An automatic feeding machine for continuous bending of aluminum single panels

By combining components such as the carriage, T-shaped rod, first cylinder, and force-bearing frame, along with a vacuum pump and suction cup, the problem of low conveying efficiency in aluminum panel feeding machines is solved, enabling rapid and continuous feeding and model identification of aluminum panels, and reducing the labor intensity of workers.

CN224574542UActive Publication Date: 2026-07-31YICHUN HUANHONG METAL NEW MATERIAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YICHUN HUANHONG METAL NEW MATERIAL CO LTD
Filing Date
2025-08-22
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing aluminum panel feeding machines have low conveying efficiency and are difficult to lift, resulting in inconvenient operation.

Method used

The system employs components such as a slide, T-shaped rod, first cylinder, and force-bearing frame, along with a vacuum pump, extraction pipe, and suction cup. The vacuum pump and suction cup are controlled by a motor to achieve rapid feeding of aluminum panels, and the material rack is supported by a limit ball and L-shaped rod to achieve efficient transfer of aluminum panels.

Benefits of technology

It enables rapid and continuous feeding of aluminum panels, reduces the handling intensity of workers, improves feeding efficiency, and allows for quick identification of aluminum panel models.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224574542U_ABST
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Abstract

This utility model relates to a feeding machine, and more particularly to an automatic feeding machine for continuous bending of aluminum single panels. This utility model provides such an automatic feeding machine for continuous bending of aluminum single panels, including a slide bar, a stabilizing bar, a connecting bar, a load-bearing cylinder, a self-locking block, a bonding plate, fastening bolts, a carriage, a T-shaped bar, a first cylinder, and a force-bearing frame. Slide bars are welded to both sides of the connecting bar, and stabilizing bars are symmetrically welded to both the front and rear sides of the two slide bars. A bonding plate is rotatably mounted on the upper part of the stabilizing bar via a self-locking block, and fastening bolts are installed on the bonding plate. A carriage is slidably mounted between the two slide bars, and a T-shaped bar is welded to the bottom of the carriage. A first cylinder is bolted to the middle of the lower part of the T-shaped bar, and a force-bearing frame is mounted on the telescopic rod of the first cylinder. This utility model, through the cooperation of components such as the carriage, T-shaped bar, first cylinder, and force-bearing frame, can quickly feed aluminum single panels. Components such as a vacuum pump, extraction pipe, and suction cups can effectively reduce the handling intensity for workers.
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Description

Technical Field

[0001] This utility model relates to a feeding machine, and more particularly to an automatic feeding machine for continuous bending of aluminum single panels. Background Technology

[0002] Patent publication number CN215998428U discloses an automatic bending feeding mechanism, including a bending machine body, a bending mechanism, and a feeding mechanism. The bending mechanism is located on the right side of the bending machine body, and the feeding mechanism is located on the right side of the bending mechanism to transport the workpiece. The feeding mechanism consists of a mounting base and a holding cover. The holding cover is mounted above the bending machine body via the mounting base and is fixed to the upper surface of the mounting base. A baffle is located on the left side of the holding cover, and a gap is left between the lower end of the baffle and the mounting base for the workpiece to pass through. A pusher plate is located at the bottom of the holding cover. This automatic bending feeding mechanism, with its holding cover, baffle, and pusher plate, allows workpieces to be stored using the holding cover and baffle. Subsequently, the pusher plate moves to push the workpieces sequentially to the bottom of the bending mechanism for bending operations. Although the above patent achieves automatic bending feeding, the conveying efficiency of aluminum single panels is low, and lifting is difficult to implement.

[0003] Therefore, there is a particular need for an automatic feeding machine for continuous bending of aluminum single panels to solve the problems existing in the prior art. Utility Model Content

[0004] To overcome the shortcomings of existing feeders, such as low conveying efficiency of aluminum panels and difficulty in lifting, the technical problem to be solved is to provide an automatic feeder for continuous bending of aluminum panels.

[0005] The technical solution is as follows: An automatic feeding machine for continuous bending of aluminum single panels includes a slide rod, a stabilizing rod, a connecting rod, a load-bearing cylinder, a self-locking block, a bonding plate, fastening bolts, a slide frame, a T-shaped rod, a first cylinder, and a force-bearing frame. Slide rods are welded to both sides of the connecting rod. Stabilizing rods are symmetrically welded to both the front and rear sides of the two slide rods. A load-bearing cylinder is welded to the top of each stabilizing rod. A bonding plate is rotatably mounted on the upper part of the load-bearing cylinder through the self-locking block. Fastening bolts are installed on the bonding plate. A slide frame is slidably mounted between the two slide rods. A T-shaped rod is welded to the bottom of the slide frame. A first cylinder is installed in the middle of the lower part of the T-shaped rod through bolts. A force-bearing frame is mounted on the telescopic rod of the first cylinder.

[0006] Preferably, the system also includes a motor, a vacuum pump, a suction pipe, a suction cup, a control box, and intelligent control valves. The motor is bolted to the lower part of the force-bearing frame, and a vacuum pump is installed at the bottom of the motor's output shaft. Suction pipes are installed at intervals on the vacuum pump, and intelligent control valves are installed at intervals on the suction pipes. Suction cups are installed at the bottom of each intelligent control valve, and a control box is installed on the front side of the force-bearing frame. The control box is connected to the intelligent control valves.

[0007] Preferably, it also includes a second cylinder, which is bolted to the middle of the connecting rod, and the front end of the telescopic rod of the second cylinder is connected to the rear side of the T-shaped rod.

[0008] As a preferred option, a limiting ball is also included, with limiting balls welded to the front ends of both slide rods.

[0009] Preferably, it also includes L-shaped rods and material racks, with L-shaped rods welded between the rear sides of the force-bearing frame, and material racks connecting the L-shaped rods.

[0010] Preferably, the limiting ball is made of highly elastic rubber, which can limit the movement of the carriage.

[0011] The beneficial effects of this utility model are as follows: 1. This utility model, through the cooperation of components such as the slide, T-shaped rod, first cylinder and force-bearing frame, can quickly feed aluminum single panels as needed.

[0012] 2. This utility model can effectively reduce the handling intensity of workers by using components such as vacuum pumps, air extraction pipes, and suction cups.

[0013] 3. This utility model, through the cooperation of L-shaped rods and material racks, allows staff to quickly identify the aluminum panel model using product identification cards. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0015] Figure 2 This is a three-dimensional structural diagram of the bonding plate, fastening bolts, and slide of this utility model.

[0016] Figure 3 This is a three-dimensional structural diagram of the components of this utility model, including the motor, vacuum pump, and suction pipe.

[0017] Figure 4 This is a three-dimensional structural diagram of the stabilizing block and the guide ring of this utility model.

[0018] Figure 5 This is a three-dimensional structural diagram of the vertical rod and control box of this utility model.

[0019] Figure 6 This is a three-dimensional structural diagram of the L-shaped rod and material rack of this utility model.

[0020] Reference numerals: 1_slide bar, 2_stabilizing bar, 201_connecting bar, 3_load-bearing cylinder, 4_self-locking block, 5_adhesive plate, 6_fastening bolt, 7_slide frame, 8_T-shaped bar, 9_first cylinder, 10_force-bearing frame, 11_motor, 12_vacuum pump, 13_extraction pipe, 14_suction cup, 15_control box, 16_intelligent control valve, 17_second cylinder, 18_limit ball, 19_L-shaped bar, 20_material rack. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Example 1: An automatic feeding machine for continuous bending of aluminum single panels, as described in a preferred embodiment of this utility model. Figures 1-6 As shown, the assembly includes a slide rod 1, a stabilizing rod 2, a connecting rod 201, a load-bearing cylinder 3, a self-locking block 4, a bonding plate 5, fastening bolts 6, a slide frame 7, a T-shaped rod 8, a first cylinder 9, a force-bearing frame 10, a motor 11, a vacuum pump 12, an air extraction pipe 13, a suction cup 14, a control box 15, an intelligent control valve 16, a second cylinder 17, a limit ball 18, an L-shaped rod 19, and a material rack 20. The connecting rod 201 has slide rods 1 welded to both sides. Stabilizing rods 2 are symmetrically welded to the front and rear sides of the two slide rods 1. Load-bearing cylinders 3 are welded to the top of each stabilizing rod 2. A bonding plate 5 is rotatably mounted on the upper part of the load-bearing cylinder 3 via the self-locking block 4. Fastening bolts 6 are installed on the bonding plate 5. A slide frame 7 is slidably mounted between the two slide rods 1. A T-shaped rod 8 is welded to the bottom of the slide frame 7. A bolt is installed in the middle of the lower part of the T-shaped rod 8. The first cylinder 9 has a force-bearing frame 10 on its telescopic rod. The motor 11 is bolted to the lower part of the force-bearing frame 10. The vacuum pump 12 is mounted at the bottom of the output shaft of the motor 11. The vacuum pump 12 is equipped with suction pipes 13 at intervals. The suction pipes 13 are equipped with intelligent control valves 16 at intervals. The suction cups 14 are mounted at the lower part of the intelligent control valves 16. The control box 15 is mounted on the front side of the force-bearing frame 10 and is connected to the intelligent control valves 16. The second cylinder 17 is bolted to the middle of the connecting rod 201. The front end of the telescopic rod of the second cylinder 17 is connected to the rear side of the T-shaped rod 8. The front ends of the two sliding rods 1 are welded with limit balls 18. The rear sides of the force-bearing frame 10 are welded with L-shaped rods 19. The material rack 20 is connected between the L-shaped rods 19.

[0023] When workers need to feed aluminum panels, they can first move the bonding plate 5 to the designated position, and then tighten the fastening bolt 6. The fastening bolt 6 will fix the bonding plate 5 to the wall, thereby fixing the sliding rod 1 and the stabilizing rod 2. If the bonding plate 5 needs to be installed on the opposite wall, the workers can loosen the self-locking block 4. When the self-locking block 4 stops contacting the load-bearing cylinder 3, the workers can rotate the bonding plate 5. When the bonding plate 5 is rotated to a suitable position, the workers can reverse the self-locking block 4, which will fix the bonding plate 5. The T-shaped rod 8 provides support, and the workers can open the... The first cylinder 9 extends, causing the force-bearing frame 10 to move downwards. At this point, the worker can place the aluminum panel inside the force-bearing frame 10. Then, the worker can push the slide 7 to slide adaptively on the slide rod 1. After the worker can move the slide 7 to the designated position, the worker can remove the aluminum panel from the force-bearing frame 10, thus shortening the feeding distance of the aluminum panel. The retraction of the first cylinder 9 causes the force-bearing frame 10 to move downwards and reset, thus enabling rapid feeding of aluminum panels as needed. To increase the feeding efficiency of the aluminum panel, the worker can first adjust the parameters of the control box 15, which will then activate the motor 11 and the vacuum pump. 12. The rotation of the motor 11 drives the vacuum pump 12 to rotate, which in turn causes the suction pipe 13 and the suction cup 14 to rotate. Consequently, the intelligent control valve 16 and the suction cup 14 rotate accordingly. The control box 15 can control the number of times the intelligent control valve 16 is opened based on the length of the aluminum panel. The suction cup 14, through the suction pipe 13, evacuates the air between the aluminum panels in contact with it. Once the aluminum panel is moved to a suitable position, the vacuum pump 12 stops evacuating, and the suction cup 14 releases the aluminum panel. This effectively reduces the workload for workers handling the aluminum panel. When workers do not need to feed the aluminum panel temporarily, they can turn off the vacuum pump. The control box 15 can be closed, and the operator can open the second cylinder 17. The extension of the second cylinder 17 will cause the slide 7 to slide forward on the slide rod 1, and the retraction of the second cylinder 17 will cause the slide 7 to slide backward on the slide rod 1 to return to its original position. This can reduce the labor intensity of the operator. The limiting ball 18 can limit the slide 7 and control the sliding distance of the slide 7. In order to make it easier for the operator to confirm the production aluminum single panel model, the operator can place the corresponding product identification card on the material rack 20. In this way, the operator can quickly identify the aluminum single panel model through the product identification card. The L-shaped rod 19 provides support.

[0024] 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. An aluminum veneer continuous bending automatic feeder, characterized by, It includes a sliding rod (1), a stabilizing rod (2), a connecting rod (201), a load-bearing cylinder (3), a self-locking block (4), a bonding plate (5), a fastening bolt (6), a slide frame (7), a T-shaped rod (8), a first cylinder (9), and a force-bearing frame (10). The connecting rod (201) is welded with sliding rods (1) on both the left and right sides. The two sliding rods (1) are symmetrically welded with stabilizing rods (2) on both the front and rear sides. The top of the stabilizing rods (2) is welded with a load-bearing cylinder (3). The upper part of the load-bearing cylinder (3) is provided with a bonding plate (5) through a self-locking block (4). The bonding plate (5) is installed with a fastening bolt (6). The two sliding rods (1) are slidably provided with a slide frame (7). The bottom of the slide frame (7) is welded with a T-shaped rod (8). The middle of the lower part of the T-shaped rod (8) is installed with a bolt. The telescopic rod of the first cylinder (9) is provided with a force-bearing frame (10).

2. The continuous bending and automatic feeding machine for aluminum single plate according to claim 1, characterized in that, It also includes a motor (11), a vacuum pump (12), a suction pipe (13), a suction cup (14), a control box (15), and a smart valve (16). The motor (11) is bolted to the lower part of the force frame (10). The vacuum pump (12) is installed at the bottom of the output shaft of the motor (11). The suction pipe (13) is installed at intervals on the vacuum pump (12). The smart valve (16) is installed at intervals on the suction pipe (13). The suction cup (14) is installed at the bottom of the smart valve (16). The control box (15) is installed on the front side of the force frame (10). The control box (15) is connected to the smart valve (16).

3. The automatic feeding machine for continuous bending of aluminum single-panel according to claim 2, characterized in that, It also includes a second cylinder (17), and the second cylinder (17) is bolted in the middle of the connecting rod (201). The front end of the telescopic rod of the second cylinder (17) is connected to the rear side of the T-shaped rod (8).

4. The continuous bending and automatic feeding machine for aluminum single plate according to claim 3, characterized in that, It also includes a finite ball (18), and the front ends of both slide bars (1) are welded with finite balls (18).

5. The continuous bending and automatic feeding machine for aluminum single plate according to claim 4, characterized in that, It also includes L-shaped rods (19) and material racks (20). L-shaped rods (19) are welded to the rear side of the force-bearing frame (10), and material racks (20) are connected between the L-shaped rods (19).

6. The continuous bending and automatic feeding machine for aluminum single plate according to claim 5, characterized in that, The limiting ball (18) is made of highly elastic rubber, and the highly elastic rubber limiting ball (18) can limit the slide (7).