High-performance array magnet feeding cabinet
By designing a high-performance array magnet feeding cabinet, using components such as brackets, push plates, guide rods, slide chutes, cylinders and push blocks, the problem of the existing technology being unable to deal with the adsorption magnets is solved, and the stable separation and feeding of magnets is achieved, and the production efficiency is improved.
Patent Information
- Application Number
- CN202422096148.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-28
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-28
AI Technical Summary
The existing magnet feeding cabinet cannot effectively handle magnets that are adsorbed into a whole, and cannot perform separation operations.
A high-performance array magnet feeding cabinet is designed, using components such as brackets, push plates, guide rods, slide chutes, cylinders and push blocks. Through the cooperation of push plates and push blocks, the adsorbed magnets can be separated and fed.
The stable separation and feeding of adsorbed magnets is achieved, production efficiency is improved, the accurate delivery of magnets is ensured and manual intervention is reduced.
Smart Images

Figure CN222989162U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of magnet production, in particular to a high-performance array magnet feeding cabinet. Background Art
[0002] Magnet feeding cabinets are usually used to store and feed magnets. After retrieval, the patent with the Chinese patent publication number CN107282469B discloses a magnet blanking mechanism and its magnet automatic feeding and detecting equipment. Although the device positions the magnets through two adjacent magnet blanking placement jigs on the magnet blanking conveyor chain during use, and drives the magnet blanking conveyor chain to rotate through the magnet blanking driving part to convey the magnets to the magnet dialing device for dialing operation, the device can only operate on the already separated magnets during use and cannot separate the magnets adsorbed as a whole. Content of the Utility Model
[0003] In view of the deficiencies of the prior art, the utility model provides a high-performance array magnet feeding cabinet, which solves the problems raised in the background art.
[0004] The solution of the utility model to the above technical problems is as follows:
[0005] A high-performance array magnet feeding cabinet includes a bracket. A receiving groove is formed in the bracket. A push plate is slidably installed in the receiving groove of the bracket. Magnets are placed in the receiving groove of the bracket, and the magnets are pushed out of the material through the push plate.
[0006] Chute grooves are formed through both sides of the bracket at the position of the receiving groove. A guide rod is fixed to the back surface of the push plate through a fixed seat. A fixed column is provided at one end of the bracket. The guide rod and the fixed column are connected through a tension spring.
[0007] A gland is installed at the top end of one end of the bracket close to the fixed column, and a fixing plate is provided on the lower surface of the end of the bracket where the gland is installed. A cylinder is installed on the fixing plate. A push block is installed at the output end of the cylinder, and a groove is formed in the push block.
[0008] Based on the above technical solutions, the utility model can be further improved as follows.
[0009] Further, the push plate is limited to slide in the receiving groove through the guide rod and the chute groove.
[0010] The beneficial effect of adopting the above further solution is:
[0011] The cooperation of the guide rod and the chute groove provides precise guidance for the push plate, enabling the push plate to move along a predetermined path during the process of pushing the magnets, avoiding deviation or shaking, and thus ensuring the stability of the pushing.
[0012] Furthermore, the gland is connected and fixed to the bracket through a latch.
[0013] The beneficial effect of adopting the above further solution is:
[0014] As a connecting part, the latch can ensure a firm connection between the gland and the bracket. Compared with other connection methods such as screw fixation or snap connection, this connection method has stronger stability and can effectively prevent loosening or falling off caused by vibration or impact during the feeding process.
[0015] Furthermore, the size of the groove is adapted to the magnet, and the groove is used to receive the magnet pushed out from the receiving groove.
[0016] The beneficial effect of adopting the above further solution is:
[0017] Since the size of the groove is adapted to the magnet, when the magnet is pushed to the position of the groove, precise docking can be achieved. This docking method reduces the shaking and misalignment of the magnet during the receiving process, thereby enhancing the stability of the feeding.
[0018] Furthermore, the push block is lifted by a cylinder, and then the mutually adsorbed magnets are separated.
[0019] The beneficial effect of adopting the above further solution is:
[0020] Since the thrust of the cylinder can be precisely controlled by adjusting parameters such as air pressure, the push block can accurately lift and separate the mutually adsorbed magnets, avoiding problems such as magnet stacking or damage caused by incomplete separation. Moreover, the push block driven by the cylinder can achieve fast and continuous separation actions, enabling the feeding cabinet to continuously carry out the feeding and separation work of the magnets, thereby improving the production efficiency.
[0021] Furthermore, the magnets in the receiving groove are limited by pressing with the gland, which is convenient for the push block to separate the pushed-out magnets.
[0022] The beneficial effect of adopting the above further solution is:
[0023] The gland presses and limits the magnets in the receiving groove, which can ensure that the magnets will not shift due to vibration or external interference during the separation process. The stable position of the magnets helps the push block to more accurately locate and contact the magnets during the pushing process, thus smoothly achieving separation.
[0024] Furthermore, the push plate is powered by a tension spring between the guide rod and the fixed column to push the magnets in the receiving groove forward.
[0025] The beneficial effect of adopting the above further solution is:
[0026] The tension spring serves as a power source and can continuously provide power to the push plate in the stretched state, ensuring that the push plate can stably push the magnet forward. This power source does not require an external power supply or a complex drive mechanism, so it has higher reliability and stability. The spring material usually has high elasticity and durability, can maintain stable performance for a long time, and is not easily damaged. This helps to extend the service life of the feeding cabinet and reduce the downtime caused by power source failures.
[0027] The utility model provides a high-performance array magnet feeding cabinet. It has the following beneficial effects:
[0028] Through the design of the tension spring and the guide rod, the push plate can automatically push the magnet in the receiving groove forward without continuous manual operation, improving work efficiency. And the air cylinder drives the push block to rise to separate the mutually attracted magnets, further reducing manual intervention and realizing automatic separation.
[0029] The push plate is limited to slide in the receiving groove through the guide rod and the sliding groove, ensuring the stability and accuracy of the pushing, and avoiding misalignment or damage of the magnet during the pushing process. The design of the gland not only limits the magnet but also facilitates the push block to separate the pushed-out magnet, improving the operation convenience.
[0030] The above description is only an overview of the technical solution of the utility model. In order to be able to understand the technical means of the utility model more clearly and implement it according to the content of the specification, the following takes the preferred embodiments of the utility model and combines with the drawings to describe in detail as follows. The specific implementation manner of the utility model is given in detail by the following embodiments and their drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The drawings described herein are used to provide a further understanding of the utility model, form a part of this application, and the schematic embodiments of the utility model and their descriptions are used to explain the utility model and do not constitute an improper limitation of the utility model.
[0032] In the drawings:
[0033] Figure 1 is the left axial side external view schematic diagram of the utility model;
[0034] Figure 2 is the right axial side external view schematic diagram of the utility model;
[0035] Figure 3 is the feeding state schematic diagram of the utility model;
[0036] Figure 4 is the discharging state schematic diagram of the utility model.
[0037] In the drawings, the list of components represented by each reference numeral is as follows:
[0038] 1. Slide groove; 2. Bracket; 3. Receiving groove; 4. Push plate; 5. Pressure cover; 6. Push block; 7. Lock; 8. Cylinder; 9. Fixed plate; 10. Fixed column; 11. Tension spring; 12. Guide rod; 13. Fixed seat; 14. Magnet; 15. Groove. Detailed implementation mode
[0039] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the protection scope of the present invention.
[0040] Please refer to Figures 1 to 4 As shown, the embodiment provided by the present invention:
[0041] Embodiment 1
[0042] A high-performance array magnet feeding cabinet includes a bracket 2. A receiving groove 3 is opened in the bracket 2. A push plate 4 is slidably installed in the receiving groove 3 of the bracket 2. A magnet 14 is placed in the receiving groove 3 of the bracket 2. The magnet 14 is pushed out of the material through the push plate 4.
[0043] Embodiment 2
[0044] As Figures 1 to 4 As shown, a high-performance array magnet feeding cabinet proposed by the present invention. Compared with Embodiment 1, this embodiment further includes: Slide grooves 1 are penetrated and opened on both sides of the receiving groove 3 of the bracket 2. A guide rod 12 is fixed to the back of the push plate 4 through a fixed seat 13. The push plate 4 is limited and slides in the receiving groove 3 through the guide rod 12 and the slide groove 1. The cooperation of the guide rod 12 and the slide groove 1 provides precise guidance for the push plate 4, so that the push plate 4 can move along a predetermined path during the process of pushing the magnet 14, avoiding deviation or shaking, thereby ensuring the stability of the push. One end of the bracket 2 is provided with a fixed column 10. The guide rod 12 is connected to the fixed column 10 through a tension spring 11. The push plate 4 is powered by the tension spring 11 between the guide rod 12 and the fixed column 10 to push the magnet 14 in the receiving groove 3 forward. As a power source, the tension spring 11 can continuously provide power for the push plate 4 in the stretched state, ensuring that the push plate 4 can stably push the magnet 14 forward. This power source does not require an external power source or a complex drive mechanism, so it has higher reliability and stability. Spring materials usually have high elasticity and durability, and can maintain stable performance for a long time and are not easily damaged. This helps to extend the service life of the feeding cabinet and reduce the downtime caused by power source failures.
[0045] Embodiment 3
[0046] As Figures 1 to 4 shown, a high-performance array magnet feeding cabinet proposed by the present utility model, compared with the first embodiment, this embodiment further includes: a gland 5 is installed at the top end of one end of the bracket 2 close to the fixed column 10, and the gland 5 is fixedly connected to the bracket 2 through a buckle 7. The buckle 7, as a connecting member, can ensure a firm connection between the gland 5 and the bracket 2. This connection method has stronger stability compared with other methods such as screw fixation or snap connection, and can effectively prevent loosening or falling off caused by vibration or impact during the feeding process. The magnet 14 in the receiving groove 3 is pressed and limited by the gland 5, which is convenient for the pushing block 6 to separate the pushed-out magnet 14. The gland 5 presses and limits the magnet 14 in the receiving groove 3, which can ensure that the magnet 14 will not shift due to vibration or external interference during the separation process. The stable position of the magnet 14 helps the pushing block 6 to more accurately locate and contact the magnet 14 during the pushing process, so as to smoothly achieve separation. And a fixing plate 9 is provided on the lower surface of the end of the bracket 2 where the gland 5 is installed, and a cylinder 8 is installed on the fixing plate 9. The output end of the cylinder 8 is installed with a pushing block 6, and the pushing block 6 is lifted by the cylinder 8, and then the mutually adsorbed magnets 14 are separated. Since the thrust of the cylinder 8 can be precisely controlled by adjusting parameters such as air pressure, the pushing block 6 can accurately lift and separate the mutually adsorbed magnets 14, avoiding problems such as stacking or damage of the magnets 14 caused by incomplete separation. And the pushing block 6 driven by the cylinder 8 can achieve fast and continuous separation actions, enabling the feeding cabinet to continuously carry out the feeding and separation work of the magnets 14, improving production efficiency. A groove 15 is provided on the pushing block 6, and the size of the groove 15 is adapted to the magnet 14. The groove 15 is used to receive the magnet 14 pushed out from the receiving groove 3. Since the size of the groove 15 is adapted to the magnet 14, when the magnet 14 is pushed to the position of the groove 15, precise docking can be achieved. This docking method reduces the shaking and misalignment of the magnet 14 during the receiving process, thereby enhancing the stability of feeding.
[0047] Working principle:
[0048] The magnets 14 are placed in the receiving grooves 3 in the bracket 2, and these magnets 14 are mutually adsorbed due to magnetism. A tension spring 11 is connected between a guide rod 12 fixed to the back of the push plate 4 through a fixed seat 13 and a fixed column 10 at one end of the bracket 2. The tension spring 11 provides power for the push plate 4 to push the magnet 14 in the receiving groove 3 forward. The push plate 4 is limited and slides in the receiving groove 3 through the guide rod 12 and the sliding groove 1 to ensure the stability and accuracy of the pushing. The design of the guide rod 12 and the sliding groove 1 prevents the push plate 4 from shifting or shaking during the pushing process.
[0049] The push block 6 is provided with a groove 15 that matches the size of the magnet 14 and is used to receive the magnet 14 pushed out from the receiving groove 3. When the push plate 4 pushes the magnet 14 to a certain position, the cylinder 8 installed at one end of the bracket 2 starts to work. The push block 6 is installed at the output end of the cylinder 8. The push block 6 separates the magnets 14 that are attracted to each other through the pushing action of the cylinder 8, and the groove 15 can ensure that the magnet 14 can be stably placed on the push block 6 after separation, which is convenient for subsequent use or further processing.
[0050] The above shows and describes the basic principles and main features of the utility model and the advantages of the utility model. For those skilled in the art, it is obvious that the utility model is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic features of the utility model. Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the utility model is defined by the attached claims rather than the above description, and it is intended to include all changes within the meaning and scope of the equivalent elements of the claims. Any figure mark in the claims should not be regarded as limiting the claims involved.
[0051] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
Claims
1. A high-performance array magnet feeding cabinet, comprising a bracket (2), a receiving groove (3) is provided in the bracket (2), a push plate (4) is slidably installed in the receiving groove (3) of the bracket (2), a magnet (14) is placed in the receiving groove (3) of the bracket (2), and the magnet (14) is pushed to discharge the material through the push plate (4), characterized in that: The bracket (2) is provided with sliding grooves (1) on both sides of the receiving groove (3); a guide rod (12) is fixed to the back of the push plate (4) through a fixing seat (13); a fixing column (10) is provided at one end of the bracket (2); and the guide rod (12) and the fixing column (10) are connected by a tension spring (11); A pressure cover (5) is installed at the top end of the bracket (2) close to the fixed column (10), and a fixing plate (9) is provided on the lower surface of the end of the bracket (2) on which the pressure cover (5) is installed, a cylinder (8) is installed on the fixing plate (9), a push block (6) is installed at the output end of the cylinder (8), and a groove (15) is provided on the push block (6).
2. A high performance array magnet feeding cabinet according to claim 1, characterized in that: The push plate (4) slides within the accommodating groove (3) in a limited manner via the guide rod (12) and the slide groove (1).
3. According to the high performance array magnet feeding cabinet of claim 1, it is characterized by: The pressure cover (5) is connected and fixed to the bracket (2) via a lock buckle (7).
4. According to the high-performance array magnet feeding cabinet of claim 1, it is characterized by: The size of the groove (15) is adapted to the magnet (14), and the groove (15) is used to receive the magnet (14) pushed out from the receiving groove (3).
5. According to claim 1, a high-performance array magnet feeding cabinet is characterized in that: The push block (6) is lifted up by the cylinder (8), thereby separating the magnets (14) that are attracted to each other.
6. A high performance array magnet feeding cabinet according to claim 4, characterized in that: The magnet (14) in the receiving groove (3) is limited by pressing the pressing cover (5), so that the pushing block (6) can separate the pushed-out magnet (14).
7. According to claim 2, a high-performance array magnet feeding cabinet is characterized in that: The push plate (4) is powered by a tension spring (11) between a guide rod (12) and a fixed column (10) to push the magnet (14) in the receiving groove (3) forward.
Citation Information
Patent Citations
Magnet feeding mechanism and its automatic magnet feeding and testing equipment
CN107282469B
Cited By
High-performance array magnet automatic feeding device
CN224512489U