Polygonal splicable magnet
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN HONGLIN MAGNETIC IND CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-06-12
AI Technical Summary
The existing magnets are a single piece, which cannot be spliced in multiple directions, making maintenance and repair inconvenient and replacement costly.
Design a polygonal, modular magnet composed of hexagonal magnetic blocks. Multi-directional splicing is achieved through snap-fit blocks and slots of trapezoidal N-pole blocks and S-pole blocks. Weak magnetic blocks and trapezoidal structures are used for snap-fitting. A wear-resistant layer is provided for easy disassembly and maintenance.
It enables multi-directional splicing of magnets, which facilitates maintenance and repair, reduces replacement costs, and improves practicality.
Smart Images

Figure CN224355062U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of magnet technology, specifically to a polygonal, connectable magnet. Background Technology
[0002] Magnets are substances or materials that can generate magnetic fields. Due to their unique magnetic properties, they are widely used in modern industry and electronics. However, existing magnets are generally of a single, integrated structure, which makes multi-directional splicing impossible. This hinders later maintenance and repair, and also results in high replacement costs, thus reducing the practicality of magnets to some extent. Utility Model Content
[0003] The purpose of this invention is to overcome the shortcomings of the prior art and provide a polygonal, splicable magnet that has the advantage of multi-directional splicing, which is beneficial for later maintenance and repair, reduces replacement costs, and greatly improves the practicality of the magnet.
[0004] The technical solution of this utility model is as follows:
[0005] A polygonal modular magnet is composed of hexagonal magnetic blocks A, B, C, D, E, F, and G joined together.
[0006] The hexagonal magnetic blocks A, B, C, D, E, F, and G are all divided into trapezoidal N-pole blocks and trapezoidal S-pole blocks according to the center lines of the upper and lower diagonals. The trapezoidal N-pole block has a first locking block and a first locking slot spaced apart on one side, and the trapezoidal S-pole block has a second locking block and a second locking slot spaced apart on one side.
[0007] The hexagonal magnetic block A is located in the middle, and the trapezoidal N pole block and trapezoidal S pole block of the hexagonal magnetic block A are arranged on the left and right sides;
[0008] The trapezoidal S pole of the hexagonal magnetic block B is engaged with the first slot and the first connecting block of the trapezoidal N pole of the hexagonal magnetic block A through the second connecting block and the second slot.
[0009] The trapezoidal S pole of the hexagonal magnetic block C is connected to the first slot and the first connecting block of the trapezoidal N pole of the hexagonal magnetic block A and the first slot and the first connecting block of the trapezoidal N pole of the hexagonal magnetic block B through the second connecting block and the second slot, respectively.
[0010] The trapezoidal S pole of the hexagonal magnetic block D is engaged with the first slot and the first engagement block of the trapezoidal N pole of the hexagonal magnetic block A through the second engagement block and the second slot. The first engagement block and the first slot of the trapezoidal N pole of the hexagonal magnetic block D are engaged with the second slot and the second engagement block of the trapezoidal S pole of the hexagonal magnetic block C.
[0011] The trapezoidal N pole of the hexagonal magnetic block E is engaged with the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block A and the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block D through the first connecting block and the first connecting slot, respectively.
[0012] The trapezoidal N pole of the hexagonal magnetic block F is engaged with the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block A and the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block E through the first connecting block and the first connecting slot, respectively.
[0013] The trapezoidal N pole of the hexagonal magnetic block G is engaged with the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block A and the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block B through the first connecting block and the first slot, respectively. The trapezoidal S pole of the hexagonal magnetic block G is engaged with the first slot and first connecting block of the trapezoidal N pole of the hexagonal magnetic block F through the second connecting block and the second slot.
[0014] Furthermore, the first and second contact blocks are weak magnetic blocks.
[0015] Furthermore, the first latching block and the second latching slot are corresponding trapezoidal structures, and the second latching block and the first latching slot are corresponding trapezoidal structures.
[0016] Furthermore, the outer end faces of the first and second snap-fit blocks are provided with wear-resistant layers.
[0017] Furthermore, the trapezoidal N-pole and trapezoidal S-pole of the hexagonal magnetic blocks A, B, C, D, E, F, and G are of different colors.
[0018] Compared with the prior art, the beneficial effects of this utility model are as follows: The polygonal splicable magnet provided by this utility model is composed of hexagonal magnetic blocks A, B, C, D, E, F, and G spliced together. When one part is worn or corroded, only that part of the magnetic block needs to be replaced, which greatly reduces the replacement cost and is conducive to maintenance and repair. This polygonal splicable magnet has strong practicality due to its multi-directional splicing advantage. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a schematic diagram of a polygonal, connectable magnet provided by this utility model. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0022] To illustrate the technical solution described in this utility model, specific embodiments are described below.
[0023] Example
[0024] Please see Figure 1This embodiment provides a polygonal modular magnet, which is composed of hexagonal magnetic blocks A, B, C, D, E, F, and G. Hexagonal magnetic blocks A, B, C, D, E, F, and G are each divided into trapezoidal N-pole blocks and trapezoidal S-pole blocks according to their diagonal center lines. A first locking block 1 and a first locking slot 2 are spaced apart on one side of the trapezoidal N-pole block, and a second locking block 3 and a second locking slot 4 are spaced apart on one side of the trapezoidal S-pole block. During assembly, hexagonal magnetic block A is located in the center, with its trapezoidal N-pole and trapezoidal S-pole positioned on either side. The trapezoidal S-pole of hexagonal magnetic block B is engaged with the first slot 2 and the first engaging block 1 of the trapezoidal N-pole of hexagonal magnetic block A via the second engaging block 3 and the second engaging slot 4. The trapezoidal S-pole of hexagonal magnetic block C is engaged with the first slot 2 and the first engaging block 1 of the trapezoidal N-pole of hexagonal magnetic block A via the second engaging block 3 and the second engaging slot 4, respectively. The trapezoidal N-pole of hexagonal magnetic block B is engaged with the first slot 2 and the first connecting block 1; the trapezoidal S-pole of hexagonal magnetic block D is engaged with the first slot 2 and the first connecting block 1 of the trapezoidal N-pole of hexagonal magnetic block A via the second connecting block 3 and the second slot 4; the first connecting block 1 and the first slot 2 of the trapezoidal N-pole of hexagonal magnetic block D are engaged with the second slot 4 and the second connecting block 3 of the trapezoidal S-pole of hexagonal magnetic block C; the trapezoidal N-pole of hexagonal magnetic block E... The pole block is engaged with the second slot 4 and second connecting block 3 of the trapezoidal S pole block of hexagonal magnetic block A and the second slot 4 and second connecting block 3 of the trapezoidal S pole block of hexagonal magnetic block D via the first connecting block 1 and the first slot 2, respectively; the trapezoidal N pole block of hexagonal magnetic block F is engaged with the second slot 4 and second connecting block 3 of the trapezoidal S pole block of hexagonal magnetic block A and the second slot 4 of the trapezoidal S pole block of hexagonal magnetic block E via the first connecting block 1 and the first slot 2, respectively. The trapezoidal N-pole of the hexagonal magnetic block G is connected to the second slot 4 and the second slot 3 of the trapezoidal S-pole of the hexagonal magnetic block A and the second slot 4 and the second slot 3 of the trapezoidal S-pole of the hexagonal magnetic block B respectively through the first slot 1 and the first slot 2. The trapezoidal S-pole of the hexagonal magnetic block G is connected to the first slot 2 and the first slot 1 of the trapezoidal N-pole of the hexagonal magnetic block F through the second slot 3 and the second slot 4.
[0025] Preferably, the first latching block 1 and the second latching block 3 are weak magnetic blocks. Since the weak magnetic material will not significantly interfere with the overall magnetism of the magnet, and will not be difficult to separate due to strong magnetic attraction during disassembly, it is convenient to disassemble, maintain and replace the magnet in the later stage, thereby reducing maintenance costs and difficulties.
[0026] Preferably, the first snap-fit block 1 and the second snap-fit slot 4 are corresponding trapezoidal structures, and the second snap-fit block 3 and the first snap-fit slot 2 are corresponding trapezoidal structures. The trapezoidal structure can provide a certain guiding effect during installation, which facilitates quick alignment and snap-fit. In addition, the trapezoidal structure has good self-locking performance when snap-fitting, thereby improving the stability of the connection.
[0027] Preferably, the outer end faces of the first snap-fit block 1 and the second snap-fit block 3 are provided with a wear-resistant layer, so that the magnetic blocks are not easily worn during snap-fit.
[0028] Preferably, the trapezoidal N-pole and trapezoidal S-pole of the hexagonal magnetic blocks A, B, C, D, E, F, and G are different colors, which facilitates the splicing of the magnetic blocks.
[0029] This polygonal, modular magnet has the advantage of multi-directional splicing. When one part is worn or corroded, only the magnetic block of that part needs to be replaced, which greatly reduces the replacement cost, facilitates maintenance and repair, and is highly practical.
[0030] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A polygonal, connectable magnet, characterized in that: The polygonal, modular magnet is composed of hexagonal magnetic blocks A, B, C, D, E, F, and G joined together. The hexagonal magnetic blocks A, B, C, D, E, F, and G are all divided into trapezoidal N-pole blocks and trapezoidal S-pole blocks according to the center lines of the upper and lower diagonals. The trapezoidal N-pole block has a first locking block and a first locking slot spaced apart on one side, and the trapezoidal S-pole block has a second locking block and a second locking slot spaced apart on one side. The hexagonal magnetic block A is located in the middle, and the trapezoidal N pole block and trapezoidal S pole block of the hexagonal magnetic block A are arranged on the left and right sides; The trapezoidal S pole of the hexagonal magnetic block B is engaged with the first slot and the first connecting block of the trapezoidal N pole of the hexagonal magnetic block A through the second connecting block and the second slot. The trapezoidal S pole of the hexagonal magnetic block C is connected to the first slot and the first connecting block of the trapezoidal N pole of the hexagonal magnetic block A and the first slot and the first connecting block of the trapezoidal N pole of the hexagonal magnetic block B through the second connecting block and the second slot, respectively. The trapezoidal S pole of the hexagonal magnetic block D is engaged with the first slot and the first engagement block of the trapezoidal N pole of the hexagonal magnetic block A through the second engagement block and the second slot. The first engagement block and the first slot of the trapezoidal N pole of the hexagonal magnetic block D are engaged with the second slot and the second engagement block of the trapezoidal S pole of the hexagonal magnetic block C. The trapezoidal N pole of the hexagonal magnetic block E is engaged with the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block A and the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block D through the first connecting block and the first connecting slot, respectively. The trapezoidal N pole of the hexagonal magnetic block F is engaged with the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block A and the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block E through the first connecting block and the first connecting slot, respectively. The trapezoidal N pole of the hexagonal magnetic block G is engaged with the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block A and the second slot and second connecting block of the trapezoidal S pole of the hexagonal magnetic block B through the first connecting block and the first slot, respectively. The trapezoidal S pole of the hexagonal magnetic block G is engaged with the first slot and first connecting block of the trapezoidal N pole of the hexagonal magnetic block F through the second connecting block and the second slot.
2. The polygonal, connectable magnet according to claim 1, characterized in that: The first and second contact blocks are weak magnetic blocks.
3. A polygonal, connectable magnet according to claim 1, characterized in that: The first snap-fit block and the second snap-fit slot are corresponding trapezoidal structures, and the second snap-fit block and the first snap-fit slot are corresponding trapezoidal structures.
4. A polygonal, connectable magnet according to claim 1, characterized in that: The outer end faces of the first and second snap-fit blocks are provided with wear-resistant layers.
5. A polygonal, connectable magnet according to claim 1, characterized in that: The trapezoidal N-pole and trapezoidal S-pole of the hexagonal magnetic blocks A, B, C, D, E, F, and G are different colors.