Material receiving device for tin roll cutting
By designing a splicing device for tin coil cutting and utilizing the cooperation of driving gears and limiting tooth plates, the tin plates can be spliced at the same height. The combination of T-bars and elastic parts solves the problem of offset when tin plates are stacked, ensuring the accuracy of printing and loading and the stability of the production process.
Patent Information
- Application Number
- CN202422471247.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-10-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing tin plate receiving device lacks clearance when stacking, causing the tin plates to move and deviate, affecting the accuracy of printing and loading.
A splicing device for tin coil cutting was designed. A driving gear was used to drive the limiting tooth plate to move left and right in opposite directions to ensure that the tin plates were spliced at the same height. The T-bar and elastic parts that moved up and down the horizontal plate were combined to achieve stable stacking of the tin plates.
It effectively avoids the problem of tin plate deviation during printing and loading, and improves the printing quality and the stability and reliability of the production process.
Smart Images

Figure CN223421870U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of tin plate splicing, and in particular relates to a splicing device for tin coil cutting. Background Art
[0002] Tin plate printing is a common process that involves purchasing a tin coil, cutting it into plates, and then printing on the tin plate. However, in actual operation, the tin plates formed after the tin coil is cut need to be stacked, but there is a problem with the existing material splicing device when stacking the tin plates, namely that there is no gap between the tin plates. This situation can have adverse consequences, because during the printing process, an adsorption loading device is usually used for loading, and when the adsorption loading device adsorbs the top first layer of tin plate and moves it horizontally, due to the effect of friction, it will inevitably cause the lower layer of tin plate to move and deviate. This movement and deviation will cause deviations in subsequent printing and loading, thereby affecting the printing quality. Therefore, in order to avoid this situation, a material splicing device with gaps between the tin plates is needed. Utility Model Content
[0003] The utility model aims to provide a splicing device for cutting tin coils, so as to solve the problem that the existing splicing device stacks tin plates without gaps.
[0004] To achieve the above-mentioned object, the present invention provides the following technical solution: a material splicing device for tin coil cutting, comprising two side blocks, the two side blocks being arranged vertically and parallel to each other, a first slot and a second slot being provided on a side of the two side blocks adjacent to each other, the first slot being connected to the second slot, a plurality of splicing plates being provided between the two side blocks, connecting blocks being provided on both sides of the splicing plates, the splicing plates being placed between the two side blocks, and the two connecting blocks being placed in the two first slots;
[0005] Each of the side blocks is provided with two No. 3 grooves, a No. 4 groove is provided between the two No. 3 grooves, and the No. 4 groove is connected to the two No. 3 grooves on the upper and lower sides respectively;
[0006] A limiting assembly is provided on the two side blocks, and the limiting assembly includes a driving gear and two limiting tooth plates. The driving gear is arranged in the No. 4 slot, and the two limiting tooth plates can be moved left and right and are arranged in the two No. 3 slots respectively. The side of the two limiting tooth plates close to each other is meshed and connected with the upper and lower sides of the driving gear.
[0007] Furthermore, the bottoms between the two side blocks are commonly connected with a horizontal plate.
[0008] Furthermore, both sides of the top of the receiving plate are higher than the middle of the top of the receiving plate, so that a receiving groove is formed at the top of the receiving plate.
[0009] Furthermore, the driving gear is mounted on the output shaft of the driving motor.
[0010] Furthermore, the horizontal plate can be moved up and down to sleeve a plurality of T-shaped rods, and the top ends of the plurality of T-shaped rods are commonly connected to the bottom of the lifting plate.
[0011] Furthermore, an elastic member is provided between the bottom of the lifting plate and the top of the horizontal plate.
[0012] Furthermore, the elastic member can be sleeved on the T-shaped rod.
[0013] Furthermore, the bottom of one side of the two side blocks is connected to a No. 1 baffle, and the top and bottom of the two side blocks away from the No. 1 baffle are respectively connected to a No. 2 baffle and a No. 3 baffle.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] The splicing device for tin coil cutting drives the limiting tooth plates to move left and right in opposite directions by driving gears, so that multiple splicing plates can all splice at the same height, achieving orderly splicing and stacking of tin plates, effectively ensuring that there are gaps between the tin plates, and avoiding the problem of the lower tin plates being moved and deviated when the adsorption feeding device adsorbs the top first layer of tin plate and moves horizontally, thereby ensuring the accuracy of subsequent printing and improving the subsequent printing quality;
[0016] This tin coil cutting splicing device features multiple T-bars that can be mounted on a horizontal plate and moved up and down. The tops of the T-bars connect to a lifting plate, and elastic members are positioned between the bottom of the lifting plate and the top of the horizontal plate. After loading the material, the splicing plate moves down to the top of the lifting plate. This prevents excessive spacing between the lifting plate and the splicing plate, which can cause material to fall, or excessive spacing between the lifting plate and the splicing plate, which can affect smooth splicing. This makes the tin plate printing process more stable and reliable, enhancing the smoothness and reliability of the entire production process. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a three-dimensional diagram of a splicing device for tin coil cutting;
[0018] Figure 2 for Figure 1 Schematic diagram from another perspective;
[0019] Figure 3 for Figure 1 Schematic diagram of the structure with baffle removed;
[0020] Figure 4 for Figure 3 sectional view of
[0021] Figure 5 for Figure 4 Enlarged view of point A in the middle;
[0022] Figure 6 Schematic diagram of the side block structure;
[0023] Figure 7 Schematic diagram of the connecting plate structure.
[0024] In the figure: 10, side block; 101, slot No. 1; 102, slot No. 2; 103, slot No. 3; 104, slot No. 4; 110, horizontal plate; 111, baffle No. 1; 112, baffle No. 2; 113, baffle No. 3; 20, receiving plate; 20A, first receiving plate; 20B, second receiving plate; 201, receiving trough; 210, connecting block; 310, gear; 320, limit tooth plate; 320A, lower limit tooth plate; 320B, upper limit tooth plate; 410, T-bar; 420, lifting plate; 430, elastic member. DETAILED DESCRIPTION
[0025] The present invention will be further described below with reference to the embodiments.
[0026] The following examples are intended to illustrate the present invention and are not intended to limit the scope of protection of the present invention. The conditions in the examples may be further adjusted according to specific conditions. Simple improvements to the method of the present invention based on the concept of the present invention fall within the scope of protection claimed by the present invention.
[0027] See also Figure 1-7 The utility model provides a material splicing device for tin coil cutting, comprising two side blocks 10, the two side blocks 10 are vertically arranged in parallel, the bottoms between the two side blocks 10 are commonly connected with a horizontal plate 110, and the sides of the two side blocks 10 close to each other are each provided with a first groove 101 and a second groove 102, and the first groove 101 is connected to the second groove 102.
[0028] A plurality of material receiving plates 20 are arranged between the two side blocks 10. The two sides of the top of the material receiving plate 20 are higher than the middle of the top of the material receiving plate 20, so that a material receiving groove 201 is formed at the top of the material receiving plate 20. Connecting blocks 210 are arranged on both sides of the material receiving plate 20. The material receiving plate 20 can be placed between the two side blocks 10, and the two connecting blocks 210 can be placed in the two No. 1 grooves 101.
[0029] A limiting assembly is provided on the two side blocks 10, and two No. 3 slots 103 are provided on each side block 10, and a No. 4 slot 104 is provided between the two No. 3 slots 103, and the upper and lower sides of the No. 4 slot 104 are respectively connected to the two No. 3 slots 103; the limiting assembly includes a driving gear 310 and two limiting tooth plates 320, the driving gear 310 is provided in the No. 4 slot 104, and the two limiting tooth plates 320 can be moved left and right and are respectively provided in the two No. 3 slots 103, and the sides of the two limiting tooth plates 320 close to each other are meshed with the upper and lower sides of the driving gear 310, and the driving gear 310 is installed on the output shaft of the driving motor; the driving motor drives the driving gear 310 The gear 310 drives the two limiting tooth plates 320 to move left and right in opposite directions. The driving gear 310 rotates counterclockwise, and the lower limiting tooth plate 320A moves right into the third slot 103, so that the bottom first material receiving plate 20A moves down, and the upper limiting tooth plate 320B moves left to hinder the bottom second material receiving plate 20B from moving down; then the driving gear 310 rotates clockwise, the lower limiting tooth plate 320A moves left, and the upper limiting tooth plate 320B moves right, so that the bottom second material receiving plate 20B moves down to the lower limiting tooth plate 320A without the obstruction of the upper limiting tooth plate 320B. Repeat the operation to allow multiple material receiving plates 20A to move down one by one.
[0030] The horizontal plate 110 can move up and down and is sleeved with multiple T-shaped rods 410. The top ends of the multiple T-shaped rods 410 are commonly connected to the bottom of the lifting plate 420. An elastic member 430 is provided between the bottom of the lifting plate 420 and the top of the horizontal plate 110. The elastic member 430 can be sleeved on the T-shaped rod 410. After the material is loaded, the receiving plate 20 moves down to the top of the lifting plate 420 through the limiting assembly. When a certain amount of receiving plates 20 are present on the lifting plate 420, they are taken out together. As the number of receiving plates 20 at the top of the lifting plate 420 increases, the lifting plate 420 gradually descends, thereby avoiding the problem that the distance between the lifting plate 420 and the first receiving plate 20A is too large, causing the material to fall, or too small, affecting the smooth progress of the material receiving.
[0031] The bottom of one side of the two side blocks 10 is connected to a first baffle 111, and the top and bottom of the two side blocks 10 away from the first baffle 111 are respectively connected to a second baffle 112 and a third baffle 113, which have a certain effect of limiting the tin plate.
[0032] The working principle and use process of the utility model are as follows: the device is placed on the discharging conveyor belt of the cutting device. Since the height of the conveyor belt cannot be changed, the height of the tin plate delivered to the receiving device is consistent;
[0033] After the material receiving slot 201 on the first material receiving plate 20A receives the material plate, the driving motor drives the driving gear 310, and the driving gear 310 drives the two limit tooth plates 320 to move left and right in opposite directions. The driving gear 310 rotates counterclockwise, and the lower limit tooth plate 320A moves to the right into the third slot 103, so that the bottom first material receiving plate 20A moves down, and the upper limit tooth plate 320B moves to the left to hinder the bottom second material receiving plate 20B from moving down; then the driving gear 310 rotates clockwise, the lower limit tooth plate 320A moves left, and the upper limit tooth plate 320B moves right, so that the bottom second material receiving plate 20B moves down to the lower limit tooth plate 320A without the obstruction of the upper limit tooth plate 320B. Repeat the operation, and multiple material receiving plates 20A can all receive materials at the same height, which is convenient for the subsequent printing and loading device to adsorb one by one.
[0034] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A device for splicing tin coils, characterized by: The invention comprises two side blocks (10), the two side blocks (10) are arranged vertically and in parallel, a first groove (101) and a second groove (102) are provided on the sides of the two side blocks (10) close to each other, the first groove (101) and the second groove (102) are connected, a plurality of material receiving plates (20) are provided between the two side blocks (10), and connecting blocks (210) are provided on both sides of the material receiving plates (20), the material receiving plates (20) can be placed between the two side blocks (10), and the two connecting blocks (210) can be placed in the two first grooves (101); Each of the side blocks (10) is provided with two No. 3 grooves (103), a No. 4 groove (104) is provided between the two No. 3 grooves (103), and the No. 4 groove (104) is connected to the two No. 3 grooves (103) at the upper and lower sides respectively; A limiting assembly is provided on the two side blocks (10), and the limiting assembly includes a driving gear (310) and two limiting tooth plates (320). The driving gear (310) is provided in the fourth slot (104), and the two limiting tooth plates (320) are respectively movable leftward and rightward and provided in the two third slots (103). The sides of the two limiting tooth plates (320) that are close to each other are meshed and connected with the upper and lower sides of the driving gear (310).
2. The tin coil cutting and splicing device according to claim 1, characterized in that: The bottoms between the two side blocks (10) are commonly connected with a horizontal plate (110).
3. The tin coil cutting and splicing device according to claim 1, characterized in that: Both sides of the top of the receiving plate (20) are higher than the middle of the top of the receiving plate (20), so that a receiving groove (201) is formed at the top of the receiving plate (20).
4. The tin coil cutting and splicing device according to claim 1, characterized in that: The driving gear (310) is mounted on the output shaft of the driving motor.
5. The tin coil cutting and splicing device according to claim 2, characterized in that: The horizontal plate (110) can be moved up and down to sleeve a plurality of T-shaped rods (410), and the top ends of the plurality of T-shaped rods (410) are commonly connected to the bottom of the lifting plate (420).
6. The tin coil cutting and splicing device according to claim 5, characterized in that: An elastic member (430) is provided between the bottom of the lifting plate (420) and the top of the horizontal plate (110).
7. The tin coil cutting and splicing device according to claim 6, characterized in that: The elastic member (430) can be sleeved on the T-shaped rod (410).
8. The tin coil cutting and splicing device according to claim 1, characterized in that: The bottom of one side of the two side blocks (10) is connected to a first baffle (111), and the top and bottom of the side of the two side blocks (10) away from the first baffle (111) are respectively connected to a second baffle (112) and a third baffle (113).