Heat dissipation structure of network monitor

The heat dissipation structure, consisting of a cooling box, cooling pipes, air ducts, and airflow control components, solves the problem of low heat dissipation efficiency in network monitoring instruments, achieving efficient temperature regulation and improved equipment reliability.

CN223928658UActive Publication Date: 2026-02-17CHINA CLOUD ALLIANCE (XIAN) TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520158577.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2026-02-17
Estimated Expiration
2035-01-23

AI Technical Summary

Technical Problem

Existing network monitoring devices use inefficient heat dissipation methods, which fail to meet the growing heat dissipation demands and negatively impact device performance and reliability.

Method used

The heat dissipation structure adopts a cooling box, cooling pipe, air supply pipe and air volume control components. It uses coolant to cool the air source and adjusts the air volume through temperature probe. Combined with the heat preservation box, the cooling effect is improved.

Benefits of technology

It achieves efficient cooling in different environments, adapts to the heat dissipation requirements of network monitoring instruments, and improves the performance and reliability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a heat dissipation structure of a network monitor, which belongs to the technical field of network monitoring equipment and comprises a heat dissipation mechanism connected with a bottom shell of the network monitor. The heat dissipation mechanism comprises a cooling box, a cooling pipe, an air supply pipe and an air volume control assembly. Cooling liquid is contained in the cooling box. The cooling pipe is arranged in the cooling box; one end of the cooling pipe is connected with the air inlet assembly, the other end of the cooling pipe is connected with the air supply pipe, the air supply pipe penetrates through the shell of the network detector, and a plurality of air outlets are formed in the air supply pipe; the air volume control assembly is connected with the air supply pipe. The bottom of the network detector is connected with the top of the cooling box; according to the network detector, air entering the network detector can be cooled through the arranged cooling box, so that the network detector is not limited by the temperature of the environment and can adapt to different environments for cooling, and the air outlet amount of the air outlet pipe can be adjusted through the air amount control assembly according to the actual problem in the network detector; therefore, the network detector can be rapidly cooled.
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Description

Technical Field

[0001] This utility model relates to the field of network monitoring equipment technology, specifically to a heat dissipation structure for a network monitoring instrument. Background Technology

[0002] With the rapid development of network technology, network monitoring instruments play a crucial role in ensuring the stable operation of networks. Network monitoring instruments typically need to operate continuously for extended periods, generating significant heat from their internal electronic components. If heat cannot be dissipated effectively and promptly, the accumulated heat will lead to decreased component performance, shortened lifespan, and even malfunctions, affecting the accuracy and reliability of network monitoring.

[0003] Currently, most network monitoring devices on the market use a fan-based cooling system to draw external air into the device's chassis and then expel the heat through the vents. This cooling method is relatively inefficient and cannot meet the ever-increasing demand for cooling. Summary of the Invention

[0004] To address the problems of the prior art, this utility model provides a heat dissipation structure for a network monitoring instrument, comprising: a heat dissipation mechanism connected to the bottom housing of the network monitoring instrument;

[0005] The heat dissipation mechanism includes: a cooling box, cooling pipes, air supply pipes, and airflow control components;

[0006] The cooling tank contains coolant.

[0007] The cooling pipe is installed inside the cooling box;

[0008] One end of the cooling pipe is connected to the air inlet assembly, and the other end of the cooling pipe is connected to the air supply pipe. The air supply pipe passes through the housing of the network detector and has multiple air outlets.

[0009] The air volume control component is connected to the air supply duct and is used to control the air volume output from the air supply duct.

[0010] The bottom of the network detector is connected to the top of the cooling box.

[0011] Furthermore, an insulation box is provided on the outside of the cooling box, one end of the cooling pipe passes through one side of the insulation box and is connected to the air inlet assembly, and the other end of the cooling pipe passes through the other side of the insulation box and is connected to the air supply pipe.

[0012] Furthermore, the cooling pipe includes: a first pipe and a second pipe;

[0013] One end of the first pipe is connected to the air inlet assembly, the other end of the first pipe is connected to one end of the second pipe, and the other end of the second pipe is connected to the air supply pipe.

[0014] The cross-sectional dimensions of the second pipe are smaller than those of the first pipe;

[0015] Multiple second pipes are provided. The second pipes are located inside the cooling tank and are submerged in coolant. The first pipe is located on the outer side of the insulation box. The second pipes pass through the cooling tank and the insulation box and are connected to the first pipe.

[0016] Furthermore, multiple turbulence-disrupting blades are staggered inside the second pipe.

[0017] Furthermore, the airflow control component includes: an electric telescopic rod and a stop;

[0018] The telescopic part of the electric telescopic rod is located inside the air supply pipe. The electric telescopic rod is connected to an external controller and to the housing of the network detector.

[0019] The baffle is installed on the telescopic part of the electric telescopic rod, and the electric telescopic rod is used to drive the baffle to move, thereby blocking part of the air outlet;

[0020] The contact point between the electric telescopic rod and the air supply pipe is sealed;

[0021] The electric telescopic pole is located outside the network monitoring device.

[0022] The beneficial effects of this utility model are:

[0023] The cooling box can cool the air entering the network detector, thus it is not limited by the ambient temperature and can adapt to different environments for cooling. Furthermore, depending on the actual problems inside the network detector, the air volume of the air outlet can be adjusted through the air volume control component, thereby quickly cooling the network detector. Attached Figure Description

[0024] Figure 1 A schematic diagram of the internal structure of the heat dissipation mechanism provided by this utility model;

[0025] Figure 2 A side view of the heat dissipation mechanism provided by this utility model;

[0026] Figure 3 A top view of the heat dissipation mechanism provided by this utility model.

[0027] Figure label:

[0028] In the diagram: 1 is the network detector, 2 is the cooling box, 3 is the air supply duct, 4 is the insulation box, 5 is the air intake assembly, 6 is the first pipe, 7 is the second pipe, and 8 is the electric telescopic pole. Detailed Implementation

[0029] 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.

[0030] Please see Figure 1-3 The present invention provides a heat dissipation structure for a network monitoring instrument, comprising: a heat dissipation mechanism, wherein the heat dissipation mechanism is connected to the bottom housing of the network monitoring instrument 1;

[0031] The heat dissipation mechanism includes: a cooling box 2, a cooling pipe, an air supply pipe 3, and an air volume control component;

[0032] The cooling tank 2 contains coolant;

[0033] The cooling pipe is installed inside the cooling box 2;

[0034] One end of the cooling pipe is connected to the air inlet assembly 5, which can be a fan. The other end of the cooling pipe is connected to the air supply pipe 3. The air supply pipe 3 passes through the housing of the network detector 1 and has multiple air outlets.

[0035] The air volume control component is connected to the air supply pipe 3 and is used to control the air volume of the air supply pipe 3.

[0036] The bottom of the network detector 1 is connected to the top of the cooling box 2.

[0037] The inventive point of this application is that the air entering the network detector is cooled by coolant, thereby removing more heat. Furthermore, by setting a temperature probe inside the network detector, the airflow control component can be used to adjust the airflow entering the network detector based on the temperature detected by the temperature probe.

[0038] In some embodiments, an insulation box 4 is provided on the outside of the cooling box 2, one end of the cooling pipe passes through one side of the insulation box 4 and is connected to the air inlet assembly 5, and the other end of the cooling pipe passes through the other side of the insulation box 4 and is connected to the air supply pipe 3.

[0039] The function of the insulation box is to reduce heat transfer between the coolant and the outside air, thereby improving the cooling effect of the air in the cooling pipe. The insulation box has a sandwich structure and is filled with refrigerant gas to cool the coolant after heating it. The refrigerant gas can be added to the insulation box periodically.

[0040] In some embodiments, the cooling pipe includes: a first pipe 6 and a second pipe 7;

[0041] One end of the first pipe 6 is connected to the air inlet assembly 5, and the other end of the first pipe 6 is connected to one end of the second pipe 7. The other end of the second pipe 7 is connected to the air supply pipe 3.

[0042] The cross-sectional dimensions of the second pipe 7 are smaller than those of the first pipe 6;

[0043] Multiple second pipes 7 are provided. One end of each second pipe is sealed and connected to the other end of the first pipe, and they are internally connected. The second pipes 7 are located inside the cooling box 2 and are submerged in coolant. The first pipe 6 is located on the outer side of the insulation box 4. The second pipes 7 pass through the cooling box 2 and the insulation box 4 and are connected to the first pipe 6.

[0044] The second pipe 7 has multiple turbulence-disrupting blades installed inside at an offset.

[0045] The second duct can be a spiral or an S-shaped structure. Its main function is to increase the residence time of the wind inside it. Similarly, the function of the turbulence blades is also to increase the residence time of the wind.

[0046] In some embodiments, the airflow control assembly includes: an electric telescopic rod 8 and a stop block;

[0047] The telescopic part of the electric telescopic rod 8 is located inside the air supply pipe 3, and the electric telescopic rod 8 is connected to an external controller;

[0048] The baffle is provided on the telescopic part of the electric telescopic rod 8;

[0049] The contact position between the electric telescopic rod 8 and the air supply pipe 3 is sealed;

[0050] The electric telescopic pole 8 is located outside the network monitoring device.

[0051] The network monitor can be divided into multiple areas by installing multiple partitions inside. Each area has an air supply duct directly below it, and each area is equipped with a temperature probe connected to the partition, which allows for targeted cooling of the inside of the network monitor.

[0052] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A heat dissipation structure of a network monitor, characterized by comprising: The utility model relates to a network detector, including: A heat dissipation mechanism is connected with the bottom shell of the network detector; The heat dissipation mechanism includes a cooling box, a cooling pipe, an air supply pipe and an air volume control assembly; The cooling box contains cooling liquid; The cooling pipe is arranged in the cooling box; One end of the cooling pipe is connected with an air inlet assembly, and the other end of the cooling pipe is connected with the air supply pipe; The air supply pipe is arranged through the shell of the network detector, and a plurality of air outlets are arranged on the air supply pipe; The air volume control assembly is connected with the air supply pipe and is used for controlling the air volume of the air supply pipe; 2. The heat dissipation structure of the network monitor according to claim 1, wherein, The bottom of the network detector is connected with the top of the cooling box.

3. The heat dissipation structure of the network monitor according to claim 2, wherein, An insulation box is arranged outside the cooling box, one end of the cooling pipe is connected with the air inlet assembly through one side of the insulation box, and the other end of the cooling pipe is connected with the air supply pipe through the other side of the insulation box. The cooling pipe includes a first pipe and a second pipe; One end of the first pipe is connected with the air inlet assembly, the other end of the first pipe is connected with one end of the second pipe, and the other end of the second pipe is in communication with the air supply pipe; The cross-sectional size of the second pipe is smaller than that of the first pipe; 4. The heat dissipation structure of the network monitor according to claim 3, wherein, A plurality of second pipes are arranged, the second pipes are arranged in the cooling box and are submerged in the cooling liquid, the first pipe is arranged outside the insulation box, and the second pipes are connected with the first pipe through the cooling box and the insulation box.

5. The heat dissipation structure of the network monitor according to claim 1, wherein, A plurality of turbulence vanes are arranged inside the second pipe. The air volume control assembly includes an electric telescopic rod and a stop block; The telescopic part of the electric telescopic rod is arranged in the air supply pipe, the electric telescopic rod is connected with an external controller, and the electric telescopic rod is connected with the shell of the network detector; The stop block is arranged on the telescopic part of the electric telescopic rod, the electric telescopic rod is used for moving the stop block to shield part of the air outlets; The contact position of the electric telescopic rod and the air supply pipe is sealed; The electric telescopic rod is arranged outside the network detector.