High-strength magnetic shoe structure
By precisely fitting and bolting the mounting shell, cover plate, pressure plate, and connecting block, combined with the heat dissipation components and reinforcing ribs of the magnetic tile body, the problems of magnetic tile loosening and heat accumulation are solved, achieving the stability and efficient heat dissipation of the magnetic tile, and improving mechanical performance and service life.
Patent Information
- Application Number
- CN202520466710.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2035-03-18
AI Technical Summary
In existing technologies, magnetic tiles are prone to loosening or falling off due to external impacts or long-term use, and their magnetic properties decrease due to heat accumulation during operation, affecting equipment performance.
The magnetic tile body features a precise fit of mounting shell, cover plate, pressure plate and connecting block, combined with bolt connection. The body is equipped with heat dissipation components and reinforcing ribs, and the outer surface is equipped with wear-resistant layer and corrosion-resistant coating, forming a tight and stable structural design.
It improves the stability and reliability of the magnetic tiles, ensuring they do not loosen under complex working conditions, achieving efficient heat dissipation, extending service life and enhancing mechanical performance.
Smart Images

Figure CN223912326U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of magnetic shoe, specifically, relate to a high strength magnetic shoe structure. BACKGROUND
[0002] Magnetic shoe is widely used in the equipment such as motor, and its performance directly influences the operating efficiency and stability of equipment.
[0003] In prior art, the magnetic shoe is usually fixed by adhesive, and in the process of being impacted by external force or long-term use, the magnetic shoe is prone to displacement, loosening or even falling off, and a large amount of heat is generated in the working process of the magnetic shoe due to the action of current, if the heat cannot be dissipated in time and effectively, the temperature of the magnetic shoe continues to rise, which will cause its magnetic performance to decline, and further affect the overall performance of the equipment.
[0004] Therefore, we make improvement on it, and propose a high strength magnetic shoe structure. CONTENT OF UTILITY MODEL
[0005] The utility model aims at: in prior art, the magnetic shoe is usually fixed by adhesive, and in the process of being impacted by external force or long-term use, the magnetic shoe is prone to displacement, loosening or even falling off, and a large amount of heat is generated in the working process of the magnetic shoe due to the action of current, if the heat cannot be dissipated in time and effectively, the temperature of the magnetic shoe continues to rise, which will cause its magnetic performance to decline, and further affect the overall performance of the equipment.
[0006] In order to realize the above-mentioned invention purpose, the utility model provides the following technical scheme:
[0007] A high strength magnetic shoe structure is provided to improve the above-mentioned problems.
[0008] The application is as follows:
[0009] It comprises: a mounting shell, a slot and a matching groove are arranged on the mounting shell; a cover plate and a pressing plate, the cover plate and the pressing plate are arranged on the top of the mounting shell, and the pressing plate is above the cover plate; a connecting block, the connecting block is arranged in the slot, and the cover plate and the pressing plate are fixedly connected with the connecting block through bolts; a magnetic shoe body, the magnetic shoe body is arranged inside the mounting shell and between the mounting shell and the connecting block, a heat dissipation assembly is arranged in the magnetic shoe body, the matching groove is matched with the heat dissipation assembly, and the outer surface of the magnetic shoe body is sequentially provided with a wear-resistant layer, a corrosion-resistant coating and a reinforcing layer from outside to inside.
[0010] Through the accurate cooperation of the mounting shell, the cover plate, the pressing plate and the connecting block and the bolt connection mode, and in combination with the groove cooperation of the magnetic shoe body and the connecting block, the whole magnetic shoe structure is connected closely and stably, and the stable structure design can effectively avoid loosening of each component under complex working conditions such as vibration and impact, ensure reliable operation of the magnetic shoe, and improve the stability and reliability of the magnetic shoe in actual use.
[0011] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, the cover plate is provided with a first threaded hole, the pressing plate is provided with a second threaded hole, and the connecting block is provided with a third threaded hole; the mounting shell, the cover plate and the pressing plate are fixedly connected through the connecting block and the bolts cooperating with the first threaded hole, the second threaded hole and the third threaded hole; and the magnetic tile body is arranged in the space formed by the mounting shell, the cover plate and the connecting block.
[0012] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, a groove matched with the connecting block is formed in the magnetic tile body; a heat dissipation channel is formed in the magnetic tile body; a through groove in communication with the heat dissipation channel is formed in one side of the magnetic tile body; and the heat dissipation channel and the through groove are matched with the heat dissipation assembly.
[0013] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, a plurality of reinforcing ribs are arranged in the magnetic tile body; the reinforcing ribs are arranged in a longitudinal and transverse staggered manner; and the reinforcing ribs are integrally formed with the magnetic tile body.
[0014] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, the heat dissipation assembly comprises a heat conduction block; the heat conduction block is arranged in the heat dissipation channel; heat dissipation fins are arranged on the heat conduction block; and the heat dissipation fins are in contact with the matching groove through the through groove.
[0015] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, the reinforcing layer comprises a fiber reinforced resin layer and a metal mesh layer; the fiber reinforced resin layer is attached to the outer surface of the magnetic tile body; and the metal mesh layer is arranged on the outer side of the fiber reinforced resin layer.
[0016] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, the metal mesh layer is a high-strength alloy steel mesh in a diamond woven structure.
[0017] As a preferred embodiment of the high-strength magnetic tile structure provided by the utility model, the fiber reinforced resin layer is composed of glass fibers and phenolic resin.
[0018] Compared with the prior art, the utility model has the beneficial effects that:
[0019] 1、The mounting shell, the cover plate, the pressing plate and the connecting block are accurately matched and connected through bolts, and the groove of the magnetic tile body is matched with the connecting block, so that the whole magnetic tile structure is tightly and stably connected; the stable structure design can effectively prevent the loosening of the components under complex working conditions such as vibration and impact, ensure the reliable operation of the magnetic tile, and improve the stability and reliability of the magnetic tile in actual use.
[0020] 2. The utility model discloses a high -efficient heat dissipation system is formed through the heat dissipation channel, the groove and the heat dissipation component cooperation and work, and the cooperation groove of heat dissipation fin and installation shell is fully contacted, and the heat dissipation area is greatly increased, and the conduction and the emission speed of heat are accelerated, and good heat dissipation performance can effectively avoid the magnetic property decline of magnetic shoe because of overheating, ensure that magnetic shoe still can keep stable performance under long -time high -load operation, prolong the service life of magnetic shoe.
[0021] 3. The utility model discloses a double reinforcement design of reinforcing rib and reinforcing layer in the magnetic shoe body, which significantly improves the strength of the magnetic shoe. The reinforcing rib enhances the internal structural stability of the magnetic shoe. The fiber reinforced resin layer and the metal mesh layer respectively improve the compression resistance, bending resistance and tensile toughness, so that the magnetic shoe has stronger mechanical properties. This allows the magnetic shoe to withstand greater external forces, reduces the risk of damage due to stress during transportation, installation and use, and adapts to various harsh working environments.
[0022] 4. The utility model discloses a reliable protection for the magnetic shoe provided by the wear-resistant layer and the corrosion-resistant coating. The wear-resistant layer can effectively reduce the wear of the surface of the magnetic shoe, maintain the precision and performance of the magnetic shoe, and the corrosion-resistant coating can resist the corrosion of various chemicals, prevent the magnetic shoe from being corroded, reduce maintenance costs, improve the use efficiency of the magnetic shoe, and prolong the overall service life.
[0023] 5. The utility model discloses that the fiber reinforced resin layer is composed of glass fiber and phenolic resin, and the metal mesh layer is a high-strength alloy steel mesh woven in a diamond shape. This material combination fully utilizes the advantages of each material. The glass fiber enhances the strength of the phenolic resin, the phenolic resin provides good adhesion and stability, and the high-strength alloy steel mesh woven in a diamond shape has excellent toughness and strength. The complementary advantages of different materials further improve the comprehensive performance of the magnetic shoe, meeting the high-performance demand of modern industry for the magnetic shoe. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 The utility model provides the high -strength magnetic shoe structure's stereogram structure schematic diagram;
[0025] Figure 2 The utility model provides the high -strength magnetic shoe structure's explosion structure schematic diagram;
[0026] Figure 3 The utility model provides the high -strength magnetic shoe structure's cover plate and the pressing plate structure schematic diagram;
[0027] Figure 4 The utility model provides the high -strength magnetic shoe structure's installation shell structure schematic diagram;
[0028] Figure 5 The utility model provides the high -strength magnetic shoe structure's magnetic shoe body cross section structure schematic diagram;
[0029] Figure 6 The connection block structure diagram of the high-strength magnetic tile structure provided in the present application is shown in the figure.
[0030] Figure 7 The wear-resistant layer, corrosion-resistant coating and reinforcing layer structure diagram of the high-strength magnetic tile structure provided in the present application is shown in the figure.
[0031] Figure 8 The reinforcing layer structure diagram of the high-strength magnetic tile structure provided in the present application is shown in the figure.
[0032] Indicated in the figure:
[0033] 1, mounting shell; 101, insertion slot; 102, matching groove; 2, cover plate; 201, first threaded hole; 3, pressing plate; 301, second threaded hole; 4, connection block; 401, third threaded hole; 5, magnetic tile body; 501, heat dissipation channel; 502, through groove; 503, groove; 6, heat conduction block; 601, heat dissipation fin; 7, wear-resistant layer; 8, corrosion-resistant coating; 9, reinforcing layer; 901, metal mesh layer; 902, fiber reinforced resin layer. DETAILED DESCRIPTION
[0034] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the technical scheme in the embodiments of the present application will be described clearly and completely below with reference to the drawings. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments.
[0035] Therefore, the following detailed description of the embodiments of the present application is not intended to limit the scope of the claimed application, but only represents some embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0036] It should be noted that the embodiments in the present application and the features and technical solutions in the embodiments can be combined with each other without conflict.
[0037] It should be noted that: similar labels and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.
[0038] In the description of the utility model, it needs to explain, the orientation or position relation indicated by the terms "upper", "lower" and the like is based on the orientation or position relation shown in the drawing, or is the orientation or position relation that the product of the application is usually placed when using, or is the orientation or position relation that the person skilled in the art usually understands, these terms are only for the convenience of describing the utility model and simplifying the description, and cannot be understood as indicating or implying that the device or element indicated must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the utility model.In addition, the terms "first", "second" and the like are only used for differentiation, and cannot be understood as indicating or implying relative importance.
[0039] As described in the background, the existing technology usually uses adhesive to fix the magnetic tile, and in the process of being impacted by external force or long-term use, the magnetic tile is prone to displacement, loosening or even falling off, and a large amount of heat is generated in the working process of the magnetic tile due to the action of current, etc., if the heat cannot be dissipated in time and effectively, the temperature of the magnetic tile continues to rise, which will cause its magnetic performance to decrease, and further affect the overall performance of the equipment.
[0040] In order to solve this technical problem, the utility model provides a high-strength magnetic tile structure.
[0041] Specifically, please refer to Figures 1-8 , the high-strength magnetic tile structure specifically comprises: a mounting shell 1, the mounting shell 1 is provided with a slot 101 and a matching groove 102; a cover plate 2 and a pressing plate 3, the cover plate 2 and the pressing plate 3 are arranged on the top of the mounting shell 1, and the pressing plate 3 is located above the cover plate 2; a connecting block 4, the connecting block 4 is arranged in the slot 101, and the cover plate 2 and the pressing plate 3 are fixedly connected with the connecting block 4 through bolts; a magnetic tile body 5, the magnetic tile body 5 is arranged inside the mounting shell 1 and between the mounting shell 1 and the connecting block 4, a heat dissipation assembly is arranged in the magnetic tile body 5, the matching groove 102 cooperates with the heat dissipation assembly, and the outer surface of the magnetic tile body 5 is sequentially provided with a wear-resistant layer 7, a corrosion-resistant coating 8 and a reinforcing layer 9 from outside to inside.
[0042] Through the precise cooperation of the mounting shell 1, the cover plate 2, the pressing plate 3 and the connecting block 4 and the bolt connection mode, and in combination with the cooperation of the recess 503 of the magnetic tile body 5 and the connecting block 4, the whole magnetic tile structure is connected closely and stably, and such stable structure design can effectively avoid loosening of each component under complex working conditions such as vibration and impact, ensure reliable operation of the magnetic tile, and improve the stability and reliability of the magnetic tile in actual use.
[0043] In order to enable the person skilled in the art to better understand the utility model scheme, the technical scheme in the embodiment of the utility model will be clearly and completely described below in combination with the drawings.
[0044] It should be noted that the embodiments in the utility model and the features and technical solutions in the embodiments can be combined with each other without conflict.
[0045] It should be noted that like reference numerals and characters refer to like items throughout the attached drawings and alternative embodiments thereof, noting that, once an item is defined in one drawing, it need not be further defined and explained in subsequent drawings.
[0046] Reference should be made to Figures 1-8 A high-strength magnetic tile structure comprises a mounting shell 1, a mounting shell 1 is provided with a slot 101 and a matching groove 102; a cover plate 2 and a pressing plate 3, the cover plate 2 and the pressing plate 3 are arranged on the top of the mounting shell 1, and the pressing plate 3 is above the cover plate 2; a connecting block 4, the connecting block 4 is arranged in the slot 101, and the cover plate 2 and the pressing plate 3 are fixedly connected with the connecting block 4 through bolts; a magnetic tile body 5, the magnetic tile body 5 is arranged inside the mounting shell 1 and between the mounting shell 1 and the connecting block 4, a heat dissipation assembly is arranged in the magnetic tile body 5, the matching groove 102 cooperates with the heat dissipation assembly, and the outer surface of the magnetic tile body 5 is sequentially provided with a wear-resistant layer 7, a corrosion-resistant coating 8 and a reinforcing layer 9 from outside to inside. The cover plate 2 is provided with a first threaded hole 201, the pressing plate 3 is provided with a second threaded hole 301, and the connecting block 4 is provided with a third threaded hole 401. The mounting shell 1, the cover plate 2 and the pressing plate 3 are fixedly connected through the connecting block 4 and the bolts cooperating with the first threaded hole 201, the second threaded hole 301 and the third threaded hole 401, and the magnetic tile body 5 is arranged in the space formed by the mounting shell 1, the cover plate 2 and the connecting block 4. A groove 503 matched with the connecting block 4 is formed in the magnetic tile body 5, a heat dissipation channel 501 is formed in the magnetic tile body 5, a through groove 502 communicating with the heat dissipation channel 501 is formed in one side of the magnetic tile body 5, and the heat dissipation channel 501 and the through groove 502 cooperate with the heat dissipation assembly. A plurality of reinforcing ribs are arranged in the magnetic tile body 5, the reinforcing ribs are distributed in a longitudinal and transverse interlaced manner, and the reinforcing ribs are integrally formed with the magnetic tile body 5. The heat dissipation assembly comprises a heat conduction block 6, the heat conduction block 6 is arranged in the heat dissipation channel 501, the heat conduction block 6 is provided with heat dissipation fins 601, and the heat dissipation fins 601 pass through the through groove 502 and contact the matching groove 102. The reinforcing layer 9 comprises a fiber reinforced resin layer 902 and a metal mesh layer 901, the fiber reinforced resin layer 902 is attached to the outer surface of the magnetic tile body 5, and the metal mesh layer 901 is arranged on the outer side of the fiber reinforced resin layer 902. The metal mesh layer 901 is a high-strength alloy steel mesh with a diamond woven structure. The fiber reinforced resin layer 902 is composed of glass fiber and phenolic resin.
[0047] The implementation process: install the shell 1 as the foundation support part of the whole magnet tile structure, the slot 101 is used for accurate placement of the connecting block 4, and plays a role of positioning and preliminary fixation, the cover plate 2 and the pressing plate 3 are placed on the top of the installation shell 1, the second threaded hole 301 on the pressing plate 3 and the first threaded hole 201 on the cover plate 2 are sequentially penetrated by the bolt, and are screwed with the third threaded hole 401 on the connecting block 4, so that the three are tightly connected, the magnet tile body 5 is stably packaged in the space formed by the installation shell 1, the cover plate 2 and the connecting block 4, and the stable structure of the magnet tile in the working process is ensured, the heat dissipation channel 501 and the through groove 502 in the magnet tile body 5 jointly construct a heat dissipation path, the heat conduction block 6 in the heat dissipation assembly is installed in the heat dissipation channel 501, the heat conduction block 6 on the heat dissipation fin 601 is penetrated through the through groove 502 and contacted with the matching groove 102 of the installation shell 1, the heat is transferred to the installation shell 1 and the air around the installation shell 1, so as to reduce the temperature of the magnet tile body 5 and maintain the normal working temperature range, the longitudinal and transverse intersecting reinforcing ribs arranged in the magnet tile body 5 are integrally formed with the magnet tile body 5, the internal structure strength of the magnet tile is enhanced, so that the magnet tile can better withstand external force, at the same time, the reinforcing layer 9 further improves the overall strength of the magnet tile, the fiber reinforced resin layer 902 is attached to the outer surface of the magnet tile body 5, the high strength and good stability of the glass fiber and the phenolic resin after compounding are used to enhance the compression resistance and bending resistance of the magnet tile, the metal mesh layer 901 is a high-strength alloy steel mesh with a diamond woven structure, which is arranged outside the fiber reinforced resin layer 902, and the toughness and tensile properties of the magnet tile are increased, so as to jointly guarantee the structural integrity of the magnet tile under complex working conditions, the wear-resistant layer 7 on the outer surface of the magnet tile body 5 can effectively resist friction with other components during use, reduce surface wear and prolong the service life of the magnet tile, the corrosion-resistant coating 8 can prevent the erosion of external corrosive substances to the magnet tile, and protect the internal structure and performance of the magnet tile, and the reinforcing layer 9 not only enhances the strength of the magnet tile, but also plays a protective role to a certain extent, so as to prevent damage to the magnet tile caused by external impact.
[0048] The above examples are only used to illustrate the technical solutions described in the utility model and not limit the utility model, although the utility model has been described in detail with reference to the above-mentioned embodiments, the utility model is not limited to the above-mentioned specific embodiments, therefore any modification or equivalent replacement of the utility model, and all technical solutions and improvements within the spirit and scope of the invention are covered in the claim range of the utility model.
Claims
1. A high strength magnetic tile structure, characterized by, The application relates to a magnet shoe body. The installation shell (1) is provided with a slot (101) and a matching slot (102); the cover plate (2) and the pressing plate (3) are arranged on the top of the installation shell (1), and the pressing plate (3) is arranged above the cover plate (2); the connecting block (4) is arranged in the slot (101), and the cover plate (2) and the pressing plate (3) are fixedly connected with the connecting block (4) through bolts; the magnet shoe body (5) is arranged in the installation shell (1) and between the installation shell (1) and the connecting block (4), the magnet shoe body (5) is provided with a heat dissipation assembly, the matching slot (102) is matched with the heat dissipation assembly, and the outer surface of the magnet shoe body (5) is sequentially provided with a wear-resistant layer (7), a corrosion-resistant coating (8) and a reinforcing layer (9) from outside to inside. The cover plate (2) is provided with a first threaded hole (201), the pressing plate (3) is provided with a second threaded hole (301), the connecting block (4) is provided with a third threaded hole (401), the installation shell (1), the cover plate (2) and the pressing plate (3) are fixedly connected through the connecting block (4) and the bolts matched with the first threaded hole (201), the second threaded hole (301) and the third threaded hole (401), and the magnet shoe body (5) is arranged in the space formed by the installation shell (1), the cover plate (2) and the connecting block (4). The magnet shoe body (5) is provided with a groove (503) matched with the connecting block (4), the magnet shoe body (5) is provided with a heat dissipation channel (501), one side of the magnet shoe body (5) is provided with a through groove (502) communicated with the heat dissipation channel (501), and the heat dissipation channel (501) and the through groove (502) are matched with the heat dissipation assembly. The magnet shoe body (5) is provided with a plurality of reinforcing ribs, the reinforcing ribs are arranged in a longitudinal and transverse interlaced mode, and the reinforcing ribs are integrally formed with the magnet shoe body (5).
2. A high-strength magnetic tile structure according to claim 1, wherein, The heat dissipation assembly comprises a heat conduction block (6), the heat conduction block (6) is arranged in the heat dissipation channel (501), the heat conduction block (6) is provided with heat dissipation fins (601), and the heat dissipation fins (601) pass through the through groove (502) and are in contact with the matching slot (102).
3. The high-strength magnetic tile structure of claim 2, wherein, The reinforcing layer (9) comprises a fiber reinforced resin layer (902) and a metal mesh layer (901), the fiber reinforced resin layer (902) is attached to the outer surface of the magnet shoe body (5), and the metal mesh layer (901) is arranged on the outer side of the fiber reinforced resin layer (902).
4. The high-strength magnetic tile structure of claim 3, wherein, The metal mesh layer (901) is a high-strength alloy steel mesh with a diamond woven structure.
5. The high-strength magnetic tile structure of claim 3, wherein, The fiber reinforced resin layer (902) is composed of glass fibers and phenolic resin.
6. The high-strength magnetic tile structure of claim 1, wherein, 7. A high-strength magnetic tile structure according to claim 6, wherein 8. The high-strength magnetic tile structure of claim 7, wherein,