Stainless steel plate convenient to splice

By designing the snap plate and spring structure on the stainless steel plate, the problem of inconvenience in splicing of traditional stainless steel plates is solved, and the fast and firm splicing effect is achieved, the operation process is simplified, and the splicing stability is enhanced.

CN223164802UActive Publication Date: 2025-07-29HANGZHOU HESHEN PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202422449459.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-11
Publication Date
2025-07-29
Estimated Expiration
2034-10-11

AI Technical Summary

Technical Problem

Traditional stainless steel plates are inconvenient to operate during splicing and need to be combined by high-temperature welding tools, resulting in complex operation and difficult to achieve stable connection.

Method used

A stainless steel plate structure with snap plate and spring is designed. Through the coupling of the snap plate block and slot of the snap plate, the spring is extruded to achieve rapid splicing and firmness is enhanced by bolt fixing.

Benefits of technology

It realizes fast and convenient splicing of stainless steel plates, enhances the firmness and stability of splicing, simplifies the operation process, and avoids the complexity of high-temperature welding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The stainless steel plate convenient to splice comprises a steel plate body, a first buckling plate and a second buckling plate are arranged on the two sides of the steel plate body respectively, a protrusion is arranged on the top of the first buckling plate, clamping blocks are installed on the two sides of the outer wall of the protrusion, a limiting groove is formed in the protrusion, and the second buckling plate is arranged in the limiting groove. A spring is fixed to the inner wall of the limiting groove, the other end of the spring is connected with a clamping block, and a clamping groove is formed in the second buckle plate. The first buckling plate of one group of steel plate bodies is aligned with the clamping groove in the second buckling plate of the other group of steel plate bodies, the clamping groove of the second buckling plate extrudes the clamping block of the first buckling plate, so that the clamping block moves towards the interior of the limiting groove of the first buckling plate, and when the first buckling plate moves to the bottom end of the interior of the clamping groove of the second buckling plate, the clamping block moves towards the interior of the limiting groove of the first buckling plate. And the spring extrudes the clamping block outwards, so that the clamping block on the first buckling plate is buckled in the clamping groove of the second buckling plate, and the clamping groove limits and restrains the clamping block.
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Description

Technical Field

[0001] The utility model relates to the field of stainless steel plates, and particularly to a stainless steel plate convenient for splicing. Background Technique

[0002] In today's market, stainless steel plates are widely used, mainly due to the numerous excellent properties of stainless steel plates themselves. Stainless steel has the characteristics of corrosion resistance, high strength, easy cleaning, etc., making it play an important role in many fields such as construction, manufacturing, and decoration. Whether it is large industrial facilities or delicate home decoration, the figure of stainless steel plates can be seen.

[0003] A stainless steel plate is a plate mainly made of stainless steel. It is usually made through a series of complex processes such as smelting, hot rolling, and cold rolling. In the construction field, stainless steel plates can be used for exterior wall decoration, roofs, and staircase handrails, which are both beautiful and durable. Stainless steel plates usually have a flat surface and uniform material, with a dense internal structure, high hardness and toughness. During use, in order to ensure the flatness and tightness of the splicing joints of stainless steel plates, construction workers usually fuse the splicing joints of multiple stainless steel plates together at high temperature to form a firmly connected welding method for splicing multiple stainless steel plates.

[0004] Although traditional stainless steel plates can meet the needs of construction workers, it is relatively inconvenient to achieve multiple splicing operations with such traditional stainless steel plates, and other welding tools are required for high-temperature welding combination. Content of the Utility Model

[0005] Based on this, the purpose of the utility model is to provide a stainless steel plate convenient for splicing to solve the technical problem that traditional stainless steel plates are not easy to splice and combine.

[0006] To achieve the above purpose, the utility model provides the following technical solution: A stainless steel plate convenient for splicing, including a steel plate body. On both sides of the steel plate body are respectively a first buckle plate and a second buckle plate. The top of the first buckle plate is provided with a protrusion, and on both sides of the outer wall of the protrusion are installed clamping blocks. A limiting groove is opened inside the protrusion. A spring is fixed to the inner wall of the limiting groove, and the other end of the spring is connected to the clamping block. A clamping groove is opened inside the second buckle plate.

[0007] By adopting the above technical solution, the problem of inconvenient operation in the process of realizing combined splicing of traditional stainless steel plates is solved. Align the first buckle plate of a group of steel plate bodies with the card slot in the second buckle plate of another group of steel plate bodies. When splicing the two groups of steel plate bodies, the card slot of the second buckle plate squeezes the card block of the first buckle plate, causing the card block to move into the limit slot of the first buckle plate. When the first buckle plate moves to the inner bottom end of the card slot of the second buckle plate, the spring squeezes the card block outwards, so that the card block on the first buckle plate is buckled inside the card slot of the second buckle plate, and the card slot limits and constrains the card block, thereby realizing the splicing combination between the two groups of steel plate bodies.

[0008] The present utility model is further configured such that multiple groups of first splicing plates and second splicing plates are provided on both sides of the steel plate body, and the first splicing plates and the second splicing plates are respectively parallel to the surfaces of the first buckle plate and the second buckle plate.

[0009] By adopting the above technical solution, after the docking and buckling of the first buckle plate and the second buckle plate on the two groups of steel plate bodies are completed, the first splicing plates and the second splicing plates on both sides of the two groups of steel plate bodies are stacked together, and personnel can further fix the two groups of steel plate bodies by using bolts through the through holes, strengthening the firmness between the two groups of steel plate bodies.

[0010] The present utility model is further configured such that through holes are provided on one side of the first splicing plate and the second splicing plate, and the through holes on the first splicing plate and the through holes on the second splicing plate are aligned.

[0011] By adopting the above technical solution, when the first splicing plate of a group of steel plate bodies is spliced with the second splicing plate of another group of steel plate bodies, the through holes on the first splicing plate and the through holes on the second splicing plate are aligned, which is convenient for subsequent personnel to carry out bolt reinforcement and increases the firmness after splicing multiple groups of steel plate bodies.

[0012] The present utility model is further configured such that one side of the card block is arc-shaped, and the arc-shaped side of the card block is the side in contact with the second buckle plate.

[0013] By adopting the above technical solution, when docking the first buckle plate and the second buckle plate on the two groups of steel plate bodies, the convex block on the first buckle plate contacts the port of the card slot of the second buckle plate, and the arc-shaped side of the card block is the side in contact with the second buckle plate, in order to enable the card block on the first buckle plate to easily move into the card slot of the second buckle plate.

[0014] The present utility model is further configured such that the other side of the card block is rectangular, and the rectangular side of the card block is in parallel contact with the inner wall of the card slot.

[0015] By adopting the above technical solution, when the first buckle plate is buckled into the slot of the second buckle plate, one side of the rectangular clamping block is in parallel contact with the inner wall of the slot, preventing the clamping block from disengaging from the slot.

[0016] The utility model is further arranged such that a groove is formed on one side of the clamping block, and the groove is arranged to be semi-circular.

[0017] By adopting the above technical solution, the groove provided on one side of the clamping block is semi-circular. When it is necessary to disassemble multiple groups of steel plate bodies, the operator can squeeze the groove into the inside of the protrusion, so that the clamping block is disengaged from the limit of the slot, thereby separating the first buckle plate from the second buckle plate.

[0018] The utility model is further arranged such that the length of the arc-shaped side of the clamping block is less than the length of the rectangular side, and there is a certain distance between the tail end of the clamping block and the port of the limit slot.

[0019] By adopting the above technical solution, when the first buckle plate and the second buckle plate are spliced, a part of the tail end of the clamping block is inside the limit slot. When the clamping block is stressed, the limit slot shares the stress for the clamping block, increasing the firmness between the first buckle plate and the second buckle plate.

[0020] The utility model is further arranged such that the port of the slot is arc-shaped, reducing the resistance of the first buckle plate being squeezed and displaced into the inside of the second buckle plate.

[0021] By adopting the above technical solution, since the width of the port of the slot is smaller than the width of the clamping block when it is extended, when the first buckle plate and the second buckle plate are spliced, the clamping block contacts the port of the slot, and the clamping block moves towards the inside of the slot. The slot is arc-shaped, enabling the clamping block to be easily squeezed into the inside of the limit slot.

[0022] The utility model is further arranged such that threads are provided inside the through hole, and the first splicing plate and the second splicing plate can be fixed with bolts.

[0023] By adopting the above technical solution, the through hole is arranged as a threaded hole. After the first buckle plate and the second buckle plate are spliced, the operator can use bolts to fix the through holes on the first splicing plate and the second splicing plate on the steel plate body, increasing the firmness of the splicing of multiple groups of steel plate bodies.

[0024] The utility model is further arranged such that the first buckle plate is located below the center line of the steel plate body, and the second buckle plate is located above the center line of the steel plate body.

[0025] By adopting the above technical solution, the first snap plate and the second snap plate have the same area size. When splicing multiple groups of steel plate bodies, the first snap plate and the second snap plate on two groups of steel plate bodies can be docked. After docking, the area formed by the combination of the first snap plate and the second snap plate is parallel to the surface of the steel plate body.

[0026] In summary, the main beneficial effects of the present utility model are as follows:

[0027] 1. By providing the steel plate body, the first snap plate, the second snap plate, the block, the slot and the spring, the present utility model solves the problem of inconvenient operation in the process of combining and splicing traditional stainless steel plates. Align the first snap plate of one group of steel plate bodies with the slot in the second snap plate of another group of steel plate bodies. When splicing two groups of steel plate bodies, the slot of the second snap plate squeezes the block of the first snap plate, causing the block to move into the limit slot of the first snap plate. When the first snap plate moves to the inner bottom end of the slot of the second snap plate, the spring squeezes the block outwards, so that the block on the first snap plate is snapped into the slot of the second snap plate, and the slot limits and restricts the block, thereby realizing the splicing combination between two groups of steel plate bodies;

[0028] 2. By providing the first splicing plate, the second splicing plate and the through hole, after the first snap plate and the second snap plate on two groups of steel plate bodies are docked and snapped, the first splicing plates and the second splicing plates on both sides of the two groups of steel plate bodies are stacked together. Personnel can use bolts to further fix the two groups of steel plate bodies through the through holes, strengthening the firmness between the two groups of steel plate bodies. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 is the overall schematic diagram of the steel plate body of the present utility model;

[0030] Figure 2 is the structure diagram of the second snap plate of the present utility model;

[0031] Figure 3 is the structure diagram of the first snap plate of the present utility model;

[0032] Figure 4 is the schematic diagram of the splicing of the steel plate body of the present utility model.

[0033] In the figure: 1. Steel plate body; 2. First snap plate; 21. Block; 22. Limit slot; 23. Spring; 24. Groove; 25. Protrusion; 3. Second snap plate; 31. Slot; 4. First splicing plate; 5. Second splicing plate; 6. Through hole. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0034] The technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present utility model. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the present utility model and should not be construed as limiting the present utility model.

[0035] The embodiments of the present utility model will be described below according to its overall structure.

[0036] A stainless steel plate that is convenient for splicing, as Figure 1 - Figure 4 shown, includes a steel plate body 1. On both sides of the steel plate body 1, there are a first buckle plate 2 and a second buckle plate 3 respectively. On the top of the first buckle plate 2, there is a protrusion 25, and on both sides of the outer wall of the protrusion 25, there are clamping blocks 21 installed. Inside the protrusion 25, there is a limiting groove 22, and on the inner wall of the limiting groove 22, there is a spring 23 fixed, and the other end of the spring 23 is connected to the clamping block 21. Inside the second buckle plate 3, there is a clamping groove 31, which solves the problem that it is inconvenient to operate during the process of combining and splicing traditional stainless steel plates. Align the first buckle plate 2 of a group of steel plate bodies 1 with the clamping groove 31 inside the second buckle plate 3 of another group of steel plate bodies 1. When splicing the two groups of steel plate bodies 1, the clamping groove 31 of the second buckle plate 3 squeezes the clamping block 21 of the first buckle plate 2, causing the clamping block 21 to move into the limiting groove 22 of the first buckle plate 2. When the first buckle plate 2 moves to the inner bottom end of the second buckle plate clamping groove 3, the spring 23 squeezes the clamping block 21 outwards, so that the clamping block 21 on the first buckle plate 2 is buckled inside the clamping groove 31 of the second buckle plate 3, and the clamping groove 31 performs limiting restraint on the clamping block 21, thereby realizing the splicing combination between the two groups of steel plate bodies 1.

[0037] Please refer to Figure 1 , on both sides of the steel plate body 1, there are multiple groups of first splicing plates 4 and second splicing plates 5, and the first splicing plates 4 and the second splicing plates 5 are respectively parallel to the surfaces of the first buckle plate 2 and the second buckle plate 3. After the docking and buckling of the first buckle plate 2 and the second buckle plate 3 on the two groups of steel plate bodies 1 are completed, the first splicing plates 4 and the second splicing plates 5 on both sides of the two groups of steel plate bodies 1 are stacked together, and personnel can further fix the two groups of steel plate bodies 1 through the through holes 6 with bolts, strengthening the firmness between the two groups of steel plate bodies 1.

[0038] Please refer to Figure 1 and Figure 4 , on one side of the first splicing plate 4 and the second splicing plate 5, there are through holes 6. The through holes 6 on the first splicing plate 4 and the through holes 6 on the second splicing plate 5 are aligned. When the first splicing plate 4 of a group of steel plate bodies 1 is spliced with the second splicing plate 5 of another group of steel plate bodies 1, the through holes 6 on the first splicing plate 4 and the through holes 6 on the second splicing plate 5 are aligned, which is convenient for subsequent personnel to reinforce them with bolts and increases the firmness after splicing multiple groups of steel plate bodies 1.

[0039] Please refer to Figure 3 , one side of the clamping block 21 is arc-shaped, and the arc-shaped side of the clamping block 21 is the side in contact with the second clamping plate 3. When docking the first clamping plate 2 and the second clamping plate 3 on two groups of steel plate bodies 1, the convex block on the first clamping plate 2 contacts the port of the clamping groove 31 of the second clamping plate 3. The arc-shaped side of the clamping block 21 is the side in contact with the second clamping plate 3, so that the clamping block 21 on the first clamping plate 2 can easily move into the clamping groove 31 of the second clamping plate 3.

[0040] Please refer to Figure 3 , the other side of the clamping block 21 is rectangular, and the rectangular side of the clamping block 21 is in parallel contact with the inner wall of the clamping groove 31. When the first clamping plate 2 is clamped into the clamping groove 31 of the second clamping plate 3, the rectangular side of the clamping block 21 is in parallel contact with the inner wall of the clamping groove 31, preventing the clamping block 21 from disengaging from the clamping groove 31.

[0041] Please refer to Figure 3 , a groove 24 is formed on one side of the clamping block 21, and the groove 24 is semi-circular. The groove 24 formed on one side of the clamping block 21 is semi-circular. When it is necessary to disassemble multiple groups of steel plate bodies 1, the operator can squeeze the groove 24 into the inside of the protrusion 25, so that the clamping block 21 is disengaged from the limit of the clamping groove 31, thereby separating the first clamping plate 2 and the second clamping plate 3.

[0042] Please refer to Figure 3 , the length of the arc-shaped side of the clamping block 21 is less than the length of the rectangular side, and there is a certain distance between the tail end of the clamping block 21 and the port of the limiting groove 22. When the first clamping plate 2 and the second clamping plate 3 are spliced, a part of the tail end of the clamping block 21 is inside the limiting groove 22. When the clamping block 21 is stressed, the limiting groove 22 shares the stress for the clamping block 21, increasing the firmness between the first clamping plate 2 and the second clamping plate 3.

[0043] Please refer to Figure 3 , the port of the clamping groove 3 is arc-shaped, reducing the resistance of the first clamping plate 2 being squeezed and displaced into the second clamping plate 3. Since the width of the port of the clamping groove 31 is less than the width of the clamping block 21 when it is extended, when the first clamping plate 2 and the second clamping plate 3 are spliced, the clamping block 21 contacts the port of the clamping groove 31, and the clamping block 21 moves into the inside of the clamping groove 31. The clamping groove 31 is arc-shaped, enabling the clamping block 21 to be easily squeezed into the inside of the limiting groove 22.

[0044] Please refer to Figure 1, the inside of the through hole 6 is provided with threads, and bolts can be used to fix the first splicing plate 4 and the second splicing plate 5. The through hole 6 is set as a threaded hole. After the first buckle plate 2 and the second buckle plate 3 are spliced, the operator can use bolts to fix the through holes 6 on the first splicing plate 4 and the second splicing plate 5 on the steel plate body 1, increasing the firmness of the splicing of multiple groups of steel plate bodies 1.

[0045] Please refer to Figure 1 , the first buckle plate 2 is located below the center line of the steel plate body 1, and the second buckle plate 3 is located above the center line of the steel plate body 1. The area sizes of the first buckle plate 2 and the second buckle plate 3 are the same. When splicing multiple groups of steel plate bodies 1, the first buckle plates 2 and the second buckle plates 3 on two groups of steel plate bodies 1 can be butted. After the butting is completed, the area formed by the combination of the first buckle plate 2 and the second buckle plate 3 is parallel to the surface of the steel plate body 1.

[0046] The working principle of the present utility model is as follows: First, the operator aligns the first buckle plate 2 of a group of steel plate bodies 1 with the second buckle plate 3 of another group of steel plate bodies 1, and then squeezes the first buckle plate 2 into the slot 31 of the second buckle plate 3. When the block 21 of the first buckle plate 2 touches the port of the slot 31, the block 21 moves into the limiting slot 24 of the first buckle plate 2 until the top end of the first buckle plate 2 touches the bottom end of the inner wall of the slot 31. The spring 23 pushes the block 21 to reset, so that the block 21 of the first buckle plate 2 is buckled in the slot 31 of the second buckle plate 3. Then, the operator uses bolts to butt and reinforce the first splicing plates 4 and the second splicing plates 5 on both sides of the two groups of steel plate bodies 1. If the two groups of steel plate bodies 1 are to be disassembled, first, the bolts connecting the first splicing plate 4 and the second splicing plate 5 are disassembled, and then the operator squeezes the block 21 into the limiting slot 22 through the groove 24 on the first buckle plate 2. The first buckle plate 2 is disengaged from the limit of the second buckle plate 3, thereby separating and disassembling the two groups of steel plate bodies 1.

[0047] Although the embodiments of the present utility model have been shown and described, the specific embodiments are only explanations of the present utility model, and they are not limitations on the utility model. The specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can, without departing from the principles and purposes of the present utility model, make modifications, substitutions and variations that do not contribute creatively to the embodiments as needed, but as long as they are within the scope of the claims of the present utility model, they are protected by the patent law.

Claims

1. A stainless steel plate that is easy to assemble, comprising a steel plate body (1), characterized in that: On both sides of the steel plate body (1), there are a first snap plate (2) and a second snap plate (3) respectively. A protrusion (25) is provided at the top of the first snap plate (2), and snap blocks (21) are installed on both sides of the outer wall of the protrusion (25). A limiting groove (22) is opened inside the protrusion (25), a spring (23) is fixed to the inner wall of the limiting groove (22), and the other end of the spring (23) is connected to the snap block (21). A card slot (31) is opened inside the second snap plate (3).

2. The stainless steel plate according to claim 1, which is easy to assemble, is characterized in that: On both sides of the steel plate body (1), there are multiple groups of first splicing plates (4) and second splicing plates (5), and the first splicing plates (4) and the second splicing plates (5) are parallel to the surfaces of the first snap plate (2) and the second snap plate (3) respectively.

3. The stainless steel plate according to claim 2, characterized in that: On one side of the first splicing plate (4) and the second splicing plate (5), there are through holes (6), and the through holes (6) on the first splicing plate (4) are aligned with the through holes (6) on the second splicing plate (5).

4. A stainless steel plate that is easy to assemble according to claim 1, wherein: One side of the snap block (21) is arc-shaped, and the arc-shaped side of the snap block (21) is the side in contact with the second snap plate (3).

5. A stainless steel plate that is easy to assemble, characterized in that: The other side of the snap block (21) is rectangular, and the rectangular side of the snap block (21) is in parallel contact with the inner wall of the card slot (31).

6. The stainless steel plate according to claim 1, wherein: A groove (24) is opened on one side of the snap block (21), and the groove (24) is semi-circular.

7. A stainless steel plate that is easy to assemble according to claim 1, characterized in that: The length of the arc-shaped side of the snap block (21) is less than the length of the rectangular side, and there is a certain distance between the tail end of the snap block (21) and the port of the limiting groove (22).

8. A stainless steel plate that is easy to assemble, characterized in that: The port of the card slot (31) is arc-shaped to reduce the resistance of the first snap plate (2) being squeezed and displaced into the second snap plate (3).

9. The stainless steel plate convenient for splicing according to claim 3, wherein: Threads are provided inside the through hole (6), and bolts can be used to fix the first splicing plate (4) and the second splicing plate (5).

10. A stainless steel plate that is easy to assemble, characterized in that: The first snap plate (2) is located below the center line of the steel plate body (1), and the second snap plate (3) is located above the center line of the steel plate body (1).