A server CPU high-performance modular computer and a thermal management method thereof

CN122837601APending Publication Date: 2026-09-29YOUSHENG TECHNOLOGY (GUANGDONG) CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202611079132.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-20
Publication Date
2026-09-29

AI Technical Summary

Technical Problem

[0004]针对上述中的相关内容,发现存在以下技术缺陷:现有技术中的模块化电脑通常缺少对散热口的遮尘设计,不使用时散热口直接暴露,外界灰尘易通过散热口进入机箱内部,影响硬件散热效率与使用寿命,同时即使配备简单的遮尘盖,也难以实现灵活滑动调节和稳定固定,遮尘盖容易因震动或触碰意外移位,导致防尘效果不可靠或阻碍正常散热

Benefits of technology

S10、再用手拉动抽拉块,抽拉块带动与其固定连接的置卡框从机身内部滑出,此时可将储蓄卡放入置卡框或从中取出;

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN122837601A_ABST
    Figure CN122837601A_ABST
Patent Text Reader

Abstract

The application provides a server CPU high-performance modular computer and a thermal management method thereof, and relates to the technical field of modular computers.The server CPU high-performance modular computer comprises a body and a dustproof assembly.The upper end of the body is rotationally connected with a display screen.The dustproof assembly is arranged below the body.The dustproof assembly comprises two slide rails, both of which are fixedly connected with the body away from the display screen.A dust shielding plate and a slide shaft are arranged between the two slide rails.The two ends of the slide shaft are slidably connected with the inner walls of the two slide rails.The one end of the dust shielding plate is fixedly connected with the arc surface of the slide shaft.Two rotating grooves are formed in the upper end of the dust shielding plate.The inner walls of the rotating grooves are rotationally connected with rotating pins.The arc surface of the rotating pin is fixedly connected with a driving block and two limiting plates.The dust shielding plate can control the telescopic locking or disengagement of the fixing shaft in the inner wall of the slide rail by rotating the driving block, so that the sliding adjustment is realized to shield or expose the heat dissipation opening of the body.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of modular computer technology, and in particular to a high-performance modular computer with a server CPU and its thermal management method. Background Technology

[0002] Modular computers are computers in which core components such as processors, memory, and storage are designed as independent, pluggable modules. Users can quickly disassemble or replace individual components without tools. They are mainly used for flexibly upgrading hardware performance, reducing maintenance costs, and supporting customized configurations according to needs. They are suitable for scenarios such as education, industrial control, and DIY enthusiasts.

[0003] Existing technologies, such as the invention disclosed in publication number CN116540838A, disclose a modular laptop computer. The key technical points of its solution are: a main mounting module configured to include a first mounting surface and a second mounting surface; a first module with a battery and a second module with a CPU, wherein the first module and the second module are respectively mounted on the first mounting surface of the main mounting module via a mounting structure, and the first module and the second module are arranged parallel to each other; and a display module mounted on the second mounting surface of the main mounting module via a hinge, which displays a visual image based on a signal generated by the second module.

[0004] Regarding the above-mentioned issues, the following technical defects have been found: Modular computers in the existing technology usually lack dust cover design for heat dissipation vents. When not in use, the heat dissipation vents are directly exposed, and external dust can easily enter the inside of the chassis through the heat dissipation vents, affecting the heat dissipation efficiency and lifespan of the hardware. At the same time, even if a simple dust cover is provided, it is difficult to achieve flexible sliding adjustment and stable fixation. The dust cover is easily displaced due to vibration or accidental contact, resulting in unreliable dust prevention effect or obstruction of normal heat dissipation. Summary of the Invention

[0005] The purpose of this invention is to overcome the shortcomings of existing technologies and propose a high-performance modular computer with server CPU and its thermal management method.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: It includes a body and a dustproof assembly. A display screen is rotatably connected to the upper end of the body. The dustproof assembly is located below the body and includes two slide rails. Both slide rails are fixedly connected to the end of the body furthest from the display screen. A dust shield and a sliding shaft are disposed between the two slide rails. The two ends of the sliding shaft are slidably connected to the inner walls of the two slide rails, respectively. One end of the dust shield is fixedly connected to the arc surface of the sliding shaft. Two rotating grooves are formed at the upper end of the dust shield, and rotating pins are rotatably connected to the inner walls of the rotating grooves. A drive block and two limiting plates are fixedly connected to the arc surface of the rotating pin. The drive block is located in the middle of the two limiting plates. Two fixed shafts are slidably inserted into both sides of the dust cover. One end of one fixed shaft is slidably connected to the inner wall of the slide rail, and one end of the other fixed shaft is in contact with the inner wall of the slide rail. A tension spring and an extension shaft are fixedly connected to the insertion end of the fixed shaft. The other end of the spring is fixedly connected to the inner wall of the dust cover. The other end of the extension shaft is slidably inserted into the rotating groove. The insertion end of the extension shaft is in contact with one side of the drive block. The tension spring is sleeved around the extension shaft.

[0007] The aforementioned components achieve the following effects: when the computer is not in use, the dust cover blocks the heat dissipation vents on the surface of the computer case; when heat dissipation is needed, the dust cover slides along the slide rail. By rotating the drive block, the fixed shafts on both sides extend and retract within the dust cover, causing the fixed shafts to extend out of the dust cover and abut against the surface of the slide rail, thereby locking the position of the dust cover within the slide rail. When resetting, the drive block is rotated in the opposite direction, causing the fixed shafts to retract and fit against the inner wall of the slide rail, preventing the dust cover from moving accidentally. This achieves flexible adjustment and stable fixation of the dust cover.

[0008] Preferably, two positioning blocks are fixedly connected to the upper end of the dust cover, and a stop bar is fixedly connected to the arc surface of the rotating pin. The stop bar is located above the limiting plate, and the end of the stop bar away from the rotating pin is in contact with one side of the positioning block.

[0009] The effect achieved by the above components is as follows: through the cooperation of the positioning block and the stop bar, when the operator rotates the rotating pin, the position where the stop bar and the positioning block are in contact corresponds to the accurate opening and closing state of the drive block, thereby helping the operator to accurately control the extension and retraction of the fixed shaft and avoid the dust cover from failing to lock or unlock due to improper rotation angle.

[0010] Preferably, the cross-section of the drive block is set to be elliptical.

[0011] The effect achieved by the above components is that by setting the cross-section of the drive block to an ellipse, it can form a self-limiting position after rotating to a specific angle, thereby improving the operational stability of the drive block.

[0012] Preferably, two clips are fixedly connected to the end of the device body away from the display screen, and the cross-section of the two clips is set to "L" shape.

[0013] The effect achieved by the above components is as follows: by means of two L-shaped locking blocks, after the dust cover slides along the slide rail to be fully opened, it can lock the edge of the dust cover, preventing the dust cover from accidentally rotating along the slide shaft due to gravity or vibration, ensuring that the heat dissipation vents of the computer body are fully exposed when in use, and maintaining heat dissipation efficiency.

[0014] Preferably, a lifting assembly is provided at the end of the body away from the display screen. The lifting assembly includes two mounting plates and two support plates. The lower ends of the two mounting plates are fixedly connected to the body. The lower ends of the two support plates are fixedly connected to two fixing sleeves. A lifting rod is slidably inserted into the lower end of the fixing sleeve. The lower end of the lifting rod is fixedly connected to the upper end of the mounting plate. An annular block is rotatably connected to the lower end of the fixing sleeve. A gear is fixedly connected to the lower end of the annular block. The annular block is sleeved around the lifting rod. The gear is threadedly connected to the arc surface of the lifting rod. A toothed belt is provided between several gears. The toothed belt meshes with the arc surfaces of several gears.

[0015] The effect achieved by the above components is as follows: by rotating the gears, the threaded lifting rods move up and down along the fixed sleeve, and the toothed belt drives multiple gears simultaneously, so that each lifting rod rises and falls at the same time, thereby uniformly raising the end of the computer body away from the display screen, realizing the adjustment of the overall height of the computer, and adapting to the heat dissipation or operation needs under different usage scenarios.

[0016] Preferably, a connecting ring is fixedly connected to the upper end of one of the gears, and an operating ring is fixedly connected to the upper end of the connecting ring. Both the connecting ring and the operating ring are sleeved around the periphery of the fixed sleeve, and the arc surface of the operating ring is provided with anti-slip texture.

[0017] The effects achieved by the above components are as follows: the rotational motion is transmitted to the gear through the connecting ring and the operating ring. The anti-slip texture on the operating ring increases the coefficient of friction for the fingers, allowing the operator to easily rotate the gear without tools. At the same time, the connecting ring ensures the coaxial rotation of the operating ring and the fixed sleeve, reducing the risk of jamming during adjustment.

[0018] Preferably, a guide post is fixedly connected to the inner wall of the fixed sleeve, the lower end of the guide post is slidably inserted into the lifting rod, and the cross-section of the lifting rod is hexagonal.

[0019] The effect achieved by the above components is as follows: by inserting the guide post into the hexagonal cross-section of the lifting rod, the circumferential rotation of the lifting rod is restricted during the lifting process, ensuring that the lifting rod can only move axially and does not spin, thereby maintaining the stability of the threaded engagement between the gear and the lifting rod and preventing the lifting assembly from failing due to shaking.

[0020] Preferably, a storage component is provided on one side of the body. The storage component includes a pull-out block and a locking block. The locking block is fixedly connected to one side of the body. The pull-out block is located on one side of the locking block. A card holder is fixedly connected to one side of the pull-out block. The card holder is slidably inserted into the body. One side of the pull-out block is in contact with one side of the body. A spring is fixedly connected to the inner wall of the locking block. A moving block is fixedly connected to the other end of the spring. The moving block is slidably connected to the inner wall of the locking block. A rod is fixedly connected to the end of the moving block away from the spring. One end of the rod is slidably inserted into the pull-out block.

[0021] The above components achieve the following effect: the card holder is slidably inserted into the machine body by the pull-out block, and the insertion rod is inserted into the pull-out block by the spring in the locking block, locking the card holder inside the machine body. When a spare debit card needs to be removed, the moving block is pulled to compress the spring and the insertion rod is removed from the pull-out block, thus realizing the concealed storage and quick access of the debit card.

[0022] Preferably, a telescopic rod is fixedly connected to the inner wall of the locking block, and one end of the telescopic rod away from the inner wall of the locking block is fixedly connected to one side of the moving block, and the spring is sleeved around the periphery of the telescopic rod.

[0023] The effect achieved by the above components is as follows: by sleeved inside the spring, the telescopic rod provides guidance and limit when the moving block slides, preventing the spring from bending or shifting during compression or reset, thereby ensuring that the insertion rod can be accurately inserted into the insertion hole of the pull-out block every time, and improving the reliability of the storage component for repeated use.

[0024] A thermal management method for a high-performance modular computer with a server CPU includes the following steps: S1. When it is necessary to adjust the height of the end of the machine body away from the display screen to adapt to different heat dissipation heights, first hold the anti-slip texture on the arc surface of the operation ring and rotate the operation ring. The operation ring drives a gear fixed to it to rotate through the connecting ring. S2. The rotation is then transmitted to the remaining gears through the toothed belt, so that all gears rotate synchronously. The lower end of each gear is fixedly connected to the corresponding ring block, and the ring block is rotatably connected to the lower end of the fixed sleeve. Therefore, the gear drives the ring block to rotate independently relative to the fixed sleeve. S3. Secondly, since the guide post is fixed on the inner wall of the fixed sleeve, the guide post is slidably inserted into the lifting rod with a hexagonal cross-section. The lifting rod cannot rotate with the gear. The gear is threadedly connected to the arc surface of the lifting rod. Therefore, the rotation of the gear forces the lifting rod to move along the axial direction of the fixed sleeve. S4. Finally, the upper end of the lifting rod pushes the mounting plate fixed to it, and the mounting plate then drives the end of the machine body away from the display screen to rise or fall. At the same time, the fixing sleeve at the upper end of the support plate provides stable guidance for the lifting rod. S5. When it is necessary to adjust the dust cover according to the usage status, first hold the dust cover and slide the slide shaft along the two slide rails, and at the same time observe whether the two positioning blocks located at the upper end of the dust cover are aligned with the stop bar on the arc surface of the rotating pin. S6. Rotate the rotating pin to drive the drive block and the two limit plates to rotate. The drive block moves the extension shaft along the inner wall of the rotating groove. The extension shaft then compresses the tension spring and pulls the fixed shaft back into the dust cover plate, so that the fixed shaft is out of contact with the inner wall of the slide rail. S7. Next, push the dust cover along the slide rail to the desired position, and use two L-shaped blocks to hold the edge of the dust cover in place to prevent the dust cover from rotating unexpectedly along the slide shaft. S8. Finally, rotate the drive block in the opposite direction, and the tension spring resets, causing the extension shaft to extend out, so that the fixed shaft extends out of the dust cover and presses against the slide rail surface, thereby locking the position of the dust cover. S9. When it is necessary to access the backup savings card, first pull the moving block away from the pull block. The moving block slides on the inner wall of the locking block and compresses the spring and the telescopic rod sleeved inside the spring, so that the plug fixed at one end of the moving block is removed from the pull block. S10. Pull the pull block by hand. The pull block will cause the card holder fixedly connected to it to slide out from the inside of the machine. At this time, you can put the savings card into the card holder or take it out from it. S11. Next, push the pull-out block back so that the card holder is fully inserted into the body, and at the same time, one side of the pull-out block is in contact with one side of the body. S12. Finally, release the moving block. The spring returns to its original position under the guidance of the telescopic rod, pushing the moving block towards the pull-out block, so that the insert rod is reinserted into the pull-out block, completing the locking.

[0025] Compared with the prior art, the advantages and positive effects of the present invention are as follows: 1. In this invention, by setting up a dustproof component, the dust cover blocks the heat dissipation vents on the surface of the computer when it is not in use, and slides along the slide rail when heat dissipation is needed. By rotating the drive block, the fixed shafts on both sides extend and retract within the dust cover, so that the fixed shafts extend out of the dust cover and abut against the surface of the slide rail, thereby locking the position of the dust cover within the slide rail. When resetting, the drive block is rotated in the opposite direction, so that the fixed shafts retract and fit against the inner wall of the slide rail, preventing the dust cover from moving accidentally, thus realizing the flexible adjustment and stable fixation of the dust cover.

[0026] 2. In this invention, by setting up a lifting component, rotating gears drive the threaded lifting rods to move up and down along the fixed sleeve, and using toothed belts to synchronously drive multiple gears, so that each lifting rod rises and falls at the same time, thereby uniformly lifting the end of the machine body away from the display screen, realizing the adjustment of the overall height of the computer, and adapting to the heat dissipation or operation needs under different usage scenarios.

[0027] 3. In this invention, by setting up a storage component, the pull-out block drives the card holder to slide into the machine body, and the insertion rod is inserted into the pull-out block under the push of the spring in the locking block, locking the card holder inside the machine body. When it is necessary to take out a spare debit card, the moving block is pulled to compress the spring and the insertion rod is removed from the pull-out block, thus realizing the concealed storage and quick access of the debit card. Attached Figure Description

[0028] Figure 1 A three-dimensional structural diagram of a high-performance modular computer with a server CPU and its thermal management method is provided for this invention. Figure 2 A bottom view of the structure of a high-performance modular computer with server CPU and its thermal management method proposed in this invention; Figure 3 This is a schematic diagram of the dustproof component of a high-performance modular computer with a server CPU and its thermal management method proposed in this invention. Figure 4 This is a cross-sectional view of the dustproof component of a high-performance modular computer with a server CPU and its thermal management method proposed in this invention. Figure 5 This is a schematic diagram of the lifting component of a high-performance modular computer with a server CPU and its thermal management method proposed in this invention. Figure 6 This invention presents a partial structural cross-sectional view of the lifting component of a server CPU high-performance modular computer and its thermal management method. Figure 7 This is a schematic diagram of the structure of a storage component for a high-performance modular computer with a server CPU and its thermal management method proposed in this invention. Figure 8 This is a disassembly diagram of the storage components of a high-performance modular computer with a server CPU and its thermal management method proposed in this invention.

[0029] Legend: 1. Body; 2. Display screen; 3. Dustproof assembly; 301. Slide rail; 302. Dust shield; 303. Slide shaft; 304. Rotating groove; 305. Rotating pin; 306. Drive block; 307. Limiting plate; 308. Fixed shaft; 309. Tension spring; 310. Extension shaft; 311. Positioning block; 312. Stop bar; 313. Locking block; 4. Lifting assembly; 401. Mounting plate; 402. Support plate; 403. Fixed sleeve; 404. Lifting rod; 405. Annular block; 406. Gear; 407. Toothed belt; 408. Connecting ring; 409. Operating ring; 410. Guide column; 5. Storage assembly; 51. Pull-out block; 52. Locking block; 53. Card holder frame; 54. Spring; 55. Moving block; 56. Insert rod; 57. Telescopic rod. Detailed Implementation

[0030] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described below in conjunction with the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0031] Numerous specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways than those described herein, and therefore the invention is not limited to the specific embodiments disclosed in the following specification.

[0032] Example 1, as Figure 1-2 As shown, the present invention provides a high-performance modular computer with server CPU and its thermal management method, including a chassis 1 and a dustproof component 3. A display screen 2 is rotatably connected to the upper end of the chassis 1, the dustproof component 3 is disposed below the chassis 1, a lifting component 4 is disposed at the end of the chassis 1 away from the display screen 2, and a storage component 5 is disposed on one side of the chassis 1.

[0033] The following section will explain the specific settings and functions of its dustproof component 3, lifting component 4, and storage component 5.

[0034] like Figure 3 and Figure 4As shown, the dustproof component 3 includes two slide rails 301, both of which are fixedly connected to the end of the body 1 away from the display screen 2. A dustproof plate 302 and a sliding shaft 303 are arranged between the two slide rails 301. The two ends of the sliding shaft 303 are slidably connected to the inner walls of the two slide rails 301 respectively. One end of the dustproof plate 302 is fixedly connected to the arc surface of the sliding shaft 303. Two rotating grooves 304 are opened at the upper end of the dustproof plate 302. A rotating pin 305 is rotatably connected to the inner wall of the rotating groove 304. A driving block 306 and two limiting plates 307 are fixedly connected to the arc surface of the rotating pin 305. The driving block 306 is located at the two... Two fixed shafts 308 are slidably inserted into the middle of the limiting plate 307 and both sides of the dustproof plate 302. One end of one fixed shaft 308 is slidably connected to the inner wall of the slide rail 301, and one end of the other fixed shaft 308 is in contact with the inner wall of the slide rail 301. The insertion end of the fixed shaft 308 is fixedly connected to a tension spring 309 and an extension shaft 310. The other end of the spring 54 is fixedly connected to the inner wall of the dustproof plate 302. The other end of the extension shaft 310 is slidably inserted into the rotating groove 304. The insertion end of the extension shaft 310 is in contact with one side of the drive block 306. The tension spring 309 is sleeved on the periphery of the extension shaft 310. When the computer is not in use, the dust cover 302 blocks the heat dissipation vents on the surface of the chassis 1. When heat dissipation is needed, the dust cover 302 slides along the slide rail 301. By rotating the drive block 306, the fixed shafts 308 on both sides extend and retract within the dust cover 302, causing the fixed shafts 308 to extend out of the dust cover 302 and abut against the surface of the slide rail 301, thereby locking the position of the dust cover 302 within the slide rail 301. When resetting, the drive block 306 rotates in the opposite direction, causing the fixed shafts 308 to retract and fit against the inner wall of the slide rail 301, preventing the dust cover 302 from moving accidentally. This achieves flexible adjustment and stable fixation of the dust cover 302. Two positioning blocks 311 are fixedly connected to the upper end of the dust cover 302. A stop rod 312 is fixedly connected to the arc surface of the rotating pin 305. The stop rod 312 is located above the limiting plate 307, and the end of the stop rod 312 away from the rotating pin 305 is in contact with one side of the positioning block 311. The cooperation between the positioning block 311 and the stop lever 312 ensures that when the operator rotates the rotating pin 305, the position where the stop lever 312 engages with the positioning block 311 corresponds precisely to the on / off state of the drive block 306. This helps the operator accurately control the extension and retraction of the fixed shaft 308, preventing the dust cover 302 from failing to lock or unlock due to improper rotation angle. The cross-section of the drive block 306 is elliptical. By setting the cross-section of the drive block 306 to an elliptical shape, it can form a self-limiting position after rotating to a specific angle, improving the operational stability of the drive block 306. Two locking blocks 313 are fixedly connected to the end of the machine body 1 away from the display screen 2. The cross-section of the two locking blocks 313 is set in an "L" shape.With two L-shaped locking blocks 313, after the dust cover 302 slides along the slide rail 301 to be fully opened, the edge of the dust cover 302 can be locked to prevent the dust cover 302 from accidentally rotating along the slide shaft 303 due to gravity or vibration, ensuring that the heat dissipation vent of the computer body 1 is fully exposed when the computer is in use, and maintaining heat dissipation efficiency.

[0035] The entire dustproof component 3 achieves the following effect: when the computer is not in use, the dust cover 302 blocks the heat dissipation vents on the surface of the chassis 1; when heat dissipation is needed, the dust cover 302 slides along the slide rail 301. By rotating the drive block 306, the two fixed shafts 308 on both sides extend and retract within the dust cover 302, so that the fixed shafts 308 extend out of the dust cover 302 and abut against the surface of the slide rail 301, thereby locking the position of the dust cover 302 within the slide rail 301. When resetting, the drive block 306 is rotated in the opposite direction, so that the fixed shafts 308 retract and fit against the inner wall of the slide rail 301, preventing the dust cover 302 from moving accidentally, thus achieving flexible adjustment and stable fixation of the dust cover 302.

[0036] like Figure 5 and Figure 6As shown, the lifting assembly 4 includes two mounting plates 401 and two support plates 402. The lower ends of the two mounting plates 401 are fixedly connected to the machine body 1. The lower ends of the two support plates 402 are fixedly connected to two fixing sleeves 403. A lifting rod 404 is slidably inserted into the lower end of the fixing sleeve 403. The lower end of the lifting rod 404 is fixedly connected to the upper end of the mounting plate 401. An annular block 405 is rotatably connected to the lower end of the fixing sleeve 403. A gear 406 is fixedly connected to the lower end of the annular block 405. The annular block 405 is sleeved around the lifting rod 404. The gear 406 is threadedly connected to the arc surface of the lifting rod 404. A toothed belt 407 is provided between several gears 406. The toothed belt 407 meshes with the arc surface of several gears 406. Rotating gear 406 drives the threaded lifting rod 404 to move up and down along the fixed sleeve 403. A toothed belt 407 synchronously drives multiple gears 406, causing each lifting rod 404 to rise and fall simultaneously. This uniformly raises the end of the computer body 1 away from the display screen 2, adjusting the overall height to meet different cooling or operational needs in various usage scenarios. A connecting ring 408 is fixedly connected to the upper end of one gear 406, and an operating ring 409 is fixedly connected to the upper end of the connecting ring 408. Both the connecting ring 408 and the operating ring 409 are fitted around the fixed sleeve 403. The arc surface of the operating ring 409 has anti-slip textures. The rotational motion is transmitted to the gear 406 through the connecting ring 408 and the operating ring 409. The anti-slip texture on the operating ring 409 increases the friction coefficient for fingers, allowing the operator to easily rotate the gear 406 without tools. Simultaneously, the connecting ring 408 ensures the coaxial rotation of the operating ring 409 and the fixed sleeve 403, reducing the risk of jamming during adjustment. A guide post 410 is fixedly connected to the inner wall of the fixed sleeve 403. The lower end of the guide post 410 is slidably inserted into the lifting rod 404, which has a hexagonal cross-section. By inserting the guide post 410 into the hexagonal lifting rod 404, the circumferential rotation of the lifting rod 404 is restricted during its lifting and lowering process. This ensures that the lifting rod 404 can only move axially and does not rotate, thereby maintaining the stability of the threaded engagement between the gear 406 and the lifting rod 404 and preventing the lifting assembly 4 from failing due to shaking.

[0037] The entire lifting assembly 4 achieves the following effect: by rotating the gear 406, the threaded lifting rod 404 moves up and down along the fixed sleeve 403, and the toothed belt 407 synchronously drives multiple gears 406, so that each lifting rod 404 rises and falls at the same time, thereby uniformly lifting the end of the body 1 away from the display screen 2, realizing the adjustment of the overall height of the computer, and adapting to the heat dissipation or operation needs under different usage scenarios.

[0038] like Figure 7 and Figure 8As shown, the storage component 5 includes a pull-out block 51 and a locking block 52. The locking block 52 is fixedly connected to one side of the body 1. The pull-out block 51 is located on one side of the locking block 52. A card holder 53 is fixedly connected to one side of the pull-out block 51. The card holder 53 is slidably inserted into the body. One side of the pull-out block 51 is in contact with one side of the body 1. A spring 54 is fixedly connected to the inner wall of the locking block 52. A moving block 55 is fixedly connected to the other end of the spring 54. The moving block 55 is slidably connected to the inner wall of the locking block 52. A rod 56 is fixedly connected to the end of the moving block 55 away from the spring 54. One end of the rod 56 is slidably inserted into the pull-out block 51. The card holder 53 is slidably inserted into the body by the pull-out block 51, and the insertion rod 56 is inserted into the pull-out block 51 by the spring 54 inside the locking block 52, locking the card holder 53 inside the body 1. When a spare debit card needs to be removed, the moving block 55 is pulled to compress the spring 54, causing the insertion rod 56 to exit the pull-out block 51, thus achieving concealed storage and quick access to the debit card. A telescopic rod 57 is fixedly connected to the inner wall of the locking block 52. One end of the telescopic rod 57 away from the inner wall of the locking block 52 is fixedly connected to one side of the moving block 55, and the spring 54 is sleeved on the periphery of the telescopic rod 57. By having the telescopic rod 57 sleeved inside the spring 54, it provides guidance and limit when the moving block 55 slides, preventing the spring 54 from bending or shifting during compression or reset, thereby ensuring that the insertion rod 56 can be accurately inserted into the insertion hole of the pull-out block 51 every time, improving the reliability of the storage component 5 for repeated use.

[0039] The entire storage component 5 achieves the following effect: the card holder 53 is slidably inserted into the body by the pull-out block 51, and the insertion rod 56 is inserted into the pull-out block 51 by the spring 54 in the locking block 52, locking the card holder 53 inside the body 1. When a spare debit card needs to be removed, the moving block 55 is pulled to compress the spring 54, causing the insertion rod 56 to exit the pull-out block 51, thus realizing the concealed storage and quick access of the debit card.

[0040] The overall working principle is as follows: When the dust cover 302 needs to be adjusted according to the usage status, first hold the dust cover 302 and slide the sliding shaft 303 along the two sliding rails 301. At the same time, observe whether the two positioning blocks 311 located at the upper end of the dust cover 302 are aligned with the stop bar 312 on the arc surface of the rotating pin 305. Then, rotate the rotating pin 305 to drive the drive block 306 and the two limit plates 307 to rotate. The drive block 306 drives the extension shaft 310 to move along the inner wall of the rotating groove 304. The extension shaft 310 then compresses the tension spring 309 and pulls the extension shaft 302. The fixed shaft 308 retracts into the dust cover 302, disengaging it from the inner wall of the slide rail 301. Next, the dust cover 302 is pushed along the slide rail 301 to the desired position, and the edges of the dust cover 302 are secured by two L-shaped locking blocks 313 to prevent the dust cover 302 from accidentally rotating along the slide shaft 303. Finally, the drive block 306 is rotated in the opposite direction, and the tension spring 309 is reset, causing the extension shaft 310 to extend out, allowing the fixed shaft 308 to extend out of the dust cover 302 again and press against the surface of the slide rail 301, thereby locking the position of the dust cover 302.

[0041] When adjusting the height of the end of the device 1 furthest from the display screen 2 to accommodate different heat dissipation heights, first grasp the anti-slip texture on the arc surface of the operating ring 409 and rotate the operating ring 409. The operating ring 409 drives a gear 406 fixed to it to rotate through the connecting ring 408, and then transmits the rotation to the remaining gears 406 through the toothed belt 407, so that all gears 406 rotate synchronously. The lower end of each gear 406 is fixedly connected to the corresponding annular block 405, and the annular block 405 is rotatably connected to the lower end of the fixed sleeve 403. Therefore, the gear 406 drives the annular block 405 to rotate independently relative to the fixed sleeve 403. Secondly, since the guide post 410 is fixed to the inner wall of the fixed sleeve 403, and the guide post 410 is slidably inserted into the lifting rod 404 with a hexagonal cross-section, the lifting rod 404 cannot rotate with the gear 406. Since the gear 406 is threadedly connected to the arc surface of the lifting rod 404, the rotation of the gear 406 forces the lifting rod 404 to move axially along the fixed sleeve 403. Finally, the upper end of the lifting rod 404 pushes the mounting plate 401 fixed thereto, and the mounting plate 401 then drives the end of the body 1 away from the display screen 2 to rise or fall. At the same time, the fixed sleeve 403 at the upper end of the support plate 402 provides stable guidance for the lifting rod 404.

[0042] When a spare savings card needs to be accessed, first pull the moving block 55 away from the pull-out block 51. The moving block 55 slides on the inner wall of the locking block 52 and compresses the spring 54 and the telescopic rod 57 sleeved inside the spring 54, causing the insertion rod 56 fixed at one end of the moving block 55 to exit from the pull-out block 51. Then, pull the pull-out block 51 by hand. The pull-out block 51 drives the card holder 53 fixedly connected to it to slide out from inside the body 1. At this time, the savings card can be placed in the card holder 53 or taken out from it. Next, push the pull-out block 51 back so that the card holder 53 is fully inserted into the body 1. At the same time, one side of the pull-out block 51 is in contact with one side of the body 1. Finally, release the moving block 55. The spring 54 returns to its original position under the guidance of the telescopic rod 57, pushing the moving block 55 to move towards the pull-out block 51, so that the insertion rod 56 is reinserted into the pull-out block 51, completing the locking.

[0043] A thermal management method for a high-performance modular computer with a server CPU includes the following steps: S1. When it is necessary to adjust the height of the end of the body 1 away from the display screen 2 to adapt to different heat dissipation heights, first hold the anti-slip texture on the arc surface of the operation ring 409 and rotate the operation ring 409. The operation ring 409 drives a gear 406 fixed thereto to rotate through the connecting ring 408. S2. The rotation is then transmitted to the remaining gears 406 through the toothed belt 407, so that all gears 406 rotate synchronously. The lower end of each gear 406 is fixedly connected to the corresponding annular block 405, and the annular block 405 is rotatably connected to the lower end of the fixed sleeve 403. Therefore, the gear 406 drives the annular block 405 to rotate independently relative to the fixed sleeve 403. S3. Secondly, since the guide post 410 is fixed on the inner wall of the fixed sleeve 403, the guide post 410 is slidably inserted into the lifting rod 404 with a hexagonal cross section. The lifting rod 404 cannot rotate with the gear 406. The gear 406 is threadedly connected to the arc surface of the lifting rod 404. Therefore, the rotation of the gear 406 forces the lifting rod 404 to move axially along the fixed sleeve 403. S4. Finally, the upper end of the lifting rod 404 pushes the mounting plate 401 fixed thereto, and the mounting plate 401 then drives the end of the machine body 1 away from the display screen 2 to rise or fall. At the same time, the fixing sleeve 403 at the upper end of the support plate 402 provides stable guidance for the lifting rod 404. S5. When it is necessary to adjust the dust cover 302 according to the usage status, first hold the dust cover 302 and slide the slide shaft 303 along the two slide rails 301, while observing whether the two positioning blocks 311 located at the upper end of the dust cover 302 are aligned with the stop bar 312 on the arc surface of the rotating pin 305. S6. Rotate the pivot pin 305 to drive the drive block 306 and the two limit plates 307 to rotate. The drive block 306 drives the extension shaft 310 to move along the inner wall of the rotating groove 304. The extension shaft 310 then compresses the tension spring 309 and pulls the fixed shaft 308 back into the dust cover plate 302, so that the fixed shaft 308 is separated from the contact with the inner wall of the slide rail 301. S7. Next, push the dust cover 302 along the slide rail 301 to the desired position, and use two L-shaped blocks 313 to hold the edge of the dust cover 302 to prevent the dust cover 302 from rotating unexpectedly along the slide shaft 303. S8. Finally, the drive block 306 is rotated in the opposite direction, the tension spring 309 is reset and drives the extension shaft 310 to extend, so that the fixed shaft 308 extends out of the dust cover 302 and presses against the surface of the slide rail 301, thereby locking the position of the dust cover 302. S9. When it is necessary to access the backup savings card, first pull the moving block 55 away from the pull block 51. The moving block 55 slides on the inner wall of the locking block 52 and compresses the spring 54 and the telescopic rod 57 sleeved inside the spring 54, so that the insertion rod 56 fixed at one end of the moving block 55 is removed from the pull block 51. S10. Pull the pull block 51 by hand. The pull block 51 will cause the card holder 53, which is fixedly connected to it, to slide out from the inside of the machine body 1. At this time, the savings card can be put into the card holder 53 or taken out from it. S11. Next, push the pull-out block 51 back so that the card holder 53 is fully inserted into the body 1, and at the same time, one side of the pull-out block 51 is in contact with one side of the body 1. S12. Finally, release the moving block 55. The spring 54 returns to its original position under the guidance of the telescopic rod 57, pushing the moving block 55 to move towards the pull-out block 51, so that the insert rod 56 is reinserted into the pull-out block 51, thus completing the locking.

[0044] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the protection scope of the present invention.

Claims

1. A high-performance modular computer with a server CPU, comprising a chassis (1) and a dustproof component (3), characterized in that: The upper end of the body (1) is rotatably connected to a display screen (2). The dustproof component (3) is located below the body (1). The dustproof component (3) includes two slide rails (301). Both slide rails (301) are fixedly connected to the end of the body (1) away from the display screen (2). A dustproof plate (302) and a sliding shaft (303) are provided between the two slide rails (301). The two ends of the sliding shaft (303) are slidably connected to the inner walls of the two slide rails (301). One end of the dustproof plate (302) is fixedly connected to the arc surface of the sliding shaft (303). Two rotating grooves (304) are opened at the upper end of the dustproof plate (302). A rotating pin (305) is rotatably connected to the inner wall of the rotating groove (304). A driving block (306) and two [other components] are fixedly connected to the arc surface of the rotating pin (305). The limiting plate (307) and the driving block (306) are located in the middle of the two limiting plates (307). Two fixed shafts (308) are slidably inserted on both sides of the dustproof plate (302). One end of one fixed shaft (308) is slidably connected to the inner wall of the slide rail (301), and one end of the other fixed shaft (308) is in contact with the inner wall of the slide rail (301). The insertion end of the fixed shaft (308) is fixedly connected to a tension spring (309) and an extension shaft (310). The other end of the spring (54) is fixedly connected to the inner wall of the dustproof plate (302). The other end of the extension shaft (310) is slidably inserted into the rotating groove (304). The insertion end of the extension shaft (310) is in contact with one side of the driving block (306). The tension spring (309) is sleeved on the periphery of the extension shaft (310).

2. The high-performance modular computer with a server CPU according to claim 1, characterized in that: Two positioning blocks (311) are fixedly connected to the upper end of the dust cover (302), and a stop bar (312) is fixedly connected to the arc surface of the rotating pin (305). The stop bar (312) is located above the limiting plate (307), and the end of the stop bar (312) away from the rotating pin (305) is in contact with one side of the positioning block (311).

3. A high-performance modular computer with a server CPU according to claim 1, characterized in that: The cross-section of the drive block (306) is set to be elliptical.

4. A high-performance modular computer with a server CPU according to claim 1, characterized in that: Two locking blocks (313) are fixedly connected to one end of the body (1) away from the display screen (2), and the cross-section of the two locking blocks (313) is set in an "L" shape.

5. A high-performance modular computer with a server CPU according to claim 1, characterized in that: A lifting assembly (4) is provided at the end of the body (1) away from the display screen (2). The lifting assembly (4) includes two mounting plates (401) and two support plates (402). The lower ends of the two mounting plates (401) are fixedly connected to the body (1). The lower ends of the two support plates (402) are fixedly connected to two fixing sleeves (403). A lifting rod (404) is slidably inserted into the lower end of the fixing sleeve (403). The lower end of the lifting rod (404) is connected to the mounting plate (401). 1) The upper end is fixedly connected, and the lower end of the fixed sleeve (403) is rotatably connected to an annular block (405). The lower end of the annular block (405) is fixedly connected to a gear (406). The annular block (405) is sleeved on the periphery of the lifting rod (404). The gear (406) is threadedly connected to the arc surface of the lifting rod (404). A toothed belt (407) is provided between several gears (406). The toothed belt (407) meshes with the arc surface of several gears (406).

6. A high-performance modular computer with a server CPU according to claim 5, characterized in that: One of the gears (406) has a connecting ring (408) fixedly connected to its upper end, and an operating ring (409) is fixedly connected to its upper end. Both the connecting ring (408) and the operating ring (409) are sleeved around the fixed sleeve (403). The arc surface of the operating ring (409) is provided with anti-slip texture.

7. A high-performance modular computer with a server CPU according to claim 5, characterized in that: The inner wall of the fixed sleeve (403) is fixedly connected to a guide post (410), the lower end of the guide post (410) is slidably inserted into the lifting rod (404), and the cross-section of the lifting rod (404) is hexagonal.

8. A high-performance modular computer with a server CPU according to claim 1, characterized in that: A storage component (5) is provided on one side of the body (1). The storage component (5) includes a pull-out block (51) and a locking block (52). The locking block (52) is fixedly connected to one side of the body (1). The pull-out block (51) is located on one side of the locking block (52). A card holder (53) is fixedly connected to one side of the pull-out block (51). The card holder (53) is slidably inserted into the body. One side of the pull-out block (51) is in contact with one side of the body (1). A spring (54) is fixedly connected to the inner wall of the locking block (52). A moving block (55) is fixedly connected to the other end of the spring (54). The moving block (55) is slidably connected to the inner wall of the locking block (52). A plug rod (56) is fixedly connected to one end of the moving block (55) away from the spring (54). One end of the plug rod (56) is slidably inserted into the pull-out block (51).

9. A high-performance modular computer with a server CPU according to claim 8, characterized in that: The inner wall of the locking block (52) is fixedly connected to a telescopic rod (57). One end of the telescopic rod (57) away from the inner wall of the locking block (52) is fixedly connected to one side of the moving block (55). The spring (54) is sleeved on the periphery of the telescopic rod (57).

10. A thermal management method for a high-performance modular computer with a server CPU, as described in any one of claims 1-9, characterized in that, Includes the following steps: S1. When it is necessary to adjust the height of the end of the body (1) away from the display screen (2) to adapt to different heat dissipation heights, first hold the anti-slip texture on the arc surface of the operation ring (409) and rotate the operation ring (409). The operation ring (409) drives a gear (406) fixed thereto to rotate through the connecting ring (408). S2. The rotation is then transmitted to the remaining gears (406) through the toothed belt (407), so that all gears (406) rotate synchronously. The lower end of each gear (406) is fixedly connected to the corresponding ring block (405), and the ring block (405) is rotatably connected to the lower end of the fixed sleeve (403). Therefore, the gear (406) drives the ring block (405) to rotate independently relative to the fixed sleeve (403). S3. Secondly, since the guide post (410) is fixed on the inner wall of the fixed sleeve (403), the guide post (410) is slidably inserted into the lifting rod (404) with a hexagonal cross section. The lifting rod (404) cannot rotate with the gear (406). The gear (406) is threadedly connected to the arc surface of the lifting rod (404). Therefore, the rotation of the gear (406) forces the lifting rod (404) to move axially along the fixed sleeve (403). S4. Finally, the upper end of the lifting rod (404) pushes the mounting plate (401) fixed thereto, and the mounting plate (401) then drives the body (1) away from the display screen (2) to rise or fall. At the same time, the fixing sleeve (403) at the upper end of the support plate (402) provides stable guidance for the lifting rod (404). S5. When it is necessary to adjust the dust cover (302) according to the usage status, first hold the dust cover (302) and let the slide shaft (303) slide along the two slide rails (301), and at the same time observe whether the two positioning blocks (311) located at the upper end of the dust cover (302) are aligned with the stop bar (312) on the arc surface of the rotating pin (305); S6. Rotate the pivot pin (305) to drive the drive block (306) and the two limit plates (307) to rotate. The drive block (306) drives the extension shaft (310) to move along the inner wall of the rotating groove (304). The extension shaft (310) then compresses the tension spring (309) and pulls the fixed shaft (308) back into the dust cover plate (302), so that the fixed shaft (308) is separated from the contact with the inner wall of the slide rail (301). S7. Next, push the dust cover (302) along the slide rail (301) to the desired position, and use two L-shaped blocks (313) to hold the edge of the dust cover (302) to prevent the dust cover (302) from rotating unexpectedly along the slide shaft (303); S8. Finally, the drive block (306) is rotated in the opposite direction. The tension spring (309) is reset and drives the extension shaft (310) to extend, so that the fixed shaft (308) extends out of the dust cover (302) and presses against the surface of the slide rail (301), thereby locking the position of the dust cover (302). S9. When it is necessary to access the backup savings card, first pull the moving block (55) away from the pull block (51). The moving block (55) slides on the inner wall of the locking block (52) and compresses the spring (54) and the telescopic rod (57) sleeved inside the spring (54), so that the insertion rod (56) fixed at one end of the moving block (55) exits from the pull block (51). S10. Pull the pull block (51) by hand. The pull block (51) will cause the card holder (53) fixedly connected to it to slide out from the inside of the machine body (1). At this time, the savings card can be put into the card holder (53) or taken out from it. S11. Next, push the pull-out block (51) back so that the card holder (53) is fully inserted into the body (1), and at the same time, one side of the pull-out block (51) is in contact with one side of the body (1). S12. Finally, release the moving block (55), and the spring (54) will reset under the guidance of the telescopic rod (57), pushing the moving block (55) to move towards the pull block (51), so that the insert rod (56) can be reinserted into the pull block (51) to complete the locking.

Citation Information

Patent Citations

  • Modular notebook computer

    CN116540838A