A honeycomb cable channel tube hole structure

Through the honeycomb cable channel pipe hole structure, combined with air-cooling and water-cooling cooling treatments, and dynamically adjust protective measures, the poor cooling effect and water seepage problems are solved, and the safety and transmission efficiency of the cable are improved.

CN115020024BActive Publication Date: 2025-08-15WUXI HAILITE TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202210660145.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-06-13
Publication Date
2025-08-15
Estimated Expiration
2042-06-13

AI Technical Summary

Technical Problem

The existing cable channel pipe hole structure has shortcomings in poor cooling effect and water seepage problems, which affects the safe operation of the cable and the transmission efficiency.

Method used

The honeycomb cable channel pipe hole structure is adopted, and the cooling treatment is combined with air cooling and water cooling. The temperature and water temperature sensors are used to perform hierarchical comparison and analysis. Dynamic adjustment is achieved using the drive motor, servo motor and amplification mechanism to prevent moisture from infiltration.

Benefits of technology

It achieves efficient cooling of the cable, enhances the protection effect, prevents external moisture from entering, and improves the current carrying capacity and safety of the cable.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115020024B_ABST
    Figure CN115020024B_ABST
Patent Text Reader

Abstract

The present invention relates to the technical field of cable channel pipe hole structures, and in particular to a honeycomb cable channel pipe hole structure, comprising a main unit, a hollow tube fixedly connected to the lower surface of the main unit, a control panel fixedly connected to one side of the main unit, a branch box fixedly connected to the end of the hollow tube away from the main unit, a protective sleeve fixedly connected to the outer surface of the branch box, and a honeycomb tube inserted into the interior of the protective sleeve; the present invention performs efficient cooling treatment on the cable from two aspects of air cooling and water cooling, and performs hierarchical comparison and analysis on the collected cable heating conditions to obtain corresponding execution signals, that is, combining and comparing the hierarchical division of the collected objects and the processing flow, thereby achieving a more efficient cooling treatment effect on the cable, and under the premise of passing cooling water, wrapping the rubber pad on the outside of the honeycomb tube, thereby preventing external moisture from entering, and solving the existing water seepage problem.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of cable channel pipe hole structures, and in particular to a honeycomb cable channel pipe hole structure. Background Art

[0002] With breakthroughs in various key technologies and continuous improvements in construction techniques, prefabricated buildings have been increasingly developed in the construction field. Prefabricated buildings have also evolved from the initial housing construction to municipal bridges. As the main representative of cable structures, cable channels are also truly developing towards prefabricated construction. For this reason, many units have successively developed various models of prefabricated cable channels, but they are basically simple prefabrication based on the original on-site excavation and pouring, without any fundamental breakthroughs.

[0003] Honeycomb tubes have certain particularities as cable channels. The main problem is that the current carrying capacity of power cables must be considered during operation. The current carrying capacity affects the safe operation of the cables on the one hand, and the overall cost on the other. However, when existing equipment is in use, it is affected by the external environment and its own heat dissipation, and the cooling effect on the cables is poor, which directly affects the current carrying capacity of the cables. In addition, when the existing equipment is in use, the underground environment is humid and changeable, which can easily cause certain corrosion to the cables. In addition, the humid underground environment can cause moisture in the air to penetrate into the cables, causing short circuits in the cables and increasing the difficulty of power transmission.

[0004] In view of the above technical defects, a solution is now proposed. Summary of the Invention

[0005] The purpose of the present invention is to solve the above-mentioned problems of poor cable cooling effect and water seepage inside the cable, and to propose a honeycomb cable channel tube hole structure.

[0006] The purpose of the present invention can be achieved through the following technical solutions:

[0007] A honeycomb cable channel pipe hole structure includes a main unit, a hollow tube fixedly connected to the lower surface of the main unit, a control panel fixedly connected to one side of the main unit, a branch box fixedly connected to the end of the hollow tube away from the main unit, a protective cover fixedly connected to the outer surface of the branch box, a honeycomb tube inserted into the interior of the protective cover, a drive motor fixedly connected to the interior of the branch box, a drive shaft transmission-connected to the upper surface of the drive motor, a heat dissipation fan sleeved on the upper end of the drive shaft, and a gear plate sleeved on the outer portion of the drive shaft below the heat dissipation fan;

[0008] A water pipe is inserted into the upper surface of the branch box, the lower end of the water pipe is fixedly connected to a water diversion box, a four-way pipe is inserted into the side of the water diversion box away from the water pipe, and a cooling pipe is fixedly connected to the end of the four-way pipe away from the water diversion box, a protective mechanism is fixedly connected to the outer surface of the water diversion box, and an amplification mechanism is fixedly connected to the outer surface of the cooling pipe.

[0009] Preferably, the protective mechanism includes a positioning plate, the lower surface of the positioning plate is fixedly connected to a servo motor, the lower surface of the servo motor is internally connected to an adjusting rod for transmission, and the lower end of the adjusting rod is located inside the cooling tube, the outer surface of the adjusting rod is sleeved with a shaft sleeve, one side of the shaft sleeve is rotatably connected to a crank connecting rod, the end of the crank connecting rod away from the shaft sleeve is movably connected to a push rod, the outer surface of the push rod is sleeved with a piston cylinder, the side of the piston cylinder away from the push rod is fixedly connected to an air guide pipe, the end of the air guide pipe away from the piston cylinder is fixedly connected to an air cushion ring, the lower surface of the air cushion ring is fixedly connected to a guide slide, and the guide slide is slidably connected to the protective sleeve, the lower surface of the guide slide is fixedly connected to a rubber pad, and the rubber pad is located outside the honeycomb tube, and guide rods are inserted on both sides of the guide slide.

[0010] Preferably, the amplification mechanism includes an air pipe, one end of the air pipe away from the cooling pipe is fixedly connected to an air cylinder, the interior of the air cylinder is rotatably connected to a coaxial shaft, the outer surface of the air cylinder is fixedly connected to a support frame, the end of the concentric shaft located inside the air cylinder is sleeved with a blowing fan, the outside of the concentric shaft is sleeved with a turbine, the outer surface of the turbine is meshingly connected with a worm, the lower end of the worm is fixedly connected to a driven wheel, and the driven wheel is meshingly connected to the gear plate, and the end of the concentric shaft located inside the cooling pipe is sleeved with an impeller.

[0011] Preferably, a temperature sensor 1 is fixedly connected to the upper surface of the cooling tube, the cooling tube is located above the heat dissipation fan, and a temperature sensor 2 is fixedly connected to the inner wall of the cooling tube, and one end of the push rod located inside the piston cylinder is fixedly connected to the piston plate.

[0012] Preferably, one end of the adjusting rod located inside the cooling pipe is fixedly connected to a shielding plate, and the lower end of the shielding plate is rotatably connected to the inner wall of the cooling pipe, and the outer shape of the adjusting rod is U-shaped.

[0013] Preferably, one end of the support frame away from the air cylinder is fixedly connected to the outer surface of the cooling pipe, one end of the concentric shaft is rotatably connected to the inner wall of the cooling pipe, a fixed block is sleeved on the outside of the worm, and the fixed block is fixedly connected to the lower surface of the support frame, and an electric valve is provided inside the air pipe.

[0014] Preferably, the control panel includes a data acquisition module, a processor, a database, an execution feedback module, a regulation module and an execution module;

[0015] The data acquisition module is used to collect the cable heating temperature W and send the collected data to the processor. After receiving the cable heating temperature W, the processor immediately retrieves the corresponding preset value from the database and compares the two with each other;

[0016] When the cable heating temperature W ≥ the preset value S, a first-level cooling signal is generated and sent to the execution feedback module. After receiving the first-level cooling signal, the execution feedback module immediately controls the drive motor to work and controls the servo motor in the protection mechanism to work. The servo motor drives the lower shielding plate to fully open.

[0017] When the preset value D≤cable heating temperature W<preset value S, a secondary cooling signal is generated and sent to the execution feedback module. After receiving the secondary cooling signal, the execution feedback module immediately controls the servo motor in the protection mechanism to drive the lower shielding plate to partially open;

[0018] At the same time, the feedback module collects the water temperature Q inside the water pipe over a period of time and sends the collected data to the adjustment module. After receiving the water temperature Q inside the water pipe, the adjustment module immediately retrieves the corresponding preset value from the database and compares the two with each other;

[0019] When the water temperature Q inside the water pipe is greater than or equal to the preset value E, an air cooling signal is generated and sent to the execution module. After receiving the air cooling signal, the execution module immediately controls the electric valve in the amplifier mechanism to operate.

[0020] When the water temperature Q inside the water pipe is less than the preset value E, no action will be taken;

[0021] When the cable heating temperature W is less than the preset value D, no action is taken.

[0022] The beneficial effects of the present invention are as follows:

[0023] The present invention performs efficient cooling treatment on the cable from the two aspects of air cooling and water cooling, and performs hierarchical comparison and analysis on the collected cable heating conditions to obtain corresponding execution signals, that is, the hierarchical division of the collected objects and the processing flow is combined and compared, thereby achieving a more efficient cooling treatment effect on the cable, and on the premise of passing cooling water, performing protective treatment on it, so that the four-side guide slides inside the protective sleeve are moved closer to the middle, and the rubber pad is wrapped around the outside of the honeycomb tube, so that the force between the rubber pad and the honeycomb tube becomes larger, and the connection effect is better, thereby achieving the effect of preventing external moisture from entering, and solving the existing water seepage problem at the same time. In addition, when the cable is cooled from the two aspects of air cooling and water cooling, the cooling effect of water cooling is improved by accelerating the water flow rate during the air cooling process, thereby achieving a more efficient cooling effect on the cable, and solving the problem of poor cooling effect of the existing cable. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] The present invention will be further described below with reference to the accompanying drawings;

[0025] Figure 1 It is a structural diagram of the branch box of the present invention;

[0026] Figure 2 It is a structural schematic diagram of the protection mechanism of the present invention;

[0027] Figure 3 It is a structural schematic diagram of the cooling pipe of the present invention;

[0028] Figure 4 This is a front cross-sectional view of the structure of the honeycomb tube of the present invention;

[0029] Figure 5 This is a front cross-sectional view of the structure of the protective cover of the present invention;

[0030] Figure 6 This invention Figure 2 Enlarged view of area A in the middle;

[0031] Figure 7 This invention Figure 3 Enlarged view of area B in the middle;

[0032] Figure 8 This is a schematic structural view of the impeller of the present invention;

[0033] Figure 9 It is a system block diagram of the present invention.

[0034] Legend: 1. Main unit; 2. Hollow tube; 3. Control panel; 4. Branch box; 5. Protective cover; 6. Cross-tube; 7. Honeycomb tube; 8. Drive motor; 9. Drive shaft; 10. Cooling fan; 11. Gear plate; 12. Water pipe; 13. Water tank; 14. Cooling pipe; 15. Protective mechanism; 16. Positioning plate; 17. Servo motor; 18. Adjustment rod; 19. Bushing; 20. Crank connecting rod; 21. Push rod; 22. Piston cylinder; 23. Air pipe; 24. Air cushion ring; 25. Guide slide; 26. Rubber pad; 27. Guide rod; 28. Temperature sensor 1; 29. Amplifier mechanism; 01. Air pipe; 02. Air cylinder; 03. Support frame; 04. Concentric shaft; 05. Blowing fan; 06. Turbine; 07. Worm; 08. Driven wheel; 09. Impeller DETAILED DESCRIPTION

[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0036] Example 1:

[0037] See also Figure 1 As shown, the present invention is a honeycomb cable channel pipe hole structure, including a main unit 1, a hollow tube 2 is fixedly connected to the lower surface of the main unit 1, a control panel 3 is fixedly connected to one side of the main unit 1, a branch box 4 is fixedly connected to the end of the hollow tube 2 away from the main unit 1, a protective cover 5 is fixedly connected to the outer surface of the branch box 4, and a honeycomb tube 7 is inserted into the interior of the protective cover 5;

[0038] like Figure 4 As shown: A1 represents the cable duct, B1 can be used as a preset for communication optical cables, weak current cables, and even power cables, C1 is a cooling duct, and D1 is a temperature measurement optical cable channel, which is mainly used to monitor the operating temperature of cables in adjacent cable duct holes, thereby achieving real-time monitoring of cable operation and better serving cable operation. By laying temperature measurement optical cables in adjacent pipe corridors, there is no need to lay them twice due to cable replacement. The cable has high stability and can effectively analyze hidden duct holes through monitoring, further optimizing the laying environment and playing an important role in predicting cable operation and maintenance. The white area in the figure is the solid area.

[0039] like Figure 1-9As shown, a drive motor 8 is fixedly connected to the inside of the branch box 4, and a drive shaft 9 is connected to the upper surface of the drive motor 8. A heat dissipation fan 10 is sleeved on the outside of the upper end of the drive shaft 9, and a gear plate 11 is sleeved on the outside of the drive shaft 9 below the heat dissipation fan 10. A water pipe 12 is inserted into the upper surface of the branch box 4, and a water diversion box 13 is fixedly connected to the lower end of the water diversion pipe 12. A four-way pipe 6 is inserted on the side of the water diversion box 13 away from the water pipe 12, and a cooling pipe 14 is fixedly connected to the end of the four-way pipe 6 away from the water diversion box 13. A protective mechanism 15 is fixedly connected to the outer surface of the water diversion box 13, and an increasing mechanism 15 is fixedly connected to the outer surface of the cooling pipe 14. The upper surface of the cooling tube 14 is fixedly connected to a temperature sensor 1 28. The cooling tube 14 is located above the heat dissipation fan 10, and the inner wall of the cooling tube 14 is fixedly connected to a temperature sensor 2. The control panel 3 includes a data acquisition module, a processor, a database, an execution feedback module, an adjustment module, and an execution module. The data acquisition module is used to collect the cable heating temperature W and send the collected data to the processor. After receiving the cable heating temperature W, the processor immediately retrieves the corresponding preset value from the database and compares the two with each other. The cable heating temperature W is collected by the temperature sensor 1 28;

[0040] When the cable heating temperature W ≥ the preset value S, a first-level cooling signal is generated and sent to the execution feedback module. After receiving the first-level cooling signal, the execution feedback module immediately controls the drive motor 8 to work, and controls the servo motor 17 in the protection mechanism 15 to work. The servo motor 17 drives the lower shielding plate to fully open, and the protection mechanism 15 includes a positioning plate 16. The lower surface of the positioning plate 16 is fixedly connected to the servo motor 17. The lower surface of the servo motor 17 is internally connected to the adjustment rod 18, and the lower end of the adjustment rod 18 is located inside the cooling pipe 14. The adjustment rod 1 8 is located at one end inside the cooling pipe 14 and is fixedly connected to a shielding plate, and the lower end of the shielding plate is rotatably connected to the inner wall of the cooling pipe 14. The outer shape of the adjusting rod 18 is set in a U shape. The outer sleeve 19 of the adjusting rod 18 is sleeved with a shaft sleeve 19. One side of the shaft sleeve 19 is rotatably connected to a crank connecting rod 20. The end of the crank connecting rod 20 away from the shaft sleeve 19 is movably connected to a push rod 21. The end of the push rod 21 inside the piston cylinder 22 is fixedly connected to a piston plate. The outer sleeve of the push rod 21 is sleeved with a piston cylinder 22. The side of the piston cylinder 22 away from the push rod 21 is fixedly connected to an air guide pipe 23. The air guide pipe 23 An air cushion ring 24 is fixedly connected to one end away from the piston cylinder 22, and a guide slide 25 is fixedly connected to the lower surface of the air cushion ring 24, and the guide slide 25 is slidably connected to the protective sleeve 5. A rubber pad 26 is fixedly connected to the lower surface of the guide slide 25, and the rubber pad 26 is located outside the honeycomb tube 7. Guide rods 27 are inserted on both sides of the guide slide 25, that is, the execution feedback module immediately controls the drive motor 8 to work after receiving the first-level cooling signal, so that the drive motor 8 drives the drive shaft 9 to rotate. As the drive shaft 9 rotates, the drive shaft 9 drives the external The cooling fan 10 rotates below the cross-tube 6, thereby cooling the cooling pipe 14, which helps the cooling pipe 14 to cool the cable. When the servo motor 17 is working, the servo motor 17 drives the adjustment rod 18 to rotate. As the adjustment rod 18 rotates, the adjustment rod 18 drives the shielding plate inside the cooling pipe 14 to fully open, so that the cooling pipe 14 is filled with water, thereby cooling the cable. That is, from the two aspects of cooling the environment in which the cable is located and cooling the cable with cooling water, a more efficient cable cooling effect is achieved.

[0041] When the regulating rod 18 drives the shield to be fully opened, the regulating rod 18 drives the external shaft sleeve 19 to rotate synchronously, so that the shaft sleeve 19 pushes the push rod 21 at the other end of the crank connecting rod 20 to slide inside the piston cylinder 22, so that the push rod 21 drives the piston plate to slide inside the piston cylinder 22, so that the gas inside the piston cylinder 22 enters the interior of the air guide pipe 23, and the gas enters the interior of the air cushion ring 24 through the interior of the air guide pipe 23, so that the air cushion ring 24 continuously expands inside the protective sleeve 5, thereby driving the guide slide plate 25 to slide inside the protective sleeve 5, so that the four side guide slide plates 25 inside the protective sleeve 5 move closer to the middle, and the guide slide plate 25 drives the rubber pad 26 to move, so that the rubber pad 26 is wrapped around the outside of the honeycomb tube 7, so that the force between the rubber pad 26 and the honeycomb tube 7 becomes larger, thereby achieving the effect of preventing external moisture from entering, and solving the existing water seepage problem at the same time;

[0042] When the preset value D≤cable heating temperature W<preset value S, a secondary cooling signal is generated and sent to the execution feedback module. After receiving the secondary cooling signal, the execution feedback module immediately controls the servo motor 17 in the protection mechanism 15 to work, driving the lower baffle to partially open. At the same time, the execution feedback module collects the water temperature Q inside the water pipe for a period of time, and sends the collected data to the adjustment module. After receiving the water temperature Q inside the water pipe, the adjustment module immediately retrieves the corresponding preset value from the database and compares the two with each other. The period of time is represented by 30 minutes after the lower baffle is partially opened. The water temperature Q inside the water pipe is collected by the second temperature sensor inside the cooling pipe 14.

[0043] When the water temperature Q inside the water pipe is greater than or equal to the preset value E, an air cooling signal is generated and sent to the execution module. After receiving the air cooling signal, the execution module immediately controls the electric valve in the amplification mechanism 29 to work, and the amplification mechanism 29 includes an air delivery pipe 01. The end of the air delivery pipe 01 away from the cooling pipe 14 is fixedly connected to the air cylinder 02. The interior of the air cylinder 02 is rotatably connected to the concentric shaft 04. The outer surface of the air cylinder 02 is fixedly connected to the support frame 03. The end of the support frame 03 away from the air cylinder 02 is fixedly connected to the outer surface of the cooling pipe 14. The end of the concentric shaft 04 located inside the air cylinder 02 is sleeved with a blower fan 05. 4 is sleeved with a turbine 06 on the outside, one end of the coaxial shaft 04 is rotatably connected to the inner wall of the cooling pipe 14, the outer surface of the turbine 06 is meshed with a worm 07, the outer surface of the worm 07 is sleeved with a fixed block, and the fixed block is fixedly connected to the lower surface of the support frame 03, an electric valve is provided inside the air delivery pipe 01, the lower end of the worm 07 is fixedly connected to a driven wheel 08, and the driven wheel 08 is meshed with the gear plate 11, and the end of the concentric shaft 04 located inside the cooling pipe 14 is sleeved with an impeller 09 on the outside, that is, after receiving the air cooling signal, the execution module immediately controls the electric valve in the air delivery pipe 01 to work, so that the air inside the air delivery pipe 01 The body enters the interior of the cooling pipe 14, and the gas is generated through the mutual cooperation between the equipment mechanisms, that is, when the driving motor 8 drives the driving shaft 9 to rotate, the driving shaft 9 drives the external gear plate 11 to rotate, and the transmission between the gears causes the gear plate 11 to drive the driven wheel 08 on one side to rotate in a circular manner. As the driven wheel 08 rotates, the driven wheel 08 drives the worm 07 to rotate inside the support frame 03, and the transmission between the gears causes the worm 07 to rotate the turbine 06, and the turbine 06 drives the internal concentric shaft 04 to rotate in a circular manner inside the air bleed cylinder 02, so that the concentric shaft 04 drives the blowing fan 05 located inside the air duct 02 to rotate, thereby causing the blowing fan 05 to generate wind force, causing the wind to enter the cooling pipe 14 from the inside of the air pipe 01, accelerating the flow rate of the gas inside the cooling pipe 14, and at the same time, when the concentric shaft 04 rotates, it drives the impeller 09 to rotate inside the cooling pipe 14, causing the impeller 09 to accelerate the water flow rate inside the cooling pipe 14, which helps to improve the cooling effect of the equipment on the cable, that is, the cable is cooled by both air cooling and water cooling. At the same time, the cooling effect of water cooling is improved by accelerating the water flow rate during the air cooling process, thereby achieving a more efficient cooling effect on the cable;

[0044] When the water temperature Q inside the water pipe is less than the preset value E, no action will be taken;

[0045] When the cable heating temperature W is less than the preset value D, no action is taken;

[0046] To sum up, by performing efficient cooling treatment on the cable from the two aspects of air cooling and water cooling, and performing hierarchical comparison analysis on it according to the collected cable heating conditions, the corresponding execution signal is obtained, that is, the hierarchical division of the collection object and the processing flow is combined and compared, thereby achieving a more efficient cooling treatment effect on the cable, and on the premise of passing cooling water, it is protected so that the four-side guide slides 25 inside the protective sleeve 5 are moved closer to the middle, so that the rubber pad 26 is wrapped around the outside of the honeycomb tube 7, the force between the rubber pad 26 and the honeycomb tube 7 becomes larger, and the connection effect is better, thereby achieving the effect of preventing external moisture from entering, and solving the existing water seepage problem at the same time. In addition, when the cable is cooled from the two aspects of air cooling and water cooling, the cooling effect of water cooling is improved by accelerating the water flow rate during the air cooling process, thereby achieving a more efficient cooling effect on the cable, solving the problem of poor cooling effect of the existing cable.

[0047] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A honeycomb cable channel tube hole structure, comprising a main unit (1), characterized in that: The lower surface of the main unit (1) is fixedly connected to a hollow tube (2), one side of the main unit (1) is fixedly connected to a control panel (3), the end of the hollow tube (2) away from the main unit (1) is fixedly connected to a branch box (4), the outer surface of the branch box (4) is fixedly connected to a protective sleeve (5), the interior of the protective sleeve (5) is plugged with a honeycomb tube (7), the interior of the branch box (4) is fixedly connected to a drive motor (8), the upper surface of the drive motor (8) is internally connected to a drive shaft (9), the upper end of the drive shaft (9) is externally sleeved with a heat dissipation fan (10), and the exterior of the drive shaft (9) is sleeved with a gear plate (11) located below the heat dissipation fan (10); A water pipe (12) is inserted into the upper surface of the branch box (4), the lower end of the water pipe (12) is fixedly connected to a water diversion box (13), a four-way pipe (6) is inserted into the side of the water diversion box (13) away from the water pipe (12), and a cooling pipe (14) is fixedly connected to the end of the four-way pipe (6) away from the water diversion box (13), a protective mechanism (15) is fixedly connected to the outer surface of the water diversion box (13), and an amplification mechanism (29) is fixedly connected to the outer surface of the cooling pipe (14); The protection mechanism (15) includes a positioning plate (16), the lower surface of the positioning plate (16) is fixedly connected to a servo motor (17), the lower surface of the servo motor (17) is internally connected to an adjusting rod (18), and the lower end of the adjusting rod (18) is located inside the cooling pipe (14), the outer portion of the adjusting rod (18) is sleeved with a shaft sleeve (19), one side of the shaft sleeve (19) is rotatably connected to a crank connecting rod (20), the end of the crank connecting rod (20) away from the shaft sleeve (19) is movably connected to a push rod (21), and the outer portion of the push rod (21) is sleeved with a movable A piston cylinder (22), a side of the piston cylinder (22) away from the push rod (21) is fixedly connected to an air guide tube (23), an end of the air guide tube (23) away from the piston cylinder (22) is fixedly connected to an air cushion ring (24), a lower surface of the air cushion ring (24) is fixedly connected to a guide slide (25), and the guide slide (25) is slidably connected to the protective sleeve (5), a lower surface of the guide slide (25) is fixedly connected to a rubber pad (26), and the rubber pad (26) is located outside the honeycomb tube (7), and guide rods (27) are inserted on both sides of the guide slide (25); The amplification mechanism (29) includes an air delivery pipe (01), one end of the air delivery pipe (01) away from the cooling pipe (14) is fixedly connected to an air bleed cylinder (02), the interior of the air bleed cylinder (02) is rotatably connected to a coaxial shaft (04), the outer surface of the air bleed cylinder (02) is fixedly connected to a support frame (03), one end of the concentric shaft (04) located inside the air bleed cylinder (02) is sleeved with a blower fan (05), the outer surface of the concentric shaft (04) is sleeved with a turbine (06), the outer surface of the turbine (06) is meshingly connected to a worm (07), the lower end of the worm (07) is fixedly connected to a driven wheel (08), and the driven wheel (08) is meshingly connected to a gear plate (11), and the outer end of the concentric shaft (04) located inside the cooling pipe (14) is sleeved with an impeller (09); One end of the regulating rod (18) located inside the cooling pipe (14) is fixedly connected to a shielding plate, and the lower end of the shielding plate is rotatably connected to the inner wall of the cooling pipe (14). The regulating rod (18) is U-shaped. One end of the support frame (03) away from the air bleed cylinder (02) is fixedly connected to the outer surface of the cooling pipe (14), one end of the concentric shaft (04) is rotatably connected to the inner wall of the cooling pipe (14), the outer portion of the worm (07) is sleeved with a fixed block, and the fixed block is fixedly connected to the lower surface of the support frame (03), and an electric valve is provided inside the air delivery pipe (01); The control panel (3) includes a data acquisition module, a processor, a database, an execution feedback module, a regulation module and an execution module; The data acquisition module is used to collect the cable heating temperature W and send the collected data to the processor. After receiving the cable heating temperature W, the processor immediately retrieves the corresponding preset value from the database and compares the two with each other; When the cable heating temperature W ≥ the preset value S, a first-level cooling signal is generated and sent to the execution feedback module. After receiving the first-level cooling signal, the execution feedback module immediately controls the drive motor (8) to work and controls the servo motor (17) in the protection mechanism (15) to work. The servo motor (17) drives the lower shielding plate to fully open. When the preset value D≤cable heating temperature W<preset value S, a secondary cooling signal is generated and sent to the execution feedback module. After receiving the secondary cooling signal, the execution feedback module immediately controls the servo motor (17) in the protection mechanism (15) to operate, driving the lower shielding plate to partially open; At the same time, the feedback module collects the water temperature Q inside the water pipe over a period of time and sends the collected data to the adjustment module. After receiving the water temperature Q inside the water pipe, the adjustment module immediately retrieves the corresponding preset value from the database and compares the two with each other; When the water temperature Q inside the water pipe is greater than or equal to the preset value E, an air cooling signal is generated and sent to the execution module. After receiving the air cooling signal, the execution module immediately controls the electric valve in the amplification mechanism (29) to operate. When the water temperature Q inside the water pipe is less than the preset value E, no action will be taken; When the cable heating temperature W is less than the preset value D, no action is taken.

2. The honeycomb cable channel tube hole structure according to claim 1, characterized in that: The upper surface of the cooling tube (14) is fixedly connected to a temperature sensor 1 (28), the cooling tube (14) is located above the heat dissipation fan (10), and the inner wall of the cooling tube (14) is fixedly connected to a temperature sensor 2, and one end of the push rod (21) located inside the piston cylinder (22) is fixedly connected to a piston plate.

Citation Information

Patent Citations

  • Ventilation cooling cable branch box

    CN110729695A

  • Electric cable branch box on column

    CN2738445Y