Wire installation insulation frame based on bank data center machine room
By designing a wire installation insulation rack with linkage mechanism and quick disassembly mechanism, the problem of difficult to safely disassemble and assemble wires in the bank data center computer room is solved, and the rapid and safe installation and disassembly of wires are achieved.
Patent Information
- Application Number
- CN202510278229.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2025-05-27
AI Technical Summary
In the bank data center computer room, it is difficult to disassemble and assemble safely and quickly when the wire is live, resulting in ineffective maintenance.
A wire-mounted insulation frame including a linkage mechanism and a quick disassembly mechanism is designed. The linkage mechanism realizes rapid connection and disconnection of wires through the cooperation of insulated support rods, movable plates and mobile frames; the quick disassembly mechanism realizes rapid disassembly of wires through the cooperation of restricted blocks, limit blocks and telescopic springs.
It realizes safe and quick disassembly of wires in live state, improves the efficiency of wire installation and disassembly, and facilitates operation.
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Figure CN120049329A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to an insulating bracket for wire installation, specifically an insulating bracket for wire installation based on a bank data center computer room, belonging to the technical field of wire installation brackets. Background Technique
[0002] A bank data center computer room refers to a network computer room of a data center built on a high-speed distributed storage network. It aggregates a large number of different types of storage devices in the network through application software to work together to form a secure data storage and access system. During the construction of the central computer room, wires need to be led out from the power source and connected to the data body. During the erection process of the wires, insulating brackets are required to support the wires. On the one hand, the wires are classified and arranged, and on the other hand, the wires are supported and stabilized.
[0003] When erecting the wires in the data center computer room, generally, the two ends of the wire are respectively inserted into the power connection slot and the data body frame by the staff, and the fixing bolts are used with special tools to clamp and fix the wire terminals. Since there are many wires on the data body frame and they are densely distributed, and the operation range is small, it is difficult for the staff to use special tools to connect and fix the wire terminals, and it is difficult to operate without special tools when installing and disassembling the wires.
[0004] On the other hand, after retrieval, the patent with the publication number CN114188908B discloses an installation of power wires. This device can avoid the entire weight of the bracket pressing on the wires due to wire pressure, which affects the operation of the wires. However, it is difficult to safely disassemble and install the wires in a live state. When repairing and detecting the data center computer room, it is necessary to remove the aging wires and problem wires and install new wires. Currently, when installing the wires in the computer room, the power supply needs to be completely cut off, and then the wires are replaced and then powered on. During the repair process, other circuits on the power supply are disconnected, resulting in some bodies of the data center computer room being able to operate normally. Moreover, when installing and removing the wires, the staff needs to disassemble and install one end of the wire first and then the other end, resulting in a slow repair efficiency and inconvenience. Therefore, we provide an insulating bracket for wire installation based on a bank data center computer room to solve the above problems. Summary of the Invention
[0005] (I) Technical Problems to be Solved The purpose of the present invention is to provide an insulating bracket for wire installation based on a bank data center computer room to solve the above problems. This device can safely and quickly disassemble and install the wires in a live state.
[0006] (II) Technical Solutions The present invention is realized through the following technical solutions: An insulating rack for wire installation in a bank data center computer room, including a body support. Six linkage mechanisms arranged at equal distances are provided on the outside of the body support. The linkage mechanism includes a movable plate and an insulating support rod fixed on the body support. A plug assembly for connecting the bottom end of the wire is provided at the bottom end of the insulating support rod. An electrical connection assembly for connecting the top end of the wire is provided above the insulating support rod. A quick-release mechanism for quickly disconnecting the wire is provided above the electrical connection assembly.
[0007] Preferably, a fixing piece is fixed on the outer surface of the insulating support rod. A first limiting rod is fixed on the upper surface of the fixing piece. The first limiting rod is fixedly connected to the outer surface of the insulating support rod. A moving frame is slidably connected to the outer surface of the first limiting rod. A first telescopic spring is sleeved on the outer surface of the first limiting rod. The first telescopic spring is fixedly connected between the fixing piece and the moving frame. Through the setting of the first limiting rod, the stability of the moving frame during movement is increased. After the moving frame is not limited, it will be reset downward by the spring tension of the first telescopic spring.
[0008] Preferably, a foot pedal is hinged to the outer surface of the insulating support rod through a pin shaft. Two first hinge rods are hinged to the outer surface of the foot pedal through pin shafts. One end of each of the two first hinge rods away from the foot pedal is hinged to the moving frame through a pin shaft. A wire placement rod is fixed on the outer surface of the moving frame. A first wire clamping clip is fixed on the outer surface of the wire placement rod. An insulating anti-slip pad is provided on the surface of the foot pedal. The staff can step on the foot pedal downward, so that the foot pedal drives the moving frame to move downward through the first hinge rod. Through the setting of the first wire clamping clip, when the wire is placed on the wire placement rod, the first wire clamping clip will limit the wire.
[0009] Preferably, a power supply box is fixed on the outer surface of the body support. The plug assembly includes a clamping plate and a power supply copper groove installed on the inner wall of the power supply box. Rubber semi-circular pads are fixed on the bottom surfaces of the wire placement rod and the clamping plate. Semi-conical copper tubes adapted to the power supply copper groove are fixed on the bottom surfaces of the two rubber semi-circular pads. Two first sliding rods are fixed on the outer surface of the wire placement rod. The terminal at the bottom end of the wire is placed in the two semi-conical copper tubes. When the two semi-conical copper tubes clamp the wire terminal, the two rubber semi-circular pads will form a complete circle, and the two rubber semi-circular pads will block the power supply copper groove, improving the dust-proof effect. Moreover, the rubber semi-circular pads have insulation properties, effectively preventing the current from passing through to the hand-tightening threaded rod.
[0010] Preferably, one end of the first slide bar is provided with a threaded block, and the two first slide bars are both fixed to the threaded block. Two fixed tubes are fixed to the outer surface of the clamping plate, and the two fixed tubes are respectively slidably connected to the two first slide bars. A hand-tightening threaded rod is rotatably connected to the outer surface of the clamping plate, and the hand-tightening threaded rod is threadedly connected to the threaded block. Controlling the hand-tightening threaded rod will drive the clamping plate to move, so that the two semi-cone copper tubes clamp and fix the wire terminal. Anti-slip threads are provided on the inner walls of the two semi-cone copper tubes to increase the friction when the two semi-cone copper tubes clamp the wire terminal. The two semi-cone copper tubes are made of copper. When the two semi-cone copper tubes clamp the wire terminal, the wire can be electrically connected to the semi-cone copper tube.
[0011] Preferably, two second hinge rods are hinged above the moving frame through pins, and the two second hinge rods are both hinged to the movable plate through pins. Four second limiting rods are fixed to the outer surface of the insulating support rod, and the four second limiting rods are all slidably connected to the movable plate. A second wire clamp is fixed to the outer surface of the movable plate, and a wire passing hole is formed in the outer surface of the movable plate. When stepping on the foot pedal downward so that the foot pedal drives the moving frame to move downward through the first hinge rod, the moving frame will drive the movable plate to approach the insulating support rod through the second hinge rod. Through the arrangement of the four second limiting rods, the stability of the movable plate during movement is increased.
[0012] Preferably, the electrical connection assembly includes an insulating wire slot and a pressing plate. The insulating wire slot is fixed to the outer surface of the movable plate. Two second slide bars are fixed to the bottom surface of the pressing plate, and the two second slide bars are both slidably connected to the insulating wire slot. Two second telescopic springs are sleeved on the outer surfaces of the two second slide bars, and the two second telescopic springs are both fixedly connected between the pressing plate and the insulating wire slot. After the pressing plate is not squeezed by the wedge-shaped block, the pressing plate is reset by the spring pressure of the two second telescopic springs, so that the semi-circular copper plate cancels the clamping of the wire.
[0013] Preferably, a fixing frame is fixed to the top end of the insulating support rod, and a pressing wedge-shaped block adapted to the pressing plate is fixed to the inner wall of the fixing frame. A copper sheet with a column is fixedly connected to the bottom surface of the pressing wedge-shaped block. A semi-circular copper plate is fixed to the outer surface of the pressing plate. The second hinge rod drives the movable plate to approach the insulating support rod. At this time, the pressing plate will be squeezed by the pressing wedge-shaped block and approach the insulating wire slot, so that the pressing plate clamps and fixes the terminal at the top end of the wire, and the copper sheet with a column is in close contact with the semi-circular copper plate. The terminal at the top end of the wire is electrically connected to the copper sheet with a column through the semi-circular copper plate.
[0014] Preferably, the quick-release mechanism includes a restricted block and a fixed sleeve fixed on the fixed frame. The fixed sleeve is slidably connected to the movable plate. A limit block adapted to the restricted block is fixed on the outer surface of the fixed sleeve. A fixed plate is fixed to the top end of the movable plate. A connecting plate is arranged above the fixed plate. Two sliding rods three are fixed to the bottom surface of the connecting plate. Both of the two sliding rods three are fixed to the restricted block. A telescopic spring four is fixed between the restricted block and the fixed plate. When the movable plate moves close to the insulating support rod, the restricted block will cross over the limit block and be limited by the limit block to maintain the electrical connection between the wire and the circuit. Through the arrangement of the telescopic spring four, the restricted block moves downward under the spring pressure of the telescopic spring four to maintain the limiting effect of the limit block on the restricted block.
[0015] Preferably, two limit rods three are fixed to the outer surface of the fixed sleeve. An active sleeve is arranged on one side of the fixed sleeve. Both of the two limit rods three are slidably connected to the active sleeve. A telescopic spring three is fixed between the active sleeve and the fixed sleeve. One end of the active sleeve away from the fixed sleeve is rotatably connected to a pressure handle. A rotating column is rotatably connected to the inner wall of the fixed sleeve. An extrusion block is fixed to the end of the rotating column away from the active sleeve. Two sliding columns are fixedly connected to the inner wall of the active sleeve. Two inclined chutes are formed on the outer surface of the rotating column. The two sliding columns are respectively slidably connected to the inner walls of the two inclined chutes. When disassembling the wire, press the pressure handle to drive the active sleeve close to the fixed sleeve. When the active sleeve moves, the sliding columns inside it will slide in the inclined chutes, causing the rotating column to rotate. The rotation of the rotating column will drive the extrusion block to flip 180 degrees and squeeze the restricted block upward, so that the restricted block is no longer limited by the limit block.
[0016] The present invention provides an insulating rack for wire installation based on a bank data center computer room, and the beneficial effects thereof are as follows: 1. By providing a linkage mechanism and a quick-release mechanism, when disassembling the wire, only need to press the pressure handle to make the sliding column drive the rotating column to rotate, so that the extrusion block squeezes the restricted block upward. After the restricted block is not limited by the limit block, the moving frame will be reset upward under the spring pressure of the telescopic spring one. Furthermore, the top end of the wire is far away from the copper strip with a column, and the bottom end of the wire is far away from the power supply copper groove, so that both ends of the wire are simultaneously disconnected from the electrical connection. When installing, place the wire on the movable plate and the wire placing rod, and then only need to step on the foot pedal to make the moving frame move downward, so that both ends of the wire are respectively and simultaneously electrically connected to the power supply copper groove and the copper strip with a column. The installation and disassembly operations of the wire are very convenient, and the wire can be safely disassembled and assembled under the live state.
[0017] 2. The present invention is provided with a plug assembly and an electrical connection assembly. When electrically connecting a wire, the bottom end of the wire is placed in two semi-conical copper tubes, and the hand-twist threaded rod is rotated to clamp and fix the wire by the two semi-conical copper tubes. The two semi-conical copper tubes will drive the bottom end of the wire to insert into the power supply copper groove, so that the bottom end of the wire is electrically connected to the power supply copper groove. At the same time, the top end of the wire is placed in the insulating wire slot. When the insulating wire slot approaches the extrusion wedge block, the extrusion wedge block will press down the wire pressing plate to press the wire, so that the top end of the wire is electrically connected to the copper sheet with a column through the semi-circular copper plate. The installation and disassembly of the wire can be completed without other auxiliary tools, and the operation is convenient. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a three-dimensional structural schematic diagram of the present invention; Figure 2 is a three-dimensional structural schematic diagram of the present invention when the wire is disconnected from the electrical connection; Figure 3 is a three-dimensional structural schematic diagram of the present invention when the wire is electrically connected; Figure 4 is a split structural schematic diagram of the linkage mechanism of the present invention; Figure 5 is a three-dimensional structural schematic diagram of a part of the linkage mechanism of the present invention; Figure 6 is a split structural schematic diagram of the plug assembly of the present invention; Figure 7 is a three-dimensional structural schematic diagram of the electrical connection assembly of the present invention; Figure 8 is a three-dimensional structural schematic diagram of the quick-release mechanism of the present invention; Figure 9 is a split structural schematic diagram of the quick-release mechanism of the present invention; Figure 10 is a three-dimensional structural schematic diagram inside the movable sleeve of the present invention.
[0019]
SYMBOLS DESCRIPTION OF MAIN COMPONENTS
[0020] An embodiment of the present invention provides an insulating rack for wire installation based on a bank data center computer room.
[0021] Please refer to Figure 1 and Figure 2 , including a body bracket 1. Six linkage mechanisms 2 are arranged at equal intervals on the outside of the body bracket 1. The linkage mechanism 2 includes a movable plate 211 and an insulating support rod 201 fixed on the body bracket 1. A plug component 3 for electrically connecting the bottom end of the wire is arranged at the bottom end of the insulating support rod 201. An electrical connection component 4 for electrically connecting the top end of the wire is arranged above the insulating support rod 201. A quick-release mechanism 5 for quickly disconnecting the wire is arranged above the electrical connection component 4.
[0022] Please refer to Figure 3 and Figure 4 , a fixing piece 205 is fixed on the outer surface of the insulating support rod 201. A first limiting rod 204 is fixed on the upper surface of the fixing piece 205. The first limiting rod 204 is fixedly connected to the outer surface of the insulating support rod 201. A moving frame 202 is slidably connected to the outer surface of the first limiting rod 204. A first telescopic spring 206 is sleeved on the outer surface of the first limiting rod 204. The first telescopic spring 206 is fixedly connected between the fixing piece 205 and the moving frame 202. Through the arrangement of the first limiting rod 204, the stability of the moving frame 202 during movement is increased, and after the moving frame 202 is not limited, it will be reset downward by the spring tension of the first telescopic spring 206.
[0023] The outer surface of the insulating support rod 201 is hinged with a foot pedal 209 through a pin shaft. The outer surface of the foot pedal 209 is hinged with two first hinge rods 210 through pin shafts. One ends of the two first hinge rods 210 far from the foot pedal 209 are both hinged with the moving frame 202 through pin shafts. A wire placing rod 207 is fixed on the outer surface of the moving frame 202. A first wire clamping clip 208 is fixed on the outer surface of the wire placing rod 207. An insulating anti-slip pad is arranged on the surface of the foot pedal 209. The staff can step on the foot pedal 209 downward, so that the foot pedal 209 drives the moving frame 202 to move downward through the first hinge rod 210. Through the arrangement of the first wire clamping clip 208, when the wire is placed on the wire placing rod 207, the first wire clamping clip 208 will play a limiting role on the wire.
[0024] Please refer to Figure 6 , a power supply box 6 is fixed on the outer surface of the body bracket 1. The plug assembly 3 includes a clamping plate 303 and a power supply copper groove 308 installed on the inner wall of the power supply box 6. Rubber semi-circular pads 302 are fixed on the bottom surfaces of the wire placing rod 207 and the clamping plate 303. Semi-conical copper tubes 301 adapted to the power supply copper groove 308 are fixed on the bottom surfaces of the two rubber semi-circular pads 302. Two first sliding rods 305 are fixed on the outer surface of the wire placing rod 207. The terminal at the bottom end of the wire is placed in the two semi-conical copper tubes 301. When the two semi-conical copper tubes 301 clamp the wire terminal, the two rubber semi-circular pads 302 will form a complete circle, and the two rubber semi-circular pads 302 will block the power supply copper groove 308 to improve the dust-proof effect, and the rubber semi-circular pads 302 have insulation properties, effectively preventing the current from passing through the hand-twisted screw rod 307.
[0025] One end of the first sliding rod 305 is provided with a threaded block 306. The two first sliding rods 305 are both fixed to the threaded block 306. Two fixed tubes 304 are fixed on the outer surface of the clamping plate 303. The two fixed tubes 304 are respectively slidably connected with the two first sliding rods 305. A hand-twisted screw rod 307 is rotatably connected to the outer surface of the clamping plate 303. The hand-twisted screw rod 307 is threadedly connected with the threaded block 306. Controlling the hand-twisted screw rod 307 will drive the clamping plate 303 to move, so that the two semi-conical copper tubes 301 clamp and fix the wire terminal. Anti-slip threads are arranged on the inner walls of the two semi-conical copper tubes 301 to increase the friction when the two semi-conical copper tubes 301 clamp the wire terminal. The two semi-conical copper tubes 301 are made of copper. When the two semi-conical copper tubes 301 clamp the wire terminal, the wire can be electrically connected to the semi-conical copper tubes 301.
[0026] Please refer to Figure 5, above the moving frame 202, there are two second hinge rods 212 hinged by a pin shaft. Both of the two second hinge rods 212 are hinged to the movable plate 211 by a pin shaft. Four second limiting rods 213 are fixed on the outer surface of the insulating support rod 201. All four second limiting rods 213 are slidably connected to the movable plate 211. A second wire clamping clip 214 is fixed on the outer surface of the movable plate 211. A wire passing hole is formed on the outer surface of the movable plate 211. When stepping on the foot pedal 209 downward so that the foot pedal 209 drives the moving frame 202 to move downward through the first hinge rod 210, the moving frame 202 will drive the movable plate 211 to approach the insulating support rod 201 through the second hinge rod 212. Through the arrangement of the four second limiting rods 213, the stability of the movable plate 211 during movement is increased.
[0027] Please refer to Figure 7 , the electrical connection assembly 4 includes an insulating wire placement groove 401 and a wire pressing plate 402. The insulating wire placement groove 401 is fixed on the outer surface of the movable plate 211. Two second sliding rods 403 are fixed on the bottom surface of the wire pressing plate 402. Both of the two second sliding rods 403 are slidably connected to the insulating wire placement groove 401. Two second telescopic springs 404 are sleeved on the outer surfaces of the two second sliding rods 403. Both of the two second telescopic springs 404 are fixedly connected between the wire pressing plate 402 and the insulating wire placement groove 401. After the wire pressing plate 402 is not extruded by the extrusion wedge block 406, the wire pressing plate 402 is reset by the spring pressure of the two second telescopic springs 404, so that the semi-circular copper plate 405 cancels the clamping of the wire.
[0028] The top end of the insulating support rod 201 is fixed with a fixing frame 408. An extrusion wedge block 406 adapted to the wire pressing plate 402 is fixed on the inner wall of the fixing frame 408. A copper sheet with a column 407 is fixedly connected to the bottom surface of the extrusion wedge block 406. A semi-circular copper plate 405 is fixed on the outer surface of the wire pressing plate 402. The second hinge rod 212 drives the movable plate 211 to approach the insulating support rod 201. At this time, the wire pressing plate 402 will be extruded by the extrusion wedge block 406 and approach the insulating wire placement groove 401, so that the wire pressing plate 402 clamps and fixes the terminal at the top end of the wire, and the copper sheet with a column 407 is in close contact with the semi-circular copper plate 405. The terminal at the top end of the wire is electrically connected to the copper sheet with a column 407 through the semi-circular copper plate 405.
[0029] Please refer to Figure 8 , Figure 9 and Figure 10, the quick-release mechanism 5 includes a restricted block 514 and a fixed sleeve 501 fixed on the fixed frame 408. The fixed sleeve 501 is slidably connected to the movable plate 211. A limit block 506 adapted to the restricted block 514 is fixed on the outer surface of the fixed sleeve 501. A fixed plate 511 is fixed to the top end of the movable plate 211. A connecting plate 512 is arranged above the fixed plate 511. Two third sliding rods 513 are fixed to the bottom surface of the connecting plate 512. Both of the two third sliding rods 513 are fixed to the restricted block 514. A fourth telescopic spring 515 is fixed between the restricted block 514 and the fixed plate 511. When the movable plate 211 moves close to the insulating support rod 201, the restricted block 514 will cross over the limit block 506 and be limited by the limit block 506 to maintain the electrical connection between the wire and the circuit. Through the arrangement of the fourth telescopic spring 515, the restricted block 514 moves downward under the spring pressure of the fourth telescopic spring 515 to maintain the limiting effect of the limit block 506 on the restricted block 514.
[0030] Two third limit rods 503 are fixed to the outer surface of the fixed sleeve 501. A movable sleeve 502 is arranged on one side of the fixed sleeve 501. Both of the two third limit rods 503 are slidably connected to the movable sleeve 502. A third telescopic spring 504 is fixed between the movable sleeve 502 and the fixed sleeve 501. One end of the movable sleeve 502 away from the fixed sleeve 501 is rotatably connected to a pressure handle 505. A rotating column 507 is rotatably connected to the inner wall of the fixed sleeve 501. An extrusion block 509 is fixed to the end of the rotating column 507 away from the movable sleeve 502. Two sliding columns 516 are fixedly connected to the inner wall of the movable sleeve 502. Two inclined sliding grooves 508 are formed on the outer surface of the rotating column 507. The two sliding columns 516 are respectively slidably connected to the inner walls of the two inclined sliding grooves 508. When disassembling the wire, pressing the pressure handle 505 drives the movable sleeve 502 to approach the fixed sleeve 501. When the movable sleeve 502 moves, the sliding columns 516 inside it will slide in the inclined sliding grooves 508, causing the rotating column 507 to rotate. The rotation of the rotating column 507 will drive the extrusion block 509 to flip 180 degrees and extrude the restricted block 514 to move upward, so that the restricted block 514 is no longer limited by the limit block 506.
[0031] Working principle: When installing the wire, place the wire on the wire placement rod 207 and the movable plate 211, and limit the wire through the second wire clamping clip 214 and the first wire clamping clip 208. Place the bottom end of the wire in the two semi-cone copper tubes 301, and rotate the hand-twisted threaded rod 307 to clamp and fix the terminal at the bottom end of the wire by the two semi-cone copper tubes 301. Pass the upper end of the wire through the wire passing hole of the movable plate 211 and place the terminal at the top end of the wire on the insulating wire slot 401. Then, the worker steps on the foot pedal 209 to move the moving frame 202 downward. The downward movement of the moving frame 202 will drive the two semi-cone copper tubes 301 to insert into the power copper slot 308, so that the terminal at the bottom end of the wire is electrically connected to the power copper slot 308 through the semi-cone copper tubes 301. At the same time as the moving frame 202 moves downward, it will drive the movable plate 211 to approach the insulating support rod 201 through the second hinge rod 212. At this time, the pressing plate 402 will be pressed by the pressing wedge block 406 to approach the insulating wire slot 401, so that the pressing plate 402 clamps and fixes the terminal at the top end of the wire, and the copper sheet with a column 407 is in close contact with the semi-circular copper plate 405. The terminal at the top end of the wire is electrically connected to the copper sheet with a column 407 through the semi-circular copper plate 405, completing the electrical connection of both ends of the wire to the circuit. When the movable plate 211 approaches the insulating support rod 201, the restricted block 514 will cross over the limit block 506 and be limited by the limit block 506, thereby maintaining the electrical connection between the wire and the circuit.
[0032] When disassembling the wire, press the pressure-receiving handle 505 to drive the movable sleeve 502 to approach the fixed sleeve 501. When the movable sleeve 502 moves, the sliding column 516 inside it will slide in the inclined chute 508, causing the rotating column 507 to rotate. The rotation of the rotating column 507 will drive the extrusion block 509 to flip 180 degrees and squeeze the restricted block 514 to move upward, so that the restricted block 514 is no longer limited by the limit block 506. At this time, the moving frame 202 will be reset downward by the spring tension of the first telescopic spring 206. The moving frame 202 will pull the first wire clamping clip 208 to move the two semi-cone copper tubes 301 away from the power copper slot 308. At the same time, the moving frame 202 will drive the movable plate 211 to move away from the insulating support rod 201 through the second hinge rod 212, so that the insulating wire slot 401 moves away from the pressing wedge block 406. The pressing plate 402 is reset by the spring pressure of the two second telescopic springs 404, canceling the clamping of the semi-circular copper plate 405 on the wire, so that both ends of the wire are disconnected from the circuit. The installation and disassembly operations of the wire are very convenient, and the wire can be safely installed and disassembled under live conditions.
[0033] The foregoing has shown and described the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments, and what is described in the above embodiments and the specification is only to illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.
Claims
1. An insulating frame for installing electric wires in a bank data center computer room, comprising a frame (1), characterized in that: The body support (1) is provided with six linkage mechanisms (2) arranged at equal distances outside, the linkage mechanism (2) comprising a movable plate (211) and an insulating support rod (201) fixed to the body support (1), the bottom end of the insulating support rod (201) being provided with a plug assembly (3) for electrically connecting the bottom end of an electric wire, the top of the insulating support rod (201) being provided with an electric connection assembly (4) for electrically connecting the top end of an electric wire, and the top of the electric connection assembly (4) being provided with a quick-release mechanism (5) for quickly disconnecting the electric wire.
2. The wire installation insulation rack based on the bank data center computer room according to claim 1 is characterized by: A fixing plate (205) is fixed to the outer surface of the insulating support rod (201); a limiting rod (204) is fixed to the upper surface of the fixing plate (205); the limiting rod (204) is fixedly connected to the outer surface of the insulating support rod (201); the outer surface of the limiting rod (204) is slidably connected to the moving frame (202); the outer surface of the limiting rod (204) is sleeved with a telescopic spring (206); the telescopic spring (206) is fixedly connected between the fixing plate (205) and the moving frame (202).
3. The wire installation insulation rack based on the bank data center computer room according to claim 2 is characterized by: The outer surface of the insulating support rod (201) is hinged with a foot pedal (209) via a pin shaft, and the outer surface of the foot pedal (209) is hinged with two hinged rods (210) via a pin shaft, and the ends of the two hinged rods (210) away from the foot pedal (209) are hinged to the movable frame (202) via a pin shaft, and the outer surface of the movable frame (202) is fixed with a wire placement rod (207), and the outer surface of the wire placement rod (207) is fixed with a wire clamp (208).
4. The wire installation insulation rack based on the bank data center computer room according to claim 3 is characterized by: A power box (6) is fixed to the outer surface of the body bracket (1), and the plug assembly (3) includes a clamping plate (303) and a power copper groove (308) installed on the inner wall of the power box (6). The bottom surfaces of the wire placement rod (207) and the clamping plate (303) are fixed with rubber semicircular pads (302), and the bottom surfaces of the two rubber semicircular pads (302) are fixed with semi-conical copper tubes (301) that are compatible with the power copper groove (308). The outer surface of the wire placement rod (207) is fixed with two sliding rods (305).
5. The wire installation insulation rack based on the bank data center computer room according to claim 4 is characterized by: A threaded block (306) is provided at one end of the sliding rod one (305), and the two sliding rods one (305) are fixed to the threaded block (306); two fixed tubes (304) are fixed to the outer surface of the clamping plate (303), and the two fixed tubes (304) are respectively slidably connected to the two sliding rods one (305); a hand-tightened threaded rod (307) is rotatably connected to the outer surface of the clamping plate (303), and the hand-tightened threaded rod (307) is threadedly connected to the threaded block (306).
6. The wire installation insulation rack based on the bank data center computer room according to claim 2 is characterized by: Two hinged rods (212) are hinged on the top of the movable frame (202) via a pin shaft, and the two hinged rods (212) are hinged to the movable plate (211) via a pin shaft. Four limit rods (213) are fixed to the outer surface of the insulating support rod (201), and the four limit rods (213) are slidably connected to the movable plate (211). A wire clamp (214) is fixed to the outer surface of the movable plate (211), and a wire threading hole is provided on the outer surface of the movable plate (211).
7. The wire installation insulation rack based on the bank data center computer room according to claim 1 is characterized by: The electrical connection assembly (4) comprises an insulating wire groove (401) and a wire pressing plate (402), wherein the insulating wire groove (401) is fixed to the outer surface of the movable plate (211), and two sliding rods (403) are fixed to the bottom surface of the wire pressing plate (402), and the two sliding rods (403) are both slidably connected to the insulating wire groove (401), and the outer surfaces of the two sliding rods (403) are both sleeved with telescopic springs (404), and the two telescopic springs (404) are both fixedly connected between the wire pressing plate (402) and the insulating wire groove (401).
8. The wire installation insulation rack based on the bank data center computer room according to claim 1 is characterized by: A fixing frame (408) is fixed to the top of the insulating support rod (201), an extrusion wedge block (406) adapted to the wire pressing plate (402) is fixed to the inner wall of the fixing frame (408), a copper sheet with a column (407) is fixedly connected to the bottom surface of the extrusion wedge block (406), and a semi-ring copper plate (405) is fixed to the outer surface of the wire pressing plate (402).
9. The wire installation insulation rack based on the bank data center computer room according to claim 8 is characterized by: The quick-release mechanism (5) comprises a limiting block (514) and a fixed sleeve (501) fixed on a fixed frame (408); the fixed sleeve (501) is slidably connected to the movable plate (211); a limiting block (506) adapted to the limiting block (514) is fixed on the outer surface of the fixed sleeve (501); a fixing plate (511) is fixed on the top of the movable plate (211); a connecting plate (512) is arranged above the fixing plate (511); two sliding rods (513) are fixed on the bottom surface of the connecting plate (512); the two sliding rods (513) are both fixed to the limiting block (514); and a telescopic spring (515) is fixed between the limiting block (514) and the fixing plate (511).
10. The wire installation insulation rack based on the bank data center computer room according to claim 9 is characterized by: Two limiting rods (503) are fixed on the outer surface of the fixed sleeve (501); a movable sleeve (502) is provided on one side of the fixed sleeve (501); the two limiting rods (503) are both slidably connected to the movable sleeve (502); a telescopic spring (504) is fixed between the movable sleeve (502) and the fixed sleeve (501); an end of the movable sleeve (502) away from the fixed sleeve (501) is rotatably connected to a pressure handle (505); an inner wall of the fixed sleeve (501) is rotatably connected to a rotating column (507); an end of the rotating column (507) away from the movable sleeve (502) is fixed to an extrusion block (509); and two sliding columns (516) are fixedly connected to the inner wall of the movable sleeve (502); two inclined sliding grooves (508) are provided on the outer surface of the rotating column (507); and the two sliding columns (516) are slidably connected to the inner walls of the two inclined sliding grooves (508), respectively.
Citation Information
Patent Citations
Power wire installation rack
CN114188908B