Second card holes 20 are respectively formed through the second limiting plate 13 and the second sliding plate 12, and the two groups of second clamping rods 22 are respectively located inside the two groups of second card holes 20.

[0030] In this embodiment, the second clamping rods 22 on the second connecting plate 21 cooperate with the two groups of second card holes 20 to fix the positions of the second limiting plate 13 and the second sliding plate 12.

[0031] Specifically, the first limiting plate 7 is separated from the first sliding plate 6 by the cooperation of the first clamping rod 18 on the first connecting plate 17 and two groups of first clamping holes 16. Then, the two groups of first limiting plates 7 are respectively rotated by 90° through the first hinge 15. Next, the second limiting plate 13 is separated from the second sliding plate 12 by the cooperation of the second clamping rod 22 on the second connecting plate 21 and two groups of second clamping holes 20. Then, the two groups of second limiting plates 13 are respectively rotated by 90° through the second hinge 19, realizing the function of quickly taking materials from the stacked cardboard, which helps to improve work efficiency.

[0032] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings, but the present invention is not limited to the described embodiments. For those skilled in the art, without departing from the principle and spirit of the present invention, various changes, modifications, substitutions, and variations made to these embodiments still fall within the protection scope of the present invention.

Claims

1. A stacking mechanism for cardboard production, comprising a bearing seat (1), characterized in that: It also comprises two groups of first shift plates (3) and two groups of second shift plates (9), the upper ends of the two groups of first shift plates (3) are fixedly connected to a transverse groove shell (4), the inner sides of the two groups of transverse groove shells (4) are provided with a first slide plate (6), the upper sides of the two groups of first slide plates (6) are provided with a first limit plate (7), the upper ends of the two groups of second shift plates (9) are fixedly connected to a longitudinal groove shell (10), the inner sides of the two groups of longitudinal groove shells (10) are provided with a second slide plate (12), the upper sides of the two groups of second slide plates (12) are provided with a second limit plate (13), and the bearing seat (1) is provided with a limit groove (14).

2. A stacking mechanism for cardboard production according to claim 1, characterized in that: A transverse screw rod (2) and a longitudinal screw rod (8) are disposed through the bearing seat (1); the external threads of the transverse screw rod (2) and the longitudinal screw rod (8) are symmetrically disposed, and the transverse screw rod (2) and the longitudinal screw rod (8) are disposed perpendicularly to each other.

3. A stacking mechanism for cardboard production according to claim 2, characterized in that: The two groups of the first shifting plates (3) are both threadedly connected to the transverse screw rod (2), the two groups of the second shifting plates (9) are both threadedly connected to the longitudinal screw rod (8), and the lower ends of the two groups of the first shifting plates (3) and the two groups of the second shifting plates (9) are both located inside the limiting groove (14), and the limiting groove (14) is arranged in a cross shape.

4. A stacking mechanism for cardboard production according to claim 1, characterized in that: The two groups of transverse groove shells (4) are both provided with first adjustment rods (5) penetrating therethrough, and the two groups of first slide plates (6) are respectively threadedly connected to the two groups of first adjustment rods (5); the two groups of longitudinal groove shells (10) are both provided with second adjustment rods (11) penetrating therethrough, and the two groups of second slide plates (12) are respectively threadedly connected to the two groups of second adjustment rods (11).

5. A stacking mechanism for cardboard production according to claim 4, characterized in that: A first hinge (15) is connected between the first limiting plate (7) and the first slide plate (6); a first connecting plate (17) is arranged on the outer side of the first slide plate (6); two groups of first clamping rods (18) are fixedly connected to the inner side of the first connecting plate (17); a second hinge (19) is connected between the second limiting plate (13) and the second slide plate (12); a second connecting plate (21) is arranged on the outer side of the second slide plate (12); two groups of second clamping rods (22) are fixedly connected to the inner side of the second connecting plate (21).

6. A stacking mechanism for cardboard production according to claim 5, characterized in that: The first limit plate (7) has a rotation range of 0-90° via the first hinge (15), the first limit plate (7) and the first slide plate (6) are both provided with first clamping holes (16), and the two groups of first clamping rods (18) are respectively located on the inner sides of the two groups of first clamping holes (16).

7. A stacking mechanism for cardboard production according to claim 5, characterized in that: The second limit plate (13) has a rotation range of 0-90° via the second hinge (19), and second clamping holes (20) are provided through the second limit plate (13) and the second slide plate (12), and two groups of second clamping rods (22) are respectively located on the inner sides of the two groups of second clamping holes (20).

Citation Information

Patent Citations

  • Stacking device for carton paperboard production

    CN217807834U