Magnetic sheet feeding device for office magnetic particles

By designing an automated magnetic sheet feeding device, which automatically separates magnetic sheets using components such as cylinders and blades, the problems of low efficiency and high cost caused by manual separation are solved, and efficient automatic feeding is achieved.

CN224211898UActive Publication Date: 2026-05-08NINGHAI TONY STATIONERY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGHAI TONY STATIONERY CO LTD
Filing Date
2025-06-19
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Current methods for separating magnetic sheets mainly rely on manual operation, resulting in low production efficiency and high labor costs.

Method used

A magnetic sheet feeding device was designed, comprising a guiding component, a distributing component, a pressing component, and a discharging component. The device automatically separates and outputs magnetic sheets using components such as cylinders and blades, thereby achieving automated feeding.

Benefits of technology

It enables automated separation and output of magnetic sheets, simplifies the feeding process, improves production efficiency, and reduces labor costs.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224211898U_ABST
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Abstract

The utility model relates to a magnetic sheet feeding device for office magnetic particles, which comprises a case and two hosts which are arranged at the top of the case and distributed in bilateral symmetry, and each host comprises a material guiding assembly and a material distributing assembly which are matched with each other; the material guiding assembly comprises a first support fixed to the machine box, a material guiding groove obliquely fixed to the first support and arranged in a low-front-and-high-back mode, a material pushing column movably arranged in the material guiding groove in a penetrating and inserting mode, having an oblique translation function in the length direction of the material guiding groove and distributed perpendicular to the material guiding groove, and a rodless air cylinder obliquely fixed to the bottom of the material guiding groove. The stop block is fixed on the guide chute and is positioned in front of the front end of the guide chute; the main machine further comprises a discharging assembly matched with the front end of the guide groove. According to the utility model, the feeding steps are greatly simplified, the production efficiency is effectively improved, and meanwhile, the labor cost is remarkably reduced.
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Description

Technical Field

[0001] This utility model relates to a magnetic sheet feeding device for office magnetic particles. Background Technology

[0002] Magnetic particles are office supplies that possess magnetism and can be attracted to whiteboards, thus fixing thin items such as paper, posters, or labels to the whiteboard. A whiteboard is a writing instrument that can be repeatedly erased and rewritten, usually made of white metal plate material, and its function is similar to that of a blackboard.

[0003] Magnetic particles are generally composed of plastic buckles and magnetic sheets embedded in the plastic buckles. The processing of magnetic sheets requires multiple steps, mainly including cutting, grinding, magnetizing, and pressing. After magnetization, the magnetic sheets inevitably attract each other. In order to send the magnetic sheets to the next process, they must be separated one by one. At present, the separation of magnetic sheets is mainly done manually. After separation, the magnetic sheets are sent to the next process. Therefore, the material feeding process is very cumbersome, resulting in low production efficiency and high labor costs, which needs to be further improved. Utility Model Content

[0004] In view of the current state of the prior art, the technical problem to be solved by this utility model is to provide a magnetic sheet feeding device for office magnetic particles that greatly simplifies the feeding steps to effectively improve production efficiency and significantly reduce labor costs.

[0005] The technical solution adopted by this utility model to solve the above-mentioned technical problems is: a magnetic sheet feeding device for office magnetic particles, characterized in that it includes a chassis and two main units arranged on the top of the chassis and symmetrically distributed on the left and right, wherein the main units include a material guiding component and a material distributing component that cooperate with each other.

[0006] The material guiding assembly includes a first bracket fixed to the chassis, a material guiding trough tilted and fixed to the first bracket with a lower front and higher rear, a pusher column movably inserted in the material guiding trough to have the function of tilting and translating along the length of the material guiding trough and distributed perpendicular to the material guiding trough, a rodless cylinder tilted and fixed to the bottom of the material guiding trough, and a stop block fixed on the material guiding trough and located in front of the front end of the material guiding trough. The moving direction of the moving end of the rodless cylinder is parallel to the tilting direction of the material guiding trough, and the lower end of the pusher column is fixed to the moving end of the rodless cylinder.

[0007] The material distribution assembly includes a second bracket fixed to the chassis, a material distribution cylinder fixed to the second bracket, and a material distribution blade that is inclined and movably connected to the second bracket to have a left and right translation function and is located on the left or right side of the front end of the guide groove. The telescopic end of the material distribution cylinder is arranged laterally to the left or right and fixed to the material distribution blade. The material distribution blade is arranged parallel to the push column. A first inclined surface is formed at the end of the material distribution blade near the guide groove.

[0008] A material receiving groove is provided on the lower side of the material dispensing blade, and a second inclined surface is formed on the inner wall of the material receiving groove near the material guide groove.

[0009] Preferably, the host further includes a pressing assembly that cooperates with the guiding assembly. The pressing assembly includes a third bracket fixed on the guiding groove, a pressing cylinder fixed on the third bracket, and a pressing block fixed on the telescopic end of the pressing cylinder and located above the front end of the guiding groove. The telescopic end of the pressing cylinder is downward and perpendicular to the guiding groove. The bottom outer wall of the pressing block is parallel to the inclined direction of the guiding groove. A pressing groove is formed on the bottom outer wall of the pressing block. The length of the pushing column is matched with the depth of the pressing groove.

[0010] Preferably, the main unit further includes a discharge assembly that cooperates with the front end of the guide chute. The discharge assembly includes a slide plate that is inclinedly fixed to the front end of the guide chute, a material-pushing strip that is inclinedly disposed in the middle of the interior of the slide plate, and a rotary cylinder fixed to the bottom of the slide plate. The slide plate is arranged with the front lower than the back. The material-pushing strip is parallel to the inner bottom surface of the slide plate. The rotating end of the rotary cylinder passes vertically upward through the bottom of the slide plate and is fixed to the front end of the material-pushing strip.

[0011] Preferably, the material guiding assembly further includes a traction bar movably connected to the outer wall of the material guiding trough on the side away from the material distributing assembly to have a forward and backward tilting and translation function, and an adjusting cylinder fixed on the material guiding trough and located above the traction bar. The traction bar is arranged parallel to the tilting direction of the material guiding trough, the telescopic end of the adjusting cylinder is tilted forward and arranged parallel to the moving direction of the traction bar and fixed at the rear end of the traction bar, and the stop block is fixed at the front end of the traction bar.

[0012] Preferably, the material distribution assembly further includes a box fixed between the second support and the guide trough, a movable strip connected to the front side of the box to have left and right translation function, and a traction block movably inserted into the front side of the box. The telescopic end of the material distribution cylinder extends laterally into the interior of the box and is fixed on the traction block. The front side of the traction block is fixed on the movable strip.

[0013] Preferably, a protective plate is also fixed to the front side of the box body, which is inclined and located in front of the dispensing blade.

[0014] Compared with the prior art, the advantages of this utility model are: this utility model can automatically separate and output multiple magnetic sheets that are attracted to each other in a string to supply the next process, without the need for manual operation, thereby greatly simplifying the material supply steps and effectively improving production efficiency, while significantly reducing labor costs. Attached Figure Description

[0015] The above and other features, advantages, and aspects of the embodiments of this application will become more apparent when taken in conjunction with the accompanying drawings and the following detailed description; throughout the drawings, the same or similar reference numerals denote the same or similar elements; it should be understood that the drawings are schematic, and the originals and elements are not necessarily drawn to scale; in the drawings:

[0016] Figure 1 This is a structural diagram of the left front side of this utility model;

[0017] Figure 2 This is an exploded structural view of the left front side of the main unit of this utility model;

[0018] Figure 3 This is an exploded structural view of the front right side of the main unit of this utility model. Detailed Implementation

[0019] Unless otherwise defined, the technical or scientific terms used in this utility model shall have the ordinary meaning understood by one of ordinary skill in the art to which this utility model pertains. The terms "first," "second," and similar terms used in this utility model do not indicate any order, quantity, or importance, but are merely used to distinguish different components. Terms such as "comprising" or "including" mean that the element or object preceding the word encompasses the elements or objects listed following the word and their equivalents, without excluding other elements or objects. Terms such as "connected" or "linked" are not limited to physical or mechanical connections, but can include electrical connections, whether direct or indirect. Terms such as "upper," "lower," "left," and "right" are used only to indicate relative positional relationships; when the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0020] To keep the following description of the embodiments of this utility model clear and concise, detailed descriptions of known functions and known components are omitted.

[0021] like Figures 1-3 As shown, a magnetic sheet feeding device for office magnetic particles includes a chassis 1 and two main units 2 disposed on the top of the chassis 1 and symmetrically distributed on the left and right. The main units 2 include a material guiding component 21 and a material distributing component 22 that cooperate with each other.

[0022] The material guiding assembly 21 includes a first bracket 211 fixed on the chassis 1, a material guiding groove 212 inclinedly fixed on the first bracket 211 and arranged with a lower front and higher rear, a pusher column 214 movably inserted in the material guiding groove 212 to have the function of inclined translation along the length direction of the material guiding groove 212 and distributed perpendicular to the material guiding groove 212, a rodless cylinder 213 inclinedly fixed at the bottom of the material guiding groove 212, and a stop block 215 fixed on the material guiding groove 212 and located in front of the front end of the material guiding groove 212. The moving direction of the moving end of the rodless cylinder 213 is parallel to the inclined direction of the material guiding groove 212, and the lower end of the pusher column 214 is fixed on the moving end of the rodless cylinder 213.

[0023] The material distribution assembly 22 includes a second bracket 221 fixed on the chassis 1, a material distribution cylinder 222 fixed on the second bracket 221, and a material distribution blade 223 that is inclined and movably connected to the second bracket 221 to have a left and right translation function and is located on the left or right side of the front end of the guide groove 212. The telescopic end of the material distribution cylinder 222 is arranged laterally to the left or right and fixed on the material distribution blade 223. The material distribution blade 223 is arranged parallel to the push column 214. A first inclined surface 2232 is formed on the end of the material distribution blade 223 near the guide groove 212.

[0024] A material receiving groove 2231 is provided on the lower side of the material dispensing blade 223, and a second inclined surface 2233 is formed on the inner wall of the material receiving groove 2231 near the material guide groove 212.

[0025] The main unit 2 also includes a pressing assembly 23 that cooperates with the material guiding assembly 21. The pressing assembly 23 includes a third bracket 231 fixed on the material guiding groove 212, a pressing cylinder 232 fixed on the third bracket 231, and a pressing block 233 fixed on the telescopic end of the pressing cylinder 232 and located above the front end of the material guiding groove 212. The telescopic end of the pressing cylinder 232 is set downward and perpendicular to the material guiding groove 212. The bottom outer wall of the pressing block 233 is parallel to the inclination direction of the material guiding groove 212. A pressing groove 2331 is opened on the bottom outer wall of the pressing block 233. The length of the pusher 214 and the depth of the pressing groove 2331 cooperate with each other.

[0026] The main unit 2 also includes a discharge assembly 24 that cooperates with the front end of the guide chute 212. The discharge assembly 24 includes a slide plate 241 that is inclinedly fixed to the front end of the guide chute 212, a material guide bar 242 that is inclinedly disposed in the middle of the interior of the slide plate 241, and a rotary cylinder 243 that is fixed to the bottom of the slide plate 241. The slide plate 241 is arranged with the front lower than the back. The material guide bar 242 is parallel to the inner bottom surface of the slide plate 241. The rotating end of the rotary cylinder 243 passes vertically upward through the bottom of the slide plate 241 and is fixed to the front end of the material guide bar 242.

[0027] The material guiding assembly 21 also includes a traction bar 217 movably connected to the outer wall of the material guiding trough 212 away from the material distributing assembly 22 to have the function of tilting and translating forward and backward, and an adjusting cylinder 216 fixed on the material guiding trough 212 and located above the traction bar 217. The traction bar 217 is arranged parallel to the tilting direction of the material guiding trough 212. The telescopic end of the adjusting cylinder 216 is tilted forward and arranged parallel to the moving direction of the traction bar 217 and fixed at the rear end of the traction bar 217. The stop block 215 is fixed at the front end of the traction bar 217.

[0028] The material distribution assembly 22 also includes a housing 224 fixed between the second bracket 221 and the guide trough 212, a movable strip 226 movably connected to the front side of the housing 224 to have left and right translation function, and a traction block 225 movably inserted into the front side of the housing 224. The telescopic end of the material distribution cylinder 222 extends laterally into the interior of the housing 224 and is fixed on the traction block 225. The front side of the traction block 225 is fixed on the movable strip 226.

[0029] A protective plate 227 is also fixed to the front side of the box 224, which is inclined and located in front of the material distribution blade 223.

[0030] Working principle:

[0031] The moving end of the rodless cylinder 213 in the drive guiding assembly 21 moves backward to the bottom, thereby driving the pusher column 214 to move synchronously. At the same time, the telescopic end of the pressing cylinder 232 in the pressing assembly 23 retracts inward to drive the pressing block 233 to move upward. The telescopic end of the pressing cylinder 232 is set downward and perpendicular to the guide groove 212. The bottom outer wall of the pressing block 233 is parallel to the inclination direction of the guide groove 212. The bottom outer wall of the pressing block 233 is provided with a pusher column 214 whose length matches the depth of the pressing groove 2331.

[0032] Then, the magnetic sheet strings that attract each other are tilted and placed into the guide groove 212 and positioned in front of the pusher column 214. Subsequently, the moving end of the rodless cylinder 213 is driven to move forward to drive the pusher column 214 forward, thereby pushing the magnetic sheet strings to move forward at an angle along the guide groove 212 until the foremost magnetic sheet string is blocked by the stop block 215. Then, the telescopic end of the pressing cylinder 232 is driven to extend outward to drive the pressing block 233 to move downward, thereby pressing the magnetic sheet strings with the help of the pressing groove 2331, and arranging the magnetic sheets below the pressing block 233 into a straight line.

[0033] Next, the telescopic end of the dispensing cylinder 222 in the drive dispensing assembly 22 extends outward to drive the dispensing blade 223 to move in the direction of the magnetic sheet string, thereby causing the first inclined surface 2232 to insert and pass between the first magnetic sheet and the second magnetic sheet counting from the front, thereby peeling the first magnetic sheet off the magnetic sheet string.

[0034] After being peeled off, the magnetic sheet falls into the slide plate 241 in the discharge assembly 24, and then slides forward along the slope of the slide plate 241 to achieve automatic discharge. Before this, the rotating end of the rotary cylinder 243 needs to be driven to rotate clockwise, which in turn drives the feeding bar 242 to swing to the right inside the slide plate 241 until the rear end of the feeding bar 242 abuts against the inner right side wall of the slide plate 241, thereby causing the magnetic sheet to slide to the right.

[0035] When the material container 2231 moves to the front of the magnetic sheet string, the pusher column 214 continues to move forward with the help of the rodless cylinder 213 to push the magnetic sheet string forward, so that the second magnetic sheet from the front passes through the material container 2231 and adheres to the rear outer wall of the stop block 215. At this time, the second inclined surface 2233 is located on the left or right side of the magnetic sheet string. Then, the telescopic end of the dispensing cylinder 222 can be driven to retract inward to drive the dispensing blade 223 to move in the opposite direction, so that the second inclined surface 2233 inserts and passes between the second and third magnetic sheets from the front, thereby peeling the second magnetic sheet off the magnetic sheet string.

[0036] After being peeled off, the magnetic sheet will fall into the slide plate 241 in the discharge assembly 24. Similarly, before that, the rotating end of the rotary cylinder 243 needs to be driven to rotate counterclockwise, which will cause the feeding bar 242 to swing to the left inside the slide plate 241 until the rear end of the feeding bar 242 abuts against the left inner wall of the slide plate 241, thereby causing the magnetic sheet to slide to the left. This will separate the falling magnetic sheets from each other and prevent them from adsorbing again.

[0037] This invention can automatically separate and output multiple magnetic sheets that are attracted to each other in a string to supply the next process, without the need for manual operation. This greatly simplifies the material supply process, effectively improves production efficiency, and significantly reduces labor costs.

[0038] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it; although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. A magnetic sheet feeding device for office magnetic particles, characterized in that, It includes a chassis and two main units located on the top of the chassis and symmetrically distributed on the left and right sides. The main units include material guiding components and material distributing components that cooperate with each other. The material guiding assembly includes a first bracket fixed to the chassis, a material guiding trough tilted and fixed to the first bracket with a lower front and higher rear, a pusher column movably inserted in the material guiding trough to have the function of tilting and translating along the length of the material guiding trough and distributed perpendicular to the material guiding trough, a rodless cylinder tilted and fixed to the bottom of the material guiding trough, and a stop block fixed on the material guiding trough and located in front of the front end of the material guiding trough. The moving direction of the moving end of the rodless cylinder is parallel to the tilting direction of the material guiding trough, and the lower end of the pusher column is fixed to the moving end of the rodless cylinder. The material distribution assembly includes a second bracket fixed to the chassis, a material distribution cylinder fixed to the second bracket, and a material distribution blade that is inclined and movably connected to the second bracket to have a left and right translation function and is located on the left or right side of the front end of the guide groove. The telescopic end of the material distribution cylinder is arranged laterally to the left or right and fixed to the material distribution blade. The material distribution blade is arranged parallel to the push column. A first inclined surface is formed at the end of the material distribution blade near the guide groove. A material receiving groove is provided on the lower side of the material dispensing blade, and a second inclined surface is formed on the inner wall of the material receiving groove near the material guide groove.

2. The magnetic sheet feeding device for office magnetic particles according to claim 1, characterized in that, The main unit also includes a pressing component that cooperates with the guiding component. The pressing component includes a third bracket fixed on the guiding groove, a pressing cylinder fixed on the third bracket, and a pressing block fixed on the telescopic end of the pressing cylinder and located above the front end of the guiding groove. The telescopic end of the pressing cylinder is downward and perpendicular to the guiding groove. The bottom outer wall of the pressing block is parallel to the inclined direction of the guiding groove. A pressing groove is formed on the bottom outer wall of the pressing block. The length of the pushing column is matched with the depth of the pressing groove.

3. The magnetic sheet feeding device for office magnetic particles according to claim 1, characterized in that, The main unit also includes a discharge assembly that cooperates with the front end of the guide chute. The discharge assembly includes a slide plate that is inclinedly fixed to the front end of the guide chute, a material-pushing bar that is inclinedly disposed in the middle of the inside of the slide plate, and a rotary cylinder fixed to the bottom of the slide plate. The slide plate is arranged with the front lower than the back. The material-pushing bar is parallel to the inner bottom surface of the slide plate. The rotating end of the rotary cylinder passes vertically upward through the bottom of the slide plate and is fixed to the front end of the material-pushing bar.

4. The magnetic sheet feeding device for office magnetic particles according to claim 1, characterized in that, The material guiding assembly also includes a traction bar movably connected to the outer wall of the material guiding trough on the side away from the material distributing assembly to have a forward and backward tilting and translation function, and an adjusting cylinder fixed on the material guiding trough and located above the traction bar. The traction bar is arranged parallel to the tilting direction of the material guiding trough. The telescopic end of the adjusting cylinder is tilted forward and arranged parallel to the moving direction of the traction bar and fixed at the rear end of the traction bar. The stop block is fixed at the front end of the traction bar.

5. The magnetic sheet feeding device for office magnetic particles according to claim 1, characterized in that, The material distribution assembly also includes a box fixed between the second support and the guide trough, a movable strip connected to the front of the box to have left and right translation function, and a traction block movably inserted inside the front of the box. The telescopic end of the material distribution cylinder extends laterally into the interior of the box and is fixed on the traction block. The front of the traction block is fixed on the movable strip.

6. The magnetic sheet feeding device for office magnetic particles according to claim 5, characterized in that, The front side of the box is also fixed with a protective plate that is inclined in front of the dispensing blade.