Transferring and stacking equipment for grey paperboard production
By designing a transfer and stacking device with supporting slide rails, supporting beams, and baffles, the problem of inconvenient transfer in gray cardboard production was solved, achieving stable and neat cardboard stacking and convenient forklift operation.
Patent Information
- Application Number
- CN202423279520.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-12-30
AI Technical Summary
In the existing gray cardboard production process, stacking during transportation is inconvenient, forklift operation is difficult, cardboard is prone to tilting or collapsing, and there is a lack of uniformity restrictions.
A transfer and stacking device including a support slide rail, a support beam and a baffle was designed. The device uses a motor to drive a screw to drive a slider and a pusher plate to achieve stable and neat stacking of gray cardboard. It is suitable for cardboard of different widths and is easy to operate with a forklift.
It improves the stability and neatness of gray cardboard during transportation, facilitates forklift loading and unloading, reduces the rate of human error, and simplifies the transportation process.
Smart Images

Figure CN223688049U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a temporary stacking device, in particular to a transfer and stacking equipment for grey board production. BACKGROUND
[0002] Grey board is generally composed of multiple layers, usually the surface layer is bleached or unbleached chemical wood pulp, and the core layer and the bottom layer usually use recycled fiber raw materials such as waste paper pulp, and this structure makes it have certain stiffness and economy.
[0003] Since it is mainly used for packaging and the raw materials are mostly recycled materials, the process is also relatively complex. During the production of grey board, after preliminary forming, it needs to be transferred between each process. Since the transfer is in bulk, the existing stacking shelves are not convenient for forklift operation. After the forklift forks reach the edge of the shelf, manual unloading is required, increasing the difficulty. Moreover, after stacking, there is no arrangement and side restriction, which is easy to tilt, bringing difficulty to the next transfer, and sometimes even collapsing. UTILITY MODEL CONTENT
[0004] The technical problem to be solved by the utility model is to provide a transfer and stacking equipment for grey board production.
[0005] The technical scheme of the utility model is:
[0006] A transfer and stacking equipment for grey board production, comprising two support sliding rails and a support beam, the support sliding rails are symmetrically and parallel arranged on both sides of the support beam, a baffle is fixed at the front end of the support sliding rail and the support beam; the support sliding rail has a slide way inside, a screw rod is installed along the length direction of the slide way, a sliding block is penetrated and installed on the screw rod, a sliding groove is opened on the surface of the support sliding rail and communicates with the slide way, a vertical column is fixed on the top of the sliding block and protrudes from the sliding groove, a push plate is fixed between the front sides of the two vertical columns; multiple groups of supporting legs are arranged at intervals at the bottom of the support sliding rail and the support beam, and the bottom ends of the supporting legs in the same group are welded with a transversely arranged backing plate; the rear end of the screw rod is connected with a transmission box, and the transmission box is driven by a motor.
[0007] Further, the transmission box is a chain transmission, gear and worm transmission or synchronous belt transmission structure.
[0008] Further, the support sliding rail and the support beam are both square tubes, and shaft seats are arranged at the front end and the rear end of the screw rod close to the slide way of the support sliding rail, the shaft seat is consistent with the cross section of the slide way in profile, a bearing is embedded in the center for fixing and supporting the screw rod, screw holes are vertically or transversely opened on the shaft seat and symmetrically on both sides of the bearing, screw holes are opened on the corresponding surface of the support sliding rail, and the shaft seat is fixed in the slide way through bolts.
[0009] Further, the baffle is L-shaped, the width is greater than that of the support sliding rail, and the contact surface of the support sliding rail is fixed by welding.
[0010] Furthermore, a proximity switch is installed by making a hole in the center of the baffle of the support beam. The proximity switch is used for feedback control of the motor.
[0011] The advantages of this utility model are:
[0012] This utility model is mainly used for the transfer and stacking of gray cardboard between different processes in the production of gray cardboard. The support part consists of two support rails and a support beam, arranged in parallel, with no transverse structure between their front ends. The overall structural design takes into account the ease of forklift operation. The forklift forks can move upwards in the gap between the support rails and the support beam, facilitating unloading and loading. After the forks transport the cardboard on the rails, the motor drives the screw, which in turn drives the slider. The column then drives the push plate to push the gray cardboard to the front baffle, where it works in conjunction with the baffle to restrict its movement. This ensures the neatness and stability of the gray cardboard. Because the push plate is movable, it can restrict gray cardboard of different widths. When the forklift is loading or unloading, the baffle moves to the rearmost position. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 1 ;
[0014] Figure 2 for Figure 1 A magnified view of part A in the diagram;
[0015] Figure 3 for Figure 1 A magnified view of part B in the diagram;
[0016] Figure 4 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 2 .
[0017] In the diagram: 1-Support rail, 11-Slide rail, 12-Slide groove, 13-Screw, 14-Shaft seat, 15-Bolt, 16-Slider, 17-Column, 2-Support beam, 3-Baffle, 4-Push plate, 5-Transmission box, 6-Motor, 7-Foot, 8-Plate, 9-Proximity switch. Detailed Implementation
[0018] The specific embodiments of this utility model will be further described below with reference to the accompanying drawings. It should be noted that these descriptions are for the purpose of aiding understanding of this utility model, but do not constitute a limitation thereof. Furthermore, the technical features involved in the various embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.
[0019] like Figures 1-4 As shown:
[0020] The utility model relates to a transfer stacking equipment for grey board production, including two support slide rails 1 and a support beam 2, the support slide rails 1 are symmetric parallel arrangement at the both sides of support beam 2, and the front end of support slide rail 1 and support beam 2 is fixed with baffle 3, the support slide rail 1 has slide 11, and the screw rod 13 is installed along its length direction in slide 11, and the sliding block 16 is worn on the screw rod 13, and the surface of support slide rail 1 is provided with the sliding slot 12 that communicates with slide 11, and the vertical column 17 that protrudes the sliding slot 12 is fixed on the top of sliding block 16, and the push plate 4 is fixed between the front side of two vertical columns 17, the bottom of same group of support feet 7 is welded with the crosswise arranged backing plate 8, the rear end of screw rod 13 is connected with transmission box 5, and is driven by motor 6 through transmission box 5.
[0021] The utility model mainly is used in the transfer stacking between different processes in grey board production process, and the support part is composed of two support slide rails 1 and a support beam 2, and is arranged in parallel, and there is no transverse structure between the front ends of them, and the overall structural design considers the convenience of forklift operation, and the prongs of forklift can make upward movement in the direct gap of support slide rail 1 and support beam 2, which is convenient for unloading and loading.
[0022] After the prongs transport the paperboard on it, the screw rod 13 is driven by motor 6, then the screw rod 13 drives the sliding block 16 to run, and the vertical column 17 will drive the push plate 4 to push the grey board to the baffle 3 in front, and cooperate with the baffle 3 to limit, which can ensure the neatness and stability of the grey board, and since the push plate 4 is movable, it can limit the grey board of different widths, and the baffle 3 runs to the rear position when the forklift loads or unloads.
[0023] In order to ensure the consistency of transmission, the push plate 4 runs smoothly, so the same motor 6 is used to distribute power by transmission box 5, and the transmission box 5 is a chain transmission, gear and worm transmission or synchronous belt transmission structure, and these synchronous transmission mechanisms are prior art and will not be described in detail.
[0024] In order to reduce the processing cost, the support slide rail 1 and the support beam 2 are both square tubes, and the shaft seat 14 is arranged at the front end and the rear end of the screw rod 13 in the sliding slot 12 of the support slide rail 1, the profile of the shaft seat 14 is consistent with the cross section of the sliding slot 12, and the bearing is embedded in the center for fixing and supporting the screw rod 13, and the screw holes are symmetrically arranged on both sides of the bearing vertically or transversely on the shaft seat 14, and the corresponding surface of the support slide rail 1 is provided with screw holes, and the shaft seat 14 is fixed in the sliding slot 12 by the bolts 15, and the above structure has the advantages of convenient processing, assembly and disassembly, and the inner diameter of the square tube can be processed to obtain the sliding block 16 and the shaft seat 14.
[0025] As an optimization scheme, the baffle 3 is L-shaped, the width is greater than the supporting slide rail 1, the contact surface of the supporting slide rail 1 is fixed by welding, so that the contact area can be increased, the indentation on the paperboard can be avoided, of course, the proximity switch 9 can be installed in the center hole of the baffle 3 of the supporting beam 2, the proximity switch 9 is feedback controlled by the motor 6, so that the paperboard is automatically powered off when it is pushed to the proximity baffle 3, so that the failure rate of manual operation can be reduced, the proximity switch 9 can be connected in series in the circuit as a switch element control, or as a sensor connected with the controller of the motor 6, these are mature electrical technologies, and the principles will not be described.
[0026] The embodiments of the utility model are described in detail in combination with the drawings, but the utility model is not limited to the described embodiments. For those skilled in the art, various changes, modifications, replacements and modifications can be made to these embodiments without departing from the principles and spirits of the utility model, and still fall within the protection scope of the utility model.
Claims
1. A transfer stacking apparatus for manila production, characterized by: The utility model provides a support slide rail and support beam, the support slide rail and support beam are fixed with the baffle at the front end of support slide rail and support beam, the support slide rail is provided with the slide way, the slide way is provided with the screw rod along the length direction, the slide block is installed on the screw rod, the surface of support slide rail is provided with the sliding slot, the slide block is fixed with the stand, the push plate is fixed between the front side of two stands, the bottom of support slide rail and support beam is provided with the plurality of groups of support leg, the same group support leg bottom is welded with the cross -arrangement pad, the rear end of screw rod is connected with transmission case, and the transmission case is driven with motor.
2. The transfer piling apparatus for production of testliner according to claim 1, characterized in that: The transmission case is chain transmission, gear worm transmission or synchronous belt transmission structure.
3. The transfer stacking apparatus for production of testliner according to claim 2, characterized in that: The support slide rail and support beam are square tube processing, and the front end and rear end of the screw rod are provided with the shaft seat in the sliding slot of the support slide rail, the shaft seat is consistent with the cross section of the sliding slot, the bearing is embedded in the center for fixing and supporting the screw rod, the screw hole is vertically or horizontally provided on both sides of the bearing on the shaft seat, the screw hole is provided on the corresponding surface of the support slide rail, and the shaft seat is fixed in the sliding slot through the bolt.
4. The transfer piling apparatus for production of testliner according to claim 3, characterized in that: The baffle is L-shaped, and the width is greater than the support slide rail, and the contact surface of the support slide rail is welded and fixed.
5. The transfer piling apparatus for production of testliner according to claim 1, characterized in that: The proximity switch is installed in the baffle of the support beam, and the proximity switch is used for feedback control motor.