Assembly structure of internet of things network panel
By designing ejector and unlocking components, the problems of time-consuming and labor-intensive installation and screw wear in traditional IoT network panels are solved, enabling quick installation and disassembly and extending service life.
Patent Information
- Application Number
- CN202423123231.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2034-12-17
AI Technical Summary
Traditional IoT network panel installation methods are time-consuming and labor-intensive, and frequent disassembly can cause screw wear, affecting the service life.
The system employs a combination of ejection and unlocking components, utilizing the elastic deformation of the insert plate and curved spring to quickly fix and release the network panel from the pre-drilled slot. The combination of the ejection spring and the unlocking slider improves installation efficiency and reduces wear.
It enables rapid installation and removal of IoT network panels, reduces screw wear, and extends the lifespan of the device.
Smart Images

Figure CN223785377U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of Internet of Things (IoT) network panel technology, and in particular to an assembly structure for an IoT network panel. Background Technology
[0002] With the rapid development of IoT technology, IoT network panels are becoming increasingly common as key components in smart homes, smart buildings, and industrial automation. These panels not only need to support multiple communication protocols but also adapt to different application scenarios and environments to achieve efficient communication and data exchange between devices. They are typically responsible for transmitting data collected from the sensing layer to upper-layer platforms or application systems, ensuring stable, efficient, and secure data transmission. Therefore, the ease of installation and reliability of IoT network panels are crucial to the stability of the entire IoT system and the user experience.
[0003] Currently, the installation of IoT network panels mainly uses the traditional screw fixing method. Specifically, installers need to drill holes in the wall or ceiling, and then use bolts and nuts to fix the network panel to the pre-drilled holes. After fixing is completed, a decorative cover is usually used to cover the connection end to maintain aesthetics and protect the panel.
[0004] Traditional IoT network panel installation methods use screws for fixing, which is time-consuming and labor-intensive, and not conducive to quick disassembly and installation. When maintenance or upgrades are needed, the disassembly and reinstallation process is not only time-consuming, but frequent disassembly may also cause wear and tear on the screws and mounting holes, affecting the stability and lifespan of the panel. Utility Model Content
[0005] The purpose of this application is to address the problems of traditional IoT network panel installation methods that use screws for fixing, which are time-consuming, labor-intensive, and prone to wear and tear, thus reducing the service life. This application provides an assembly structure for IoT network panels.
[0006] To achieve the above objectives, this application specifically adopts the following technical solution:
[0007] An assembly structure for an Internet of Things (IoT) network panel includes a network panel body. One end of the network panel body has symmetrically symmetrically arranged guide ports. Insert plates are inserted into the guide ports. One end of each of the two insert plates is fixedly connected to an annular decorative cover plate. One side of the network panel body has a cover groove adapted to the annular decorative cover plate. One end of the network panel body is fixedly connected to a connector. One end of the network panel body has symmetrically fixedly connected fixing plates. Each of the two fixing plates has an arc-shaped spring fixedly connected to its opposite side. One end of the network panel body has symmetrically arranged storage slots. An arc-shaped locking block is slidably connected inside the storage slot. One end of the annular decorative cover plate has symmetrically arranged fixing slots adapted to the arc-shaped locking block. Multiple sharp protrusions are fixedly connected to the opposite sides of each of the two fixing plates. An ejector assembly is symmetrically installed inside the storage slot. One end of the annular decorative cover plate has symmetrically installed unlocking components.
[0008] By adopting the above technical solution, and through the coordinated use of the ejector and unlocking components, when the traction network panel body drives the connector head into the reserved slot, the traction annular decorative cover plate drives the insert plate into the guide slot. Simultaneously, the insert plate pushes the arc-shaped spring sheet to compress the fixing plate, causing deformation. Utilizing the elastic properties of the arc-shaped spring sheet, the fixing plate is ejected, causing deformation and pushing the sharp protrusion to abut against the inner wall of the reserved slot. This achieves rapid fixation between the network panel body and the reserved slot. Furthermore, as the annular decorative cover plate embeds into the cover slot, aligning the fixing slot with the storage slot, the ejector component pushes the arc-shaped locking block into place. The fixed slot is used to quickly fix the annular decorative cover to the network panel body. Then, the unlocking component is used to push the arc-shaped block out of the fixed slot to release the fixation between the annular decorative cover and the network panel body. This pulls the annular decorative cover to remove the insert plate from the guide socket and releases the pressure on the arc-shaped spring piece. This causes the sharp protrusion to disengage from the inner wall of the reserved groove. This facilitates the quick fixing and unfixing of the network panel body, the reserved groove, and the annular decorative cover, effectively improving the installation efficiency of the device and reducing the reduction of device lifespan due to screw wear.
[0009] Furthermore, the ejection assembly includes an ejection groove formed inside the network panel body, an ejection slider is slidably connected inside the ejection groove, one end of the ejection slider passes through the network panel body and is fixedly connected to an arc-shaped locking block, and a plurality of ejection springs are evenly fixedly connected to the other end of the ejection slider, the ejection springs being installed inside the ejection groove.
[0010] By adopting the above technical solution, and by setting the ejector spring and ejector slider to work together, when the annular decorative cover plate moves the fixing slot and the storage slot to align, the ejector spring's rebound characteristic is used to push the ejector slider to move the arc-shaped card block out of the storage slot and into the fixing slot. This allows the annular decorative cover plate and the network panel body to be quickly fixedly connected, improving the installation efficiency of the device.
[0011] Furthermore, the unlocking component includes an unlocking groove inside the annular decorative cover plate, an unlocking slider is slidably connected inside the unlocking groove, one end of the unlocking slider passes through the annular decorative cover plate and abuts against the arc-shaped locking block, and the other end of the unlocking slider passes through the annular decorative cover plate and is fixedly connected to a push button.
[0012] By adopting the above technical solution, and by setting the unlocking slider and the push button to work together, pushing the push button causes the unlocking slider to move along the length of the unlocking groove, which can cause the unlocking slider to come into contact with the arc-shaped block and push the arc-shaped block away from the inside of the fixed slot, so as to quickly release the fixed connection between the annular decorative cover and the network panel body.
[0013] Furthermore, a support plate is symmetrically fixedly connected to one end of the network panel body, and one side of the insert plate abuts against the support plate.
[0014] By adopting the above technical solution and using the support plate and the insert plate in combination, the support strength of the insert plate is effectively improved, and the installation stability of the device is enhanced.
[0015] Furthermore, each of the two insert plates is rotatably connected to a plurality of abutment rollers on opposite sides, and the insert plates form rolling abutment with the arc-shaped spring sheet through the abutment rollers.
[0016] By adopting the above technical solution, and by setting the insertion plate and the contact roller to work together, the insertion plate forms a rolling contact with the arc-shaped spring through the contact roller, thereby effectively reducing the wear between the contact roller and the arc-shaped spring and extending the service life of the device.
[0017] Furthermore, the annular decorative cover plate has unlocking slots at each of the four corners on the side facing the network panel body.
[0018] By adopting the above technical solution, and by setting up the cooperation between the annular decorative cover and the unlocking groove, the distance between the four corners of the annular decorative cover and the network panel body is effectively increased, thereby facilitating the use of the unlocking groove to release the annular decorative cover from the network panel body and improving the practicality of the device.
[0019] Furthermore, stabilization plates are fixedly connected to both the upper and lower ends of the annular decorative cover plate, and stabilization ports adapted to the stabilization plates are opened at both the upper and lower ends of the network panel body.
[0020] By adopting the above technical solution and using the stabilization plate and stabilization socket in combination, it is easy to make contact between the stabilization plate and the top and bottom of the reserved groove, thereby effectively improving the installation stability of the network panel body and the annular decorative cover plate.
[0021] Furthermore, a connection groove is provided at one end of the network panel body, the connection end of the connector passes through the network panel body and extends into the interior of the connection groove, an installation groove is provided at the top of the connection groove, a dust cover is slidably connected inside the installation groove, one end of the dust cover extends into the interior of the connection groove, and a dust cover spring is symmetrically fixedly connected to the other end of the dust cover, the dust cover spring is installed inside the installation groove.
[0022] By adopting the above technical solution, and by setting up the cooperation between the dust-proof spring and the dust-proof cover, the elastic characteristics of the dust-proof spring can be used to push the dust-proof cover to slide downward along the length of the mounting groove and embed it into the connection groove, thereby forming a shield for the connection port of the connector and effectively improving the dustproof effect at the connection port of the connector.
[0023] In summary, this application includes at least one of the following beneficial effects;
[0024] In this application, when the traction network panel body drives the connector to be inserted into the reserved slot, the traction annular decorative cover plate drives the insert plate to be inserted into the guide socket. At the same time, the insert plate pushes the arc-shaped spring to squeeze the fixing plate to deform, and pushes the sharp protrusion to form an abutment with the inner wall of the reserved slot, thereby achieving rapid fixation between the network panel body and the reserved slot. Then, the ejection component pushes the arc-shaped card block into the fixed card slot to achieve rapid fixation between the annular decorative cover plate and the network panel body. Then, the unlocking component pushes the arc-shaped card block out of the fixed card slot to release the fixation between the annular decorative cover plate and the network panel body. This pulls the annular decorative cover plate to drive the insert plate out of the guide socket and releases the compression of the arc-shaped spring, thereby causing the sharp protrusion to disengage from the abutment with the inner wall of the reserved slot. This facilitates rapid fixation and release between the network panel body and the reserved slot and the annular decorative cover plate, effectively improving the installation efficiency of the device and reducing the reduction of device lifespan due to screw wear.
[0025] This application, by setting up the cooperative use of an ejector spring and an ejector slider, facilitates the use of the ejector spring's rebound characteristics to push the ejector slider to push the arc-shaped card block out of the storage slot and into the fixed slot when the annular decorative cover plate moves the fixing slot and the storage slot to align. This allows the annular decorative cover plate and the network panel body to be quickly and securely connected, improving the installation efficiency of the device. Attached Figure Description
[0026] Figure 1 This is a three-dimensional structural diagram of the main body of the device in this application;
[0027] Figure 2 This is an exploded three-dimensional view of the main body of the device in this application;
[0028] Figure 3 The internal structure of the ejector chute in this application exploded;
[0029] Figure 4 The internal structure of the unlocking groove in this application exploded;
[0030] Figure 5 The internal structure of the mounting slot in this application exploded.
[0031] Explanation of reference numerals in the attached figures:
[0032] 1. Network panel body; 2. Guide socket; 3. Insert plate; 4. Annular decorative cover plate; 5. Cover groove; 7. Connector; 8. Fixing plate; 9. Arc-shaped spring; 10. Storage groove; 11. Arc-shaped locking block; 12. Fixing slot; 13. Ejection slide; 14. Ejection slider; 15. Ejection spring; 16. Unlocking slide; 17. Unlocking slider; 18. Push button; 19. Sharp protrusion; 20. Support plate; 21. Abutment roller; 22. Unlocking groove; 23. Stabilizing plate; 24. Stabilizing socket; 25. Connection groove; 26. Mounting groove; 27. Dust cover plate; 28. Dust-proof spring. Detailed Implementation
[0033] The following is in conjunction with the appendix Figure 1 —5 provides further details regarding this application.
[0034] This application discloses an assembly structure for an Internet of Things (IoT) network panel.
[0035] Reference Figure 1 - Figure 4An assembly structure for an Internet of Things (IoT) network panel includes a network panel body 1. One end of the network panel body 1 has symmetrically arranged guide ports 2. Insert plates 3 are inserted into the guide ports 2. One end of each of the two insert plates 3 is fixedly connected to an annular decorative cover plate 4. One side of the network panel body 1 has a cover groove 5 adapted to the annular decorative cover plate 4. One end of the network panel body 1 is fixedly connected to a connector head 7. One end of the network panel body 1 is symmetrically fixedly connected to a fixing plate 8. Both fixing plates 8 have arc-shaped spring pieces 9 fixedly connected to opposite sides. One end of the network panel body 1 has symmetrically arranged storage slots 10. Arc-shaped locking blocks 11 are slidably connected inside the storage slots 10. One end of the annular decorative cover plate 4 has symmetrically arranged fixing slots 12 adapted to the arc-shaped locking blocks 11. Multiple sharp protrusions 19 are fixedly connected to opposite sides of the two fixing plates 8. An ejector assembly is symmetrically installed inside the storage slots 10. One end of the annular decorative cover plate 4 has symmetrically installed unlocking components.
[0036] The ejection assembly includes an ejection groove 13 opened inside the network panel body 1. An ejection slider 14 is slidably connected inside the ejection groove 13. One end of the ejection slider 14 passes through the network panel body 1 and is fixedly connected to the arc-shaped block 11. A plurality of ejection springs 15 are evenly fixedly connected to the other end of the ejection slider 14. The ejection springs 15 are installed inside the ejection groove 13.
[0037] Furthermore, the unlocking component includes an unlocking groove 16 opened inside the annular decorative cover plate 4. An unlocking slider 17 is slidably connected inside the unlocking groove 16. One end of the unlocking slider 17 passes through the annular decorative cover plate 4 and abuts against the arc-shaped locking block 11. The other end of the unlocking slider 17 passes through the annular decorative cover plate 4 and is fixedly connected to a push button 18.
[0038] Furthermore, a support plate 20 is symmetrically fixedly connected to one end of the network panel body 1, and one side of the plug plate 3 abuts against the support plate 20.
[0039] Furthermore, multiple abutment rollers 21 are rotatably connected to the opposite sides of the two insert plates 3, and the insert plates 3 form rolling contact with the arc-shaped spring sheet 9 through the abutment rollers 21;
[0040] Furthermore, unlocking slots 22 are provided at all four corners of the annular decorative cover plate 4 facing the network panel body 1.
[0041] In use, firstly, the traction network panel body 1 drives the connector 7 to connect with the internal wiring of the reserved slot, and the network panel body 1 drives the connector 7 to insert into the reserved slot. Then, the traction ring decorative cover plate 4 drives the insert plate 3 to insert into the guide socket 2. One end of the insert plate 3 pushes the arc-shaped block 11 to squeeze the ejection spring 15 along the length of the ejection slide 13 and retracts into the storage slot 10. At the same time, one end of the insert plate 3 drives the contact roller 21 to form rolling contact with the arc-shaped spring 9 and squeezes the arc-shaped spring 9 to produce elastic deformation. At the same time, the arc-shaped spring 9 is forced to push the fixing plate 8 to drive the sharp protrusion 19 to deform towards the inner wall of the reserved slot and form contact and fixation with the inner wall of the reserved slot. The arc-shaped spring 9 rebounds and pushes one end of the insert plate 3 to form contact with the support plate 20.
[0042] Then, by utilizing the rebound characteristic of the ejector spring 15, when the insert plate 3 drives the annular decorative cover plate 4 to be inserted into the cover groove 5 and drives the fixing slot 12 to be aligned with the storage groove 10, the ejector spring 15 rebounds and ejects the ejector slider 14, and pushes the arc-shaped block 11 through the storage groove 10 and into the interior of the fixing slot 12, thereby achieving a fixed connection between the annular decorative cover plate 4 and the network panel body 1, and at the same time achieving a quick fixation between the network panel body 1 and the reserved groove;
[0043] Next, when it is necessary to fix the network panel body 1 to the reserved slot, the two push buttons 18 are manually pushed to move the unlocking slider 17 along the length of the unlocking groove 16. At the same time, the unlocking slider 17 pushes the arc-shaped block 11 to push the ejector slider 14 to compress the ejector spring 15 and cause it to contract and deform. This causes the arc-shaped block 11 to disengage from the inside of the fixing groove 12, thereby releasing the fixed connection between the annular decorative cover 4 and the network panel body 1. Then, the unlocking groove 22 is used to engage the annular decorative cover 4 to move the insert plate 3 out of the inside of the guide socket 2. This releases the pressure of the arc-shaped spring 9 on the insert plate 3, causing the arc-shaped spring 9 to rebound and causing the fixing plate 8 to release its contact with the inner wall of the reserved slot. This allows the network panel body 1 to quickly disengage from the fixed connection between it and the reserved slot. This facilitates the quick connection and release of the fixed connection between the network panel body 1 and the reserved slot and the annular decorative cover 4, effectively improving the installation efficiency of the device and reducing the reduction of the device's service life due to screw wear.
[0044] Reference Figure 1 and Figure 2 The upper and lower ends of the annular decorative cover plate 4 are fixedly connected with stabilization plates 23, and the upper and lower ends of the network panel body 1 are provided with stabilization ports 24 that are compatible with the stabilization plates 23.
[0045] When in use, when the traction annular decorative cover plate 4 drives the insert plate 3 into the interior of the guide socket 2, the annular decorative cover plate 4 drives the stabilizing plate 23 through the stabilizing socket 24 and extends into the interior of the reserved groove. At the same time, the stabilizing plate 23 forms a supporting contact with the inner wall of the reserved groove, which improves the installation stability of the network panel body 1 and the annular decorative cover plate 4.
[0046] Reference Figure 1 and Figure 3 , Figure 5 A connection groove 25 is provided at one end of the network panel body 1. The connection end of the connector 7 passes through the network panel body 1 and extends into the interior of the connection groove 25. A mounting groove 26 is provided at the top of the inner side of the connection groove 25. A dust cover 27 is slidably connected inside the mounting groove 26. One end of the dust cover 27 extends into the interior of the connection groove 25, and a dust spring 28 is symmetrically fixedly connected to the other end of the dust cover 27. The dust spring 28 is installed inside the mounting groove 26.
[0047] When in use, when connector 7 is not in use, the rebound characteristic of dust cover spring 28 is utilized to push dust cover plate 27 out of the dust cover plate 27 and push one end of dust cover plate 27 into the interior of connector groove 25 along the length direction of mounting groove 26, thus shielding the connection port of connector 7. This quickly achieves protection and shielding of the connection port of connector 7, effectively improving the dustproof effect at the connection port of connector 7.
[0048] Working principle: First, the traction of the network panel body 1 drives the connector 7 to connect with the internal wiring of the reserved slot, causing the network panel body 1 to insert the connector 7 into the reserved slot. Then, the traction of the annular decorative cover plate 4 drives the insert plate 3 to insert into the guide socket 2, causing one end of the insert plate 3 to push the arc-shaped locking block 11 along the length of the ejection slide 13 to squeeze the ejection spring 15 and retract into the storage slot 10. At the same time, one end of the insert plate 3 drives the abutment roller 21 to form a contact with the arc-shaped spring 9. The rolling contact and compression of the arc-shaped spring 9 causes elastic deformation. At the same time, the arc-shaped spring 9 is pushed by the force to the fixing plate 8, which in turn causes the sharp protrusion 19 to deform towards the inner wall of the reserved groove and form contact and fixation with the inner wall of the reserved groove. The arc-shaped spring 9 rebounds and pushes one end of the insert plate 3 to form contact with the support plate 20. At the same time, the annular decorative cover plate 4 drives the stabilizing plate 23 through the stabilizing insert 24 and extends into the interior of the reserved groove. Meanwhile, the stabilizing plate 23 forms a support contact with the inner wall of the reserved groove.
[0049] Then, by utilizing the rebound characteristic of the ejector spring 15, when the insert plate 3 drives the annular decorative cover plate 4 to be inserted into the cover groove 5 and drives the fixing slot 12 to be aligned with the storage groove 10, the ejector spring 15 rebounds and ejects the ejector slider 14, and pushes the arc-shaped block 11 through the storage groove 10 and into the interior of the fixing slot 12, thereby achieving a fixed connection between the annular decorative cover plate 4 and the network panel body 1.
[0050] Next, when it is necessary to contact the fixed connection between the network panel body 1 and the reserved slot, the two push buttons 18 are manually pushed to move the unlocking slider 17 along the length of the unlocking groove 16. At the same time, the unlocking slider 17 pushes the arc-shaped block 11 to push the ejector slider 14 to compress the ejector spring 15 and cause it to contract and deform. This causes the arc-shaped block 11 to disengage from the inside of the fixed slot 12, thereby releasing the fixed connection between the annular decorative cover 4 and the network panel body 1. Then, the unlocking groove 22 is used to engage the annular decorative cover 4 to move the insert plate 3 out of the inside of the guide slot 2. This causes the insert plate 3 to release the pressure on the arc-shaped spring 9, causing the arc-shaped spring 9 to rebound and causing the fixed plate 8 to release its contact with the inner wall of the reserved slot. This allows the network panel body 1 to quickly disengage from the fixed connection between itself and the reserved slot.
Claims
1. An assembly structure for an Internet of Things (IoT) network panel, comprising a network panel body (1), characterized in that: One end of the network panel body (1) is symmetrically provided with guide slots (2), and insert plates (3) are inserted inside the guide slots (2). One end of the two insert plates (3) is fixedly connected to an annular decorative cover plate (4). One side of the network panel body (1) is provided with a cover groove (5) that matches the annular decorative cover plate (4). One end of the network panel body (1) is fixedly connected with a connector (7), and one end of the network panel body (1) is symmetrically fixedly connected with a fixing plate (8). The two fixing plates (8) are fixed to opposite sides. The network panel body (1) is connected with an arc-shaped spring piece (9). A storage slot (10) is symmetrically opened at one end of the network panel body (1). An arc-shaped card block (11) is slidably connected inside the storage slot (10). A fixed card slot (12) adapted to the arc-shaped card block (11) is symmetrically opened at one end of the annular decorative cover plate (4). Multiple sharp protrusions (19) are fixedly connected on the opposite sides of the two fixed plates (8). An ejection component is symmetrically installed inside the storage slot (10). An unlocking component is symmetrically installed at one end of the annular decorative cover plate (4).
2. The assembly structure of an IoT network panel according to claim 1, characterized in that: The ejection assembly includes an ejection groove (13) formed inside the network panel body (1). An ejection slider (14) is slidably connected inside the ejection groove (13). One end of the ejection slider (14) passes through the network panel body (1) and is fixedly connected to the arc-shaped locking block (11). A plurality of ejection springs (15) are evenly fixedly connected to the other end of the ejection slider (14). The ejection springs (15) are installed inside the ejection groove (13).
3. The assembly structure of an IoT network panel according to claim 1, characterized in that: The unlocking component includes an unlocking groove (16) inside the annular decorative cover plate (4), and an unlocking slider (17) is slidably connected inside the unlocking groove (16). One end of the unlocking slider (17) passes through the annular decorative cover plate (4) and abuts against the arc-shaped locking block (11). The other end of the unlocking slider (17) passes through the annular decorative cover plate (4) and is fixedly connected to a push button (18).
4. The assembly structure of an IoT network panel according to claim 1, characterized in that: One end of the network panel body (1) is symmetrically fixedly connected to a support plate (20), and one side of the insert plate (3) abuts against the support plate (20).
5. The assembly structure of an IoT network panel according to claim 1, characterized in that: The two insert plates (3) are rotatably connected to a plurality of abutment rollers (21) on opposite sides, and the insert plates (3) form rolling abutment with the arc-shaped spring sheet (9) through the abutment rollers (21).
6. The assembly structure of an IoT network panel according to claim 1, characterized in that: The annular decorative cover plate (4) has unlocking slots (22) at each of the four corners on the side facing the network panel body (1).
7. The assembly structure of an IoT network panel according to claim 1, characterized in that: The upper and lower ends of the annular decorative cover plate (4) are fixedly connected with stabilizing plates (23), and the upper and lower ends of the network panel body (1) are provided with stabilizing ports (24) that are compatible with the stabilizing plates (23).
8. The assembly structure of an Internet of Things network panel according to claim 1, characterized in that: One end of the network panel body (1) is provided with a connection groove (25). The connection end of the connector (7) passes through the network panel body (1) and extends into the interior of the connection groove (25). The top of the connection groove (25) is provided with an installation groove (26). A dust cover plate (27) is slidably connected inside the installation groove (26). One end of the dust cover plate (27) extends into the interior of the connection groove (25), and the other end of the dust cover plate (27) is symmetrically fixedly connected with a dust spring (28). The dust spring (28) is installed inside the installation groove (26).