An integrated machine room construction wiring structure and wiring method
The modular cable clamping mechanism and clamping components enable efficient clamping and heat dissipation in network cable cabling in the computer room, solving the problem of slow installation speed caused by a large number of network cables, improving construction efficiency and ease of later maintenance, and enhancing heat dissipation.
Patent Information
- Application Number
- CN202511264779.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2045-09-05
AI Technical Summary
In existing technologies, the number of network cables in the data center cabling process is large and requires multiple fixing points, resulting in slow installation speed and affecting the construction and cabling efficiency of integrated data centers.
The modular cable clamping mechanism and clamping components are used to initially organize the cables at the same installation point, and then pull them to the corresponding points for locking and fixing. Combined with the heat dissipation groove design and gear meshing shaft, the network cable can be efficiently clamped and cooled.
It improves the efficiency of data center construction and cabling, facilitates later maintenance, and enhances the heat dissipation effect and reduces the difficulty of cabling through the design of heat dissipation grooves and gear meshing shafts.
Smart Images

Figure CN120810472B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of data center cabling technology, and in particular to an integrated data center construction cabling structure and cabling method. Background Technology
[0002] As the core hub for data processing and transmission, the rationality of the internal network cabling system of an integrated data center directly affects the operating efficiency of equipment and the security of data transmission. The standardization and efficiency of network cabling directly affect the operational stability and ease of maintenance of the data center. Furthermore, network cables are generally connected through cable trays, and network cables from different gateways are ultimately routed through the main cable tray.
[0003] In practice, multiple cable clamps are typically used to hold and secure the network cables. When cabling a large number of network cables, multiple points of fixation are required. Each fixation point necessitates reorganizing the cables and reinstalling the cable clamps, resulting in slow installation and impacting the efficiency of cabling in integrated data center construction. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art and provide an integrated data center construction cabling structure that can overcome or at least partially solve the above problems.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] An integrated data center cabling structure includes: a cabling tray for placing network cables and multiple sets of ventilation holes on the cabling tray; it also includes: multiple sets of modular cable clamping mechanisms for separating the network cables into multiple rows, placed on the cabling tray; the multiple cable clamping mechanisms are detachably connected to form a whole through an installation component, and each cable clamping mechanism is equipped with a clamping component for clamping the network cables; during network cable cabling, the network cables are installed between the multiple cable clamping mechanisms at the same installation point, and the multiple cable clamping mechanisms are installed on the installation component; the installation component is pulled so that one of the cable clamping mechanisms reaches a set position and is then removed, and the network cables are clamped by the clamping components inside the removed cable clamping mechanism.
[0007] To facilitate the securing of network cables in rows, the cable clamping mechanism further includes a bottom cable plate at the bottom, multiple cable plate modules, pads disposed between two adjacent cable plate modules and between the bottom cable plate and the cable plate modules, and a top cable plate at the top. The bottom cable plate, pads, and cable plate modules are all provided with threaded grooves, and each end of the threaded groove is provided with a placement groove. The top cable plate and the cable plate modules, the pads and the cable plate modules, and the bottom cable plate and the pads are all fixedly connected by bolts.
[0008] To facilitate securing the network cable, preferably, both sides of the bottom cable plate and both sides of the cable plate module are provided with cable clamping grooves for limiting the network cable. The clamping assembly includes a pressure plate placed in the cable clamping groove at the bottom of the cable plate module. The two ends of the pressure plate are symmetrically fixedly connected with drive rods for positioning. The pad has through holes that fit with the drive rods, and one end of the drive rod has a retaining ring for limiting the position. The top of the drive rod located on the lower side fits against the pressure plate on the upper side. The top cable plate has symmetrically provided threaded holes for the drive rods to slide. After installing bolts in the threaded holes, the drive rods are squeezed to make the pressure plate press the network cable.
[0009] Furthermore, heat dissipation grooves are provided on the pressure plate, the bottom wire plate, and the wire plate module.
[0010] Preferably, the line plate module, the pad block and the bottom line plate are all provided with positioning grooves, the positioning plate with the fixing ear is slidable in the positioning groove, and the positioning plate is fixedly connected to the top line plate. The fixing ear is fixed to the line clamping mechanism by bolts passing through and through the vent hole and cooperating with the nut.
[0011] To facilitate the overall installation of multiple wire clamping mechanisms, the installation assembly further includes an operating plate with multiple sliding rods equidistantly slidable. A handle is symmetrically fixedly connected to the upper side of the operating plate. A spring is fixedly connected between the upper end of each sliding rod and the operating plate, and a locking block is fixedly connected to the other end. The top wire plate has a through horizontal slot and a vertical slot for engaging the locking block. The top wire plate is fixedly installed by pressing and rotating the sliding rod.
[0012] For ease of cable management, preferably, a control box mounted on the operation panel is also included. Multiple sets of rotating shafts are rotatably arranged on one side of the control box, and multiple movable rods with cable clips are equidistantly arranged on the rotating shafts. The side of the cable clip away from the rotating shaft is provided with an installation groove for inserting the network cable into the cable clip. The control box is provided with a drive component for driving the rotating shafts to rotate.
[0013] Preferably, the drive assembly includes a gear fixed to the rotating shaft, a plurality of electric telescopic rods are fixedly connected to one side of the control box, and the output end of the electric telescopic rod is fixedly connected to a toothed plate that meshes with the gear.
[0014] Furthermore, the wire clip is positioned on one side of the moving rod that rotates along the axis of rotation.
[0015] The cabling method for integrated data center construction mainly includes the following steps:
[0016] Step 1: Place the network cable on the cable tray beforehand;
[0017] Step 2: First, use a set of cable clamping mechanisms to arrange the network cables, then clamp them using clamping components, and finally fix the cable clamping mechanisms to the cable tray.
[0018] Step 3: Use multiple sets of cable clamping mechanisms to lay the network cable at the same point;
[0019] Step 4: Pull the cable clamping mechanism to place a cable clamping mechanism at the next cabling point, and install the cable clamping mechanism onto the cable tray. Repeat this operation in sequence.
[0020] Compared with the prior art, the present invention provides an integrated cabling structure for computer room construction, which has the following advantages:
[0021] 1. This integrated data center cabling structure allows for cable management by pulling back the control panel and using multiple cable clamping mechanisms to limit and manage network cables. When moving to another fixed point, a cable clamping mechanism at the end is released via a sliding rod, and the clamping mechanism is then installed onto the cabling tray. Bolts are inserted into the threaded holes to press the drive rod, thus securing the network cable. This method improves cabling efficiency by initially managing the network cable at one point and then pulling it to the corresponding installation point for locking. Furthermore, the network cable can be replaced later by releasing the clamping components, facilitating future maintenance. Additionally, the clamping mechanism can be released to adjust any bent network cable.
[0022] 2. The integrated data center cabling structure can dissipate heat from the network cable by setting heat dissipation grooves on the pressure plate, bottom cable plate and cable plate module. In addition, when the pressure plate presses the network cable, there is a heat dissipation gap between the pressure plate and the upper cable plate module. The heat dissipation gap can make the network cable in a semi-suspended state, which improves its heat dissipation effect.
[0023] 3. This integrated data center cabling structure uses gears to rotate shafts, which in turn move multiple rows of network cables up and down. The upper shaft rotates upwards, and the lower shaft rotates downwards, separating the originally clustered network cables. This facilitates pulling multiple cable clamping mechanisms backwards, improving cabling efficiency. When multiple shafts pull multiple rows of network cables into an open state, cable management is performed. When multiple rows of network cables are brought together, the cables at the rear end, after being managed, are pulled backwards by the staff to enter between multiple cable clamping mechanisms. The operation is simple, requiring no manual pulling of network cables, effectively improving cabling efficiency and reducing cabling difficulty.
[0024] The parts of this device not covered herein are the same as or can be implemented using existing technologies. This invention improves cabling efficiency by initially organizing the network cables at one point, then pulling them to the corresponding installation points and locking them in place. Furthermore, the network cables can be replaced later by releasing the limiting components of the clamping assembly, facilitating future maintenance. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the pre-installed integrated data center cabling structure proposed in this invention.
[0026] Figure 2 This is a schematic diagram of the network cable and cable clamping mechanism in the integrated data center construction cabling structure proposed in this invention;
[0027] Figure 3 This is a schematic diagram of the integrated data center cabling structure proposed in this invention after the cable clamping mechanism has been installed.
[0028] Figure 4 This is a schematic diagram of the cable clamping mechanism in the integrated data center construction cabling structure proposed in this invention;
[0029] Figure 5 This is a schematic diagram of the unfolded structure of the cable clamping mechanism in the integrated data center construction cabling structure proposed in this invention. Figure 1 ;
[0030] Figure 6 This is a schematic diagram of the unfolded structure of the cable clamping mechanism in the integrated data center construction cabling structure proposed in this invention. Figure 2 ;
[0031] Figure 7 This is a schematic diagram of the integrated data center cabling structure proposed in this invention;
[0032] Figure 8 This is a top view of the integrated data center cabling structure proposed in this invention;
[0033] Figure 9 This is a structural diagram showing the connection state between the gear and the toothed plate in the integrated data center construction cabling structure proposed in this invention;
[0034] Figure 10 This is a schematic diagram of the semi-spiral winding structure of the network cable in the integrated data center construction cabling structure proposed in this invention.
[0035] Figure 11 The integrated data center construction cabling structure proposed in this invention Figure 10 Enlarged diagram of point A in the middle
[0036] Figure 12 The integrated data center construction cabling structure proposed in this invention Figure 10 Enlarged diagram of point B in the middle.
[0037] In the diagram: 1. Cable tray; 101. Network cable; 102. Ventilation hole; 2. Cable clamping mechanism; 201. Bottom cable tray; 202. Cable tray module; 203. Heat dissipation groove; 204. Threaded groove; 205. Cable clamping groove; 206. Placement groove; 207. Through hole; 208. Positioning groove; 209. Pad; 3. Pressure plate; 301. Drive rod; 302. Snap ring; 4. Top cable tray; 401. Horizontal through groove; 4 02. Vertical slot; 403. Positioning plate; 404. Fixing ear; 405. Threaded hole; 5. Operation panel; 501. Handle; 502. Slide rod; 503. Spring; 504. Locking block; 6. Control box; 601. Rotating shaft; 602. Gear; 603. Electric telescopic rod; 604. Moving rod; 605. Arc-shaped surface; 606. Cable clamp; 607. Mounting slot; 7. Guide block; 701. Guide groove. Detailed Implementation
[0038] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0039] Example 1: Refer to Figures 1-6 An integrated data center cabling structure includes: a cabling tray 1 for placing network cables 101 and multiple sets of ventilation holes 102 opened on the cabling tray 1; and multiple sets of modular cable clamping mechanisms 2 for dividing the network cables 101 into multiple rows, placed on the cabling tray 1; wherein the cable clamping mechanisms 2 are connected to the cabling tray 1 by bolts.
[0040] Currently, when cabling the network cable 101 in the integrated computer room, the cable clamping mechanism 2 is assembled at each installation location to divide the network cable 101 into multiple neat rows. Each time the cable clamping mechanism 2 is installed, the network cable 101 needs to be organized to keep it in the same position and improve its aesthetics. However, when organizing the network cable 101 for overall cabling, the efficiency is slow due to multiple cable organization and installation of the cable clamping mechanism 2.
[0041] By setting multiple wire clamping mechanisms 2, and the multiple wire clamping mechanisms 2 are detachably connected to form a whole through the installation components, and the wire clamping mechanism 2 is equipped with a clamping component for clamping the network cable 101;
[0042] The wire clamping mechanism 2 includes a bottom wire plate 201 located at the bottommost side, multiple wire plate modules 202, pads 209 disposed between two adjacent wire plate modules 202 and between the bottom wire plate 201 and the wire plate modules 202, and a top wire plate 4 located at the top. The bottom wire plate 201, pads 209 and wire plate modules 202 are all provided with threaded grooves 204, and both ends of the threaded grooves 204 are provided with placement grooves 206. The top wire plate 4 is fixedly connected to the wire plate modules 202, the pads 209 are fixedly connected to the wire plate modules 202, and the bottom wire plate 201 is fixedly connected to the pads 209 by bolts.
[0043] Both sides of the bottom plate 201 and both sides of the plate module 202 are provided with cable clamping grooves 205 for limiting the position of the network cable 101. The clamping assembly includes a pressure plate 3 placed in the cable clamping groove 205 at the bottom of the plate module 202. The distance between the pressure plate 3 and the lower plate module 202 is less than 1.5 times the diameter of the network cable 101. The two ends of the pressure plate 3 are symmetrically fixedly connected with drive rods 301 for positioning. The pad 209 is provided with a through hole 207 that fits with the drive rod 301. One end of the drive rod 301 is provided with a retaining ring 302 for limiting the position. The top of the drive rod 301 located on the lower side fits with the pressure plate 3 on the upper side. The top plate 4 is symmetrically provided with threaded holes 405 for sliding of the drive rod 301. After the bolt is installed in the threaded hole 405, the drive rod 301 is squeezed to make the pressure plate 3 press the network cable 101.
[0044] The mounting assembly includes an operating plate 5 with multiple sliding rods 502 equidistantly slidable. A handle 501 is symmetrically fixedly connected to the upper side of the operating plate 5. A spring 503 is fixedly connected between the upper end of the sliding rod 502 and the operating plate 5, and a locking block 504 is fixedly connected to the other end. The top panel 4 has a through horizontal slot 401 and a vertical slot 402 for engaging the locking block 504. The top panel 4 is fixedly installed by pressing and rotating the sliding rod 502.
[0045] When installing the network cable 101, the network cable 101 is installed between multiple cable clamping mechanisms 2 at the same installation point, and the multiple cable clamping mechanisms 2 are installed on the installation component. The installation component is pulled so that one of the cable clamping mechanisms 2 reaches the set position and is then removed. The network cable 101 is then clamped by the clamping component inside the removed cable clamping mechanism 2.
[0046] In the actual cabling process, the network cable 101 is first fixed by a set of cable clamping mechanisms 2. Then, multiple bottom cable trays 201 are laid on the cabling tray 1 and the multiple bottom cable trays 201 are made to fit together. A row of network cables 101 is laid on the bottom cable trays 201. Then, the pads 209 and cable tray modules 202 are installed in sequence and fixed diagonally with bolts. Then, the second row of network cables 101 is laid and the pads 209 and cable tray modules 202 are installed layer by layer. After the multiple layers are laid, the top cable tray 4 is finally installed on the top and fixed diagonally with bolts. After the multiple sets of cable clamping mechanisms 2 are installed, the multiple sets of cable clamping mechanisms 2 are installed on the operation panel 5 by pressing and rotating the slide bar 502 to fix the multiple sets of cable clamping mechanisms 2.
[0047] Finally, pull the control panel 5 backward to limit and manage the network cable 101 through multiple cable clamping mechanisms 2. When it moves to another fixed point, directly release one of the cable clamping mechanisms 2 located at the end through the slide rod 502, and install the cable clamping mechanism 2 onto the cabling tray 1. The drive rod 301 is pressed by inserting the bolt into the threaded hole 405 to achieve the clamping and fixing of the network cable 101. This method improves the efficiency of cabling by initially managing the network cable 101 at one point and then pulling it to the corresponding installation point for locking and fixing. In addition, the network cable 101 can be replaced later by releasing the limit of the clamping components, which is convenient for later maintenance. At the same time, when the network cable 101 is bent, the limit can be released for adjustment.
[0048] Example 2: Refer to Figure 4 , Figure 5 and Figure 6 An integrated computer room construction cabling structure is basically the same as that in Embodiment 1. Further, heat dissipation grooves 203 are provided on the pressure plate 3, the bottom cable plate 201 and the cable plate module 202.
[0049] By setting heat dissipation grooves 203 on the pressure plate 3, the bottom wire plate 201 and the wire plate module 202, the network cable 101 can be cooled. In addition, when the pressure plate 3 presses the network cable 101, there is a heat dissipation gap between the pressure plate 3 and the upper wire plate module 202. The heat dissipation gap can make the network cable 101 appear to be suspended, thereby improving its heat dissipation effect.
[0050] If the network cable 101 is taut, there will also be a heat dissipation gap between the two rows of network cables 101 between the two cable clamping mechanisms 2, which will improve its heat dissipation effect.
[0051] If it is not fully taut, the heat dissipation gap can serve as a vertical displacement space, which can minimize the contact between the two rows of network cables 101 and improve their heat dissipation effect. This is especially effective for computer rooms with high transmission volumes.
[0052] Positioning grooves 208 are provided on the wire plate module 202, the pad block 209 and the bottom wire plate 201. The positioning plate 403 with the fixing ear 404 is slidable in the positioning groove 208 and the positioning plate 403 is fixedly connected to the top wire plate 4. The fixing ear 404 is fixed to the wire clamping mechanism 2 by bolts passing through and through the vent hole 102 and cooperating with the nut.
[0053] By cooperating with the positioning plates 403 on both sides and the positioning grooves 208, the wire clamping mechanism 2 can be formed as a whole, preventing excessive lateral force on a certain layer of the wire plate module 202 from causing damage to the bolt connection. If a metal threaded module is embedded in the threaded groove 204 on the wire plate module 202 and the pad block 209, the corresponding problem can be solved, but the cost will increase accordingly.
[0054] Simply make the top wire plate 4, positioning plate 403 and fixing ear 404 metal, and by wrapping and fixing the wire clamping mechanism 2, damage to the end of the wire clamping mechanism 2 can be avoided when the whole is pulled later.
[0055] Example 3: Reference Figure 7 , Figure 8 and Figure 9 An integrated computer room construction cabling structure is basically the same as that in Embodiment 1. Furthermore, it also includes a control box 6 installed on the operation panel 5. Multiple sets of rotating shafts 601 are rotatably arranged on one side of the control box 6. Multiple moving rods 604 with wire clips 606 installed are equidistantly arranged on the rotating shafts 601. The side of the wire clip 606 away from the rotating shaft 601 is provided with an installation groove 607 for the network cable 101 to be inserted into the wire clip 606. The control box 6 is provided with a drive component for driving the rotating shafts 601 to rotate.
[0056] The drive assembly includes a gear 602 fixed to the rotating shaft 601, and a plurality of electric telescopic rods 603 are fixedly connected to one side of the control box 6, and the output end of the electric telescopic rods 603 is fixedly connected to a toothed plate that meshes with the gear 602.
[0057] After all the cable clamping mechanisms 2 are installed, the network cables 101 are placed into the designated cable clips 606 according to the corresponding arrangement. When multiple cable clamping mechanisms 2 are pulled, multiple electric telescopic rods 603 are activated, causing the electric telescopic rods 603 to continuously extend and retract the toothed plates. Finally, through the meshing with the gears 602, the rotating shaft 601 is rotated, thereby moving multiple rows of network cables 101 up and down. The upper part of the rotating shaft 601 rotates upward and the lower part of the rotating shaft 601 rotates downward, separating the network cables 101 that were originally gathered together. This makes it easier to pull multiple cable clamping mechanisms 2 backward, improving the efficiency of cable management. When multiple sets of rotating shafts 601 drive multiple rows of network cables 101 to be in an open state, cable management is performed. When multiple rows of network cables 101 are brought together, the cable 101 at the rear end, after being managed, cooperates with the backward pulling force of the staff to allow the network cables 101 to enter between multiple sets of cable clamping mechanisms 2. The operation is simple, and there is no need to manually pull the network cables 101, effectively improving the efficiency and difficulty of cable management.
[0058] As the moving rod 604 drives the network cable 101 to open through the cable clip 606, the network cable 101 will exert a reaction force on the cable clip 606. Therefore, by placing the cable clip 606 on the side where the moving rod 604 rotates along the axis of the rotating shaft 601, the network cable 101 will exert a reaction force on the cable clip 606.
[0059] By reversing the setup, when the moving rod 604 drives the network cable 101 to open via the cable clip 606, the side of the cable clip 606 away from the mounting slot 607 is subjected to force, thereby effectively preventing the network cable 101 from falling out of the cable clip 606 and improving the stability of the device.
[0060] The inner diameter of the end of the cable clip 606 away from the pivot 601 is the same as the diameter of the network cable 101, while the inner diameter of the other end is larger than the diameter of the network cable 101.
[0061] The inner diameter of the cable clip 606 at the end furthest from the pivot 601 is set to be the same as that of the network cable 101, while the inner diameter at the other end is larger than that of the network cable 101. When the multiple rows of network cables 101 are spread out, the friction between the network cable 101 and the cable clip 606 can be appropriately reduced. On the other hand, the cable clip 606 can be prevented from pulling the network cable 101 that has already passed through the cable clip 606, thereby improving the cabling efficiency and saving more effort for the staff.
[0062] When multiple rows of network cables 101 are brought together, the network cables 101 slide through the cable clip 606 to lay the cables. One end of the cable clip 606 is in contact with the network cables 101, which ensures that the network cables 101 pass through the cable clip 606 in a taut state, thus improving the cabling effect.
[0063] Example 4: Reference Figure 10 , Figure 11 and Figure 12An integrated computer room construction cabling structure is basically the same as that in Embodiment 1. Furthermore, a plurality of guide blocks 7 corresponding to the rotating shaft 601 are fixedly connected to the control box 6. A plurality of guide grooves 701 are provided on the guide blocks 7. One guide groove 701 is inclined to one side, and the other guide groove 701 is inclined to the other side. If the number of guide grooves 701 is odd, the guide groove 701 in the middle is vertical. The moving rod 604 is rotatably connected to the rotating shaft 601. The two ends of the moving rod 604 are symmetrically provided with arc-shaped surfaces 605 that contact the guide grooves 701.
[0064] By setting at least two sets of opposing and inclined guide grooves 701 to stagger the network cables 101 in the same row, the network cables 101 in the same row can be organized again, which improves the organization effect and the cabling efficiency.
[0065] The mounting slot 607 on the cable clip 606 serves as a reminder, which not only makes it easy to insert and remove the network cable 101, but also prevents the network cable 101 from falling off when it is brought together.
[0066] Reference Figure 10 The network cable 101 is wound in a semi-spiral state around the moving rod 604. When the network cable 101 is moved into an open state, it can provide a certain resistance to prevent the network cable 101 from being pulled in the opposite direction. In addition, the resistance provided by the spiral state makes it easier for the staff to straighten the network cable 101, thereby improving its wiring efficiency and effect. When the network cable 101 is moved into a gathered state, it further applies a certain resistance to the network cable 101, thereby improving its wiring effect.
[0067] Multiple shafts 601 are arranged longitudinally. For example, when there are three shafts 601, the gears 602 located at both ends of the shafts 601 have the same diameter, which is smaller than the diameter of the gear 602 located at the middle shaft 601. The teeth of each gear 602 are the same size. By setting the gears 602 to be different sizes, the movement distance of each row of net wires 101 can be different, and the net wires 101 in each adjacent row are far apart from each other to achieve the effect of wire management and prevent them from tangling.
[0068] Example 5: Integrated data center cabling method, mainly including the following steps:
[0069] Step 1: Place the network cable 101 on the cable tray 1 beforehand;
[0070] Step 2: First, use a set of cable clamping mechanisms 2 to arrange the network cable 101, then clamp it with clamping components, and then fix the cable clamping mechanism 2 on the cable tray 1.
[0071] Step 3: Use multiple sets of cable clamping mechanisms 2 to lay network cable 101 at the same point;
[0072] Step 4: Pull the cable clamping mechanism 2 to place another cable clamping mechanism 2 at the next cabling point, and install the cable clamping mechanism 2 onto the cabling tray 1. Repeat this operation in sequence.
[0073] 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. An integrated cabling structure for a data center, comprising: The cabling tray (1) for placing network cables (101) and a plurality of ventilation holes (102) opened on the cabling tray (1) are characterized in that they further include: a plurality of modular cable clamping mechanisms (2) for dividing the network cables (101) into multiple rows, placed on the cabling tray (1); Multiple wire clamping mechanisms (2) are detachably connected to form a whole through an installation component, and a clamping component for clamping the network cable (101) is installed on the wire clamping mechanism (2); When wiring the network cable (101), the network cable (101) is installed between multiple cable clamping mechanisms (2) at the same installation point, and the multiple cable clamping mechanisms (2) are installed on the installation assembly. The installation assembly is pulled so that one of the cable clamping mechanisms (2) reaches the set position and is removed. The network cable (101) is then clamped by the clamping component inside the removed cable clamping mechanism (2).
2. The integrated data center cabling structure according to claim 1, characterized in that, The wire clamping mechanism (2) includes a bottom wire plate (201) located at the bottommost side, multiple wire plate modules (202), a pad (209) disposed between two adjacent wire plate modules (202) and between the bottom wire plate (201) and the wire plate module (202), and a top wire plate (4) located at the top. The bottom wire plate (201), the pad (209) and the wire plate module (202) are all provided with threaded grooves (204). Placement grooves (206) are opened at both ends of the threaded grooves (204). The top wire plate (4) and the wire plate module (202), the pad (209) and the wire plate module (202), and the bottom wire plate (201) and the pad (209) are all fixedly connected by bolts.
3. The integrated data center cabling structure according to claim 2, characterized in that, Both sides of the bottom line plate (201) and both sides of the line plate module (202) are provided with wire-locking grooves (205) for limiting the network cable (101). The clamping assembly includes a pressure plate (3) placed in the wire-locking groove (205) at the bottom of the line plate module (202). The two ends of the pressure plate (3) are symmetrically fixedly connected with drive rods (301) for positioning. The pad (209) is provided with a through hole (207) that fits with the drive rod (301). One end of the drive rod (301) is provided with a retaining ring (302) for limiting. The top of the drive rod (301) located on the lower side fits with the pressure plate (3) on the upper side. The top line plate (4) is symmetrically provided with threaded holes (405) for sliding the drive rod (301). After the bolt is installed in the threaded hole (405), the drive rod (301) is squeezed to make the pressure plate (3) press the network cable (101).
4. The integrated data center cabling structure according to claim 3, characterized in that, Heat dissipation slots (203) are provided on the pressure plate (3), bottom line plate (201) and line plate module (202).
5. The integrated data center cabling structure according to claim 2, characterized in that, The line plate module (202), the pad block (209) and the bottom line plate (201) are all provided with positioning grooves (208). The positioning plate (403) with the fixing ear (404) is slid in the positioning groove (208) and the positioning plate (403) is fixedly connected to the top line plate (4). The fixing ear (404) is fixed to the wire clamping mechanism (2) by bolts passing through and through the vent hole (102) and cooperating with the nut.
6. The integrated data center cabling structure according to claim 2, characterized in that, The installation assembly includes an operating plate (5) with multiple sliding rods (502) equidistantly slidable. A handle (501) is symmetrically fixedly connected to the upper side of the operating plate (5). A spring (503) is fixedly connected between the upper end of the sliding rod (502) and the operating plate (5), and a locking block (504) is fixedly connected to the other end. The top panel (4) has a through horizontal groove (401) and a vertical slot (402) for locking the locking block (504). The top panel (4) is fixedly installed by pressing and rotating the sliding rod (502).
7. The integrated data center cabling structure according to claim 1, characterized in that, It also includes a control box (6) installed on the operation panel (5). A plurality of rotating shafts (601) are rotatably arranged on one side of the control box (6). A plurality of moving rods (604) with wire clips (606) installed are equidistantly arranged on the rotating shafts (601). The side of the wire clip (606) away from the rotating shaft (601) is provided with a mounting groove (607) for the network cable (101) to be inserted into the wire clip (606). The control box (6) is provided with a drive assembly for driving the rotating shafts (601) to rotate.
8. The integrated data center cabling structure according to claim 7, characterized in that, The drive assembly includes a gear (602) fixed to the rotating shaft (601), and a plurality of electric telescopic rods (603) are fixedly connected to one side of the control box (6), and the output end of the electric telescopic rod (603) is fixedly connected to a toothed plate that meshes with the gear (602).
9. The integrated data center cabling structure according to claim 7, characterized in that, The line clip (606) is located on one side of the moving rod (604) that rotates along the axis of the rotating shaft (601).
10. An integrated data center cabling method, employing the integrated data center cabling structure described in claim 1, characterized in that, The main steps include: Step 1: Place the network cable (101) on the cable tray (1) beforehand; Step 2: First, use a set of wire clamping mechanisms (2) to arrange the network cable (101) for wiring, then clamp it with clamping components, and then fix the wire clamping mechanism (2) on the cable tray (1); Step 3: Use multiple sets of cable clamping mechanisms (2) to lay the network cable (101) at the same point; Step 4: Pull the cable clamping mechanism (2) to place a cable clamping mechanism (2) at the next cabling point and install the cable clamping mechanism (2) onto the cabling tray (1). Repeat this operation in sequence.
Citation Information
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