Intelligent heat dissipation cable device with adaptive temperature regulation and control function and regulation and control method of intelligent heat dissipation cable device

Through the intelligent heat dissipation cable device with adaptive temperature regulation, the water-cooled heat dissipation system and temperature-controlled cooling components are integrated, which solves the problems of heat dissipation and temperature regulation of cables in high temperature, high load and complex environments, and achieves efficient and quiet temperature control and multi-scene adaptability.

CN120340951AActive Publication Date: 2025-07-18CHINA THREE GORGES UNIV
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Patent Information

Application Number
CN202510548890.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-28
Publication Date
2025-07-18
Estimated Expiration
2045-04-28

AI Technical Summary

Technical Problem

The existing cables have low heat dissipation efficiency, inaccurate temperature regulation and poor adaptability in high temperature, high load and complex environments, and traditional heat dissipation methods are difficult to meet actual needs.

Method used

It adopts an intelligent heat dissipation cable device with adaptive temperature regulation, integrates a water-cooled cooling system, temperature-controlled cooling components and adjustment mechanism, quickly exports heat through the cooling water circulation path, and combines the temperature-controlled cooling components to automatically adjust the flow rate and temperature to achieve accurate control of the cable temperature.

Benefits of technology

It significantly improves the heat dissipation efficiency and temperature control accuracy of the cable, reduces noise, enhances the adaptability and stability of the device, extends the service life of the cable, and adapts to a variety of environments and cable sizes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a self-adaptive temperature regulation and control intelligent heat dissipation cable device and a regulation and control method thereof. The technical limitations that an existing cable is low in heat dissipation efficiency, inaccurate in temperature control and poor in environmental adaptability are broken through. A damping piece and an elastic piece are integrated in a cable shell to form a water-cooling heat dissipation system, and cable operation heat is rapidly guided out through a cooling water circulation path; the flow and temperature of cooling water are monitored in real time and dynamically adjusted in combination with the temperature control cooling assembly, and precise closed-loop control over the working temperature of the cable is achieved; a height-adjustable adjusting mechanism with a built-in column-lower sleeve column sliding locking structure is designed to adapt to complex terrains such as flat ground and muddy terrains; a supporting piece and supporting frame combined structure is adopted, clamping tooth-clamping groove meshing is driven through a rotating handle to adjust the supporting space, and reliable fixing of cables of multiple specifications is compatible; through collaborative innovation of water-cooling heat dissipation, intelligent temperature control and structure adaptation, the heat dissipation efficiency is remarkably improved, the operation noise is reduced, the service life of the cable is prolonged, the cable can be flexibly deployed in multiple scenes, and efficient and stable heat dissipation technical support is provided for power transmission.
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Description

Technical Field

[0001] The present invention relates to the technical field of cable heat dissipation, and particularly to an intelligent heat dissipation cable device with adaptive temperature regulation and its regulation method. Background Art

[0002] As a key component in power transmission, communication, and automation control systems, cables play a crucial role in modern infrastructure construction. With the continuous progress of technology and the increasing wide application, the usage environment of cables has become more complex and changeable, and the performance requirements for cables are also getting higher and higher. Especially under extreme conditions such as high temperature and high load, the heat dissipation problem of cables is particularly prominent, becoming one of the key factors restricting the performance and service life of cables.

[0003] In the field of cable technology, traditional cable heat dissipation methods mostly rely on natural cooling or simple air-cooling systems. Although these heat dissipation methods can alleviate the heat dissipation problem of cables to a certain extent, under extreme conditions such as high temperature and high load, their heat dissipation effects are often difficult to meet the actual needs. Especially when cables are laid in densely populated areas, directly buried underground or underwater and other complex environments, due to factors such as space limitations and harsh environments, the heat dissipation problem of cables is more severe.

[0004] In addition, there are also obvious deficiencies in the temperature regulation of existing cable structures. Most cables lack effective temperature monitoring and regulation means, and it is difficult to automatically adjust the heat dissipation effect according to the actual temperature change of the cables. This not only causes the cables to be prone to overheating in high-temperature environments, affecting the service life and safety of the cables, but also may cause energy waste when the cable temperature is too low.

[0005] To solve the above problems, researchers at home and abroad have conducted a large number of studies and explorations. For example, CN1138386020A discloses a cable structure, which improves the electrical performance and anti-interference ability of the cable by setting components such as a low-dielectric resin layer and a shielding layer. However, this patent does not involve the heat dissipation and temperature regulation problems of the cable, and it is difficult to meet the high requirements for cable performance in complex environments.

[0006] In addition, CN209929039U discloses an intelligent temperature-controlled low-voltage cable, which realizes the monitoring and regulation of the cable temperature through the set inductor, temperature sensor, controller, and signal transmitter. However, although this patent solves the problem of cable temperature regulation to a certain extent, there is still room for improvement in the heat dissipation effect. Especially under high load and long-term operation, its heat dissipation performance may not meet the actual needs.

[0007] In addition, CN108091440B discloses an overheat-proof cable that can automatically form a heat dissipation air duct. Through structural design, the cable can automatically form a heat dissipation air duct during operation, improving the heat dissipation efficiency. However, the heat dissipation method of this patent mainly relies on air convection, and the heat dissipation effect is affected by various factors such as ambient temperature and wind speed. Moreover, in harsh environments such as high humidity and high dust, its heat dissipation performance may be limited.

[0008] In summary, there are still many deficiencies in the existing cable structures in terms of heat dissipation and temperature regulation, such as limited heat dissipation effect, inaccurate temperature regulation, and limited application range. Especially under conditions such as high temperature, high load, and complex environments, the heat dissipation and temperature regulation performance of the existing cable structures are difficult to meet the actual needs. Therefore, developing an intelligent heat dissipation cable device with adaptive temperature regulation, through integrating advanced temperature control and heat dissipation technologies and an intelligent regulation system, to achieve precise control of the cable temperature and efficient heat dissipation, is of great significance for improving the usage efficiency of the cable, extending its service life, and ensuring its usage safety. Summary of the Invention

[0009] The technical problem to be solved by the present invention is to provide an intelligent heat dissipation cable device with adaptive temperature regulation and its regulation method, to solve the obvious problems existing in the cable technology field, such as low cable heat dissipation efficiency, difficult precise temperature regulation, and poor adaptability in different environments, and to overcome the specific limitations in the prior art, such as complex cable heat dissipation structure, high cost, large noise, and difficulty in adapting to complex environments.

[0010] To solve the above technical problems, the technical solution adopted by the present invention is: an intelligent heat dissipation cable device with adaptive temperature regulation, including a device main body. A cable heat dissipation mechanism is arranged in the device main body. The cable heat dissipation mechanism includes a cable outer shell. A damping member is connected inside the cable outer shell. An elastic member is installed on the damping member. The lower end of the damping member is connected to a central tube. An inner sheathed rope is inserted inside the central tube. A cable core is inserted inside the inner sheathed rope. An adjusting mechanism is arranged at the lower end of the cable heat dissipation mechanism.

[0011] In a preferred solution, a support member is provided around the outer surface of the device main body, and a support frame is installed at the upper end of the support member.

[0012] In a preferred solution, a turning handle is inserted inside the support frame. A toothed portion is provided at one end of the turning handle. A card slot is formed on the support member, and the toothed portion meshes with the card slot.

[0013] In a preferred solution, a water inlet and a water outlet are provided at the upper end of the cable outer shell. The water inlet and the water outlet are respectively communicated with a temperature control cooling component. The temperature control cooling component includes a cooling device and a circulating water pump that are interconnected. The water inlet is communicated with the circulating water pump, and the water outlet is communicated with the cooling device.

[0014] In a preferred solution, the elastic member is sleeved on the outer surface of the damping member.

[0015] In a preferred solution, the adjustment mechanism includes an inner column, and the inner column is slidably mounted in the lower column.

[0016] In a preferred solution, a plurality of bolt grooves are provided on the built-in column, and a plug is installed on the lower sleeve column. The plug is inserted into the bolt groove to lock the built-in column and the lower sleeve column.

[0017] In a preferred solution, a base is installed at the lower end of the lower sleeve column, a plurality of studs are installed on the base, and an insert cone is provided at the lower end of the studs.

[0018] The control method of the intelligent heat dissipation cable device with adaptive temperature control is a method for temperature control using the above-mentioned intelligent heat dissipation cable device with adaptive temperature control, comprising the following steps: Step 1: Inject cooling water into the cable housing through the water inlet, so that the cooling water flows through the gap between the cable housing and the center tube; Step 2: After the cooling water absorbs the heat generated by the cable, it is discharged from the outlet and enters the temperature control cooling component for temperature regulation; Step 3: The regulated cooling water is recirculated to the water inlet to form a closed-loop cooling system; Step 4: According to the actual temperature of the cable, the flow and temperature of the cooling water are automatically adjusted through the temperature control cooling component to keep the cable working within the optimal temperature range.

[0019] In a preferred embodiment, the method also includes adjusting the height of the cable cooling mechanism through an adjustment mechanism to adapt to the cooling requirements in different environments. Specifically, the overall height of the cable cooling mechanism is adjusted by moving the position of the built-in column in the lower sleeve column and fixing it with a bolt inserted in a corresponding bolt groove.

[0020] In a preferred embodiment, the method also includes being compatible with and fixing cables of different sizes through the cooperation of the support member and the support frame. Specifically, by turning the handle, the latch teeth are driven to engage in slots at different positions, thereby adjusting the internal space of the support member to accommodate cables of different diameters.

[0021] The intelligent heat dissipation cable device with adaptive temperature control and the control method thereof provided by the present invention have the following beneficial effects: 1. The present invention effectively solves technical problems such as low cable heat dissipation efficiency, inaccurate temperature control, and poor environmental adaptability, and overcomes the limitations of traditional cable heat dissipation structures, high costs, significant noise, and difficulty in adapting to complex environments.

[0022] 2. The efficient heat dissipation and intelligent temperature control system of the present invention constructs an efficient heat dissipation system through the principle of water-cooled heat dissipation, significantly improving the heat dissipation efficiency of the cable; the temperature control cooling component realizes the automatic adjustment of the cooling water flow and temperature, improves the system response speed and control accuracy, accurately controls the working temperature of the cable, and extends the service life; the heat generated during the operation of the cable is quickly conducted to the external environment through the water circulation system, achieving efficient heat dissipation.

[0023] 3. The noise suppression and environmental compatibility optimization of the present invention effectively reduces the water flow noise through the combined design of damping components and elastic components, improving the user experience; the adjustment mechanism supports the height adjustment of the cable heat dissipation mechanism, and the base and stud design enhances the stability of the device. The plug cone structure adapts to muddy terrain, improving environmental compatibility; the temperature control cooling component and the noise suppression structure work together to achieve low-noise operation.

[0024] 4. The design of the present invention for compatibility with multi-size cables is a combined design of support components and support frames. By adjusting the cooperation of the engaging teeth and slots through the turning handle, the internal space of the support component can be flexibly adjusted to meet the fixing requirements of different-size cables, significantly improving the practicality and market competitiveness of the device.

[0025] 5. The integrated design of intelligent control and system of the present invention organically integrates the temperature control cooling component, the water circulation heat dissipation system, the noise suppression structure, and the height adjustment mechanism to form a new type of intelligent heat dissipation cable structure; the system integration design significantly improves the heat dissipation efficiency and temperature control accuracy, reduces the noise level, enhances the adaptability and stability of the device; through the cooperation of the inlet-outlet water circulation path and the temperature control component, the closed-loop control of the water flow temperature is achieved, ensuring the reliability of the cable operation.

[0026] 6. The design of the adjustment mechanism and the base of the present invention supports the height adjustment and terrain adaptability adjustment of the cable heat dissipation mechanism to meet the deployment requirements of different scenarios; the plug cone structure enhances the stability of the device in rainy and snowy weather, realizing the general deployment on flat ground and complex road surfaces.

[0027] 7. The adjustment mechanism of the present invention is equipped with a locking device to ensure the structural stability after height adjustment and prevent accidental changes; the base is made of corrosion-resistant materials, extending the service life, adapting to various harsh environmental conditions, and improving the flexibility and durability of the overall deployment.

[0028] 8. The structure of the present invention is simple, the operation is convenient, and it is easy to install and maintain; standardized interfaces are used between components, facilitating quick replacement and repair, reducing the maintenance cost, improving the overall operation efficiency, and being applicable to a wide range of cable management and application scenarios. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] The following further describes the present invention in conjunction with the drawings and embodiments: Figure 1 It is a schematic diagram of the overall structure of the device of the present invention; Figure 2 This is a side view of the overall structure of the device of the present invention; Figure 3 This is a schematic structural diagram of the heat dissipation cable mechanism of the present invention; Figure 4 This is the present invention Figure 3 An enlarged schematic structural diagram of part A in; Figure 5 This is a partial schematic structural diagram of the cable heat dissipation mechanism of the present invention; Figure 6 This is a schematic structural diagram of the adjustment mechanism of the present invention; In the figure: device main body 1, cable heat dissipation mechanism 2, adjustment mechanism 3, cable outer shell 21, damping member 22, elastic member 23, central tube 24, inner wrapping rope 25, cable core 26, support member 27, support frame 28, turning handle 29, built-in column 31, lower sleeve column 32, bolt groove 33, bolt 34, base 35, stud 36, insertion cone 37, water inlet 206, water outlet 207, tooth 208, slot 209. Specific embodiments

[0030] The technical solutions in the present invention will be further described below with reference to the accompanying drawings and embodiments.

[0031] Embodiment 1 As Figures 1 to 6 shown, this embodiment details the specific device structure of an intelligent heat dissipation cable device with adaptive temperature control.

[0032] 1. Device main body 1 and cable heat dissipation mechanism 2 The cable heat dissipation mechanism 2 is provided in the device main body 1. The cable heat dissipation mechanism 2 mainly includes a cable outer shell 21, a damping member 22, an elastic member 23, a central tube 24, an inner wrapping rope 25, and a cable core 26.

[0033] Cable outer shell 21: As the main load-bearing component of the cable heat dissipation mechanism, the cable outer shell 21 is made of high-strength and corrosion-resistant materials, and its internal space is used to accommodate subsequent heat dissipation components. The upper end of the cable outer shell 21 is provided with a water inlet 206 and a water outlet 207, and the water inlet 206 and the water outlet 207 are respectively communicated with a temperature control cooling component. The temperature control cooling component includes a cooling device and a circulating water pump that are interconnected. The water inlet 206 is communicated with the circulating water pump, and the water outlet 207 is communicated with the cooling device, so as to form a water circulation heat dissipation system.

[0034] Damping member 22 and elastic member 23: The damping member 22 is installed inside the cable outer shell 21, and the elastic member 23 is sleeved on the outside of the damping member 22. The damping member 22 and the elastic member 23 work together to reduce the noise generated when water flows through the gap between the cable outer shell 21 and the central tube 24.

[0035] Central tube 24: The central tube 24 is connected to the lower end of the damping member 22, and three groups of inner wrapping ropes 25 are inserted therein. The central tube 24 serves as the structural support of the entire cable heat dissipation mechanism and also provides a channel for water circulation.

[0036] Inner wrapping ropes 25 and cable core 26: The inner wrapping ropes 25 are located inside the central tube 24, and the cable core 26 is inserted therein. The cable core 26 is responsible for power transmission, while the inner wrapping ropes 25 provide additional structural support and protection.

[0037] 2. Adjusting mechanism 3 The adjusting mechanism 3 is provided at the lower end of the cable heat dissipation mechanism 2 and is used to adjust the overall height of the cable heat dissipation mechanism 2 to meet the heat dissipation requirements in different environments.

[0038] Built-in column 31 and lower sleeve column 32: The built-in column 31 is slidably sleeved inside the lower sleeve column 32, and a number of bolt grooves 33 are provided on the built-in column 31. An insertion bolt 34 is installed on the lower sleeve column 32, and the insertion bolt 34 can be inserted into the bolt grooves 33 to lock the built-in column 31 and the lower sleeve column 32 at a specific position.

[0039] Base 35, stud 36 and insertion cone 37: The lower end of the lower sleeve column 32 is installed with a base 35, and a number of studs 36 are installed on the base 35. The lower end of the stud 36 is provided with an insertion cone 37, which facilitates the stable placement of the device main body 1 on the ground in rainy and snowy weather.

[0040] 3. Compatibility design In order to be compatible with cables of different sizes, a support member 27 is provided around the outer surface of the device main body 1, and a support frame 28 is installed at the upper end of the support member 27. A turning handle 29 is inserted inside the support frame 28, a gear tooth 208 is provided at one end of the turning handle 29, and a card slot 209 is provided on the support member 27. By turning the turning handle 29, the gear tooth 208 is driven to slide in multiple groups of card slots 209, thereby adjusting the internal space size of the support member 27 to adapt to cables of different diameters.

[0041] Embodiment 2 In another preferred embodiment, on the basis of Embodiment 1, as Figures 1 to 5 shown, the detailed structure of the cable heat dissipation mechanism 2 and its internal components of the self-adaptive temperature control intelligent heat dissipation cable device in this embodiment is described in detail. The structure of the device main body 1 and the adjusting mechanism 3 and their connection manners with the cable heat dissipation mechanism 2 are the same as those in Embodiment 1.

[0042] 1. Basic structure of the cable heat dissipation mechanism 2 The cable heat dissipation mechanism 2 is the core part of the self-adaptive temperature control intelligent heat dissipation cable structure of the present invention, mainly including a cable outer shell 21, a damping member 22, an elastic member 23, a central tube 24, inner wrapping ropes 25 and a cable core 26.

[0043] Cable housing 21: Made of high-strength, corrosion-resistant materials (such as stainless steel or alloy materials), with sufficient rigidity and sealing. A water inlet 206 and a water outlet 207 are provided at the upper end of the cable housing 21. The water inlet 206 and the water outlet 207 are respectively connected to the temperature control cooling component. The temperature control cooling component includes a cooling device and a circulating water pump that are connected to each other. The water inlet 206 is connected to the circulating water pump, and the water outlet 207 is connected to the cooling device.

[0044] Used for the circulation of cooling water. The water inlet 206 and the water outlet 207 are both provided with sealing devices to ensure the sealing during the water circulation process.

[0045] Damping member 22 and elastic member 23: Damping member 22 is made of high damping material, and its shape and size are precisely designed to reduce the noise generated when water flows through the gap between cable housing 21 and central tube 24. Elastic member 23 is sleeved on the outside of damping member 22, and is made of material with good elasticity (such as rubber or silicone), and closely cooperates with damping member 22 to form a shock-absorbing and noise-reducing system.

[0046] Central tube 24: As the structural support and water circulation channel of the cable heat dissipation mechanism, the central tube 24 is made of high-strength, corrosion-resistant pipe material. Its internal space is used to insert three groups of inner ropes 25 to provide protection and support for the cable core 26.

[0047] Inner carrying rope 25 and cable core 26: The inner carrying rope 25 is made of high-strength and good insulating material, and a cable core 26 is inserted inside the inner carrying rope 25. The cable core 26 is responsible for the transmission of power, while the inner carrying rope 25 provides additional structural support and protection to prevent the cable core 26 from being damaged during transportation and use.

[0048] 2. Connection between the cable heat dissipation mechanism 2 and the device body 1 The cable heat dissipation mechanism 2 is fixedly connected to the device body 1 through a suitable connection method. The connection is sealed to ensure the sealing and stability of the water circulation system.

[0049] Example 3 In another preferred embodiment, based on Example 1, Figure 6 As shown, this embodiment describes in detail the detailed structure of the adjustment mechanism 3 and its internal components of the intelligent heat dissipation cable device with adaptive temperature control. The structure of the device body 1 and the cable heat dissipation mechanism 2 of this embodiment and the connection method with the adjustment mechanism 3 are the same as those in Example 1.

[0050] 1. Basic structure of adjustment mechanism 3 The adjusting mechanism 3 is provided at the lower end of the cable heat dissipation mechanism 2 and is used to adjust the overall height of the cable heat dissipation mechanism 2 to meet the heat dissipation requirements in different environments. The adjusting mechanism 3 mainly includes an inner column 31, a lower sleeve column 32, a bolt 34, a base 35, a stud 36, and a plug cone 37.

[0051] Inner column 31 and lower sleeve column 32: The inner column 31 is slidably sleeved inside the lower sleeve column 32, and the mating surfaces between the two are precisely machined to ensure smooth and stable sliding. A number of bolt slots 33 are provided on the inner column 31 for cooperating with the bolt 34 to lock the position.

[0052] Bolt 34: The bolt 34 is installed on the lower sleeve column 32 and can be operated manually or electrically. It is inserted into the bolt slot 33 on the inner column 31 to lock the inner column 31 and the lower sleeve column 32.

[0053] Base 35, stud 36, and plug cone 37: The base 35 is installed at the lower end of the lower sleeve column 32 to provide stable support. A number of studs 36 are installed on the base 35, and a plug cone 37 is provided at the lower end of the stud 36. The plug cone 37 is designed to be sharp, facilitating the stable insertion of the device main body 1 into the ground or fixing it on other supports in rainy or snowy weather.

[0054] 2. Function realization of the adjusting mechanism By moving the position of the inner column 31 in the lower sleeve column 32 and using the bolt 34 to insert and fix in the corresponding bolt slot 33, the overall height of the cable heat dissipation mechanism 2 can be adjusted. This design enables the device to meet the heat dissipation requirements in different terrains and environments, improving the practicality and flexibility of the device. At the same time, the designs of the base 35, stud 36, and plug cone 37 also enhance the stability and reliability of the device in complex environments.

[0055] Embodiment 4 In another preferred embodiment, based on Embodiments 1, 2, and 3, this embodiment elaborates in detail a method for temperature control using an intelligent heat dissipation cable device with adaptive temperature control, including steps such as starting the water circulation heat dissipation system, temperature control and cooling water circulation, and height adjustment and compatibility adjustment.

[0056] 1. Starting and operation of the water circulation heat dissipation system Cooling water injection: First, an appropriate amount of cooling water is injected into the inside of the cable housing 21 through the water inlet 206 at the upper end of the cable housing 21. The injection amount of the cooling water should be determined according to the heat dissipation requirements of the cable and the capacity of the cable housing 21 to ensure the normal operation of the water circulation system.

[0057] Water flow channel formation: The injected cooling water forms a water flow channel in the narrow gap between the cable outer shell 21 and the central tube 24. The design of this channel fully considers the fluidity of the water flow and the heat dissipation efficiency, ensuring that the cooling water can fully absorb the heat generated by the cable.

[0058] Heat absorption and dissipation: As the cooling water flows in the gap between the cable outer shell 21 and the central tube 24, it continuously absorbs the heat generated by the cable. Subsequently, the cooling water that has absorbed heat is discharged from the water outlet 207 and enters the cooling equipment of the temperature control cooling component for temperature regulation (cooling).

[0059] 2. Temperature regulation and cooling water circulation Temperature regulation: After the discharged cooling water enters the temperature control cooling component, the temperature control cooling component automatically adjusts the flow rate and temperature of the cooling water according to the actual temperature of the cable. This process is achieved through precise control algorithms to ensure that the cooling water always remains within an appropriate temperature range to maximize the heat dissipation efficiency.

[0060] Cooling water circulation: The cooling water regulated by the temperature control cooling component is recycled to the water inlet 206 via the circulation pump, forming a closed-loop circulation heat dissipation system. This circulation process continues continuously, constantly absorbing and removing the heat generated by the cable to ensure that the cable always operates within the optimal temperature range.

[0061] Embodiment 5 In another preferred embodiment, based on Embodiment 4, during the process of temperature regulation using the intelligent heat dissipation cable device with adaptive temperature regulation in this embodiment, according to actual requirements and environmental conditions, for the device 1. Height adjustment Height adjustment: According to actual requirements and environmental conditions, the overall height of the cable heat dissipation mechanism 2 is adjusted through the adjustment mechanism 3. The specific operation is as follows: First, loosen the bolt 34, then move the position of the inner column 31 in the lower sleeve column 32. After the position is adjusted appropriately, use the bolt 34 to insert into the corresponding bolt slot 33 again for fixation. This process is simple and fast and can be completed without special tools.

[0062] 2. Compatibility adjustment Compatibility adjustment: In order to be compatible with cables of different sizes, the present invention designs adjustable support members 27 and support frames 28. By rotating the handle 29, the gear teeth 208 are driven to slide in multiple sets of card slots 209, thereby adjusting the internal space size of the support member 27. This process can be precisely adjusted according to the diameter of the cable to ensure that the cable can be firmly installed in the device main body 1.

[0063] Adjustment effect verification: After performing height adjustment and compatibility adjustment, a comprehensive inspection should be carried out on the entire heat dissipation cable structure to ensure that all components are in normal working condition. At the same time, verify whether the adjustment effect meets the expected requirements through actual operation tests.

[0064] Through the detailed description of the implementation steps of the above two embodiments, it clearly demonstrates how to use the intelligent heat dissipation cable device with adaptive temperature control for temperature regulation. This method not only has efficient and reliable heat dissipation performance, but also has flexible height adjustment and compatibility adjustment functions, and can meet the usage requirements under different environments and conditions.

[0065] In a preferred solution, a support member 27 is provided in a circular shape on the outer surface of the device main body 1, and a support frame 28 is installed at the upper end of the support member 27; the above settings can not only provide additional stability for the device main body 1 to prevent it from shaking or tipping during use, but also the design of the support frame 28 facilitates users to install accessories or perform other expansion operations according to actual needs.

[0066] In a preferred solution, a rotary handle 29 is inserted inside the support frame 28, a toothed portion 208 is provided at one end of the rotary handle 29, and a card slot 209 is formed on the support member 27, and the toothed portion 208 engages with the card slot 209; the above settings enable the toothed portion 208 to move in the card slot 209 when the rotary handle 29 is rotated, thereby adjusting the position of the support member 27 and realizing the function of flexibly adjusting the support angle, improving the practicality and convenience of the device.

[0067] In a preferred solution, a water inlet 206 and a water outlet 207 are provided at the upper end of the cable outer shell 21, and the water inlet 206 and the water outlet 207 are respectively connected to the temperature control cooling component. The temperature control cooling component includes a cooling device and a circulating water pump that are connected to each other. The water inlet 206 is connected to the circulating water pump, and the water outlet 207 is connected to the cooling device; the above settings enable the cooling water to circulate inside the cable outer shell, and the cooling device cools the circulating water, thereby realizing effective heat dissipation of the cable, ensuring the stable operation of the cable in a high-temperature environment, and at the same time, recycling the cooling water improves the resource utilization rate.

[0068] In a preferred solution, the elastic member 23 is sleeved on the outer surface of the damping member 22; the above settings not only effectively enhance the tightness between structures, but also enable the elastic member 23 to more evenly disperse the force to the damping member 22 when pressed, thereby improving the overall shock absorption and buffering effect, and optimizing the stability and durability of the device in a dynamic environment.

[0069] In the preferred embodiment, the adjustment mechanism 3 includes a built-in column 31, which is slidably mounted in a lower sleeve column 32; in the above arrangement, a limit block 33 is provided on the top of the built-in column 31 to prevent the built-in column 31 from completely separating from the lower sleeve column 32; a spring 34 is provided on the side wall of the built-in column 31, and the other end of the spring 34 is fixed to the inner wall of the lower sleeve column 32 to provide a reset elastic force for the built-in column 31.

[0070] In the preferred embodiment, a plurality of bolt grooves 33 are provided on the built-in column 31, and a plug 34 is installed on the lower sleeve column 32. The plug 34 is inserted into the bolt groove 33 to lock the built-in column 31 and the lower sleeve column 32. The above arrangement ensures a stable connection between the built-in column 31 and the lower sleeve column 32. At the same time, the matching design of the bolt groove 33 and the plug 34 facilitates disassembly and installation, thereby improving the flexibility and practicality of the overall structure.

[0071] In the preferred embodiment, a base 35 is installed at the lower end of the lower sleeve column 32, a plurality of studs 36 are installed on the base 35, and an insert cone 37 is provided at the lower end of the stud 36; the above arrangement enables the base to be firmly fixed, and the arrangement of the insert cone 37 enables the stud 36 to be quickly positioned and fixed, thereby improving the overall stability and reliability of the device.

[0072] In the preferred solution, the method further includes adjusting the height of the cable heat dissipation mechanism 2 through the adjustment mechanism 3 to adapt to the heat dissipation requirements in different environments, specifically, by moving the position of the built-in column 31 in the lower sleeve column 32, and using the plug 34 to be inserted and fixed in the corresponding bolt slot 33, so as to adjust the overall height of the cable heat dissipation mechanism 2; the above settings ensure that the cable heat dissipation mechanism 2 can be flexibly adjusted according to actual needs, thereby improving the heat dissipation efficiency and applicability. At the same time, the adjustment mechanism 3 is simple in design and quick in operation, which is convenient for maintenance personnel to operate on site, further improving the practicality and reliability of the equipment.

[0073] In the preferred solution, the method also includes being compatible with and fixing cables of different sizes through the cooperation of the support member 27 and the support frame 28. Specifically, by turning the handle 29, the latch teeth 208 are driven to engage in the slots 209 at different positions, thereby adjusting the internal space of the support member 27 to accommodate cables of different diameters. The above arrangement ensures that the cable can be firmly clamped, avoids poor connection or damage caused by cable shaking, improves the flexibility and practicality of cable management, and also facilitates subsequent maintenance or replacement of cables of different specifications.

[0074] The present invention proposes an intelligent heat dissipation cable device with adaptive temperature regulation and its regulation method, and provides an effective solution for the obvious problems existing in the cable technology field, such as low heat dissipation efficiency, difficult precise temperature regulation, and poor adaptability in different environments. The present invention overcomes the specific limitations in the prior art, such as complex cable heat dissipation structure, high cost, large noise, and difficulty in adapting to complex environments. Through innovative design ideas and technical means, the heat dissipation performance of the cable is significantly improved.

[0075] Specifically, the present invention integrates core components such as a cable outer shell 21, a damping member 22, an elastic member 23, a central tube 24, an inner wrapping rope 25, and a cable core 26 to construct an efficient water-cooled heat dissipation system. This system can not only effectively reduce the temperature of the cable during operation to ensure the safe and stable operation of the cable, but also significantly reduce the water flow noise through the ingenious combination of the damping member and the elastic member, providing a quieter use environment for users.

[0076] To further improve the heat dissipation performance, the present invention introduces a temperature-controlled cooling component to realize the automatic adjustment of the cooling water flow rate and temperature. The application of this intelligent temperature control technology enables the cable to always maintain the best working state under different working loads and environmental conditions, greatly improving the response speed and accuracy of the heat dissipation system and extending the service life of the cable.

[0077] In addition, the present invention also designs an adjustment mechanism composed of components such as a built-in column 31, a lower sleeve column 32, and a bolt 34, allowing users to flexibly adjust the height of the cable heat dissipation mechanism as needed. This design enhances the adaptability and flexibility of the device, enabling it to meet the heat dissipation requirements in different terrains and environments, and further expanding the application scope.

[0078] In terms of compatibility, the present invention realizes the compatibility and fixation of cables of different sizes through the combined design of a support member 27 and a support frame 28, enabling the device to be widely applied to various cable scenarios and improving its practicality and market competitiveness.

[0079] In summary, the present invention constructs an efficient and low-noise water-cooled heat dissipation system by ingeniously designing components such as the cable outer shell 21, the damping member 22, and the elastic member 23, and introduces intelligent temperature control technology and a highly adjustable adjustment mechanism. It not only improves the heat dissipation efficiency and temperature regulation accuracy of the cable, but also enhances the adaptability and compatibility of the device. The proposal of the present invention provides new ideas and directions for the development of cable heat dissipation technology, and has significant technological innovation and practical value.

Claims

1. An intelligent heat dissipation cable device with adaptive temperature control, characterized in that: The invention comprises a device body (1), wherein a cable heat dissipation mechanism (2) is arranged in the device body (1), the cable heat dissipation mechanism (2) comprises a cable housing (21), a damping member (22) is connected to the interior of the cable housing (21), an elastic member (23) is mounted on the damping member (22), a central tube (24) is connected to the lower end of the damping member (22), an inner wrapping rope (25) is inserted into the interior of the central tube (24), and a cable core (26) is inserted into the interior of the inner wrapping rope (25); an adjustment mechanism (3) is arranged at the lower end of the cable heat dissipation mechanism (2).

2. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 1, characterized in that: A support member (27) is provided around the outer surface of the device body (1), and a support frame (28) is installed on the upper end of the support member (27).

3. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 2, characterized in that, A turning handle (29) is inserted into the support frame (28), one end of the turning handle (29) is provided with a latching tooth (208), a latching groove (209) is provided on the support member (27), and the latching tooth (208) is meshed with the latching groove (209).

4. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 3, characterized in that: A water inlet (206) and a water outlet (207) are provided at the upper end of the cable housing (21); the water inlet (206) and the water outlet (207) are respectively connected to a temperature control cooling component; the temperature control cooling component comprises a cooling device and a circulating water pump which are connected to each other; the water inlet (206) is connected to the circulating water pump, and the water outlet (207) is connected to the cooling device.

5. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 4, wherein: The elastic member (23) is sleeved on the outer surface of the damping member (22).

6. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 5, characterized in that: The adjustment mechanism (3) comprises an inner column (31), wherein the inner column (31) is slidably sleeved in a lower sleeve column (32).

7. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 6, wherein: The built-in column (31) is provided with a plurality of bolt grooves (33), and the lower sleeve column (32) is provided with a bolt (34), which is inserted into the bolt groove (33) to lock the built-in column (31) and the lower sleeve column (32).

8. The intelligent heat dissipation cable device with adaptive temperature regulation according to claim 7, characterized in that: A base (35) is installed at the lower end of the lower sleeve column (32), a plurality of studs (36) are installed on the base (35), and an insert cone (37) is provided at the lower end of the studs (36).

9. A control method for an intelligent heat dissipation cable device with adaptive temperature regulation, characterized in that, A method for temperature control using the intelligent heat dissipation cable device with adaptive temperature control according to claim 8, the method comprising the following steps: Step 1: Inject cooling water into the cable housing (21) through the water inlet (206) so that the cooling water flows through the gap between the cable housing (21) and the center tube (24); Step 2: After the cooling water absorbs the heat generated by the cable, it is discharged from the water outlet (207) and enters the temperature control cooling component for temperature control; Step 3: The regulated cooling water is recirculated to the water inlet (206) to form a closed-loop cooling system; Step 4: According to the actual temperature of the cable, the flow and temperature of the cooling water are automatically adjusted through the temperature control cooling component to keep the cable working within the optimal temperature range; Step 5: Turn the handle (29) to drive the latching teeth (208) to latch into the latching slots (209) at different positions, thereby adjusting the internal space of the support member (27) to accommodate cables of different diameters.

10. The regulation method of the intelligent heat dissipation cable device with adaptive temperature regulation according to claim 9, characterized in that: The method further includes adjusting the height of the cable heat dissipation mechanism (2) through the adjusting mechanism (3) to meet the heat dissipation requirements in different environments. Specifically, by moving the position of the built-in column (31) in the lower sleeve column (32) and inserting the plug (34) into the corresponding bolt groove (33) for fixation, the overall height of the cable heat dissipation mechanism (2) is adjusted.

Citation Information

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