A computer host for internet of things data processing

CN119718016BActive Publication Date: 2026-08-11XUZHOU XINGYUAN TECHNOLOGY RESEARCH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0002]物联网数据处理是指对通过物联网设备收集到的数据进行清洗、存储、融合、挖掘等操作,以提取有价值的信息,支持决策和优化管理,物联网数据处理涉及的技术包括数据清洗、‌数据存储、‌数据融合和‌数据挖掘等步骤,当数据处理设备受环境影响产生短路等问题时,会严重影响数据处理效率,现有技术中,难以对保护数据处理设备的装置进行快速安装更换,难以长时间确保保护效果,从而导致设备的数据处理效率降低

Benefits of technology

[0009]1、该用于物联网数据处理的计算机主机,防潮板安装到机箱内之后能够吸取机箱内的湿气,从而降低空气湿度,避免湿气渗透进数据处理器内,导致数据处理器短路,定位钩锁复位并将卡轴卡住,使得伸缩卡槽滑轨和防潮板固定在机箱内,使防潮板更加稳定,防潮效果更好,伸缩卡槽滑轨带动卡轴脱离U形卡板,从而将伸缩卡槽滑轨和防潮板拉出机箱,方便拆卸,提升了装置的使用便捷性。

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Abstract

This invention relates to the field of computer technology and discloses a computer host for Internet of Things (IoT) data processing, including a chassis. An installation frame is fixedly connected to the inner wall of the chassis, and a cover is fixedly connected to the front side of the installation frame. A data processor is fixedly connected inside the chassis, and a fixing plate is fixedly connected to the bottom surface of the inner wall of the chassis. A guide rail is fixedly connected to the front side of the fixing plate. In this invention, after the moisture-proof board is installed inside the chassis, it can absorb moisture from the chassis, thereby reducing air humidity and preventing moisture from penetrating into the data processor and causing a short circuit. The positioning hook lock resets and locks the retaining shaft, fixing the telescopic retaining slide rail and the moisture-proof board inside the chassis, making the moisture-proof board more stable and improving its moisture-proof effect. The telescopic retaining slide rail drives the retaining shaft to disengage from the U-shaped retaining plate, thereby pulling the telescopic retaining slide rail and the moisture-proof board out of the chassis for easy disassembly and improved ease of use of the device.
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Description

Technical Field

[0001] This invention relates to the field of computer technology, specifically to a computer host for Internet of Things (IoT) data processing. Background Technology

[0002] IoT data processing refers to the cleaning, storage, fusion, and mining of data collected through IoT devices to extract valuable information to support decision-making and optimize management. The technologies involved in IoT data processing include data cleaning, data storage, data fusion, and data mining. When data processing equipment is affected by environmental factors and experiences short circuits or other problems, it will seriously affect the data processing efficiency. In existing technologies, it is difficult to quickly install or replace devices that protect data processing equipment, and it is difficult to ensure the protection effect for a long time, thus leading to a decrease in the data processing efficiency of the equipment.

[0003] Patent CN216118625U discloses a computer host for IoT data processing. This patent includes a movable plate with an air inlet on one side. The inner side of the air inlet is fixedly connected to one side of a filter element limiting plate, and the other side of the filter element limiting plate is fixedly connected to one side of an air intake fan. The inner side of the filter element limiting plate engages with one side of the filter element, and the upper end of the filter element limiting plate engages with the lower side of the limiting plate. One end of the limiting plate is fixedly connected to one side of the upper surface of the movable plate. Through the cooperation of the filter element, the filter element limiting plate, and the limiting plate, the air entering the computer host can be filtered, preventing corrosion of internal electronic components. It also facilitates the cleaning and replacement of the filter element, achieving the effect of preventing dust from corroding the computer's interior and facilitating dust cleaning. This solves the problems of dust corroding the computer and the difficulty in cleaning internal dust. Although this patent solves the above problems, it still cannot prevent internal computer components from getting damp and short-circuiting, affecting data processing efficiency. Therefore, this patent proposes a computer host for IoT data processing to solve the aforementioned problems. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to provide a computer host for Internet of Things data processing, which addresses the shortcomings of the prior art.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is: a computer host for Internet of Things (IoT) data processing, including a chassis, a mounting frame fixedly connected to the inner wall of the chassis, a cover fixedly connected to the front side of the mounting frame, a data processor fixedly connected inside the chassis, a fixing plate fixedly connected to the bottom surface of the inner wall of the chassis, a guide rail fixedly connected to the front side of the fixing plate, a telescopic slot slide rail slidably connected to the outer surface of the guide rail, a moisture-proof plate being engaged with the inner surface of the telescopic slot slide rail, and a moisture-proof plate being fixed on the side of the telescopic slot slide rail closest to the data processor. A front push plate is fixedly connected to the telescopic slot slide rail. A locking shaft is fixedly connected to the side of the telescopic slot slide rail away from the data processor. A U-shaped locking plate is fixedly connected to the front side of the fixed plate. A positioning hook lock is hinged to the inner surface of the U-shaped locking plate. A rotating rod is fixedly connected to the side of the telescopic slot slide rail away from the data processor. A rear push plate is fixedly connected to the side of the telescopic slot slide rail near the data processor. The inside of the chassis is equipped with a cable management device for fixing the data cables connected to the data processor. The inside of the chassis is also equipped with a protective adjustment device for protecting the electronic components on the data processor. The lower surface of the rail is fixedly connected to the bottom surface of the inner wall of the chassis. The circumferential surface of the locking shaft and the inner surface of the U-shaped locking plate are in contact with each other. A torsion spring is provided at the hinge of the positioning hook lock and the U-shaped locking plate. The rotating rod passes through the side of the U-shaped locking plate away from the telescopic slot slide rail. The inner arc surfaces of the locking shaft and the positioning hook lock are in contact with each other. The telescopic slot slide rail is pulled out of the chassis from the guide rail by the front push plate. At this time, the moisture-proof board is inserted into the telescopic slot slide rail, and then the telescopic slot slide rail is pushed back into the chassis, thereby quickly installing the moisture-proof board into the chassis. After the moisture-proof board is installed into the chassis, it can absorb the moisture inside the chassis. After the card slot slide rail is inserted into the chassis, the telescopic card slot slide rail drives the card shaft to insert into the U-shaped card plate. Before insertion, the card shaft contacts the inclined surface of the positioning hook lock, and the card shaft pushes the positioning hook lock to rotate counterclockwise through the guide of the inclined surface. At this time, the card shaft can be fully inserted between the positioning hook lock and the U-shaped card plate. Then, the elasticity of the torsion spring drives the positioning hook lock to reset and lock the card shaft, so that the telescopic card slot slide rail and the moisture-proof plate are fixed in the chassis. When it is necessary to remove the moisture-proof plate, the rotating rod is rotated counterclockwise. The rotating rod drives the positioning hook lock to rotate counterclockwise, which can pull the telescopic card slot slide rail. The telescopic card slot slide rail drives the card shaft to disengage from the U-shaped card plate.

[0006] Preferably, the cable management device includes a wiring slot, a sealing cover, an arc-groove clamp, a contact slide rod, and an arc-shaped cable management plate. The wiring slot is located on the rear side of the chassis, the sealing cover is hinged to the rear side of the wiring slot, the arc-groove clamp is located on the front side of the wiring slot, the contact slide rod is slidably connected to the inner surface of the arc-groove clamp, and the arc-shaped cable management plate is fixedly connected to one end of the contact slide rod. The cable management device also includes a push shaft, a transmission slide rail, a sliding plate, and a guide groove. The push shaft is fixedly connected to the side of the rear push plate near the data processor, the transmission slide rail is fixedly connected to the rear side of the chassis inner wall, the sliding plate is slidably connected to the inner surface of the transmission slide rail, the guide groove is located inside the sliding plate, the sliding plate and the arc-groove clamp are fixedly connected at both ends, a spring is provided between the outer arc surface of the arc-shaped cable management plate and the arc surface of the arc-groove clamp, the rear side of the arc-groove clamp and the front side of the transmission slide rail are in contact with each other, and the push shaft... The circumferential surface and the inner surface of the guide groove are in contact with each other. The data cable and wire are inserted into the chassis through the wiring slot and connected to the data processor. At this time, the data cable and wire are clamped by the arc groove clamp. When the data processor is not in use, the data cable and wire are pulled out of the wiring slot, and then the sealing cover is closed. When the arc groove clamp approaches the data cable and wire, it drives the arc-shaped cable tray to contact the circumferential surface of the data cable and wire. After the arc-shaped cable tray clamps the data cable and wire, it will squeeze the contact slide rod, causing the contact slide rod to slide in the arc-shaped cable tray and change the distance between the outer arc surface of the arc-shaped cable tray and the arc surface of the arc groove clamp. When the telescopic card slot slide rail is pushed backward and inserted into the chassis, the telescopic card slot slide rail drives the rear push plate to move backward. The rear push plate drives the push shaft to move backward. The push shaft pushes the sliding plate to slide closer to each other in the transmission slide rail through the guide groove inclined surface. The sliding plate then drives the arc groove clamp to move closer to each other and clamp the data cable and wire.

[0007] Preferably, the protective adjustment device includes a through groove, a central baffle, an outer slide rail, and a filter plate. The through groove is located on both sides of the chassis, the central baffle is fixedly connected to the inner surface of the through groove, the outer slide rail is fixedly connected to both sides of the chassis, and the filter plate is slidably connected to the inner surface of the outer slide rail. The protective adjustment device also includes an inner slide rail, a baffle, a scraping roller, a transmission groove, and a connecting rod. The inner slide rail is fixedly connected to both sides of the inner wall of the chassis, the baffle is slidably connected to the inner surface of the inner slide rail, the scraping roller is hinged to the side of the baffle near the filter plate, the transmission groove is located inside the transmission slide rail, and the connecting rod is fixedly connected to the side of the slide plate away from the data processor. The side of the filter plate near the data processor and the side of the central baffle away from the data processor are in contact with each other. The end of the connecting rod away from the slide plate is fixedly connected to the baffle, the connecting rod is in contact with the inner surface of the transmission groove, and the circumferential surface of the scraping roller is close to the inner surface of the filter plate. One side of the central baffle is in contact with the other side, and the side of the baffle closer to the filter plate and the side of the central baffle farther from the filter plate are in contact with each other. During the use of the data processor, when the data processor dissipates heat, the heat flows out of the chassis through the channel and the filter plate. When the filter plate has been used for too long and too much dust adheres to its surface and mesh, causing a decrease in ventilation, the filter plate can be pushed to slide in the outer slide rail. After the filter plate is slid out of the outer slide rail, it is easy to clean. When the sliding plates are close to each other, they drive the connecting rod to slide closer to each other in the transmission slide groove. When the connecting rod is close to each other, it drives the baffle to slide closer to each other in the inner slide rail. When the baffles are close to each other, the filter plate is no longer blocked, and the air inside the chassis circulates with the air outside the chassis. When the data processor is not in use, the baffles are pushed away from each other and block the filter plate. At this time, dust and impurities outside the chassis cannot enter the chassis. During the up and down movement of the baffles, the scraping roller moves up and down and comes into contact with the filter plate.

[0008] The present invention, by adopting the above technical solution, can bring the following beneficial effects:

[0009] 1. This computer host for IoT data processing, after the moisture-proof plate is installed inside the chassis, can absorb moisture from the chassis, thereby reducing air humidity and preventing moisture from penetrating into the data processor and causing a short circuit. The positioning hook lock resets and locks the shaft, fixing the telescopic slot slide rail and the moisture-proof plate inside the chassis, making the moisture-proof plate more stable and improving the moisture-proof effect. The telescopic slot slide rail drives the shaft to disengage from the U-shaped plate, thereby pulling the telescopic slot slide rail and the moisture-proof plate out of the chassis for easy disassembly, improving the ease of use of the device.

[0010] 2. This computer host for IoT data processing uses arc-groove clamps to hold data cables and power cables, preventing them from being pulled and tangled, which could cause safety hazards and affect data transmission efficiency. The sliding rods move within the arc-shaped cable management plate, changing the distance between the outer arc surface of the plate and the arc surface of the arc-groove clamps, thus clamping cables of different thicknesses. This prevents different cables from pulling and tangling during use, improving the device's applicability. The sliding plate moves the arc-groove clamps closer together, clamping the data cables and power cables, allowing for quick and easy fixing of the data cables and power cables while installing the moisture-proof board, eliminating the need for additional operations and enhancing the device's ease of use.

[0011] 3. In this computer host for IoT data processing, heat flows out of the chassis through the channel and filter plate, preventing heat from accumulating inside the chassis and causing safety hazards. Sliding the filter plate out of the outer slide rail facilitates cleaning. After cleaning, the filter plate is reinserted into the outer slide rail, effectively preventing filter plate blockage that could hinder heat dissipation inside the chassis and reducing safety hazards during data processor use. Pushing the baffles away from each other and blocking the filter plate prevents dust and impurities from entering the chassis, improving the protection of the data processor. The scraping roller moves up and down and contacts the filter plate, quickly removing dust and impurities from the filter plate mesh, reducing the time the filter plate is blocked by impurities, and further improving the ventilation effect of the filter plate. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;

[0013] Figure 2 This is a three-dimensional cross-sectional view of the front side of the present invention;

[0014] Figure 3 This is a three-dimensional structural diagram of the front side of the chassis of the present invention;

[0015] Figure 4 For the present invention Figure 3 A magnified structural diagram of A in the middle;

[0016] Figure 5 This is a three-dimensional cross-sectional view of the front side of the wire harness device of the present invention;

[0017] Figure 6 For the present invention Figure 5 A magnified structural diagram of B in the diagram;

[0018] Figure 7 This is a three-dimensional cross-sectional view of the front side of the protective adjustment device of the present invention.

[0019] In the diagram: 1. Chassis; 2. Mounting frame; 3. Cover; 4. Data processor; 5. Fixing plate; 51. Guide rail; 52. Telescopic slot slide rail; 53. Moisture-proof plate; 54. Front push plate; 55. Clip shaft; 56. U-shaped clip plate; 57. Positioning hook lock; 58. Rotating rod; 59. Rear push plate; 6. Cable harness device; 61. Wiring groove; 62. Sealing cover; 63. Arc groove clamping rod; 64. Abutment slide rod; 65. Arc-shaped cable harness plate; 66. Push shaft; 67. Transmission slide rail; 68. Sliding plate; 69. Guide inclined groove; 7. Protective adjustment device; 71. Through groove; 72. Center baffle; 73. Outer slide rail; 74. Filter plate; 75. Inner slide rail; 76. Sheath; 77. Scraper roller; 78. Transmission slide groove; 79. Connecting rod. Detailed Implementation

[0020] 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.

[0021] Please see Figures 1-7One embodiment of the present invention is as follows: A computer host for Internet of Things (IoT) data processing includes a chassis 1, a mounting frame 2 fixedly connected to the inner wall of the chassis 1, a cover 3 fixedly connected to the front side of the mounting frame 2, a data processor 4 fixedly connected inside the chassis 1, a fixing plate 5 fixedly connected to the bottom surface of the inner wall of the chassis 1, a guide rail 51 fixedly connected to the front side of the fixing plate 5, a telescopic slot slide rail 52 slidably connected to the outer surface of the guide rail 51, and a moisture-proof plate 53 engaged with the inner surface of the telescopic slot slide rail 52. A front push plate 54 is fixedly connected to the side of rail 52 closest to the data processor 4. A locking shaft 55 is fixedly connected to the side of telescopic slot rail 52 furthest from the data processor 4. A U-shaped locking plate 56 is fixedly connected to the front side of the fixing plate 5. A positioning hook lock 57 is hinged to the inner surface of the U-shaped locking plate 56. A rotating rod 58 is fixedly connected to the side of the positioning hook lock 57 furthest from the telescopic slot rail 52. A rear push plate 59 is fixedly connected to the side of telescopic slot rail 52 closest to the data processor 4. After the moisture-proof plate 53 is installed inside the chassis 1, it can absorb moisture. The moisture inside the chassis 1 is reduced, thus lowering the air humidity and preventing moisture from seeping into the data processor 4 and causing a short circuit. The positioning hook lock 57 resets and locks the retaining shaft 55, fixing the telescopic slot slide rail 52 and the moisture-proof plate 53 inside the chassis 1, making the moisture-proof plate 53 more stable and improving the moisture-proof effect. The chassis 1 is equipped with a cable management device 6 for fixing the data cables connected to the data processor 4, and a protective adjustment device 7 for protecting the electronic components on the data processor 4. The guide rail 5 The lower surface of 1 is fixedly connected to the bottom surface of the inner wall of the casing 1. The circumferential surface of the locking shaft 55 and the inner surface of the U-shaped locking plate 56 are in contact with each other. A torsion spring is provided at the hinge of the positioning hook lock 57 and the U-shaped locking plate 56. The rotating rod 58 passes through the side of the U-shaped locking plate 56 away from the telescopic locking groove slide rail 52. The inner arc surfaces of the locking shaft 55 and the positioning hook lock 57 are in contact with each other. The telescopic locking groove slide rail 52 drives the locking shaft 55 to disengage from the U-shaped locking plate 56, thereby pulling the telescopic locking groove slide rail 52 and the moisture-proof plate 53 out of the casing 1 for easy disassembly and improving the ease of use of the device.

[0022] Working principle: The telescopic slot slide rail 52 is pulled out of the chassis 1 from the guide rail 51 by the front push plate 54. At this time, the moisture-proof plate 53 is inserted into the telescopic slot slide rail 52, and then the telescopic slot slide rail 52 is pushed into the chassis 1, thereby quickly installing the moisture-proof plate 53 into the chassis 1. After the moisture-proof plate 53 is installed into the chassis 1, it can absorb the moisture in the chassis 1, thereby reducing the air humidity and preventing moisture from penetrating into the data processor 4 and causing a short circuit in the data processor 4. After the telescopic slot slide rail 52 is inserted into the chassis 1, the telescopic slot slide rail 52 drives the locking shaft 55 to insert into the U-shaped locking plate 56. Before insertion, the locking shaft 55 contacts the inclined surface of the positioning hook lock 57, and the locking shaft 55 is pushed by the guide of the inclined surface to position the locking plate 56. When the hook lock 57 rotates counterclockwise, the locking shaft 55 can be fully inserted between the positioning hook lock 57 and the U-shaped locking plate 56. Then, the elasticity of the torsion spring drives the positioning hook lock 57 to reset and lock the locking shaft 55, so that the telescopic slot slide rail 52 and the moisture-proof plate 53 are fixed in the housing 1, making the moisture-proof plate 53 more stable and the moisture-proof effect better. When it is necessary to remove the moisture-proof plate 53, the rotating rod 58 is rotated counterclockwise. The rotating rod 58 drives the positioning hook lock 57 to rotate counterclockwise, which can pull the telescopic slot slide rail 52. The telescopic slot slide rail 52 drives the locking shaft 55 to disengage from the U-shaped locking plate 56, thereby pulling the telescopic slot slide rail 52 and the moisture-proof plate 53 out of the housing 1 for easy disassembly and improving the ease of use of the device.

[0023] Please see Figures 1-7Based on the above embodiments, in another embodiment of the present invention, the cable management device 6 includes a wiring groove 61, a sealing cover 62, an arc-groove clamping rod 63, an abutment slide rod 64, and an arc-shaped cable management plate 65. The wiring groove 61 is located on the rear side of the chassis 1, the sealing cover 62 is hinged to the rear side of the wiring groove 61, the arc-groove clamping rod 63 is located on the front side of the wiring groove 61, the abutment slide rod 64 is slidably connected to the inner surface of the arc-groove clamping rod 63, and the arc-shaped cable management plate 65 is fixedly connected to one end of the abutment slide rod 64. The arc-groove clamping rod 63 clamps the data cable and the wire, preventing them from being pulled and tangled, which could cause safety hazards and affect data transmission efficiency. The abutment slide rod 64 slides within the arc-shaped cable management plate 65 and changes the distance between the outer arc surface of the arc-shaped cable management plate 65 and the arc surface of the arc-groove clamping rod 63, thereby clamping cables of different thicknesses. This avoids pulling and tangling of different cables during use, improving the applicability of the device. The device 6 also includes a push shaft 66, a transmission slide rail 67, a sliding plate 68, and a guide groove 69. The push shaft 66 is fixedly connected to the side of the rear push plate 59 near the data processor 4. The transmission slide rail 67 is fixedly connected to the rear side of the inner wall of the chassis 1. The sliding plate 68 is slidably connected to the inner surface of the transmission slide rail 67. The guide groove 69 is opened inside the sliding plate 68. The sliding plate 68 and the arc groove clamping rod 63 are fixedly connected at both ends. A spring is provided between the outer arc surface of the arc-shaped cable tray 65 and the arc surface of the arc groove clamping rod 63. The rear side of the arc groove clamping rod 63 and the front side of the transmission slide rail 67 are in contact with each other. The circumferential surface of the push shaft 66 and the inner surface of the guide groove 69 are in contact with each other. The sliding plate 68 drives the arc groove clamping rod 63 to move closer together and clamp the data cable and the wire, so that the data cable and the wire can be quickly fixed while installing the moisture-proof plate 53 without any extra operations, improving the ease of use of the device.

[0024] Working principle: The data cable and power cord are inserted into the chassis 1 through the wiring slot 61 and connected to the data processor 4. At this time, the data cable and power cord are clamped by the arc-groove clamp 63 to prevent them from being pulled and tangled, which could cause safety hazards and affect data transmission efficiency. When the data processor 4 is not in use, the data cable and power cord are unplugged from the wiring slot 61, and then the sealing cover 62 is closed to prevent dust and impurities from entering the chassis 1 from the wiring slot 61. When the arc-groove clamp 63 approaches the data cable and power cord, it causes the arc-shaped cable management plate 65 to contact the circumference of the data cable and power cord. After the arc-shaped cable management plate 65 clamps the data cable and power cord, it will press the contact slide 64, causing the contact slide 64 to slide within the arc-shaped cable management plate 65 and change the arc-shaped cable management plate 65. The distance between the outer arc surface and the arc surface of the arc groove clamping rod 63 allows for clamping of wires of different thicknesses, preventing them from pulling and tangling during use and improving the applicability of the device. When the telescopic slot slide rail 52 is pushed backward into the chassis 1, the telescopic slot slide rail 52 drives the rear push plate 59 to move backward, and the rear push plate 59 drives the push shaft 66 to move backward. The push shaft 66 pushes the sliding plate 68 to slide closer to each other in the transmission slide rail 67 through the guide inclined surface of the guide groove 69. The sliding plate 68 then drives the arc groove clamping rod 63 to move closer to each other and clamp the data cable and the wire. This allows the data cable and the wire to be quickly fixed while installing the moisture-proof plate 53 without any extra operations, improving the ease of use of the device.

[0025] Please see Figures 1-7Based on the above embodiments, in another embodiment of the present invention, the protective adjustment device 7 includes a through groove 71, a central baffle 72, an outer slide rail 73, and a filter plate 74. The through groove 71 is formed on both sides of the housing 1. The central baffle 72 is fixedly connected to the inner surface of the through groove 71. The outer slide rail 73 is fixedly connected to both sides of the housing 1. The filter plate 74 is slidably connected to the inner surface of the outer slide rail 73. Heat flows out of the housing 1 from the through groove 71 and the filter plate 74, preventing heat from concentrating inside the housing 1 and causing safety hazards. After the filter plate 74 slides out of the outer slide rail 73, it is easy to clean. After cleaning the filter plate 74, it is reinserted into the outer slide rail 73. This can effectively prevent the filter plate 74 from becoming clogged, which would make it difficult for heat to dissipate inside the chassis 1 and reduce the safety hazards when using the data processor 4. The protective adjustment device 7 also includes an inner slide rail 75, a baffle 76, a scraper roller 77, a transmission slide groove 78, and a connecting rod 79. The inner slide rail 75 is fixedly connected to both sides of the inner wall of the chassis 1. The baffle 76 is slidably connected to the inner surface of the inner slide rail 75. The scraper roller 77 is hinged to the baffle. On the side of the filter plate 74 near the filter plate 74, the transmission groove 78 is opened inside the transmission slide rail 67. The connecting rod 79 is fixedly connected to the side of the sliding plate 68 away from the data processor 4. The side of the filter plate 74 near the data processor 4 and the side of the central baffle 72 away from the data processor 4 are in contact with each other. The end of the connecting rod 79 away from the sliding plate 68 is fixedly connected to the baffle 76. The connecting rod 79 and the inner surface of the transmission groove 78 are in contact with each other. The circumferential surface of the scraper roller 77 is in contact with the side of the filter plate 74 near the central baffle 72. The side of the baffle 76 near the filter plate 74 and the side of the central baffle 72 away from the filter plate 74 are in contact with each other. Pushing the baffle 76 away from each other and blocking the filter plate 74, at this time, dust and impurities outside the chassis 1 cannot enter the chassis 1, which improves the protection effect of the data processor 4. The scraper roller 77 moves up and down and contacts the filter plate 74, thereby quickly removing dust and impurities from the mesh of the filter plate 74, reducing the time when the filter plate 74 is blocked by impurities, and further improving the ventilation effect of the filter plate 74.

[0026] Working principle: During the use of the data processor 4, when the data processor 4 dissipates heat, the heat flows out of the chassis 1 through the channel 71 and the filter plate 74, preventing heat from accumulating inside the chassis 1 and causing safety hazards. When the filter plate 74 has been used for a long time and too much dust adheres to its surface and mesh, reducing ventilation, the filter plate 74 can be pushed to slide in the outer slide rail 73. After sliding the filter plate 74 out of the outer slide rail 73, it is easy to clean. After cleaning the filter plate 74, it can be inserted back into the outer slide rail 73, which can effectively prevent the filter plate 74 from becoming clogged and causing heat to be difficult to dissipate inside the chassis 1, reducing the safety hazards when the data processor 4 is in use. When the sliding plates 68 approach each other, they drive the connecting rod 79 in the transmission groove 78. When the sliding rods 79 move closer together, they cause the baffles 76 to slide closer together within the inner slide rail 75. When the baffles 76 move closer together, the filter plate 74 is no longer blocked, allowing air inside the chassis 1 to circulate with air outside the chassis 1. When the data processor 4 is not in use, the baffles 76 are pushed away from each other and block the filter plate 74. At this time, dust and impurities outside the chassis 1 cannot enter the chassis 1, improving the protection of the data processor 4. During the up-and-down movement of the baffles 76, the scraping rollers 77 move up and down and come into contact with the filter plate 74, thereby quickly removing dust and impurities from the mesh of the filter plate 74, reducing the time that the filter plate 74 is blocked by impurities, and further improving the ventilation effect of the filter plate 74.

[0027] This invention provides a computer host for Internet of Things (IoT) data processing. Many methods and approaches exist for implementing this technical solution; the above description is merely a preferred embodiment. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this invention, and these improvements and modifications should also be considered within the scope of protection of this invention. All components not explicitly stated in this embodiment can be implemented using existing technologies.

Claims

1. A computer host for Internet of Things (IoT) data processing, comprising a chassis (1), characterized in that: A mounting frame (2) is fixedly connected to the inner wall of the chassis (1). A cover (3) is fixedly connected to the front side of the mounting frame (2). A data processor (4) is fixedly connected inside the chassis (1). A fixing plate (5) is fixedly connected to the bottom surface of the inner wall of the chassis (1). A guide rail (51) is fixedly connected to the front side of the fixing plate (5). A telescopic slot slide rail (52) is slidably connected to the outer surface of the guide rail (51). A moisture-proof plate (53) is snapped onto the inner surface of the telescopic slot slide rail (52). The telescopic slot slide rail (52) is close to the data processor (4). A front push plate (54) is fixedly connected to one side of the processor (4), a card shaft (55) is fixedly connected to the side of the telescopic card slot slide rail (52) away from the data processor (4), a U-shaped card plate (56) is fixedly connected to the front side of the fixed plate (5), a positioning hook lock (57) is hinged to the inner surface of the U-shaped card plate (56), a rotating rod (58) is fixedly connected to the side of the positioning hook lock (57) away from the telescopic card slot slide rail (52), and a rear push plate (59) is fixedly connected to the side of the telescopic card slot slide rail (52) close to the data processor (4). The lower surface of the guide rail (51) is fixedly connected to the bottom surface of the inner wall of the chassis (1). The circumferential surface of the locking shaft (55) and the inner surface of the U-shaped locking plate (56) are in contact with each other. A torsion spring is provided at the hinge of the positioning hook lock (57) and the U-shaped locking plate (56). The rotating rod (58) passes through the side of the U-shaped locking plate (56) away from the telescopic slot slide rail (52). The inner arc surfaces of the locking shaft (55) and the positioning hook lock (57) are in contact with each other. The chassis (1) is provided with a cable management device (6) for fixing the data cables connected to the data processor (4), and the chassis (1) is provided with a protective adjustment device (7) for protecting the electronic components on the data processor (4).

2. A computer host for Internet of Things (IoT) data processing according to claim 1, characterized in that: The cable management device (6) includes a wiring groove (61), a sealing cover (62), an arc groove clamp (63), a contact slide rod (64), and an arc-shaped cable management plate (65). The wiring groove (61) is located on the rear side of the chassis (1). The sealing cover (62) is hinged to the rear side of the wiring groove (61). The arc groove clamp (63) is located on the front side of the wiring groove (61). The contact slide rod (64) is slidably connected to the inner surface of the arc groove clamp (63). The arc-shaped cable management plate (65) is fixedly connected to one end of the contact slide rod (64).

3. A computer host for Internet of Things data processing according to claim 2, characterized in that: The cable harness device (6) also includes a push shaft (66), a transmission slide rail (67), a sliding plate (68), and a guide groove (69). The push shaft (66) is fixedly connected to the side of the rear push plate (59) near the data processor (4). The transmission slide rail (67) is fixedly connected to the rear side of the inner wall of the chassis (1). The sliding plate (68) is slidably connected to the inner surface of the transmission slide rail (67). The guide groove (69) is opened on the inner side of the sliding plate (68).

4. A computer host for Internet of Things data processing according to claim 3, characterized in that: The sliding plate (68) and the arc groove clamp (63) are fixedly connected at both ends. A spring is provided between the outer arc surface of the arc-shaped wire harness plate (65) and the arc surface of the arc groove clamp (63). The rear side of the arc groove clamp (63) and the front side of the transmission slide rail (67) are in contact with each other. The circumferential surface of the push shaft (66) and the inner surface of the guide groove (69) are in contact with each other.

5. A computer host for Internet of Things data processing according to claim 4, characterized in that: The protective adjustment device (7) includes a through groove (71), a central baffle (72), an outer slide rail (73), and a filter plate (74). The through groove (71) is opened on both sides of the housing (1). The central baffle (72) is fixedly connected to the inner surface of the through groove (71). The outer slide rail (73) is fixedly connected to both sides of the housing (1). The filter plate (74) is slidably connected to the inner surface of the outer slide rail (73).

6. A computer host for Internet of Things data processing according to claim 5, characterized in that: The protective adjustment device (7) also includes an inner slide rail (75), a baffle plate (76), a scraper roller (77), a transmission groove (78), and a connecting rod (79). The inner slide rail (75) is fixedly connected to both sides of the inner wall of the housing (1). The baffle plate (76) is slidably connected to the inner surface of the inner slide rail (75). The scraper roller (77) is hinged to the side of the baffle plate (76) near the filter plate (74). The transmission groove (78) is opened inside the transmission slide rail (67). The connecting rod (79) is fixedly connected to the side of the sliding plate (68) away from the data processor (4).

7. A computer host for Internet of Things data processing according to claim 6, characterized in that: The filter plate (74) is in contact with the side of the data processor (4) and the side of the center baffle (72) away from the data processor (4). The end of the connecting rod (79) away from the sliding plate (68) is fixedly connected to the baffle (76). The connecting rod (79) is in contact with the inner surface of the transmission groove (78). The circumferential surface of the scraper roller (77) is in contact with the side of the filter plate (74) near the center baffle (72). The side of the baffle (76) near the filter plate (74) and the side of the center baffle (72) away from the filter plate (74) are in contact with each other.

Citation Information

Patent Citations

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