Intelligent regulation and control protection Internet of Things server wiring mechanism
By designing an intelligent control and protection wiring mechanism for IoT servers, the problems of inconvenient wire connection and deformation in existing technologies are solved, achieving stability and ease of maintenance of wire connection and extending service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANDONG HEZHONG ZHIYUAN INFORMATION TECH CO LTD
- Filing Date
- 2025-12-18
- Publication Date
- 2026-04-24
AI Technical Summary
Existing IoT server wiring mechanisms are inconvenient to operate when connecting large-diameter cables, cumbersome to disassemble, and can cause cable deformation that affects conductivity, and cannot be fine-tuned.
The IoT server wiring mechanism employs intelligent control and protection, including top and bottom connecting cylinders, connecting sleeves, anchoring adjustment components, locking components, and anti-detachment components. The anchoring adjustment components adjust the height of the top wire, the locking components adjust the height of the bottom wire, and the anti-detachment components prevent detachment, ensuring the stability and uniformity of the wire connection.
It improves the stability of wire connections and operation, simplifies the maintenance process, and extends the service life of the wiring mechanism.
Smart Images

Figure CN121922896A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of Internet of Things (IoT) wiring technology, and in particular to an intelligent control and protection IoT server wiring mechanism. Background Technology
[0002] The Internet of Things (IoT) server is the core hub of the IoT system. It is mainly responsible for connecting front-end devices, processing data, issuing instructions, supporting the stable operation and intelligent application of the entire IoT system, and can be programmed to intelligently control and protect front-end devices.
[0003] The wiring mechanism of an IoT server is a key component for realizing physical connection of devices and data or power transmission. Its core function is to ensure stable communication between front-end sensors, actuators and other devices and the server, while also taking into account ease of installation and efficiency of later maintenance.
[0004] For existing cables with a diameter greater than one centimeter, the wiring mechanism uses a chain structure connection, which requires fixing the connecting hook to the cable. The connecting hook and the cable are fixed by deformation clamping. This method is inconvenient to operate, and subsequent disassembly is cumbersome. It can also cause cable deformation, affecting conductivity. Therefore, CN102074830A discloses a wiring mechanism for a solar junction box, which includes a first wiring component and a second wiring component. The first wiring component is characterized by having a slot, and the second wiring component has a pin that can be inserted into the slot. An elastic connection structure is provided between the slot and the pin, which enables the first wiring component and the second wiring component to connect when the pin is inserted into the slot.
[0005] The above-mentioned wiring mechanism solves the technical problems of inconvenient disassembly and assembly and poor working stability of the existing wiring mechanism. However, in actual use, the wiring mechanism may cause positional deviation between the wiring mechanism and the wire due to the connection, which will affect the installation of surrounding wires. At the same time, the wiring will deform the wire, affecting the conductivity of the wire, and it is impossible to fine-tune the wire.
[0006] Therefore, a novel intelligent control and protection IoT server wiring mechanism can be adopted to address the shortcomings of existing technologies. Summary of the Invention
[0007] The purpose of this invention is to solve the problems existing in the prior art by proposing an intelligent control and protection IoT server wiring mechanism.
[0008] To achieve the above objectives, the present invention adopts the following technical solution: A smart control and protection IoT server wiring mechanism includes a top wire, a bottom wire, and a sleeve composed of a top connecting cylinder, a bottom connecting cylinder, a top connecting sleeve, and a bottom connecting sleeve that are interconnected. The bottom connecting cylinder is sleeved on the bottom wire, and an anti-detachment component that cooperates with the bottom wire is installed on the bottom connecting cylinder. Both the top connecting cylinder and the bottom connecting cylinder are fixedly connected to a glue-filling tube, and glue-filling thread grooves are opened on the inner walls of both the top connecting cylinder and the bottom connecting cylinder. The top connecting cylinder and the bottom connecting cylinder are fixedly connected by a connecting frame. An anchoring adjustment component that cooperates with the top guide wire is installed between the top connecting sleeve and the top connecting cylinder. A locking component that cooperates with the bottom guide wire is installed between the bottom connecting sleeve and the bottom connecting cylinder.
[0009] Preferably, a hollow annular collection box is fixedly installed at the bottom of the bottom connecting cylinder, and an adhesive dispensing pipe is fixedly connected to the collection box.
[0010] Preferably, the anti-detachment component includes a sliding groove formed on the bottom connecting cylinder, a sliding block is slidably installed in each sliding groove, a bracket is fixedly installed between two cooperating sliding blocks, a limiting block that cooperates with the bottom wire is rotatably installed on each bracket, a spiral groove is formed on the outer side of the bottom connecting cylinder, a threaded ring that cooperates with the limiting block is rotatably installed on the spiral groove, and a sealing mechanism that cooperates with the sliding groove is installed on the threaded ring.
[0011] Preferably, the sealing mechanism includes an upper sealing ring rotatably mounted on the upper part of the threaded ring and a lower sealing ring rotatably mounted on the lower part of the threaded ring. The upper sealing ring and the lower sealing ring are slidably connected to the bottom connecting cylinder, and both the upper sealing ring and the lower sealing ring are crescent-shaped.
[0012] Preferably, the anchoring adjustment assembly includes a top block that is slidably installed inside the top connecting cylinder and cooperates with the top guide wire, a top rod that is fixedly installed at the bottom of the top block, a connecting block that is fixedly installed at the bottom of the top rod, a push plate that is fixedly installed at the bottom of the connecting block, a screw that is fixedly installed at the bottom of the push plate, and a nut that cooperates with the screw that is fixedly installed on the inner wall of the top connecting sleeve.
[0013] Preferably, the connecting block, the top block, and the nut are each provided with a plurality of guide holes, and the orientation of each guide hole is the same as the spiral direction of the glue-filling thread groove.
[0014] Preferably, the locking assembly includes a fixing ring fixedly installed inside the bottom connecting sleeve, a threaded cylinder fixedly installed on the fixing ring, two threaded rings rotatably installed on the threaded cylinder, both threaded rings being fixedly connected to the bottom connecting sleeve, and multiple drainage holes being opened on the two threaded rings, the orientation of each drainage hole being the same as the direction of the glue-filling thread groove opened on the bottom connecting sleeve. The threaded cylinder has multiple L-shaped limiting track grooves, and a limiting block is slidably installed in each limiting track groove. A wedge block located between two threaded rings is fixedly installed between two mating limiting blocks. The threaded cylinder has multiple vertical through holes for corresponding wedge blocks to slide. A connecting plate is fixedly installed on each wedge block. A clamp that mates with the bottom wire is fixedly installed on each connecting plate. A reset mechanism that mates with the multiple connecting plates is installed on the threaded cylinder.
[0015] Preferably, the reset mechanism includes a support frame slidably installed inside the threaded cylinder, and a plurality of elastic telescopic rods are fixedly installed on the support frame, wherein the telescopic end of each elastic telescopic rod is fixedly connected to the corresponding connecting plate.
[0016] Preferably, the side of each clamp that mates with the bottom wire is arc-shaped, and the clamp is made by high-temperature quenching, with the side of the clamp that mates with the bottom wire having a rough design.
[0017] Preferably, a rubber plate is fixedly installed on the side of each clamp near the bottom wire.
[0018] Compared with existing technologies, the advantages of this invention are: 1. When connecting wires, this wiring mechanism supports the top wires by setting up anchoring adjustment components and adjusts the height of the top wires as needed to ensure that all ends of the top wires are on the same horizontal line, which facilitates subsequent processing and improves the stability of wire connections and operation.
[0019] 2. When connecting wires, this wiring mechanism can lock the bottom wires by setting a locking component, so that the bottom wires and the bottom connecting cylinder are connected as a whole, preventing the bottom wires from separating from the bottom connecting cylinder. At the same time, the locking component can also adjust the top height of the bottom connecting cylinder, so that the height of multiple bottom connecting cylinders on the same horizontal plane is consistent, thereby ensuring uniform wire connection and making maintenance more convenient.
[0020] 3. When connecting wires, this wiring mechanism can lock the bottom wire after locking by setting an anti-detachment component, further preventing the bottom wire from detaching from the bottom connecting cylinder. In addition, the anti-detachment component can also convert the vertical force on the bottom connecting cylinder into the horizontal force, thereby expanding the force range of the bottom connecting cylinder and extending its service life.
[0021] In summary, this invention adjusts the anchorage length between the top conductor and the sleeve within the anchorage standard range, and adjusts the height of the top conductor end as needed to make the top conductors on the same level flush. In addition, the bottom conductor can be locked and the sleeve height can be adjusted after locking to improve the stability of the connection between the bottom conductor and the sleeve. At the same time, it can also ensure that the top height of multiple sleeves on the same horizontal plane is consistent, ensuring the quality of the conductor connection and providing a strong foundation for subsequent operation. Attached Figure Description
[0022] The specific embodiments of the present invention will be further described in detail below with reference to the accompanying drawings, wherein: Figure 1 This is a schematic diagram of the intelligent control and protection IoT server wiring mechanism proposed in this invention; Figure 2 for Figure 1 Detailed schematic diagram of the top and bottom conductors; Figure 3 for Figure 1 Detailed schematic diagram of the structure after removing the top and bottom wires and rotating it by a certain angle; Figure 4 for Figure 3 Detailed schematic diagram of the structure after rotation at a certain angle; Figure 5 for Figure 4 Detailed schematic diagram of the planar structure along one of the angles; Figure 6 for Figure 5 Detailed schematic diagram of the three-dimensional structure along section AA; Figure 7 for Figure 6 Detailed schematic diagram of the structure after removing the top and bottom connecting sleeves; Figure 8 for Figure 7 Enlarged schematic diagram of the bottom connecting cylinder, upper sealing ring, and lower sealing ring; Figure 9 for Figure 8 Detailed schematic diagram of the cross-sectional structure at one of the angles; Figure 10 for Figure 9 Detailed schematic diagram of the planar structure along one of the angles; Figure 11 for Figure 9 Enlarged structural schematic diagram of the middle limit block section; Figure 12 for Figure 4 Enlarged structural schematic diagram of the top and bottom connecting sleeves; Figure 13 for Figure 12Detailed schematic diagram of the structure after rotation at a certain angle; Figure 14 for Figure 12 Enlarged schematic diagram of the top connecting sleeve; Figure 15 for Figure 14 Detailed schematic diagram of the planar structure along one of the angles; Figure 16 for Figure 15 Detailed schematic diagram of the three-dimensional structure along the BB section; Figure 17 for Figure 12 Detailed schematic diagram of the structure of the bottom connecting sleeve with the bottom wire; Figure 18 for Figure 17 Detailed schematic diagram of the planar structure along one of the angles; Figure 19 for Figure 18 Detailed schematic diagram of the three-dimensional structure of the bottom connecting sleeve along the CC section; Figure 20 for Figure 19 Detailed enlarged structural diagram of section D; Figure 21 for Figure 20 Medium threaded cylinder edge Figure 18 Detailed schematic diagram of the three-dimensional structure of the CC section; Figure 22 for Figure 21 Enlarged structural schematic diagram of the central support frame and clamps; Figure 23 for Figure 21 Detailed schematic diagram of the planar structure after removing the bottom wire.
[0023] In the diagram: 1. Top wire, 2. Bottom wire, 3. Top connecting cylinder, 4. Bottom connecting cylinder, 5. Top connecting sleeve, 6. Bottom connecting sleeve, 7. Glue filling tube, 8. Collection box, 9. Connecting frame, 10. Upper sealing ring, 11. Lower sealing ring, 12. Top block, 13. Top rod, 14. Threaded ring, 15. Annular groove, 16. Sliding groove, 17. Limiting block, 18. Glue filling threaded groove, 19. Sliding block, 20. Bracket, 21. Fixing ring, 22. Push plate, 23. Nut, 24. Screw, 25. Support frame, 26. Threaded cylinder, 27. Threaded ring, 28. Wedge, 29. Limiting block, 30. Clamp, 31. Elastic telescopic rod, 32. Limiting track groove. Detailed Implementation
[0024] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0025] Example 1: Refer to Figures 1-11 A smart control and protection IoT server wiring mechanism includes a top wire 1, a bottom wire 2, and a sleeve composed of a top connecting cylinder 3, a bottom connecting cylinder 4, a top connecting sleeve 5, and a bottom connecting sleeve 6 that are interconnected. The bottom connecting cylinder 4 is fitted onto the bottom wire 2, and an anti-detachment component that cooperates with the bottom wire 2 is installed on the bottom connecting cylinder 4. Before connecting the top wire 1 and the bottom wire 2, the top wire 1 and the bottom wire 2 need to be processed to form the following shape: Figure 2 The shape shown.
[0026] Both the top connecting cylinder 3 and the bottom connecting cylinder 4 are provided with annular grooves 15. The top connecting sleeve 5 and the bottom connecting sleeve 6 are fixedly installed with annular rings that cooperate with the annular grooves 15. During production, they can be made by stamping, which can play a certain role in preventing leakage.
[0027] A hollow annular collection box 8 is fixedly installed at the bottom of the bottom connecting cylinder 4, and a glue-filling pipe is fixedly connected to the collection box 8. After glue filling, glue needs to be injected into the collection box 8 through the glue-filling pipe to seal the bottom of the bottom connecting cylinder 4. This not only seals and prevents glue leakage, but also fixes the bottom wire 2.
[0028] The anti-detachment component includes a sliding groove 16 on the bottom connecting cylinder 4. A sliding block 19 is slidably installed in each sliding groove 16. A bracket 20 is fixedly installed between two cooperating sliding blocks 19. A limiting block 17 that cooperates with the bottom wire 2 is rotatably installed on each bracket 20. A spiral groove is opened on the outer side of the bottom connecting cylinder 4. A threaded ring 14 that mates with the limit block 17 is rotatably mounted on the spiral groove. A sealing mechanism that mates with the sliding groove 16 is mounted on the threaded ring 14. The bracket 20 has square blocks on both sides and a rotating shaft in the middle. The limit block 17 is rotatably connected to the rotating shaft. The limit block 17 rotates around the axis of the rotating shaft. The end of the limit block 17 away from the bottom wire 2 passes through the side wall of the bottom connecting cylinder 4.
[0029] After the bottom wire 2 and the bottom connecting cylinder 4 are connected, rotate the threaded ring 14. The threaded ring 14 will move upward under the action of the spiral groove (upper and lower reference). Figure 9 As the threaded ring 14 moves upward, initially the threaded ring 14 disengages from the third protrusion of the limiting block 17 (see reference). Figure 11 The limiting block 17 has three different protrusions on its side. For ease of description, the protrusions are named the first protrusion, the second protrusion, and the third protrusion from top to bottom. Then, continue to rotate the threaded ring 14. At this time, the threaded ring 14 abuts against the second protrusion of the limiting block 17, which will cause the limiting block 17 to rotate around the bracket 20. This will cause the upper part of the limiting block 17 to rotate towards the side closer to the bottom wire 2 until the limiting block 17 abuts against the bottom wire 2. At this time, the bottom wire 2 can be clamped. Since the surface of the bottom wire 2 has texture, the limiting block 17 will be stuck on the texture to prevent the bottom wire 2 from retracting and play a role in blocking the reverse. However, when inserted, the limiting block 17 may not be precisely locked at the bottom of the groove, but may be locked in a non-grooved area. In this case, it can only be resisted by friction and cannot play a good limiting role. At this time, it is necessary to continue to rotate the threaded ring 14. Since the limiting block 17 cannot continue to rotate, the tightening force of the threaded ring 14 will be transmitted to the sliding block 19, causing the sliding block 19 to slide in the sliding groove 16, thereby driving the limiting block 17 to move upward. At this time, the upper part of the limiting block 17 will move upward along the surface of the bottom wire 2 until the limiting block 17 is locked in the groove of the bottom wire 2.
[0030] The bottom wire 2 has a spiral groove on the surface of the part inside the bottom connecting cylinder 4. This increases the contact area with the adhesive, improves the adhesion between the adhesive and the bottom wire 2, and also allows the adhesive to spiral upward, reducing the generation of air bubbles.
[0031] The sealing mechanism includes an upper sealing ring 10 rotatably mounted on the upper part of the threaded ring 14 and a lower sealing ring 11 rotatably mounted on the lower part of the threaded ring 14. The upper sealing ring 10 and the lower sealing ring 11 are slidably connected to the bottom connecting cylinder 4, and both the upper sealing ring 10 and the lower sealing ring 11 are crescent-shaped.
[0032] Since the limiting block 17 penetrates the side wall of the bottom connecting cylinder 4, there will be a gap in the side wall of the bottom connecting cylinder 4. Once glue is injected, glue will leak at the gap. In order to avoid glue leakage, the upper sealing ring 10 and the lower sealing ring 11 are used to seal the gap. The upper sealing ring 10 and the lower sealing ring 11 are provided with grooves that cooperate with the first protrusion and the third protrusion, which does not affect the rotation of the limiting block 17. The upper sealing ring 10 and the lower sealing ring 11 will move together with the threaded ring 14.
[0033] Example 2: This example differs from Example 1 in that: (Refer to...) Figures 1-7 , Figures 12-16Both the top connecting cylinder 3 and the bottom connecting cylinder 4 are fixedly connected to the glue-filling tube 7, and both the top connecting cylinder 3 and the bottom connecting cylinder 4 are provided with glue-filling thread grooves 18. The top connecting cylinder 3 and the bottom connecting cylinder 4 are fixedly connected by the connecting bracket 9. An anchoring adjustment component that cooperates with the top wire 1 is installed between the top connecting sleeve 5 and the top connecting cylinder 3.
[0034] The adhesive is poured into the sleeve through the bottom filling tube 7. The adhesive is filled from bottom to top in the filling thread groove 18 inside the sleeve, which makes the filling more thorough. At the same time, the spiral upward movement can effectively reduce the generation of air bubbles. The purpose of filling is to make the connection more stable, and the alternating wrapping can also play a certain role in insulation.
[0035] Advantages of spiral grooves: Improved mixing effect: The spiral groove design helps to better mix materials during the dispensing process. Through the spiral movement, the adhesive is constantly turned over as it passes through the cylinder, thereby ensuring that different components can be mixed evenly and avoiding stratification or unevenness; Increased fluidity: The spiral groove can effectively reduce the flow resistance of the adhesive inside the dispensing cylinder, helping the adhesive to flow more smoothly.
[0036] This is especially important when performing large-volume dispensing, as it can reduce the risk of clogging and improve dispensing efficiency; increase dispensing speed due to the spiral groove design, which accelerates the flow of adhesive within the cylinder, thereby increasing the overall dispensing speed; and enhance stability, as the spiral groove structure increases the strength and stability of the dispensing cylinder, reducing the possibility of deformation under high pressure. This ensures that the cylinder can withstand a certain amount of pressure without breaking during the dispensing process.
[0037] The anchoring adjustment assembly includes a top block 12 that is slidably installed inside the top connecting cylinder 3 and cooperates with the top guide wire 1. The top block 12 moves to contact and abut against the end of the top guide wire 1. A top rod 13 is fixedly installed at the bottom of the top block 12. A connecting block is fixedly installed at the bottom of the top rod 13. A push plate 22 is fixedly installed at the bottom of the connecting block. A screw 24 is fixedly installed at the bottom of the push plate 22. A nut 23 that cooperates with the screw 24 is fixedly installed on the inner wall of the top connecting sleeve 5.
[0038] After inserting the top wire 1 into the top connecting sleeve 3, rotate the top connecting sleeve 5. The rotation of the top connecting sleeve 5 will cause the nut 23 to rotate. Since the screw 24 is restricted by the top block 12, it can only move with the top block 12 and will not rotate. Therefore, the rotation of the nut 23 can only move the screw 24. Thus, after inserting the top wire 1 into the top connecting sleeve 3, rotating the nut 23 will cause the screw 24 to move upwards (see upper and lower positions for reference). Figure 16The screw 24 moves upward, which drives the top block 12 to move upward through the push plate 22 and the top rod 13, thereby changing the position of the top conductor 1. This is used to adjust the anchorage length of the top conductor 1, and when the anchorage length meets the standard, the position of the top of the top conductor 1 is adjusted to ensure that the tops of the top conductors 1 on the same horizontal line are aligned, making the wiring clearer and facilitating subsequent maintenance.
[0039] Multiple guide holes are provided on the connecting block, top block 12 and nut 23. The orientation of each guide hole is the same as the spiral direction of the glue-filling thread groove 18. The purpose of this design is to ensure that the glue flows smoothly in the sleeve and does not affect the spiral rise of the glue.
[0040] Example 3: This example differs from Example 2 in that: (Refer to...) Figures 1-7 , Figures 17-23 A locking assembly that works with the bottom wire 2 is installed between the bottom connecting sleeve 6 and the bottom connecting cylinder 4.
[0041] The locking assembly includes a fixing ring 21 fixedly installed inside the bottom connecting sleeve 4. A threaded sleeve 26 is fixedly installed on the fixing ring 21. Two threaded rings 27 are rotatably installed on the external thread of the threaded sleeve 26. The two threaded rings 27 are fixedly connected to the bottom connecting sleeve 6. Multiple drainage holes are opened on the two threaded rings 27. The orientation of each drainage hole is the same as the orientation of the glue-filling thread groove 18 opened on the bottom connecting sleeve 6. The threaded cylinder 26 has multiple L-shaped limiting track grooves 32. Each limiting track groove 32 has a limiting block 29 slidably installed in it. A wedge 28 located between two threaded rings 27 is fixedly installed between two mating limiting blocks 29. The threaded cylinder 26 has multiple vertical through holes for the corresponding wedges 28 to slide. Each wedge 28 has a connecting plate fixedly installed on it. Each connecting plate has a clamp 30 that mates with the bottom wire 2. The threaded cylinder 26 is equipped with a reset mechanism that mates with the multiple connecting plates.
[0042] After the bottom wire 2 is inserted into the bottom connecting sleeve 4, the bottom connecting sleeve 6 is rotated. The rotation of the bottom connecting sleeve 6 drives the two threaded rings 27 fixedly connected to it to rotate. Under the action of the threaded sleeve 26, the threaded rings 27 will move downward on the threaded sleeve 26. In the initial state, the limiting block 29 is located in the horizontal groove of the L-shaped limiting track groove 32. Therefore, during the downward movement of the threaded ring 27, the threaded ring 27 abuts against the wedge block 28. Due to the restriction of the limiting track groove 32, the limiting block 29 can only move horizontally within the limiting track groove 32, which will cause the wedge block 28 to move towards the side closer to the bottom wire 2 (due to...). One side of the wedge 28 is designed with an inclined surface. When the threaded ring 27 abuts against the inclined surface of the wedge 28, a horizontal force and a vertical force will be generated according to the decomposition of the inside. The horizontal force will push the wedge 28 to move horizontally. Similarly, when multiple wedges 28 move at the same time, they will drive the clamp 30 to move towards the side closer to the bottom wire 2 until the multiple clamps 30 clamp the bottom wire 2. After clamping, since the end of the bottom wire 2 is machined and the size is fixed, after the clamp 30 clamps the bottom wire 2, the limiting block 29 will enter the vertical section of the L-shaped limiting track groove 32. If it is necessary to adjust the height of the bottom connecting cylinder 4, simply continue to rotate the bottom connecting sleeve 6, which will cause the threaded ring 27 to continue to move. The clamp 30 will not move down due to the restriction of the bottom wire 2, thus causing the bottom wire 2 to move down. Since the bottom wire 2 is stationary, according to the principle that forces are reciprocal, the bottom connecting cylinder 4 will move up, thereby adjusting the height of the bottom connecting cylinder 4.
[0043] Each of the clamps 30 has a rubber plate fixedly installed on the side near the bottom wire 2 to increase friction and make the clamping more stable.
[0044] The reset mechanism includes a support frame 25 that is slidably installed inside the threaded cylinder 26. Multiple elastic telescopic rods 31 are fixedly installed on the support frame 25. The telescopic end of each elastic telescopic rod 31 is fixedly connected to the corresponding connecting plate. Rotating the bottom connecting sleeve 6 in the reverse direction will cause the clamp 30 to move upward until the limiting block 29 moves to the junction of the vertical groove and the horizontal groove of the L-shaped limiting track groove 32. At this time, under the action of the elastic telescopic rod 31, the limiting block 29 enters the horizontal groove of the L-shaped limiting track groove 32, thereby resetting the clamp 30.
[0045] Each clamp 30 has an arc-shaped side that mates with the bottom wire 2, and the clamp 30 is made by high-temperature quenching, which can effectively improve the strength of the clamp 30. The side of the clamp 30 that mates with the bottom wire 2 is designed with a rough surface, which can effectively increase the friction between the clamp 30 and the bottom wire 2, thereby improving the stability of the connection between the bottom wire 2 and the bottom connecting cylinder 4.
[0046] The specific operating steps of this device are as follows: Before connecting the wires, the bottom wire 2 needs to be processed to make the bottom wire 2 reach the predetermined shape before the docking operation is performed. During the connection process, first, put the bottom connecting sleeve 4 onto the bottom wire 2, so that the glue tube 7 faces the direction that facilitates glue dispensing. Then, manually use a tool to rotate the bottom connecting sleeve 6. The bottom connecting sleeve 6 will lock the bottom wire 2 through the locking component, so that the sleeve and the bottom wire 2 are connected as a whole. If there is a deviation between the length of the bottom wire 2 and the length of the surrounding bottom wires 2, the locking component needs to be used to adjust the position of the sleeve so that the top height of the sleeve is flush with the bottom height of the surrounding sleeves. After the height of the sleeve is adjusted, the bottom wire 2 is locked and jammed by the anti-detachment component to prevent the bottom wire 2 from separating from the bottom connecting cylinder 4, thus playing a secondary reinforcement role. Finally, install the top wire 1, put the top wire 1 into the top connecting sleeve 3, then hold the top connecting sleeve 3 still and manually rotate the top connecting sleeve 5. The rotation of the top connecting sleeve 5 will drive the anchoring adjustment component to operate. The anchoring adjustment component will press against the top wire 1 to adjust the anchoring length between the top wire 1 and the top connecting sleeve 3, and adjust the height of the top wire 1 within the range of the anchoring length. After the bottom wire 2 and the top wire 1 are connected to the sleeve, glue is poured from the lower glue tube 7. The glue will spiral upward in the bottom connecting cylinder 4 until it flows out from the upper glue tube 7. During the glue pouring process, the glue pouring pressure is kept constant. After filling, the two glue tubes 7 are sealed.
[0047] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A smart control and protection IoT server wiring mechanism, comprising a top wire (1), characterized in that, It also includes a bottom conductor (2) and a sleeve consisting of a top connecting tube (3), a bottom connecting tube (4), a top connecting sleeve (5) and a bottom connecting sleeve (6) that are interconnected; The bottom connecting cylinder (4) is fitted onto the bottom wire (2). The bottom connecting cylinder (4) is equipped with an anti-detachment component that cooperates with the bottom wire (2). The top connecting cylinder (3) and the bottom connecting cylinder (4) are both fixedly connected with glue-filling tubes (7), and glue-filling thread grooves (18) are opened on the inner walls of the top connecting cylinder (3) and the bottom connecting cylinder (4). The top connecting cylinder (3) and the bottom connecting cylinder (4) are fixedly connected by a connecting bracket (9). An anchoring adjustment assembly that cooperates with the top wire (1) is installed between the top connecting sleeve (5) and the top connecting cylinder (3). A locking assembly that cooperates with the bottom wire (2) is installed between the bottom connecting sleeve (6) and the bottom connecting cylinder (4).
2. The intelligent control and protection IoT server wiring mechanism according to claim 1, characterized in that, The bottom connecting cylinder (4) has a hollow annular collection box (8) fixedly installed at the bottom, and the collection box (8) is connected to a glue-filling pipe.
3. The intelligent control and protection IoT server wiring mechanism according to claim 1, characterized in that, The anti-detachment component includes a sliding groove (16) on the bottom connecting cylinder (4). A sliding block (19) is slidably installed in each sliding groove (16). A bracket (20) is fixedly installed between two matching sliding blocks (19). A limiting block (17) that cooperates with the bottom wire (2) is rotatably installed on each bracket (20). A spiral groove is provided on the outer side of the bottom connecting cylinder (4). A threaded ring (14) that cooperates with the limiting block (17) is rotatably installed on the spiral groove. A sealing mechanism that cooperates with the sliding groove (16) is installed on the threaded ring (14).
4. The intelligent control and protection IoT server wiring mechanism according to claim 3, characterized in that, The sealing mechanism includes an upper sealing ring (10) rotatably mounted on the upper part of the threaded ring (14) and a lower sealing ring (11) rotatably mounted on the lower part of the threaded ring (14). The upper sealing ring (10) and the lower sealing ring (11) are slidably connected to the bottom connecting cylinder (4), and both the upper sealing ring (10) and the lower sealing ring (11) are crescent-shaped.
5. The intelligent control and protection IoT server wiring mechanism according to claim 1, characterized in that, The anchoring adjustment assembly includes a top block (12) that is slidably installed inside the top connecting cylinder (3) and cooperates with the top conductor (1). A top rod (13) is fixedly installed at the bottom of the top block (12). A connecting block is fixedly installed at the bottom of the top rod (13). A push plate (22) is fixedly installed at the bottom of the connecting block. A screw (24) is fixedly installed at the bottom of the push plate (22). A nut (23) that cooperates with the screw (24) is fixedly installed on the inner wall of the top connecting sleeve (5).
6. The intelligent control and protection IoT server wiring mechanism according to claim 5, characterized in that, The connecting block, top block (12) and nut (23) are each provided with multiple guide holes, and the orientation of each guide hole is the same as the spiral direction of the glue-filling thread groove (18).
7. The intelligent control and protection IoT server wiring mechanism according to claim 1, characterized in that, The locking assembly includes a fixing ring (21) fixedly installed inside the bottom connecting sleeve (4), a threaded sleeve (26) fixedly installed on the fixing ring (21), and two threaded rings (27) rotatably installed on the threaded sleeve (26). The two threaded rings (27) are fixedly connected to the bottom connecting sleeve (6). The two threaded rings (27) are provided with multiple drainage holes, and the orientation of each drainage hole is the same as the orientation of the glue-filling threaded groove (18) opened on the bottom connecting sleeve (6). The threaded cylinder (26) has multiple L-shaped limiting track grooves (32), and a limiting block (29) is slidably installed in each limiting track groove (32). A wedge (28) located between two threaded rings (27) is fixedly installed between two matching limiting blocks (29). The threaded cylinder (26) has multiple vertical through holes for the corresponding wedges (28) to slide. A connecting plate is fixedly installed on each wedge (28), and a clamp (30) that cooperates with the bottom wire (2) is fixedly installed on each connecting plate. A reset mechanism that cooperates with multiple connecting plates is installed on the threaded cylinder (26).
8. The intelligent control and protection IoT server wiring mechanism according to claim 7, characterized in that, The reset mechanism includes a support frame (25) that is slidably installed inside the threaded cylinder (26). Multiple elastic telescopic rods (31) are fixedly installed on the support frame (25), and the telescopic end of each elastic telescopic rod (31) is fixedly connected to the corresponding connecting plate.
9. The intelligent control and protection IoT server wiring mechanism according to claim 8, characterized in that, Each of the clamps (30) has an arc-shaped side that mates with the bottom wire (2), and the clamps (30) are made by high-temperature quenching. The side of the clamps (30) that mates with the bottom wire (2) is designed with a rough surface.
10. The intelligent control and protection IoT server wiring mechanism according to claim 9, characterized in that, Each of the clamps (30) has a rubber plate fixedly installed on the side near the bottom wire (2).
Citation Information
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Wiring mechanism of solar energy junction box
CN102074830A