Splicing type magnetic positioning silica gel pad
The magnetic positioning structure solves the problems of loosening and alignment at the joints of the silicone pads, achieving stable connection and precise alignment, thus enhancing the stability and functionality of the silicone pads.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TAIXING ZHONGNENG HI TECH NEW MATERIAL CO LTD
- Filing Date
- 2025-05-07
- Publication Date
- 2026-04-17
AI Technical Summary
The existing silicone pads have clips at the splicing points that are prone to damage, leading to loosening or separation. Furthermore, the lack of an effective positioning mechanism makes it difficult to accurately align the position, affecting the stability and functionality of the pads.
The magnetic positioning structure includes a rectangular silicone pad body, a baffle, a connecting plate, a locking plate, a magnet block, and a limiting post. Through the combination of the locking groove, the limiting hole, and the magnet block, the silicone pad can be stably connected and precisely aligned.
Stable splicing of silicone pads is achieved, preventing loosening and misalignment, enhancing stability and functionality. Magnet blocks can be fixed to iron surfaces, and friction strips increase friction to prevent slippage.
Smart Images

Figure CN224135091U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of silicone pad technology, and more specifically, it relates to a splicing magnetic positioning silicone pad. Background Technology
[0002] In modern daily life and many industrial and commercial fields, silicone pads are widely used in various scenarios such as heat insulation of kitchen utensils and anti-slip of tabletops in home life, cushioning and protection of electronic devices, and vibration reduction of instruments in industrial production due to their excellent properties such as flexibility, elasticity, anti-slip, heat insulation and chemical stability.
[0003] However, existing silicone pads still have the following two shortcomings in use:
[0004] First, some products use simple snap-fit connections. This type of connection is not only structurally fragile, but after frequent use or being subjected to certain external forces such as pulling or squeezing, the snaps are easily damaged, causing the splicing joints to loosen or even completely separate, which cannot guarantee the overall stability of the silicone pads after splicing.
[0005] Secondly, many of the silicone pads used for splicing lack effective positioning mechanisms. When splicing multiple silicone pads, it is difficult to accurately align the positions of each pad, which can easily lead to misalignment. This results in the spliced silicone pads not being able to bear force evenly during use, and thus failing to fully perform their anti-slip and cushioning functions. Utility Model Content
[0006] To address the aforementioned technical problems, this utility model provides a splicing magnetic positioning silicone pad, which solves the problems of the buckles used to connect two silicone pads being easily damaged after they are joined, leading to loosening or even complete separation at the splice joint, and the lack of an effective positioning mechanism for the silicone pads, making it difficult to accurately align the positions of each silicone pad during the joining process.
[0007] The purpose and effect of this utility model of a splicing magnetic positioning silicone pad are achieved by the following specific technical means: a splicing magnetic positioning silicone pad, including a silicone pad body;
[0008] The main body of the silicone pad is a rectangular plate structure. Two baffles are fixedly installed on one side of the left end of the silicone pad body, and a fixed shaft is installed between the two baffles. A third slot is opened in the middle of the lower end face of the silicone pad body.
[0009] The connecting plate has an arc-shaped inner end and a through hole inside.
[0010] The card plate has an inclined outer end face and is engaged in the third slot at the lower end of the silicone pad body.
[0011] The magnet block has a circular plate-shaped structure as its main body. Six limiting posts are evenly fixedly installed on the outer end face of the magnet block, and the six limiting posts are arranged in a ring structure.
[0012] Furthermore, a device groove is provided on the lower end face of the card plate, and the magnet block is engaged inside the device groove.
[0013] Furthermore, the device groove has six limiting holes on its inner circumference, and the six limiting holes are arranged in a ring structure. The six limiting posts at the outer end of the magnet block are respectively engaged in the six limiting holes.
[0014] Furthermore, four locking posts are evenly installed on the front surface of the silicone pad body, and the ends of the locking posts are spherical structures. Four first locking slots are evenly opened on the rear surface of the silicone pad body, and the structure of the first locking slots is the same as that of the locking posts.
[0015] Furthermore, two sets of friction strips are installed on the upper surface of the silicone pad body. The friction strips are arrow-shaped, and a second slot is provided on the right end surface of the silicone pad body.
[0016] Furthermore, the fixed shaft is snapped into the through hole inside the connecting plate, and a rubber column is fixedly installed on the outer end face of the connecting plate. The structure of the rubber column is the same as the second slot structure on the right end of the silicone pad body.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] In this invention, four locking posts are installed at the front end of the silicone pad body, and four first locking slots with the same structure are correspondingly opened on the rear surface of the silicone pad body. When it is necessary to longitudinally splice and combine two silicone pad bodies, the locking posts at the front end of one silicone pad body can be aligned with the first locking slots at the rear end of the other silicone pad body, so that the two silicone pad bodies can be longitudinally connected together.
[0019] In addition, a fixed shaft is installed between the two baffles. The fixed shaft can be snapped into the through hole, allowing the connecting plate to rotate flexibly around the fixed shaft. At the same time, a rubber post is fixedly installed on the outer end face of the connecting plate. The rubber post is inserted into the second slot of the adjacent silicone pad body. In this way, the silicone pad is connected in the left and right direction. At this time, the two silicone pad bodies can rotate and can be folded into different angles according to the user's needs.
[0020] In addition, a device groove is provided on the lower end face of the card plate, and the magnet block is engaged in the device groove. Six limiting holes with a ring structure are provided on the inner circumference of the device groove. Six limiting posts are installed on the outer end face of the magnet block, and the six limiting posts are engaged in the six limiting holes respectively. Through this cooperation between the limiting posts and the limiting holes, the position of the magnet block in the device groove can be accurately fixed. The setting of the magnet block can help fix the silicone pad body to the surface of the iron material.
[0021] In addition, two sets of arrow-shaped friction strips are installed on the upper surface of the silicone pad. When an item is placed on the silicone pad, these friction strips will generate a large friction force with the contact surface of the item, preventing the item from easily sliding on the silicone pad. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall device structure of this utility model.
[0023] Figure 2 This is a schematic diagram of the silicone pad body and connecting plate structure of this utility model.
[0024] Figure 3 This is a schematic diagram of the transverse connection structure of the two silicone pad bodies of this utility model.
[0025] Figure 4 This is a schematic diagram of the longitudinal connection structure of the silicone pad body of this utility model.
[0026] Figure 5 This is an exploded structural diagram of the magnet block, card plate, and silicone pad body of this utility model.
[0027] Figure 6 This is a schematic diagram of the connection structure between the baffle and the fixed shaft of this utility model.
[0028] In the diagram, the correspondence between component names and drawing numbers is as follows:
[0029] 1. Silicone pad body; 101. Friction strip; 102. Baffle; 1021. Fixed shaft; 103. Locking post; 104. First locking slot; 105. Second locking slot; 106. Third locking slot; 2. Connecting plate; 201. Rubber post; 202. Through hole; 3. Locking plate; 301. Device slot; 3011. Limiting hole; 4. Magnet block; 401. Limiting post. Detailed Implementation
[0030] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. Example 1:
[0031] As attached Figure 1 To be continued Figure 6 As shown:
[0032] This utility model provides a splicing magnetic positioning silicone pad, including a silicone pad body 1;
[0033] The main body of the silicone pad 1 is a rectangular plate structure. Two baffles 102 are fixedly installed on one side of the left end of the silicone pad body 1. A fixed shaft 1021 is installed between the two baffles 102. A third slot 106 is opened in the middle of the lower end face of the silicone pad body 1.
[0034] The connecting plate 2 has an arc-shaped inner end and a through hole 202 inside.
[0035] The card plate 3 has an inclined outer end face and is snapped into the third slot 106 at the lower end of the silicone pad body 1.
[0036] Magnet block 4 has a circular plate structure. Six limiting posts 401 are fixedly installed on the outer end face of magnet block 4. The six limiting posts 401 are arranged in a ring structure.
[0037] The lower end face of the card plate 3 is provided with a device groove 301. The magnet block 4 is engaged inside the device groove 301. The inner circumference of the device groove 301 is provided with six limiting holes 3011. The six limiting holes 3011 are arranged in a ring structure. The six limiting posts 401 at the outer end of the magnet block 4 are respectively engaged in the six limiting holes 3011, which can fix the magnet block 4 and prevent the magnet block 4 from falling out of the device groove 301.
[0038] The silicone pad body 1 has four locking posts 103 evenly installed on its front end surface. The ends of the locking posts 103 are spherical. The rear end surface of the silicone pad body 1 has four first locking slots 104 evenly opened. The structure of the first locking slots 104 is the same as that of the locking posts 103. When two silicone pad bodies 1 need to be longitudinally spliced together, the locking posts 103 at the front end of one silicone pad body 1 can be aligned with the first locking slots 104 at the rear end of the other silicone pad body 1. Due to the easy insertion characteristic of the spherical structure, the locking posts 103 can be smoothly embedded into the first locking slots 104.
[0039] The silicone pad body 1 has two sets of friction strips 101 installed on its upper surface. The friction strips 101 are arrow-shaped. The right end surface of the silicone pad body 1 has a second slot 105. In use, the silicone pad body 1 has two sets of arrow-shaped friction strips 101 installed on its upper surface. When an item is placed on the silicone pad, these friction strips 101 will generate a large friction force with the contact surface of the item, preventing the item from easily sliding on the silicone pad.
[0040] The fixed shaft 1021 is snapped into the through hole 202 inside the connecting plate 2. A rubber post 201 is fixedly installed on the outer end face of the connecting plate 2. The structure of the rubber post 201 is the same as the structure of the second slot 105 on the right end of the silicone pad body 1. In use, when performing horizontal splicing, the connecting plate 2 can be rotated to insert the rubber post 201 into the second slot 105 of the adjacent silicone pad body 1. In this way, the connection of the silicone pad in the left and right direction is realized.
[0041] The specific usage and function of this embodiment are as follows:
[0042] In this invention, four locking posts 103 with spherical ends are evenly installed on the front surface of the silicone pad body 1, and four first locking slots 104 with the same structure are evenly opened on the rear surface. When two silicone pad bodies 1 need to be longitudinally spliced together, the locking posts 103 at the front end of one silicone pad body 1 can be aligned with the first locking slots 104 at the rear end of the other silicone pad body 1. Due to the easy insertion characteristic of the spherical structure, the locking posts 103 are smoothly inserted into the first locking slots 104. Because the shapes of the locking posts 103 and the first locking slots 104 fit tightly, they can restrict... The relative displacement of the silicone pads in the horizontal direction enables the initial splicing and fixing of adjacent silicone pads in the front-back direction, laying the foundation for the subsequent formation of spliced silicone pads with larger areas or specific shapes. A fixed shaft 1021 is installed between the two baffles 102, and a through hole 202 is opened inside the connecting plate 2. The fixed shaft 1021 can be engaged in the through hole 202, allowing the connecting plate 2 to rotate flexibly around the fixed shaft 1021 as the axis. At the same time, a rubber post 201 is fixedly installed on the outer end face of the connecting plate 2. The structure of the rubber post 201 is connected to the second groove 1 on the right end surface of the silicone pad body 1. 05 Matching, when performing horizontal splicing, the connecting plate 2 can be rotated to insert the rubber column 201 into the second slot 105 of the adjacent silicone pad body 1. In this way, the silicone pads are connected in the left and right direction. At this time, the two silicone pad bodies 1 can be rotated, and the two silicone pad bodies 1 can be folded into different dimensions according to the user's needs. The lower end face of the card plate 3 has a device groove 301, and the magnet block 4 is engaged in the device groove 301. The inner circumference of the device groove 301 has six limiting holes 3011 arranged in a ring structure. The outer end of the magnet block 4 The surface is equipped with six limiting posts 401, which are respectively engaged in the six limiting holes 3011. Through the cooperation between the limiting posts 401 and the limiting holes 3011, the position of the magnet 4 in the device groove 301 can be accurately fixed to prevent it from loosening or shifting, and ensure that the magnet 4 can stably exert its magnetic attraction. The upper surface of the silicone pad body 1 is equipped with two sets of arrow-shaped friction strips 101. When an item is placed on the silicone pad, these friction strips 101 will generate a large friction force with the contact surface of the item, preventing the item from easily sliding on the silicone pad.
Claims
1. A splicing magnetic positioning silicone pad, characterized in that: The device includes a silicone pad body (1), the main body of which is a rectangular plate structure. Two baffles (102) are fixedly installed on one side of the left end of the silicone pad body (1), and a fixed shaft (1021) is installed between the two baffles (102). A third slot (106) is provided in the middle of the lower end face of the silicone pad body (1); a connecting plate (2), the inner end of which is divided into an arc structure, and a through hole (202) is provided inside the connecting plate (2); a clamping plate (3), the outer end face of which is an inclined structure, and the clamping plate (3) is clamped in the third slot (106) at the lower end of the silicone pad body (1); and a magnet block (4), the main body of which is a circular plate structure, and six limiting posts (401) are evenly fixedly installed on the outer end face of the magnet block (4). The six limiting posts (401) are arranged in a ring structure.
2. The spliced magnetic positioning silica gel pad according to claim 1, characterized in that: The lower end face of the card plate (3) is provided with a device groove (301), and the magnet block (4) is engaged inside the device groove (301).
3. The splicing magnetic positioning silicone pad as described in claim 2, characterized in that: The device groove (301) has six limiting holes (3011) on its inner circumference. The six limiting holes (3011) are arranged in a ring structure. The six limiting posts (401) at the outer end of the magnet block (4) are respectively engaged in the six limiting holes (3011).
4. The spliced magnetic positioning silica gel pad according to claim 1, characterized in that: The front surface of the silicone pad body (1) is uniformly equipped with four locking posts (103), the end of the locking posts (103) is a spherical structure, and the rear surface of the silicone pad body (1) is uniformly provided with four first locking slots (104), the structure of the first locking slots (104) is the same as the structure of the locking posts (103).
5. The magnetic positioning silicone gel pad of claim 1, wherein: Two sets of friction strips (101) are installed on the upper end surface of the silicone pad body (1). The friction strips (101) are arrow-shaped, and a second slot (105) is opened on the right end surface of the silicone pad body (1).
6. The spliced magnetic positioning silica gel pad of claim 1, wherein: The fixed shaft (1021) is snapped into the through hole (202) inside the connecting plate (2). A rubber column (201) is fixedly installed on the outer end face of the connecting plate (2). The structure of the rubber column (201) is the same as the structure of the second slot (105) on the right end of the silicone pad body (1).