Low-power-consumption high-density AI intelligent terminal high-speed network cable

By incorporating airflow channels and pneumatic components into the high-speed network cable of the AI ​​smart terminal, the problems of poor heat dissipation and difficulty in identifying status are solved, achieving efficient heat dissipation and intuitive status display, improving maintenance efficiency, and adapting to the operation and maintenance needs of low-power, high-density AI smart terminals.

CN122224604APending Publication Date: 2026-06-16ZHEJIANG LEAP CABLE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHEJIANG LEAP CABLE
Filing Date
2026-04-20
Publication Date
2026-06-16

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Abstract

The application relates to the technical field of network cables, and discloses a low-power-consumption high-density AI intelligent terminal high-speed network cable, which comprises a twisted conductor, an inner protective layer and an outer protective sleeve which are sequentially sleeved, a gap is formed between the twisted conductor and the inner protective layer, openings are formed at the two ends of the outer protective sleeve and the inner protective layer, and the gap and the openings are matched to form a circulating air channel; a first sleeve is arranged at an input end opening, the first sleeve is provided with an air inlet joint and an inclined air hole; a second sleeve and a tail detection mechanism are arranged at an output end opening; the tail detection mechanism comprises a functional cylinder, a pneumatic assembly, an air outlet hole and a control panel; the pneumatic assembly is matched with the twisted conductor to dissipate heat and supply power for the control panel; and a state indicating lamp displays different colors according to the cable temperature. The application realizes efficient heat dissipation, intuitively displays the working state, is convenient to install and maintain, has the functions of safety and low power consumption, and solves the problems of poor heat dissipation, difficult identification of the working state and low maintenance efficiency of the existing AI network cable.
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Description

Technical Field

[0001] This invention relates to the field of network cable technology, specifically to a high-speed network cable for low-power, high-density AI smart terminals. Background Technology

[0002] With the rapid development of AI smart terminal technology, the computing power of terminal devices is constantly improving, placing higher demands on the transmission rate, stability, and power consumption control of network cables. In particular, low-power, high-density AI smart terminals have densely packed internal cable bundles, and the network cables need to be in a high-load data transmission state for a long time to meet the high-intensity computing power requirements of AI.

[0003] In existing technologies, high-speed network cables used in AI smart terminals often focus only on transmission speed and insulation performance, lacking targeted heat dissipation design. Prolonged high-load operation can easily lead to excessively high cable temperatures, which not only reduces data transmission stability and speed but may also accelerate insulation aging, shorten cable lifespan, and even pose safety hazards. Furthermore, in densely packed cable bundles, operators find it difficult to quickly determine the operating status of individual network cables. When an abnormal temperature is detected in a cable, it requires checking each cable individually, resulting in low maintenance efficiency and failing to meet the needs of efficient operation and maintenance for AI smart terminals.

[0004] Therefore, there is an urgent need for a high-speed network cable that can achieve efficient heat dissipation, intuitively display the working status, and is compatible with low-power, high-density AI smart terminals, in order to solve the shortcomings of the existing technologies. Summary of the Invention

[0005] (a) Technical problems to be solved To address the problems of poor heat dissipation, difficulty in quickly identifying operating status, and low maintenance efficiency of high-speed network cables for AI smart terminals in existing technologies, this invention provides a low-power, high-density high-speed network cable for AI smart terminals. This cable achieves efficient heat dissipation and can intuitively display the cable's operating status, facilitating rapid location of abnormal cables, improving maintenance efficiency, and ensuring long-term stable operation of the cable.

[0006] (II) Technical Solution To achieve the above objectives, the present invention provides the following technical solution: A high-speed network cable for low-power, high-density AI smart terminals includes several pairs of stranded conductors, an inner protective layer, and an outer protective sleeve arranged sequentially from the inside to the outside, with a gap formed between each pair of adjacent stranded conductors and the inner protective layer; A first opening is provided on the outer protective sleeve and inner protective layer near the network cable input connector, and a second opening is provided on the outer protective sleeve and inner protective layer near the network cable output connector. Several gaps cooperate with the first opening and the second opening to form a flow air passage. A first kit is provided at the first opening, and the first kit is provided with an air inlet connector and oblique air holes that correspond one-to-one with several gaps in the air passage. A second kit is provided at the second opening, and a tail inspection mechanism is provided on the second kit. The tail inspection mechanism includes a functional cylinder that communicates with the air passage. The functional cylinder is provided with a pneumatic component and multiple air outlets. A control board is connected to the functional cylinder, and an indicator light that reflects the working status of the network cable is provided on the control board.

[0007] During use, the air inlet connector is connected to the air inlet pipe. External cooling gas enters the annular groove of the first component through the air inlet connector, and flows directionally into the air passage formed by the gap between the stranded conductor and the inner protective layer through the oblique air holes corresponding to each gap. This provides comprehensive and uniform cooling and heat dissipation for the stranded conductor under high load, reducing the cable temperature and preventing high temperature from affecting the stability of data transmission and the service life of the cable.

[0008] As the gas flows through the air passage, it carries the heat generated by the stranded conductors and continues to flow towards the network cable output connector. After converging through the trapezoidal open annular groove of the second assembly, it is discharged from the outlet and acts on the blades inside the functional cylinder of the tail inspection mechanism, causing the blades to rotate at high speed. When the blades rotate, the rotor coil connected to its shaft moves in the stator's magnetic field, cutting magnetic lines of force and generating an induced current. The first and second slip rings stably supply the induced current to the control board, energizing the control board and illuminating the indicator light.

[0009] The control board's acquisition module pre-collects temperature data A (initial temperature at normal room temperature) when the stranded conductor is not in operation and safety temperature threshold data B after the stranded conductor has been operating under high load for a long time. The status determination module collects the operating temperature data of the stranded conductor in real time and compares it with the thresholds from A to B: when the temperature data is within the threshold range, the indicator light switching module controls the indicator light to display green, indicating that the cable is in normal working condition; when the temperature data exceeds the threshold range, the indicator light switching module controls the indicator light to display red, indicating that the cable has an abnormal temperature, which may affect the stability of operation.

[0010] In densely packed cable bundles, operators do not need to check each cable individually. They can quickly and intuitively identify abnormal cables simply by observing the color of the indicator lights at the ends of each cable. This allows them to repair or replace the abnormal cables, significantly improving maintenance efficiency and reducing maintenance costs.

[0011] Preferably, the functional cylinder is provided with a stator, and a plurality of air outlets are arranged in a circumferential array at the upper end of the functional cylinder, and the control plate is installed at the upper end of the functional cylinder.

[0012] Preferably, the pneumatic assembly includes a bracket mounted on the lower end of the functional cylinder, and blades are rotatably connected to the bracket.

[0013] Preferably, a first slip ring and a second slip ring are installed on the upper end of the functional cylinder, and the rotating shaft of the blade is connected to a rotor coil that cooperates with the first slip ring, the second slip ring, and the stator.

[0014] Preferably, the first kit is assembled from multiple first C-shaped plates, and an annular groove is provided in the first kit. The air inlet connector is connected to multiple oblique air holes through the annular groove.

[0015] Preferably, the outlet direction of the oblique air hole is biased towards the direction of the second component.

[0016] Preferably, the second kit is assembled from multiple second C-shaped plates, and the second kit has a trapezoidal open annular groove and an air outlet, with the blades of the functional cylinder located at the air outlet.

[0017] Preferably, the first and second kits are made of halogen-free flame-retardant materials.

[0018] Preferably, each stranded conductor is provided with a low-density polyolefin insulation layer and a thin aluminum-plastic composite single-layer shielding strip on its periphery, the inner protective layer is made of halogen-free flame-retardant material, and the outer protective sleeve is made of FEP material.

[0019] Preferably, the control board further includes: The acquisition module is used to acquire temperature data A of the stranded conductor when it is not in operation, and temperature data B of the stranded conductor after it has been in operation under high load for a long time. The status determination module is used to collect whether the temperature data of the stranded conductor is within the threshold between temperature data A and temperature data B; The indicator light switching module controls the color of the status indicator light based on the threshold data collected by the status determination module. Specifically, when the temperature data of the stranded conductor collected by the status determination module is within the threshold between temperature data A and temperature data B, the indicator light switching module controls the status indicator light to display green; when the temperature data of the stranded conductor collected by the status determination module exceeds the threshold between temperature data A and temperature data B, the indicator light switching module controls the status indicator light to display red.

[0020] (III) Beneficial Effects Compared with existing technologies, this invention provides a high-speed network cable for low-power, high-density AI smart terminals, which has the following advantages: 1. This low-power, high-density AI smart terminal uses a high-speed network cable with excellent heat dissipation: by setting a gap between the stranded conductor and the inner protective layer, and forming a flow air passage with the first and second openings, combined with the directional air supply design of the air inlet connector and the oblique air hole, the stranded conductor can be cooled comprehensively and evenly, effectively reducing the temperature of the cable when working under high load, ensuring the stability and speed of data transmission, and extending the service life of the cable.

[0021] 2. This low-power, high-density AI smart terminal uses high-speed network cables, and its working status is intuitively identifiable: the tail inspection mechanism converts the flow energy of gas into electrical energy through pneumatic components to power the control board and indicator lights, eliminating the need for an external power supply and reducing power consumption; at the same time, the color change of the indicator lights intuitively reflects the temperature status of the cable, making it easy for operators to quickly locate abnormal cables in the high-density cable bundle and improving maintenance efficiency.

[0022] 3. This low-power, high-density AI smart terminal uses high-speed network cables, making installation and maintenance convenient: Both the first and second kits adopt a modular C-shaped board structure, which is easy to install, disassemble, and maintain. It can be flexibly operated according to actual needs and adapted to the installation requirements of different scenarios.

[0023] 4. This low-power, high-density AI smart terminal uses a high-speed network cable with high safety performance: the first kit, the second kit, and the inner protective layer are made of halogen-free flame-retardant materials, the outer protective sleeve is made of high-temperature resistant FEP material, and the stranded conductor is equipped with an insulation layer and a shielding strip, which not only improves the insulation and shielding performance of the cable, but also effectively prevents fire hazards, meeting the safety requirements of low-power, high-density AI smart terminals.

[0024] 5. This low-power, high-density AI smart terminal uses a high-speed network cable with strong adaptability: the overall structure is compact and adaptable to high-density deployment requirements, and the low-power design meets the energy-saving requirements of AI smart terminals, and can be widely used in high-speed data transmission scenarios of various low-power, high-density AI smart terminals. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0026] Figure 2 This is the front view of the present invention.

[0027] Figure 3 This is a side sectional view of the present invention.

[0028] Figure 4 This is a perspective view of the present invention.

[0029] Figure 5 This is a front sectional view of the present invention.

[0030] Figure 6This is the first exploded view of the present invention.

[0031] Figure 7 This is the second exploded view of the present invention.

[0032] Figure 8 This is a schematic diagram of the first kit structure of the present invention.

[0033] Figure 9 This is a schematic diagram of the second kit structure of the present invention.

[0034] Figure 10 This is a schematic diagram of the second kit of the present invention from another perspective.

[0035] Figure 11 This is a schematic diagram of the tail inspection mechanism of the present invention.

[0036] Figure 12 This is a cross-sectional view of the tail inspection mechanism of the present invention.

[0037] In the picture: 1. Stranded conductor; 2. Inner protective layer; 3. Outer protective sleeve; 31. First opening; 32. Second opening; 4. Gaps; 5. First component; 51. Annular groove; 52. Angled air hole; 6. Air intake connector; 7. Tail inspection mechanism; 71. Functional cylinder; 72. Stator; 73. Air outlet; 74. First slip ring; 75. Second slip ring; 76. Rotor coil; 77. Blade; 78. Support; 8. Second component; 81. Trapezoidal open annular groove; 82. Air outlet; 9. Control panel; 91. Status indicator lights. Detailed Implementation

[0038] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0039] In the description of this invention, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0040] In addition, a fixed connection refers to a connection in which parts or components are fixed and there is no relative movement; a transmission connection refers to a connection in which mechanical motion or torque is transmitted to other working parts through a transmission component; a sliding connection refers to a connection in which two objects are in contact but not fixed and can slide relative to each other; and a rotational connection refers to a connection in which two objects are in contact but not fixed and can rotate relative to each other.

[0041] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.

[0042] This embodiment provides a high-speed network cable for low-power, high-density AI smart terminals, which has the following technical features.

[0043] A high-speed network cable for low-power, high-density AI smart terminals includes several pairs of stranded conductors 1, an inner protective layer 2, and an outer protective sleeve 3, which are sequentially arranged from the inside out. A gap 4 is formed between each pair of adjacent stranded conductors 1 and the inner protective layer 2. This gap 4 not only provides a buffer for signal anti-interference but also serves as the core channel for heat dissipation. It avoids signal crosstalk between stranded conductors, ensures smooth airflow, and reduces the overall volume of the cable, making it suitable for the limited installation space of high-density terminals.

[0044] A first opening 31 is provided on the outer protective sleeve 3 and the inner protective layer 2 near the network cable input connector, and a second opening 32 is provided on the outer protective sleeve 3 and the inner protective layer 2 near the network cable output connector. Several gaps 4 cooperate with the first opening 31 and the second opening 32 to form a flow air passage. The overall cross-section of the air passage is distributed in a ring array, corresponding to the arrangement of the stranded conductors 1, ensuring that each stranded conductor 1 is covered by airflow, achieving uniform heat dissipation, avoiding signal attenuation or cable aging caused by local overheating, and adapting to the working conditions of AI terminal operating at low power consumption and high load for a long time.

[0045] A first kit 5 is provided at the first opening 31. The first kit 5 is provided with an air inlet connector 6 and oblique air holes 52 that correspond one-to-one with several gaps 4 in the air passage. A second assembly 8 is installed at the second opening 32. The second assembly 8 is equipped with a tail inspection mechanism 7. The tail inspection mechanism 7 includes a functional cylinder 71 connected to the airflow duct. The functional cylinder 71 contains pneumatic components and multiple air outlets 73. A control board 9 is connected to the functional cylinder 71, and the control board 9 has a status indicator light 91 that displays the working status of the network cable. The status indicator light 91 uses high-brightness LED beads, allowing staff to easily observe the cable's operating status from a distance, meeting the visualization management needs of high-density terminal cabling.

[0046] A stator 72 is provided on the functional cylinder 71, and multiple air outlets 73 are arranged in a circular array at the upper end of the functional cylinder 71. The control plate 9 is installed at the upper end of the functional cylinder 71.

[0047] The pneumatic assembly includes a bracket 78 mounted on the lower end of the functional cylinder 71, and a blade 77 is rotatably connected to the bracket 78.

[0048] The upper end of the functional cylinder 71 is equipped with a first slip ring 74 and a second slip ring 75, and the shaft of the blade 77 is connected to a rotor coil 76 that cooperates with the first slip ring 74, the second slip ring 75 and the stator 72.

[0049] The first kit 5 is composed of multiple first C-shaped plates. The first kit 5 has an annular groove 51 inside, and the air inlet connector 6 is connected to multiple oblique air holes 52 through the annular groove 51.

[0050] The air outlet of the inclined vent 52 is tilted towards the direction of the second component 8.

[0051] The second kit 8 is composed of multiple second C-shaped plates. The second kit 8 has a trapezoidal open annular groove 81 and an air outlet 82. The blade 77 of the functional cylinder 71 is located at the air outlet 82.

[0052] The first kit 5 and the second kit 8 are made of halogen-free flame-retardant materials.

[0053] Each stranded conductor 1 is surrounded by a low-density polyolefin insulation layer and a thin aluminum-plastic composite single-layer shielding strip. The inner protective layer 2 is made of halogen-free flame-retardant material, and the outer protective sleeve 3 is made of FEP material.

[0054] Control board 9 also includes: The acquisition module is used to acquire temperature data A when the stranded conductor 1 is not in operation, and temperature data B after the stranded conductor 1 has been in operation under high load for a long time. The status determination module is used to collect whether the temperature data of the stranded conductor 1 is within the threshold between temperature data A and temperature data B; The indicator light switching module controls the color of the status indicator light 91 based on the threshold data collected by the status determination module. When the temperature data of the stranded conductor 1 collected by the status determination module is within the threshold between temperature data A and temperature data B, the indicator light switching module controls the status indicator light 91 to display green; when the temperature data of the stranded conductor 1 collected by the status determination module exceeds the threshold between temperature data A and temperature data B, the indicator light switching module controls the status indicator light 91 to display red.

[0055] Working principle: The air inlet connector 6 is connected to an external air inlet pipe. External gas enters the air passage formed between the stranded conductor 1 and the inner protective layer 2 through the annular groove 51 and multiple oblique air holes 52, which cools and dissipates heat from the stranded conductor 1 to keep it in good working condition. After passing through the trapezoidal opening annular groove 81 and the air outlet 82 of the second component 8, the gas in the air passage is discharged to the outside through the air outlet 73 of the functional cylinder 71. During this process, the gas drives the blades 77 to rotate, and the rotor coil 76 cuts magnetic lines of force in the magnetic field of the stator 72. The first slip ring 74 and the second slip ring 75 supply the induced current to the control board 9. The control board 9 is powered on and the status indicator 91 lights up. When the temperature data of the stranded conductor 1 collected by the status determination module is within the threshold between temperature data A and temperature data B, the indicator switching module controls the status indicator 91 to display green. When the temperature data of the stranded conductor 1 collected by the status determination module exceeds the threshold between temperature data A and temperature data B, the indicator switching module controls the status indicator 91 to display red. Among the numerous cable bundles, the operator can quickly and intuitively observe the working status of each network cable through the status indicator 91. A green light indicates that the network cable is operating normally, and a red light indicates that the network cable is abnormal. This makes it easy for the operator to quickly locate the abnormal cable in the dense cable bundle and repair or replace it without the traditional time-consuming and laborious troubleshooting work. This tail inspection mechanism 7 not only effectively dissipates heat from the network cables but also displays their working status, making it convenient for the operator to inspect and troubleshoot.

[0056] In summary, this low-power, high-density AI smart terminal uses a high-speed network cable to solve the problems of poor heat dissipation, difficulty in identifying the working status, and low maintenance efficiency of existing cables.

[0057] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0058] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A high-speed network cable for low-power, high-density AI smart terminals, comprising a plurality of stranded conductors (1), an inner protective layer (2), and an outer protective sheath (3) sequentially arranged from the inside out, characterized in that: A gap (4) is formed between each two adjacent stranded conductors (1) and the inner protective layer (2); A first opening (31) is provided on the outer protective sleeve (3) and inner protective layer (2) near the network cable input connector, and a second opening (32) is provided on the outer protective sleeve (3) and inner protective layer (2) near the network cable output connector. A plurality of the gaps (4) cooperate with the first opening (31) and the second opening (32) to form a flow air passage. A first kit (5) is provided at the first opening (31), and an air inlet connector (6) and oblique air holes (52) corresponding one-to-one with several gaps (4) in the air passage are provided on the first kit (5). A second kit (8) is provided at the second opening (32). A tail inspection mechanism (7) is provided on the second kit (8). The tail inspection mechanism (7) includes a functional cylinder (71) that communicates with the air passage. A pneumatic component and multiple air outlets (73) are provided inside the functional cylinder (71). A control board (9) is connected to the functional cylinder (71). A status indicator light (91) that reflects the working status of the network cable is provided on the control board (9).

2. The high-speed network cable for low-power, high-density AI smart terminals according to claim 1, characterized in that, The functional cylinder (71) is provided with a stator (72), and a plurality of air outlets (73) are arranged in a circular array at the upper end of the functional cylinder (71). The control plate (9) is installed at the upper end of the functional cylinder (71).

3. The high-speed network cable for low-power, high-density AI smart terminals according to claim 2, characterized in that, The pneumatic assembly includes a bracket (78) mounted on the lower end of the functional cylinder (71), on which blades (77) are rotatably connected.

4. The high-speed network cable for low-power, high-density AI smart terminals according to claim 3, characterized in that, The upper end of the functional cylinder (71) is equipped with a first slip ring (74) and a second slip ring (75), and the shaft of the blade (77) is connected to a rotor coil (76) that cooperates with the first slip ring (74), the second slip ring (75) and the stator (72).

5. The high-speed network cable for low-power, high-density AI smart terminals according to claim 2, characterized in that, The first kit (5) is assembled from multiple first C-shaped plates. The first kit (5) has an annular groove (51) inside. The air inlet connector (6) is connected to multiple oblique air holes (52) through the annular groove (51).

6. The high-speed network cable for a low-power, high-density AI smart terminal according to claim 5, characterized in that, The air outlet of the inclined air hole (52) is inclined towards the direction of the second component (8).

7. The high-speed network cable for low-power, high-density AI smart terminals according to claim 3, characterized in that, The second kit (8) is assembled from multiple second C-shaped plates. The second kit (8) has a trapezoidal open annular groove (81) and an air outlet (82). The blade (77) of the functional cylinder (71) is located at the air outlet (82).

8. The high-speed network cable for low-power, high-density AI smart terminals according to claim 1, characterized in that, The first kit (5) and the second kit (8) are made of halogen-free flame-retardant materials.

9. The high-speed network cable for low-power, high-density AI smart terminals according to claim 1, characterized in that, Each stranded conductor (1) is provided with a low-density polyolefin insulation layer and a thin aluminum-plastic composite single-layer shielding strip on its periphery. The inner protective layer (2) is made of halogen-free flame-retardant material, and the outer protective sleeve (3) is made of FEP material.

10. A high-speed network cable for low-power, high-density AI smart terminals according to claim 1, characterized in that, The control panel (9) also includes: The acquisition module is used to acquire temperature data A of the stranded conductor (1) when it is not working, and temperature data B of the stranded conductor (1) after working under high load for a long time. The status determination module is used to collect whether the temperature data of the stranded conductor (1) is within the threshold between temperature data A and temperature data B; The indicator light switching module controls the color of the status indicator light (91) based on the threshold data collected by the status determination module; When the temperature data of the stranded conductor (1) collected by the state determination module is within the threshold of temperature data A to temperature data B, the indicator light switching module controls the state indicator light (91) to be displayed in green; when the temperature data of the stranded conductor (1) collected by the state determination module exceeds the threshold of temperature data A to temperature data B, the indicator light switching module controls the state indicator light (91) to be displayed in red.