Efficient heat dissipation bridge

By designing an efficient heat dissipation bridge including bridge tray, condenser and storage net, the problem of insufficient heat dissipation performance of traditional cable trays is solved, and more efficient heat dissipation effect and cable stability are achieved, reducing structural complexity and maintenance costs.

CN223023987UActive Publication Date: 2025-06-24SHENZHEN BAIFUQIN METAL MATERIALS CO LTD
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Patent Information

Application Number
CN202421960085.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-06-24
Estimated Expiration
2034-08-13

AI Technical Summary

Technical Problem

The lack of heat dissipation performance of traditional cable trays leads to aging of cables, degradation of performance, and even causes safety hazards of fires. The prior art increases structural complexity and maintenance costs while improving heat dissipation performance.

Method used

An efficient heat dissipation bridge is designed, including a bridge tray, a condenser and a storage net. The condenser end of the bridge tray is provided with a first groove, the condenser is installed in the groove, and the condenser and the storage net form an effective heat dissipation channel. The fixing device includes a temperature sensor and fixing member to monitor the temperature in real time and ensure the stability of the fixing device.

Benefits of technology

By optimizing the heat dissipation effect and the stability of the cable, it effectively prevents cable overheating, ensures the long-term and reliable operation of the system, and reduces structural complexity and maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an efficient heat dissipation bridge which is used for cable storage and comprises a heat dissipation device and a fixing device. The heat dissipation device is composed of a bridge frame, a condenser and a storage net. The condensation end of the bridge is provided with the groove, the condenser is arranged in the groove, heat transfer is optimized through the groove, and the heat dissipation effect is enhanced. The first face of the condenser makes contact with the groove, a storage net is installed on the second face of the condenser, cable fixing and protection are provided, meanwhile, heat dissipation is assisted, the fixing device comprises a fixing piece and a temperature sensor, the sensor monitors the temperature in real time, one end of the sensor is arranged at the fixing end, and the other end of the sensor is connected with the fixing piece. According to the overall design, the condenser and the storage net are used in cooperation, efficient heat dissipation of the heat dissipation system and the stability of the cable are ensured, overheating is prevented, and the long-term reliability of the system is improved.
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Description

Technical Field

[0001] This application relates to the field of cable trays, and particularly to an efficient heat dissipation cable tray. Background Art

[0002] Traditional cable trays, as support and protection devices for cables, are widely used in power systems and communication systems. Traditional cable trays are usually made of metal materials and have advantages such as simple structure, convenient installation, and low cost. However, with the continuous development of power and communication equipment, the heat dissipation problem of cable trays has gradually become prominent. A large number of cables gathered in the cable tray will generate a large amount of heat. If the heat is not dissipated in time, it may lead to cable aging, performance degradation, and even potential safety hazards such as fires. Therefore, the heat dissipation performance of cable trays has gradually become the focus of attention in the industry;

[0003] To solve the problem of poor heat dissipation performance of cable trays, various solutions have been proposed in the prior art. For example, some cable trays are designed with additional heat dissipation holes or ventilation openings during design to enhance air circulation and thus improve the heat dissipation efficiency; there are also some solutions that install heat dissipation fans or cooling devices inside the cable tray to forcibly remove heat; in addition, certain cable trays are made of materials with better thermal conductivity to improve their own heat dissipation capacity. Although these solutions have alleviated the heat dissipation problem of cable trays to a certain extent, there are still some deficiencies, such as complex structure, increased cost, and inconvenient maintenance;

[0004] According to the description of Chinese Patent CN110854764A, although the heat dissipation performance of cable trays in the prior art has been improved, there are still some defects. Adding heat dissipation holes, ventilation openings, heat dissipation fans or using high - thermal - conductivity materials in the prior art has improved the heat dissipation performance to a certain extent, but it has also brought problems such as complex structure, high manufacturing and maintenance costs. In addition, existing cooling devices usually occupy the internal space of the cable tray, affecting the layout and installation of cables and reducing the actual use efficiency of the cable tray. Therefore, there is still a need for an efficient heat dissipation cable tray to solve the above problems. Summary of the Utility Model

[0005] In view of this, it is necessary to provide an efficient heat dissipation cable tray to solve the above problems.

[0006] An embodiment of this application provides an efficient heat dissipation cable tray for storing cables. The efficient heat dissipation cable tray includes a heat dissipation device and a fixing device arranged in sequence, and the fixing device is arranged on the heat dissipation device;

[0007] The heat dissipation device includes a bridge frame, a condenser, and a storage net. The bridge frame includes a condensation end in contact with the condenser and a fixed end in contact with the fixing device. The condensation end is provided with a first groove, the condenser is disposed in the first groove, the fixing device is disposed at the fixed end. Define the contact surface between the condenser and the first groove as the first surface, and define the second surface as facing away from the first surface. The storage net is disposed on the second surface;

[0008] The fixing device includes a fixing member and a temperature sensor. One end of the temperature sensor is disposed at the fixed end, and the other end of the temperature sensor is fixedly connected to the fixing member.

[0009] In at least one embodiment of the present application, the condensation end is provided with a fixing groove, the storage net is snap-connected to the fixing groove. The storage net is a rectangular mesh structure, and both ends thereof are bent along the width direction of the rectangular structure to form a receiving cavity, and the cable is disposed in the receiving cavity.

[0010] In at least one embodiment of the present application, the fixing groove penetrates the groove, and the condenser partially abuts against the receiving cavity.

[0011] In at least one embodiment of the present application, the bridge frame is a rectangular plate structure. The rectangular plate is recessed toward the center of the earth along its width center line to form the first groove, the second groove, and the third groove. Along the width direction of the rectangular plate, the first groove is on the left of the third groove, and the second groove is in the middle of the first groove and the third groove.

[0012] In at least one embodiment of the present application, the second groove is provided with heat dissipation holes, and the first groove and the third groove are both provided with fixing grooves.

[0013] In at least one embodiment of the present application, the temperature sensor faces the cable, and the temperature sensor is electrically connected to the condenser.

[0014] In at least one embodiment of the present application, an endothermic film is coated on the storage net.

[0015] In at least one embodiment of the present application, the storage net is made of aluminum alloy.

[0016] In at least one embodiment of the present application, the fixing device includes an elastic member. Define the surface facing away from the contact surface between the fixing member and the temperature sensor as the third surface, and the elastic member is disposed on the third surface.

[0017] In at least one embodiment of the present application, the fixed end is provided with a threaded through hole, and the bridge frame is threadedly connected to the temperature sensor.

[0018] The above-provided highly efficient heat dissipation cable tray optimizes the heat dissipation effect and the stability of the cables. The heat dissipation device includes a cable tray, a condenser, and a storage net. The condensation end of the cable tray is provided with a first groove to accommodate the condenser. The design of the condenser ensures the effective dissipation of heat. The contact surface between the condensation end and the condenser optimizes heat transfer through the groove, improving the heat dissipation efficiency. The second surface is provided with a storage net, which provides the function of fixing and protecting the cables and helps further dissipate heat. The fixing device includes a fixing member and a temperature sensor. One end of the temperature sensor is arranged at the fixed end, and the other end is fixedly connected to the fixing member, enabling the temperature sensor to monitor the temperature of the heat dissipation system in real time. The characteristic connection relationship forms an effective heat dissipation channel by placing the condenser in the groove and making it communicate with the storage net. At the same time, the setting of the fixing device ensures that the temperature sensor can accurately monitor temperature changes. The optimization of the positional relationship and the characteristic design improve the overall heat dissipation effect and stability of the heat dissipation cable tray, effectively preventing the cables from overheating and ensuring the long-term reliable operation of the system. Description of the Drawings

[0019] Figure 1 It is a structural diagram of the highly efficient heat dissipation cable tray;

[0020] Figure 2 It is a structural diagram of the cable tray;

[0021] Figure 3 It is a rear view of the cable tray;

[0022] Figure 4 It is a structural diagram of the fixer.

[0023] Description of the Main Component Symbols

[0024] 100, highly efficient heat dissipation cable tray; 2, heat dissipation device; 3, fixing device; 4, cable tray; 5, condenser; 6, storage net; 7, first groove; 8, first surface; 9, second surface; 10, fixing member; 11, temperature sensor; 12, fixing groove; 13, receiving cavity; 15, second groove; 16, third groove; 17, heat dissipation hole; 18, elastic member; 19, third surface. Detailed Embodiments

[0025] Next, the embodiments of the present application will be described in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments.

[0026] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component present. When a component is considered to be "disposed on" another component, it can be directly disposed on the other component or there may be an intermediate component present. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "rear", and similar expressions used herein are for illustrative purposes only.

[0027] An embodiment of the present application provides an efficient heat dissipation cable tray for accommodating cables. The efficient heat dissipation cable tray includes a heat dissipation device and a fixing device arranged in sequence, and the fixing device is disposed on the heat dissipation device.

[0028] The heat dissipation device includes a cable tray, a condenser, and a storage net. The cable tray includes a condensation end in contact with the condenser and a fixing end in contact with the fixing device. The condensation end is provided with a first groove, the condenser is disposed in the first groove, the fixing device is disposed on the fixing end. Define the contact surface between the condenser and the first groove as the first surface, and define the second surface as facing away from the first surface. The storage net is disposed on the second surface.

[0029] The fixing device includes a fixing member and a temperature sensor. One end of the temperature sensor is disposed on the fixing end, and the other end of the temperature sensor is fixedly connected to the fixing member.

[0030] The above-provided efficient heat dissipation cable tray optimizes the heat dissipation effect and the stability of the cables. The heat dissipation device includes a cable tray, a condenser, and a storage net. The condensation end of the cable tray is provided with a first groove to accommodate the condenser. The design of the condenser ensures the effective dissipation of heat. The contact surface between the condensation end and the condenser optimizes heat transfer through the groove, improving the heat dissipation efficiency. The second surface is provided with a storage net, providing the functions of fixing and protecting the cables, and at the same time helping to further dissipate heat. The fixing device includes a fixing member and a temperature sensor. One end of the temperature sensor is disposed on the fixing end, and the other end is fixedly connected to the fixing member, enabling the temperature sensor to monitor the temperature of the heat dissipation system in real time. The characteristic connection relationship forms an effective heat dissipation channel by placing the condenser in the groove and making it communicate with the storage net. At the same time, the setting of the fixing device ensures that the temperature sensor can accurately monitor the temperature change. The optimization of the positional relationship and the characteristic design improve the overall heat dissipation effect and stability of the heat dissipation cable tray, effectively preventing the cables from overheating and ensuring the long-term reliable operation of the system.

[0031] The following Figures 1-4 in conjunction with the attached drawings, will elaborate on some embodiments of the present application. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.

[0032] An embodiment of the present application provides an efficient heat dissipation cable tray 100 for accommodating cables. The efficient heat dissipation cable tray 100 includes a heat dissipation device 2 and a fixing device 3 arranged in sequence, and the fixing device 3 is arranged on the heat dissipation device 2;

[0033] The heat dissipation device 2 includes a cable tray 4, a condenser 5 and a storage net 6. The cable tray 4 includes a condensation end in contact with the condenser 5 and a fixing end in contact with the fixing device 3. A first groove 7 is formed in the condensation end, the condenser 5 is arranged in the first groove 7, and the fixing device 3 is arranged at the fixing end. Define the contact surface between the condenser 5 and the first groove 7 as the first surface 8, and define the second surface 9 as facing away from the first surface 8. The storage net 6 is arranged on the second surface 9;

[0034] The fixing device 3 includes a fixing member 10 and a temperature sensor 11. One end of the temperature sensor 11 is arranged at the fixing end, and the other end of the temperature sensor 11 is fixedly connected to the fixing member 10.

[0035] Specifically, the efficient heat dissipation cable tray 100 includes a heat dissipation device 2 and a fixing device 3. The heat dissipation device 2 contains a cable tray 4, a condenser 5 and a storage net 6. The fixing device 3 is arranged on the heat dissipation device 2. A first groove 7 is formed in the condensation end of the cable tray 4, and the condenser 5 is installed in this groove. The fixing device 3 is installed at the fixing end. The fixing device 3 includes a fixing member 10 and a temperature sensor 11. One end of the temperature sensor 11 is arranged at the fixing end, and the other end is fixedly connected to the fixing member 10. The heat dissipation device 2 exports the heat in the cable tray 4 through the condenser 5. The first surface 8 of the contact surface between the condenser 5 and the first groove 7 improves the heat dissipation effect. The storage net 6 on the second surface 9 provides a fixing and protecting function for the cables. The fixing device 3 monitors the temperature of the cable tray 4 in real time through the temperature sensor 11, and ensures the stability of the fixing device 3 through the connection with the fixing member 10. In terms of the operation process, when heat is generated by the current flowing through the cables, the condenser 5 in the cable tray 4 will dissipate heat through its contact with the first groove 7. The storage net 6 fixes the cables and improves the heat dissipation efficiency through the heat absorption film. The application scenarios include various cable tray 4 systems that require effective heat dissipation, such as data centers, communication base stations and power facilities, etc.

[0036] In a specific example, a fixing groove 12 is formed in the condensation end. The storage net 6 is snap-connected to the fixing groove 12. The storage net 6 is a rectangular mesh structure, and both ends of it are bent along the width direction of the rectangular structure to form a receiving cavity 13, and the cable is arranged in the receiving cavity 13.

[0037] Specifically, the storage net 6 is a rectangular net structure, with both ends bent to form a receiving cavity 13 for facilitating the storage of cables. The fixing groove 12 is snap-connected to the storage net 6. The setting of the fixing groove 12 enhances the fixing of the storage net 6 and avoids the displacement of the cables caused by heat dissipation or vibration during use. The fixing groove 12 at the condensation end penetrates the groove, enabling the condenser 5 to be in partial contact with the receiving cavity 13, thereby improving the heat dissipation effect and ensuring the temperature control of the cables during use. The rectangular structure of the storage net 6 and the design of the receiving cavity 13 enable the cables to be effectively stored and organized, and provide a good heat dissipation effect.

[0038] In a specific example, the fixing groove 12 penetrates the groove, and the condenser 5 is partially in contact with the receiving cavity 13.

[0039] Specifically, the fixing groove 12 penetrates the groove, enabling the condenser 5 to be in direct contact with the receiving cavity 13. This design effectively increases the heat dissipation contact area between the condenser 5 and the cables, enhancing the heat dissipation effect. The penetrating design of the fixing groove 12 allows the condenser 5 to be partially in direct contact with the receiving cavity 13, improving the heat transfer efficiency and making the heat dissipation effect more significant. This design is particularly suitable for scenarios requiring efficient heat dissipation, such as large cable tray 4 systems or heat dissipation management of high-power cables.

[0040] In a specific example, the cable tray 4 is a rectangular plate structure. The rectangular plate is recessed towards the center of the earth along its width center line to form the first groove 7, the second groove 15, and the third groove 16. Along the width direction of the rectangular plate, the first groove 7 is on the left of the third groove 16, and the second groove 15 is in the middle of the first groove 7 and the third groove 16.

[0041] Specifically, the cable tray 4 is a rectangular plate structure, and its width center line is recessed towards the center of the earth to form the first, second, and third grooves 16. The first groove 7 is located on the left of the third groove 16, and the second groove 15 is located between the first and third grooves 16. The recessed design of the rectangular plate increases the surface contact area, effectively enhancing the heat dissipation effect. The arrangement position relationship of the first groove 7, the second groove 15, and the third groove 16 optimizes the heat distribution, making the heat dissipation process more uniform and efficient.

[0042] In a specific example, the second groove 15 is provided with heat dissipation holes 17, and the first groove 7 and the third groove 16 are both provided with fixing grooves 12.

[0043] Specifically, the second groove 15 is provided with heat dissipation holes 17, and the first and third grooves 16 are both provided with fixing grooves 12. The arrangement of the heat dissipation holes 17 increases the channels for heat dissipation, improving the overall heat dissipation efficiency. The fixing grooves 12 on the first and third grooves 16 enhance the connection stability between the cable tray 4 and the fixing device 3, preventing displacement or loosening during use. This design further optimizes the heat dissipation performance and structural stability of the cable tray 4, and is applicable to the application scenarios of cable trays 4 that require efficient heat dissipation and stable structure.

[0044] In a specific example, the temperature sensor 11 faces the cable directly, and the temperature sensor 11 is electrically connected to the condenser 5.

[0045] Specifically, the temperature sensor 11 faces the cable directly and is electrically connected to the condenser 5. This arrangement ensures that the temperature sensor 11 can monitor the temperature of the cable in real time and cooperate with the condenser 5 through electrical connection to optimize the heat dissipation effect. The real-time data feedback of the temperature sensor 11 helps to adjust the working state of the condenser 5, ensuring that the cable operates within a safe temperature range, thereby improving the safety and reliability of the system.

[0046] In a specific example, the storage net 6 is coated with a heat-absorbing film.

[0047] Specifically, the coating of the heat-absorbing film increases the heat absorption capacity of the storage net 6, further improving the heat dissipation efficiency. The heat-absorbing film can effectively absorb and transfer heat, enhancing the overall heat dissipation effect. This design is applicable to the cable tray 4 system with high heat dissipation requirements, especially when used in high-temperature environments, which can significantly improve the stability and service life of the system.

[0048] In a specific example, the storage net 6 is made of aluminum alloy.

[0049] Specifically, aluminum alloy has good thermal conductivity and lightweight characteristics, enabling the storage net 6 to perform well in the heat dissipation process and enhancing the overall structural stability while maintaining light weight. The use of aluminum alloy further improves the performance of the heat dissipation cable tray 4, and is particularly applicable to the application scenarios of cable trays 4 with high requirements for weight and heat dissipation.

[0050] In a specific example, the fixing device 3 includes an elastic member 18. Define the surface facing away from the contact surface between the fixing member 10 and the temperature sensor 11 as the third surface 19, and the elastic member 18 is arranged on the third surface 19.

[0051] Specifically, the elastic member 18 is arranged on the surface facing away from the contact surface of the fixing member 10 and the temperature sensor 11. The arrangement of the elastic member 18 enhances the stability of the fixing device 3, reduces displacement caused by vibration or thermal expansion, and ensures the long-term reliability of the fixing device 3. This design improves the durability and stability of the overall heat dissipation bridge 4 system and is applicable to various environments requiring stable installation and long-term operation.

[0052] In a specific example, a threaded through hole is provided in the fixed end, and the bridge 4 is threadedly connected to the temperature sensor 11.

[0053] Specifically, the bridge 4 and the temperature sensor 11 are threadedly connected. The threaded connection improves the installation stability between the bridge 4 and the temperature sensor 11, ensuring reliability and adjustability during use. The threaded through hole allows the temperature sensor 11 to be adjusted as needed, optimizing the heat dissipation effect and ensuring the overall stability and operational convenience of the system. The above are only the implementation manners of the present application. It should be noted here that for those of ordinary skill in the art, improvements can be made without departing from the creative concept of the present application, but these all fall within the protection scope of the present application.

Claims

1. An efficient heat dissipation bridge for storing cables, characterized in that: The high-efficiency heat dissipation bridge comprises a heat dissipation device and a fixing device which are arranged in sequence, and the fixing device is arranged on the heat dissipation device; The heat dissipation device comprises a bridge, a condenser and a storage net, the bridge comprises a condensing end in contact with the condenser and a fixing end in contact with the fixing device, the condensing end is provided with a first groove, the condenser is arranged in the first groove, the fixing device is arranged at the fixing end, the contact surface of the condenser and the first groove is defined as a first surface, a second surface is defined as facing away from the first surface, and the storage net is arranged on the second surface; The fixing device comprises a fixing part and a temperature sensor, one end of the temperature sensor is arranged at the fixing end, and the other end of the temperature sensor is fixedly connected to the fixing part.

2. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The condensing end is provided with a fixing groove, the receiving net is connected to the fixing groove by a card shell, the receiving net is a rectangular mesh structure, and its two ends are bent along the width direction of the rectangular mesh structure to form a receiving cavity, and the cable is arranged in the receiving cavity.

3. The high-efficiency heat dissipation bridge according to claim 2, characterized in that: The fixing groove passes through the groove, and the condenser part abuts against the receiving cavity.

4. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The bridge frame is a rectangular plate structure, and the rectangular plate is recessed along its width center line toward the center of the earth to form the first groove, the second groove and the third groove. Along the width direction of the rectangular plate, the first groove is on the left side of the third groove, and the second groove is between the first groove and the third groove.

5. The high-efficiency heat dissipation bridge according to claim 4, characterized in that: The second groove is provided with a heat dissipation hole, and the first groove and the third groove are both provided with a fixing groove.

6. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The temperature sensor is directly opposite to the cable, and the temperature sensor is electrically connected to the condenser.

7. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The receiving net is coated with a heat absorbing film.

8. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The storage net is made of aluminum alloy.

9. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The fixing device includes an elastic member, a contact surface facing away from the fixing member and the temperature sensor is defined as a third surface, and the elastic member is arranged on the third surface.

10. The high-efficiency heat dissipation bridge according to claim 1, characterized in that: The fixing end is provided with a threaded through hole, and the bridge is threadedly connected to the temperature sensor.

Citation Information

Patent Citations

  • Intelligent cooling cable bridge system and cooling method thereof

    CN110854764A