Data transceiving box for coal mine PHM platform

By adopting a double-layer structure, an isolation layer, and fire-resistant materials in the data transceiver box of the coal mine PHM platform, the problem of fire damage to the data transceiver box was solved, ensuring the stability and security of data transmission.

CN223488227UActive Publication Date: 2025-10-28KUNMING COAL DESIGN & RES INST CO LTD
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Patent Information

Application Number
CN202422996623.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-10-28
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

The data transceiver boxes of the coal mine PHM platform are easily damaged by high temperatures and flames during a fire, leading to data transmission interruption and affecting equipment operation and safety.

Method used

It adopts a double-layer shell design, with an insulating layer between the outer shell and the inner shell. The outer shell is coated with fire-retardant material, and the shell surface is made of plastic mirror material and designed in a parabolic shape. There are through holes at both ends of the shell.

Benefits of technology

The fire resistance of the data transceiver box has been enhanced, protecting the internal modules from damage, ensuring the stability and reliability of data transmission, and improving its survivability in the event of a fire.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a data transmit-receive box used for a coal mine PHM platform, belonging to the technical field of data transmit-receive devices, the data transmit-receive box used for the coal mine PHM platform comprises a housing, a data transmit-receive module and a mounting plate, the mounting plate is mounted on a mine wall, the housing is mounted on the mounting plate, and the data transmit-receive module is mounted on the housing. The data receiving and transmitting module is arranged in the mounting plate, the data receiving and transmitting module is used for receiving and transmitting data, and the device is characterized in that the shell is of a double-layer structure; the shell comprises an outer shell, an inner shell and an isolating layer, the outer shell is located on the outer layer of the shell and fixed on the mounting plate, the inner shell is located in the outer shell and used for placing the data transceiving module, and the isolating layer is filled between the outer shell and the inner shell; the data transceiving box for the coal mine PHM platform can be prevented from being damaged due to fire or over-high temperature when a fire disaster occurs.
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Description

Technical Field

[0001] This utility model belongs to the field of data transceiver technology, and more specifically, relates to a data transceiver box for a coal mine PHM platform. Background Technology

[0002] With the continuous development of technology, the coal mining industry has an increasing demand for intelligent management. In the coal mine PHM (Prognostics and Health Management) platform, the data transceiver plays a crucial role.

[0003] A data transceiver box is a device used to receive and send data. In a coal mine PHM platform, it is responsible for collecting various operational data from coal mine equipment and transmitting this data to the central control system for analysis and processing. Simultaneously, it also receives instructions from the central control system to perform corresponding control and adjustments on the coal mine equipment.

[0004] The data transceiver box used in the coal mine PHM platform has the following characteristics: First, it has high stability and reliability, enabling it to operate stably for extended periods in the harsh coal mine environment. Second, it possesses powerful data processing capabilities, capable of quickly and accurately processing large amounts of real-time data. Furthermore, the data transceiver box has good compatibility, allowing it to connect and communicate with different types of coal mine equipment.

[0005] However, during coal mining, there is a risk of fire within the mine tunnels. In the event of a fire, the high temperatures and flames can easily damage the data transceiver boxes. This not only leads to data transmission interruptions, affecting the normal operation of the PHM platform, but may also prevent coal mining companies from timely understanding the equipment's operating status, increasing the probability of equipment failure and safety accidents. Utility Model Content

[0006] In view of this, the present invention provides a data transceiver box for a coal mine PHM platform, which can prevent the data transceiver box from being damaged by fire or excessive temperature in the event of a fire.

[0007] This utility model is implemented as follows:

[0008] This utility model provides a data transceiver box for a coal mine PHM platform, including a shell, a data transceiver module, and a mounting plate. The mounting plate is installed on the mine wall, and the shell is installed on the mounting plate. The data transceiver module is located inside the mounting plate and is used to receive and transmit data. The shell has a double-layer structure, and the shell and the mounting plate are detachably connected.

[0009] Based on the above technical solution, the data transceiver box for a coal mine PHM platform of this utility model can be further improved as follows:

[0010] The outer shell includes an outer shell, an inner shell, and an isolation layer. The outer shell is located on the outer layer of the outer shell and is fixed on the mounting plate. The inner shell is located inside the outer shell and is used to house the data transceiver module. The isolation layer fills the space between the outer shell and the inner shell.

[0011] The beneficial effects of adopting the above-mentioned improvement scheme are as follows: by setting an isolation layer, the temperature of the outer shell and the inner shell can be further isolated, while providing support for the outer shell and the inner shell.

[0012] Furthermore, the isolation layer is a hollow cuboid structure with multiple interconnected front and rear openings, and the thickness of the cuboid is equal to the distance between the outer shell and the inner shell.

[0013] Furthermore, the isolation layer is a hollow hexagonal prism structure with multiple connected front and rear openings, and the thickness of the isolation layer is equal to the distance between the outer shell and the inner shell.

[0014] The beneficial effects of adopting the above-mentioned improvement scheme are as follows: by setting the isolation layer as a multi-connected hexagonal structure, the isolation layer has greater support force, avoiding the deformation of the outer shell caused by the impact of fire on the outer shell surface.

[0015] Furthermore, the surface of the outer shell is coated with a fire-retardant material.

[0016] The beneficial effect of adopting the above-mentioned improvement scheme is that by setting fireproof materials, the spread of fire can be prevented in the event of a fire.

[0017] Furthermore, the surface of the outer shell is made of plastic mirror material.

[0018] Furthermore, the surface of the outer shell is curved.

[0019] Furthermore, the curvature of the outer shell surface is parabolic.

[0020] The beneficial effects of adopting the above-mentioned improvement scheme are as follows: by setting the surface of the outer shell to be a mirror material and the surface of the outer shell to be parabolic, the energy can be reflected when the fire spreads to the surface of the outer shell, thereby reducing the temperature of the outer shell surface.

[0021] Furthermore, the outer casing has through holes at both the left and right ends.

[0022] Furthermore, the diameter of the through hole is equal to twice the diameter of the cable.

[0023] Compared with existing technologies, the beneficial effects of the data transceiver box for a coal mine PHM platform provided by this utility model are:

[0024] Dual-layer structure design: The outer shell adopts a dual-layer structure, namely an outer shell and an inner shell, with an insulating layer in between. This design can provide better physical protection and temperature isolation, enhancing the stability and durability of the data transceiver module.

[0025] The role of the isolation layer: The isolation layer not only insulates the temperature between the inner and outer shells, but also provides additional support, enhancing the overall structural strength. This design helps protect the data transceiver module from temperature variations and physical shocks in harsh mining environments.

[0026] Hexagonal isolation layer: Designing the isolation layer as multiple connected hexagonal structures can provide greater support. This structure can better disperse the force when subjected to impact, reducing the risk of deformation of the outer shell.

[0027] Application of fire-resistant materials: The outer shell is coated with fire-resistant materials, which can slow the spread of fire in the event of a fire and protect the internal data transceiver modules from damage, thereby ensuring the continuous operation of the coal mine PHM platform.

[0028] Mirror material and parabolic design: The outer shell surface is made of plastic mirror material and designed in a parabolic shape. This design can reflect energy when fire spreads to the shell surface, reduce the temperature of the shell surface, and further enhance fire resistance.

[0029] Through-hole design: Through holes are provided at both ends of the outer casing, and the diameter of the through holes is designed to be twice the diameter of the cable. This design facilitates the installation and maintenance of the cable, and also helps the cable dissipate heat.

[0030] Overall structural optimization: Through the above improvements, the structure of the entire data transceiver box is more optimized, which not only improves its adaptability and reliability in the coal mine environment, but also enhances its survivability in the face of emergencies such as fires.

[0031] In summary, this utility model, through a series of design improvements, enhances the security, stability, and durability of the coal mine PHM platform data transceiver box, helping to ensure the safety of coal mine operations and the reliability of data transmission. Attached Figure Description

[0032] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments of this utility model will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0033] Figure 1 This is a schematic diagram of a data transceiver box used in a coal mine PHM platform;

[0034] Figure 2 A cross-sectional view of a first embodiment of a data transceiver box for a coal mine PHM platform;

[0035] Figure 3 A schematic diagram of the first embodiment of the isolation layer for a data transceiver box used in a coal mine PHM platform;

[0036] Figure 4 A cross-sectional view of a second embodiment of a data transceiver box for a coal mine PHM platform;

[0037] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0038] 1. Outer shell; 11. Outer shell; 12. Inner shell; 13. Isolation layer; 2. Data transceiver module; 3. Mounting plate. Detailed Implementation

[0039] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings.

[0040] like Figure 1 , Figure 2 , Figure 3 The image shows a first embodiment of a data transceiver box for a coal mine PHM platform provided by this utility model. In this embodiment, it includes a shell 1, a data transceiver module 2, and a mounting plate 3. The mounting plate 3 is installed on the mine wall, and the shell 1 is installed on the mounting plate 3. The mounting plate 3 is equipped with a data transceiver module 2 inside, which is used to receive and transmit data. The shell 1 has a double-layer structure.

[0041] In the above technical solution, the outer shell 1 includes an outer shell 11, an inner shell 12 and an isolation layer 13. The outer shell 11 is located on the outer layer of the outer shell 1 and is fixed on the mounting plate 3. The inner shell 12 is located inside the outer shell 11 and is used to place the data transceiver module 2. The isolation layer 13 is filled between the outer shell 11 and the inner shell 12.

[0042] Furthermore, in the above technical solution, the isolation layer 13 is a hollow cuboid structure with multiple connected front and rear openings, and the thickness of the cuboid is equal to the distance between the outer shell 11 and the inner shell 12.

[0043] Furthermore, in the above technical solution, the surface of the outer shell 11 is coated with fire-retardant material.

[0044] Furthermore, in the above technical solution, through holes are provided at both the left and right ends of the outer casing 1.

[0045] Furthermore, in the above technical solution, the diameter of the through hole is equal to twice the diameter of the cable.

[0046] like Figure 1 , Figure 4 The image shows a second embodiment of a data transceiver box for a coal mine PHM platform provided by this utility model. In this embodiment, it includes a shell 1, a data transceiver module 2, and a mounting plate 3. The mounting plate 3 is installed on the mine wall, and the shell 1 is installed on the mounting plate 3. The mounting plate 3 is equipped with a data transceiver module 2 inside, which is used to receive and transmit data. The shell 1 has a double-layer structure.

[0047] In the above technical solution, the outer shell 1 includes an outer shell 11, an inner shell 12 and an isolation layer 13. The outer shell 11 is located on the outer layer of the outer shell 1 and is fixed on the mounting plate 3. The inner shell 12 is located inside the outer shell 11 and is used to place the data transceiver module 2. The isolation layer 13 is filled between the outer shell 11 and the inner shell 12.

[0048] Furthermore, in the above technical solution, the isolation layer 13 is a hollow hexagonal prism structure with multiple connected front and rear openings, and the thickness of the isolation layer 13 is equal to the distance between the outer shell 11 and the inner shell 12.

[0049] Furthermore, in the above technical solution, the surface of the outer shell 11 is made of plastic mirror material.

[0050] Furthermore, in the above technical solution, the surface of the outer shell 11 is curved.

[0051] Furthermore, in the above technical solution, the curvature of the outer shell 11 surface is parabolic.

[0052] Furthermore, in the above technical solution, through holes are provided at both the left and right ends of the outer casing 1.

[0053] Furthermore, in the above technical solution, the diameter of the through hole is equal to twice the diameter of the cable.

[0054] The data receiver uses the 02AZD810D model, and the transmitter uses the 02AZD730G or 02AZD880G model.

[0055] Specifically, the principle of this utility model is as follows:

[0056] The data transceiver box features a double-layered shell, a design that enhances the security and stability of the data transceiver module. The insulating layer between the outer and inner shells reduces the impact of external environmental factors, such as temperature variations and shocks, on the internal module.

[0057] The insulating layer is located between the outer shell and the inner shell. It not only serves as a physical barrier, reducing heat transfer between the inner and outer layers, but also provides additional structural support, enhancing the overall mechanical strength.

[0058] The insulation layer employs a hollow cuboid or hexagonal prism structure. This design increases the strength and stability of the insulation layer while maintaining the structure's lightweight nature. Due to its geometric properties, the hexagonal prism structure offers better support and impact resistance than the cuboid structure.

[0059] The outer shell is coated with fire-retardant material to slow the spread of fire and protect the internal data transceiver modules from damage in the event of a fire. The fire-retardant material also forms an insulating layer at high temperatures, reducing heat transfer.

[0060] The outer shell surface is made of plastic mirror material and designed in a parabolic shape. This design can reduce the temperature of the outer shell surface by reflecting energy when fire spreads to the outer shell surface, thereby improving fire resistance.

[0061] The outer casing has through holes on both the left and right ends. These through holes are used for cable entry and exit. Their diameter is designed to be twice the diameter of the cable. This design can ensure the convenience of cable installation, while avoiding the cable being squeezed or damaged when passing through the through holes.

[0062] Through the above design, the structure of the entire data transceiver box is more optimized, which not only improves its adaptability and reliability in the coal mine environment, but also enhances its survivability in the face of emergencies such as fires.

[0063] In summary, the principle of this utility model is to improve the performance and security of the data transceiver box in the coal mine PHM platform through a series of innovative structural designs, thereby ensuring the stability and reliability of data transmission.

Claims

1. A data transceiver box for a coal mine PHM platform, comprising a shell (1), a data transceiver module (2), and a mounting plate (3), wherein the mounting plate (3) is mounted on a mine wall, the shell (1) is mounted on the mounting plate (3), and the data transceiver module (2) is disposed inside the mounting plate (3), the data transceiver module (2) being used for receiving and transmitting data, characterized in that, The outer shell (1) has a double-layer structure.

2. A data transceiver box for a coal mine PHM platform according to claim 1, characterized in that, The outer shell (1) includes an outer shell (11), an inner shell (12), and an isolation layer (13). The outer shell (11) is located on the outer layer of the outer shell (1) and is fixed on the mounting plate (3). The inner shell (12) is located inside the outer shell (11) and is used to place the data transceiver module (2). The isolation layer (13) fills the space between the outer shell (11) and the inner shell (12).

3. A data transceiver box for a coal mine PHM platform according to claim 2, characterized in that, The isolation layer (13) is a hollow cuboid structure with multiple connected front and rear openings, and the thickness of the cuboid is equal to the distance between the outer shell (11) and the inner shell (12).

4. A data transceiver box for a coal mine PHM platform according to claim 3, characterized in that, The isolation layer (13) is a hollow hexagonal prism structure with multiple connected front and rear openings. The thickness of the isolation layer (13) is equal to the distance between the outer shell (11) and the inner shell (12).

5. A data transceiver box for a coal mine PHM platform according to claim 4, characterized in that, The surface of the outer shell (11) is coated with fire-resistant material.

6. A data transceiver box for a coal mine PHM platform according to claim 5, characterized in that, The surface of the outer shell (11) is made of plastic mirror material.

7. A data transceiver box for a coal mine PHM platform according to claim 6, characterized in that, The surface of the outer shell (11) is curved.

8. A data transceiver box for a coal mine PHM platform according to claim 7, characterized in that, The surface of the outer shell (11) has a parabolic curvature.

9. A data transceiver box for a coal mine PHM platform according to claim 8, characterized in that, The outer shell (1) has through holes at both the left and right ends.

10. A data transceiver box for a coal mine PHM platform according to claim 9, characterized in that, The diameter of the through hole is twice the diameter of the cable.