Automatic magnet packaging feeding device

CN224618117UActive Publication Date: 2026-08-11BAOTOU INST MAGNETIC NEW MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-22
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0002]当前在运输厚度尺寸较小的磁铁时,例如0.8mm厚度的磁铁,在运输过程中容易产生磁铁断裂的情况,因此这种磁铁在运输时,需要提前将磁铁装入到塑料制成的包装管中,然后再进行运输,这种运输方式能够减少磁铁断裂的情况,但是当前采用的是人工上料的方法,让工人手动将磁铁装入到包装管内,这种方式效率较低,上料难度大,且工人的劳动强度大

Benefits of technology

[0021]本实用新型通过上料机构将料仓机构内的磁铁移动到移料槽内,然后通过推料机构将移料槽内的磁铁推抵到对接在移料槽前端的包装管内,从而将磁铁自动上料到包装管内,提高了上料的效率,工人只需要包装管对接到移料槽前端即可,降低了工人的劳动强度,并且降低了上料难度。

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Abstract

This utility model discloses an automatic magnet packaging feeding device, including a workbench, a hopper mechanism, a feeding mechanism, a packaging tube, and a pushing mechanism. A transfer trough extends front to back on the surface of the workbench, with an opening at its front end. The hopper mechanism stores magnets. The feeding mechanism moves the magnets from the hopper mechanism into the transfer trough. The packaging tube is hollow and extends front to back, with its rear end connected to the front end of the transfer trough. The pushing mechanism pushes the magnets from the front end of the transfer trough into the packaging tube. This utility model automatically feeds magnets into the packaging tube, improving feeding efficiency. Workers only need to connect the packaging tube to the front end of the transfer trough, reducing labor intensity and feeding difficulty.
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Description

Technical Field

[0001] This utility model relates to the field of magnetic packaging feeding technology, and in particular to an automatic magnetic packaging feeding device. Background Technology

[0002] Currently, when transporting magnets with small thicknesses, such as 0.8mm thick magnets, they are prone to breakage during transportation. Therefore, such magnets need to be pre-packed in plastic packaging tubes before transportation. This method can reduce the occurrence of magnet breakage. However, the current method is manual loading, where workers manually load the magnets into the packaging tubes. This method is inefficient, difficult to load, and physically demanding for workers. Utility Model Content

[0003] The purpose of this utility model is to provide an automatic feeding device for magnet packaging. The technical problem it solves is to automatically feed magnets into the packaging tube.

[0004] To achieve the above objectives, the solution of this utility model is as follows:

[0005] An automatic magnetic packaging feeding device includes,

[0006] The workbench has a material transfer groove extending from front to back on its surface, with the front end of the material transfer groove being open.

[0007] A hopper mechanism for storing magnets;

[0008] The feeding mechanism is used to move the magnets inside the hopper mechanism into the transfer trough;

[0009] The packaging tube is hollow and extends both front and back, with its rear end connected to the front end of the transfer trough.

[0010] The pushing mechanism is used to push the magnet from the front end of the transfer trough into the packaging tube.

[0011] Furthermore, the hopper mechanism includes a feeding trough and a magnetic clip. The feeding trough is located on either the left or right side of the transfer trough and is connected to the transfer trough. The magnetic clip is mounted above the feeding trough. A vertically extending storage trough is provided inside the magnetic clip. Both the upper and lower ends of the storage trough are open. Multiple magnets are stacked inside the storage trough. The magnets can fall into the feeding trough from the lower end of the storage trough in sequence.

[0012] Furthermore, the feeding mechanism includes a feeding cylinder and a feeding plate. One end of the feeding plate is movably inserted into the feeding trough from the side of the feeding trough away from the transfer trough, and the feeding plate is connected to the power end of the feeding cylinder. The feeding cylinder can drive the feeding plate to push the magnet in the feeding trough into the transfer trough.

[0013] Furthermore, there are two material transfer troughs, which are spaced apart on the left and right. There are also two hopper mechanisms, one located on the left side of the left material transfer trough and the other located on the right side of the right material transfer trough. There are also two feeding mechanisms, one located on the left side of the left hopper mechanism and the other located on the right side of the right hopper mechanism.

[0014] Furthermore, there are three feeding troughs and three storage troughs. The three storage troughs are arranged in a staggered manner. Each storage trough has a feeding trough below it. There are also three feeding plates. One feeding plate is inserted into one feeding trough. The feeding cylinder can drive the three feeding plates simultaneously to push the magnets in the three feeding troughs into the transfer trough. The three magnets are arranged in a staggered manner in the transfer trough. The polarities of the magnets in the three storage troughs are either exactly the same or not exactly the same.

[0015] Furthermore, the pushing mechanism is located at the rear end of the transfer trough, and includes a pushing cylinder, a pushing plate, and a pushing block. The pushing plate extends forward and backward, with its rear end fixed to the power end of the pushing cylinder and its front end extending above the rear end of the transfer trough. The pushing block is located on the lower side of the front end of the pushing plate and extends downward into the transfer trough. The pushing cylinder drives the pushing plate to move forward along the transfer trough, causing the pushing block to push against the magnet in the transfer trough and move forward, and enter the packaging tube from the front opening of the transfer trough.

[0016] Furthermore, there are two material transfer troughs, which are spaced apart on the left and right. A push block is provided on each of the left and right sides of the lower front end of the push plate, and the two push blocks are respectively embedded into the left and right material transfer troughs.

[0017] Furthermore, it also includes a limiting mechanism, which is used to fix the packaging tube so that the packaging tube is connected to the front opening of the transfer trough.

[0018] Furthermore, the limiting mechanism is a pipe clamp, which is located at the front end of the transfer groove. The pipe clamp has a limiting channel extending forward and backward. The rear end of the limiting channel is connected to the front opening of the transfer groove. The rear end of the packaging tube is inserted into the limiting channel from the rear end of the limiting channel and is connected to the front opening of the transfer groove. The limiting channel can limit the left and right movement of the packaging tube.

[0019] Furthermore, the upper top of the front end of the limiting channel tilts upward to form a first guide slope, and the lower bottom of the front end of the limiting channel tilts downward to form a second guide slope.

[0020] After adopting the above solution, the beneficial effects of this utility model are as follows:

[0021] This invention uses a feeding mechanism to move magnets from the hopper mechanism into the transfer trough, and then a pushing mechanism to push the magnets in the transfer trough into the packaging tube connected to the front end of the transfer trough, thereby automatically feeding the magnets into the packaging tube, improving feeding efficiency. Workers only need to connect the packaging tube to the front end of the transfer trough, reducing the labor intensity of workers and reducing the difficulty of feeding. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 1 ;

[0023] Figure 2 This is a schematic diagram of the overall structure of this utility model. Figure 2 .

[0024] Label Explanation:

[0025] 10. Workbench; 11. Transfer chute; 20. Hopper mechanism; 21. Feeding chute; 22. Magnetic clip; 221. Storage chute; 30. Feeding mechanism; 31. Feeding cylinder; 32. Feeding plate; 40. Packaging tube; 50. Pushing mechanism; 51. Pushing cylinder; 52. Pushing plate; 53. Pushing block; 60. Limiting mechanism; 61. Pipe clamp; 62. Limiting channel; 70. Magnet. Detailed Implementation

[0026] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments.

[0027] like Figures 1 to 2 As shown, this embodiment provides an automatic magnetic packaging feeding device, including a workbench 10, a hopper mechanism 20, a feeding mechanism 30, a packaging tube 40, a pushing mechanism 50, and a limiting mechanism 60;

[0028] The workbench 10 has a transfer groove 11 extending from front to back on its surface, with the front end of the transfer groove 11 being open.

[0029] The hopper mechanism 20 is used to store magnets 70. Specifically, the hopper mechanism 20 includes a feeding trough 21 and a magnet clip 22. The feeding trough 21 is located on either the left or right side of the transfer trough 11 and is connected to the transfer trough 11. The magnet clip 22 is mounted above the feeding trough 21. A vertically extending storage trough 221 is provided inside the magnet clip 22. Both the upper and lower ends of the storage trough 221 are open. Multiple magnets 70 are stacked inside the storage trough 221. The magnets 70 can fall into the feeding trough 21 from the lower end of the storage trough 221 in sequence.

[0030] The feeding mechanism 30 is used to move the magnet 70 in the hopper mechanism 20 into the transfer trough 11. Specifically, the feeding mechanism 30 includes a feeding cylinder 31 and a feeding plate 32. One end of the feeding plate 32 is movably inserted into the feeding trough 21 from the side of the feeding trough 21 away from the transfer trough 11. The feeding plate 32 is connected to the power end of the feeding cylinder 31. The feeding cylinder 31 can drive the feeding plate 32 to push the magnet 70 in the feeding trough 21 into the transfer trough 11.

[0031] The packaging tube 40 has a hollow structure and extends from front to back. The rear end of the packaging tube 40 is connected to the front end of the transfer trough 11. The packaging tube 40 is preferably made of plastic to save costs. When the magnet 70 is loaded into the packaging tube 40 for transportation, it can prevent the magnet 70 with a small thickness, such as a magnet 70 with a thickness of 0.8mm, from breaking.

[0032] The pushing mechanism 50 is used to push the magnet 70 from the front end of the transfer trough 11 into the packaging tube 40. Specifically, the pushing mechanism 50 is located at the rear end of the transfer trough 11 and includes a pushing cylinder 51, a pushing plate 52, and a pushing block 53. The pushing plate 52 extends forward and backward, with its rear end fixed to the power end of the pushing cylinder 51 and its front end extending above the rear end of the transfer trough 11. The pushing block 53 is located on the lower side of the front end of the pushing plate 52. The pushing block 53 extends downward and is embedded in the transfer trough 11. The pushing cylinder 51 drives the pushing plate 52 to move forward along the transfer trough 11, so that the pushing block 53 pushes the magnet 70 in the transfer trough 11 forward and enters the packaging tube 40 from the front opening of the transfer trough 11.

[0033] The limiting mechanism 60 is used to fix the packaging tube 40 so that the packaging tube 40 is connected to the front opening of the transfer groove 11. Specifically, the limiting mechanism 60 is a tube clamp 61, which is located at the front end of the transfer groove 11. The tube clamp 61 has a limiting channel 62 extending forward and backward. The rear end of the limiting channel 62 is connected to the front opening of the transfer groove 11. The rear end of the packaging tube 40 is inserted into the limiting channel 62 from the rear end of the limiting channel 62 and is connected to the front opening of the transfer groove 11, so as to avoid misalignment between the rear end of the packaging tube 40 and the front opening of the transfer groove 11. Furthermore, the upper top of the front end of the limiting channel 62 is inclined upward to form a first guide slope, and the lower bottom of the front end of the limiting channel 62 is inclined downward to form a second guide slope. The first guide slope and the second guide slope together expand the area of ​​the front end of the limiting channel 62, thereby facilitating the insertion of the rear end of the packaging tube 40.

[0034] In a preferred embodiment, there are two material transfer troughs 11, which are arranged at an interval from left to right. There are also two material hopper mechanisms 20, one of which is located on the left side of the left material transfer trough 11 and the other is located on the right side of the right material transfer trough 11. There are also two feeding mechanisms 30, one of which is located on the left side of the left material hopper mechanism 20 and the other is located on the right side of the right material hopper mechanism 20.

[0035] Furthermore, a push block 53 is provided on each of the left and right sides of the lower front end of the pusher plate 52. The two push blocks 53 are respectively embedded into the left and right transfer grooves 11. Two limiting channels 62 are also provided in the tube clamp 61. The two limiting channels 62 are spaced apart. The left limiting channel 62 is connected to the front end of the left transfer groove 11, and the right limiting channel 62 is connected to the front end of the right transfer groove 11. The two push blocks 53 push the magnets 70 in the corresponding two transfer grooves 11 and enter the corresponding two packaging tubes 40, which greatly improves the feeding speed. Specifically, the two push blocks 53 are connected by a plate. Then, by fixing the plate to the lower front end of the pusher plate 52, the two push blocks 53 can be set on the pusher plate 52.

[0036] Furthermore, there are three feeding troughs 21 and three storage troughs 221, arranged alternately. Each storage trough 221 has a feeding trough 21 below it. There are also three feeding plates 32, each inserted into a corresponding feeding trough 21. The feeding cylinder 31 can simultaneously drive the three feeding plates 32 to push the magnets 70 from the three feeding troughs 21 into the transfer trough 11. The three magnets 70 are arranged alternately in the transfer trough 11. The polarities of the magnets 70 in the three storage troughs 221 may be completely identical or not completely identical; for example, the magnets 70 in the front storage trough 221 have a polarity of N, while those in the middle storage trough 221 have a polarity of N. The polarity of the magnet 70 inserted is S, and the polarity of the magnet 70 inserted into the rear storage tank 221 is N. After the three magnets 70 are pushed into the transfer tank 11, the polarities of the three magnets 70 from front to back are NSN. The push block 53 pushes the three magnets 70 into the packaging tube 40 at one time. After that, the push block 53 pushes the three magnets 70 with the polarity arranged as NSN into the packaging tube 40 at one time. If the polarity of the magnets 70 inserted into the three storage tanks 221 is N, then the polarity of the three magnets 70 pushed into the packaging tube 40 at one time by the push block 53 is NNN. After that, the push block 53 pushes the three magnets 70 with the polarity arranged as NNN into the packaging tube 40 at one time.

[0037] Furthermore, the magnetic clip 22 is detachably mounted above the feeding trough 21. The three magnets 70 inserted into different magnetic clips 22 have different polarity arrangements. For example, the magnets 70 in the front storage trough 221 have S polarity, the magnets 70 in the middle storage trough 221 have N polarity, and the magnets 70 in the rear storage trough 221 have N polarity. After replacing the magnetic clip 22, the polarity arrangement of the three magnets 70 in the front, middle, and rear troughs may be changed to NSS, SSS, SNS, etc. By replacing different magnetic clips 22, the polarity arrangement of the magnets 70 inserted into the packaging tube 40 can be different. Therefore, the packaging tube 40 can be compatible with magnets 70 with multiple polarity arrangements.

[0038] Specifically, the workbench 10 is configured with two layers, upper and lower. The material transfer chute 11, the hopper mechanism 20, the feeding mechanism 30, and the limiting mechanism 60 are all located on the upper workbench 10. The pushing cylinder 51 of the pushing mechanism 50 is fixed on the lower workbench 10. The rear end of the pushing plate 52 is fixed to the power end of the pushing cylinder 51, and its front end extends forward to the square of the material transfer chute 11.

[0039] It is understandable that multiple transfer troughs 11, hopper mechanisms 20, push blocks 53, and limit channels 62 can be set according to actual needs, and no limitation is made here.

[0040] The directional terms used in this specification are defined relative to the structures shown in the accompanying drawings. They are relative concepts and may therefore vary depending on their location and usage. Therefore, these or other directional terms should not be interpreted as restrictive.

[0041] The above description is only a preferred embodiment of this utility model and is not intended to limit the design of this case. All equivalent changes made based on the key design of this case shall fall within the protection scope of this case.

Claims

1. An automatic feeding device for magnetic packaging, characterized in that: include, The workbench has a material transfer groove extending from front to back on its surface, with the front end of the material transfer groove being open. A hopper mechanism for storing magnets; The feeding mechanism is used to move the magnets inside the hopper mechanism into the transfer trough; The packaging tube is hollow and extends both front and back, with its rear end connected to the front end of the transfer trough. The pushing mechanism is used to push the magnet from the front end of the transfer trough into the packaging tube.

2. The automatic magnetic packaging feeding device as described in claim 1, characterized in that: The hopper mechanism includes a feeding trough and a magnetic clip. The feeding trough is located on either the left or right side of the transfer trough and is connected to the transfer trough. The magnetic clip is mounted above the feeding trough. The magnetic clip has a vertically extending storage trough inside. The storage trough is open at both the top and bottom. Multiple magnets are stacked inside the storage trough. The magnets can fall into the feeding trough from the bottom of the storage trough in sequence.

3. The automatic magnetic packaging feeding device as described in claim 2, characterized in that: The feeding mechanism includes a feeding cylinder and a feeding plate. One end of the feeding plate is movably inserted into the feeding trough from the side of the feeding trough away from the transfer trough. The feeding plate is connected to the power end of the feeding cylinder. The feeding cylinder can drive the feeding plate to push the magnet in the feeding trough into the transfer trough.

4. The automatic magnetic packaging feeding device as described in claim 3, characterized in that: There are two material transfer troughs, which are arranged alternately on the left and right. There are also two hopper mechanisms, one located on the left side of the left material transfer trough and the other located on the right side of the right material transfer trough. There are also two feeding mechanisms, one located on the left side of the left hopper mechanism and the other located on the right side of the right hopper mechanism.

5. The automatic magnetic packaging feeding device as described in claim 3, characterized in that: There are three feeding troughs and three storage troughs. The three storage troughs are arranged in a row and a row. There is a feeding trough below each storage trough. There are also three feeding plates. One feeding plate is inserted into one feeding trough. The feeding cylinder can drive the three feeding plates at the same time to push the magnets in the three feeding troughs into the transfer trough. The three magnets are arranged in a row and a row in the transfer trough. The polarities of the magnets in the three storage troughs are either exactly the same or not exactly the same.

6. The automatic magnetic packaging feeding device as described in claim 1, characterized in that: The pushing mechanism is located at the rear end of the transfer trough. It includes a pushing cylinder, a pushing plate, and a pushing block. The pushing plate extends forward and backward, with its rear end fixed to the power end of the pushing cylinder and its front end extending above the rear end of the transfer trough. The pushing block is located on the lower side of the front end of the pushing plate. The pushing block extends downward and is embedded in the transfer trough. The pushing cylinder drives the pushing plate to move forward along the transfer trough, causing the pushing block to push against the magnet in the transfer trough and move forward, entering the packaging tube from the front opening of the transfer trough.

7. The automatic magnetic packaging feeding device as described in claim 6, characterized in that: There are two material transfer troughs, which are spaced apart on the left and right. There is a push block on each of the left and right sides of the lower front end of the push plate, and the two push blocks are respectively embedded into the left and right material transfer troughs.

8. The automatic magnetic packaging feeding device as described in claim 1, characterized in that: It also includes a limiting mechanism, which is used to limit the packaging tube so that the packaging tube is connected to the front opening of the transfer trough.

9. The automatic magnetic packaging feeding device as described in claim 8, characterized in that: The limiting mechanism is a pipe clamp, which is located at the front end of the transfer trough. The pipe clamp has a limiting channel extending forward and backward. The rear end of the limiting channel is connected to the front opening of the transfer trough. The rear end of the packaging tube is inserted into the limiting channel from the rear end of the limiting channel and is connected to the front opening of the transfer trough. The limiting channel can limit the left and right movement of the packaging tube.

10. The automatic magnetic packaging feeding device as described in claim 9, characterized in that: The upper part of the front end of the limiting channel tilts upward to form the first guide slope, and the lower part of the front end of the limiting channel tilts downward to form the second guide slope.