Extensible computer host

By incorporating anti-detachment and heat dissipation components, the problems of easy detachment and poor heat dissipation in traditional computer host connectors are solved, achieving buffer protection for the connectors and improving heat dissipation efficiency, reducing noise and extending the service life of the equipment.

CN120872111AInactive Publication Date: 2025-10-31SHENZHEN AZW TECH CO LTD
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Patent Information

Application Number
CN202511015174.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-23
Publication Date
2025-10-31
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional computer hosts lack anti-drop features, connectors are prone to falling off and affecting use, have poor heat dissipation and are noisy, and fan vibration is difficult to detect in time, affecting the lifespan of the equipment.

Method used

It employs anti-detachment components and heat dissipation components. The anti-detachment components prevent the connectors from falling off through a buffer mechanism and an alarm system, while the heat dissipation components improve heat dissipation efficiency and reduce noise through a moving fan and a noise reduction mechanism.

Benefits of technology

It effectively prevents connectors from falling off, improves heat dissipation efficiency, reduces noise, extends equipment lifespan, and enhances user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of computer hosts, and particularly discloses an extensible computer host which comprises an outer box, a processor component and a power device, an inner cavity of the outer box is slidably connected with a side shell, jacks are formed in the two sides of the side shell, the inner cavity of the outer box is rotationally connected with a plug through threads, and an anti-falling assembly is arranged on the inner wall of the outer box; according to the invention, through the anti-falling assembly, a two-time buffering effect can be achieved when the connector is dragged, and meanwhile, an alarm can be given out in time when the connector is unplanned to be pulled out, so that a user can stop dragging and carry out maintenance in time conveniently, secondary buffering is carried out after the alarm is given, time is provided for maintenance of a worker, and the maintenance efficiency is improved. The cooling fan can be driven to move in multiple areas through the cooling assembly, air inside and outside the case is effectively guided to flow, the cooling efficiency can be improved, and meanwhile noise caused by operation of the cooling fan is reduced by flexibly fixing the fan.
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Description

Technical Field

[0001] This application relates to the field of computer host technology, and more particularly to a scalable computer host. Background Technology

[0002] With the rapid development of information technology, computers have become an indispensable tool in modern society. The computer host, the container that houses the motherboard and other major components in a computer hardware system, is the core of the computer system. Currently, there are many types of computer hosts on the market, but most still have some shortcomings in design and functionality. As the performance of core hardware such as processors continues to improve, the heat generated by computer hosts during operation is also increasing. Traditional cooling methods are often unsatisfactory. The increasingly diverse needs of different user groups for computer hosts have prompted the computer host industry to continuously launch new products to meet the diverse demands of the market.

[0003] The existing technology still has the following problems: 1. Traditional computer hosts do not have anti-detachment features. When the connector and socket are plugged in, the cable will inevitably be dragged, causing the connector to fall off the socket. This prevents the computer from forming an optical path, affecting the continuous use of the computer. In severe cases, it may damage the connector and socket, requiring the replacement of the corresponding equipment. In addition, it is difficult to detect when the connector falls off in time, requiring time to troubleshoot and affecting the overall user experience of the computer.

[0004] 2. As the performance of core hardware such as processors and graphics cards continues to improve, the heat generated by computer hosts during operation is also increasing. The fixed cooling fans of traditional computer hosts cause heat to be excessively concentrated in certain areas inside the host, and the heat cannot be dissipated in time, thus affecting the overall heat dissipation effect. At the same time, the fans generate some noise during use, which will affect the user experience. In addition, it is difficult to detect large fan vibrations in time, resulting in a lack of timely maintenance of the fans, which will affect the lifespan of the fans and even the host. Summary of the Invention

[0005] To overcome the shortcomings of traditional computer hosts, such as the lack of anti-detachment functionality, which inevitably drags the cable during connector and socket insertion, causing the connector to detach from the socket and preventing the computer from establishing an optical path, thus affecting continuous use and potentially damaging both the connector and socket, requiring replacement, and the fixed cooling fan of traditional computer hosts leading to excessive heat concentration in certain areas of the host and inability to dissipate heat in a timely manner, thus affecting the overall cooling effect, and the noise generated by the fan during use affecting the user experience, as well as the difficulty in timely detection of large fan vibrations, resulting in a lack of timely fan maintenance and affecting the lifespan of the fan and even the host, the purpose of this invention is to provide an expandable computer host to solve the above-mentioned deficiencies.

[0006] This application provides an expandable computer host, including an outer casing, a processor component, and a power supply device. The inner cavity of the outer casing is slidably connected to a side shell, and the side shell has insertion holes on both sides. The inner cavity of the outer casing is connected to a plug via a threaded connection. The inner wall of the outer casing is provided with an anti-drop component. The inner cavity of the outer casing is provided with a heat dissipation component. Both the inner walls of the outer casing and the side shell are provided with baffles. The heat dissipation component includes a connecting frame. The bottom end of the connecting frame is provided with a noise reduction mechanism. The outer surface of the noise reduction mechanism is provided with a positioning mechanism. The middle part of the connecting frame is provided with a first motor. The inner cavity of the connecting frame is provided with a moving mechanism. The middle part of the connecting frame is provided with a gear. The inner cavity of the moving mechanism is slidably connected with a third slide rod.

[0007] Furthermore, the processor component and power supply device are both fixedly connected to the inner wall of the outer casing. The outer surface of the outer casing and the side shell are provided with heat dissipation holes. The shielding plate is located on the side of the heat dissipation holes, the heat dissipation component is located on the side of the processor component, and the anti-fall-off component is located between the power supply device and the inner wall of the outer casing.

[0008] Furthermore, the noise reduction mechanism includes a movable block, with a second slide rod fixedly connected to both ends of the movable block. A third spring is sleeved on the outer surface of the second slide rod, and a second fixed block is sleeved on the outer surface of the second slide rod. The second fixed block is fixedly connected to the bottom wall of the outer casing, and the movable block is slidably connected to the bottom wall of the outer casing. The third spring is located between the movable block and the second fixed block, and the upper surface of the movable block is fixedly connected to the lower surface of the connecting frame.

[0009] Furthermore, the positioning mechanism includes a positioning frame, a threaded rod rotatably connected to the inner cavity of the positioning frame, and an adjusting block slidably connected to the inner cavity of the positioning frame. There are two adjusting blocks, and the two adjusting blocks are slidably connected in a staggered manner. A positioning groove is opened on the outer surface of the adjusting block. A fixing frame is fixedly connected to the bottom wall of the outer box. A spring rod is slidably connected to the inner cavity of the fixing frame. A positioning wheel is rotatably connected to one end of the spring rod. A fixing ring is fixedly connected to the outer surface of the spring rod. A second button is provided on the outer surface of the fixing frame. A fourth spring is sleeved on the outer surface of the spring rod. A second horn is provided on the outer surface of the fixing frame.

[0010] Furthermore, the adjusting block and the threaded rod are connected by threads. The two adjusting blocks on the threaded rod are symmetrically distributed about the threaded rod. The threads at both ends of the threaded rod are in opposite directions. The positioning frame and the moving block are fixedly connected. The positioning wheel and the outer surface of the adjusting block are in close contact. The positioning wheel is located in the middle of the two adjusting blocks. The second button and the second horn are electrically connected. Pressing the second button controls the second horn to sound an alarm. The fourth spring is located between the fixed ring and the inner wall of the fixed frame. The fixed ring and the fixed frame are slidably connected. The fixed ring and the second button are at the same height. There is a gap between the fixed ring and the second button.

[0011] Furthermore, the moving mechanism includes a moving frame with sliding grooves at both ends. A second motor is slidably connected to the inner cavity of the sliding groove. A cooling fan is provided on the outer surface of the second motor. The output end of the second motor is sleeved with the cooling fan. Drive plates are fixedly installed at both ends of the connecting frame. Drive grooves are provided on the outer surface of the drive plates. The drive grooves are distributed in a "V" shape. A third slide rod is fixedly connected to the side of the second motor away from the cooling fan. The third slide rod is slidably connected to the drive groove. Half of the gear is smooth. A rack is provided on the inner wall of the moving frame. The gear meshes with the rack on the moving frame. The output end of the first motor is sleeved with the gear. The third slide rod is slidably connected to the sliding groove.

[0012] Furthermore, the anti-fall-off component includes a protective plate, a first connecting seat fixedly installed in the inner cavity of the protective plate, a second connecting seat fixedly installed in the inner cavity of the protective plate, a limit rod fixedly installed on the outer surface of the protective plate, a support strip fixedly installed at the end of the protective plate away from the limit rod, a first buffer mechanism fixedly connected to the inner wall of the outer casing, and a second buffer mechanism provided at both ends of the protective plate. There are two of each of the first and second buffer mechanisms. The first connecting seat, the second connecting seat, and the limit rod are all slidably connected to the outer casing. The support strip is in close contact with the power supply device. Cables are provided at the ends of the first and second connecting seats. The cables are electrically connected to the power supply device, and the cables are bent between the protective plate and the power supply device. There is a gap between the protective plate and the inner wall of the outer casing.

[0013] Furthermore, the first buffer mechanism includes a first buffer frame, a slider slidably connected to the inner cavity of the first buffer frame, a storage hole on the outer surface of the slider, a first sliding rod fixedly installed on the outer surface of the storage hole, a first spring sleeved on the outer surface of the first sliding rod, first fixing blocks fixedly installed on the outer surfaces of both ends of the first buffer frame, the first sliding rod and the first fixing blocks slidably connected, a first button provided on the outer surface of the first fixing block, a first horn fixedly installed on the side of the first fixing block away from the first button, the first button and the first horn electrically connected, and pressing the first button controls the first horn to sound an alarm, the first spring is located between the slider and the first fixing block, the first buffer frame is fixedly connected to the inner wall of the outer box, one end of the slider is an inclined surface, and the storage hole is located at the bottom end of the inclined surface.

[0014] Furthermore, the second buffer mechanism includes a second buffer frame, a fixed rod is fixedly installed on the inner wall of the second buffer frame, a baffle is fixedly installed on the outer surface of the second buffer frame, a second spring is sleeved in the middle part of the fixed rod, a slide block is slidably connected to the outer surface of the fixed rod, a connecting strip is rotatably connected to the inner cavity of the slide block, a buffer plate is rotatably connected to the end of the connecting strip away from the slide block, and push rods are fixedly installed at both ends of the second buffer frame.

[0015] Furthermore, there are two slides located at both ends of the second spring. The slides and the baffle are in contact. The second buffer frame and the protective plate are fixedly connected. The buffer plate and the slider have a gap. The push rod and the top of the inclined surface of the slider are in contact. When the push rod is pressed down, the push rod and the receiving hole are inserted. At this time, the slider squeezes the first button.

[0016] The technical solution provided in this application has at least the following technical effects or advantages: 1. By employing an anti-detachment component, this invention effectively solves the problem of traditional computer hosts lacking anti-detachment functionality. When the connector and socket are inserted, the cable is inevitably dragged, causing the connector to detach from the socket, preventing the computer from establishing an optical path and affecting its continuous use. In severe cases, it may damage the connector and socket, requiring replacement. Furthermore, it is difficult to detect connector detachment promptly, requiring time to troubleshoot and impacting the overall user experience. This invention, through its anti-detachment component, provides a double buffer when the connector is dragged. It also issues an alarm when the connector is unplannedly pulled out, allowing users to stop dragging and perform maintenance promptly. A second buffer after the alarm provides time for maintenance. Planned unplanned pulls do not trigger an alarm, significantly reducing the risk of connector detachment and ensuring the host always maintains a working optical path, preventing computer interruption.

[0017] 2. By employing a heat dissipation component, this invention effectively solves the problem of increasing heat generated by computer hosts during operation as the performance of core hardware such as processors and graphics cards continues to improve. Traditional computer host cooling fans are fixed, causing excessive heat concentration in certain areas inside the host, preventing timely heat dissipation and affecting overall cooling efficiency. Furthermore, the fans generate noise during operation, impacting the user experience. Additionally, it's difficult to detect significant fan vibrations promptly, leading to delayed maintenance and affecting the lifespan of the fan and even the host itself. This invention, through its heat dissipation component, allows the cooling fan to move across multiple areas, effectively guiding airflow inside and outside the chassis, improving cooling efficiency. The flexible fixing of the fan reduces noise during operation. Moreover, when the fan vibration is excessive, it can promptly limit the fan's movement and issue an alarm to remind staff to perform maintenance, extending the equipment's lifespan. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure in the embodiments of this application; Figure 2 This is a schematic diagram of the shielding plate structure in an embodiment of this application; Figure 3 This is a schematic diagram of the anti-detachment component structure in the embodiments of this application; Figure 4 This is a schematic diagram of the support strip structure in an embodiment of this application; Figure 5 This is a schematic diagram of the slider structure in an embodiment of this application; Figure 6 This is a schematic diagram of the first buffer mechanism structure in an embodiment of this application; Figure 7 This is a schematic diagram of the second buffer mechanism structure in an embodiment of this application; Figure 8 This is a schematic diagram of the heat dissipation component structure in an embodiment of this application; Figure 9 This is a schematic diagram of the third slide bar structure in an embodiment of this application; Figure 10 This is a schematic diagram of the noise reduction mechanism structure in the embodiments of this application; Figure 11 This is a schematic diagram of the positioning mechanism structure in the embodiments of this application; Figure 12 This is a cross-sectional schematic diagram of the fixing frame structure in the embodiment of this application.

[0019] In the diagram: 1. Outer casing; 2. Side shell; 3. Insertion hole; 4. Plug; 5. Anti-fall-off component; 51. Protective plate; 52. First connecting seat; 53. Second connecting seat; 54. Limiting rod; 55. Support bar; 56. First buffer mechanism; 561. First buffer frame; 562. Slider; 563. Storage hole; 564. First sliding rod; 565. First spring; 566. First fixing block; 567. First button; 568. First horn; 57. Second buffer mechanism; 571. Second buffer frame; 572. Fixing rod; 573. Baffle; 574. Second spring; 575. Slide seat; 576. Connecting bar; 577. Buffer plate; 578. Push rod; 6. Heat dissipation component; 61. Connecting frame; 62. Noise reduction mechanism; 621, moving block; 622, second slide bar; 623, third spring; 624, second fixing block; 63, positioning mechanism; 631, positioning frame; 632, threaded rod; 633, adjusting block; 634, positioning groove; 635, fixing frame; 636, elastic rod; 637, positioning wheel; 638, fixing ring; 639, second button; 6310, fourth spring; 6311, second horn; 64, first motor; 65, moving mechanism; 651, moving frame; 652, slide groove; 653, second motor; 654, cooling fan; 655, drive board; 656, drive groove; 66, gear; 67, third slide bar; 7, processor component; 8, power supply device; 9, shielding plate. Detailed Implementation

[0020] To address the issue of cables being dragged and causing connectors to detach from the connector base, this invention utilizes an anti-detachment component that provides two buffering effects when the connector is dragged. It also issues an alarm when the connector is unplannedly pulled out, allowing users to stop the dragging and perform maintenance promptly. Regarding the issue of fixed cooling fans causing excessive heat concentration in certain areas of the host computer, preventing timely heat dissipation, this invention uses a heat dissipation component that moves the cooling fan across multiple areas, effectively guiding airflow inside and outside the chassis and improving heat dissipation efficiency.

[0021] To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods.

[0022] Please see Figure 1 and Figure 2As shown, an expandable computer host includes an outer casing 1, a processor component 7, and a power supply component 8. A side shell 2 is slidably connected to the inner cavity of the outer casing 1. Insertion holes 3 are provided on both sides of the side shell 2. A plug 4 is threadedly connected to the inner cavity of the outer casing 1. An anti-detachment component 5 is provided on the inner wall of the outer casing 1. A heat dissipation component 6 is provided in the inner cavity of the outer casing 1. Baffles 9 are provided on the inner walls of both the outer casing 1 and the side shell 2. The processor component 7 and the power supply component 8 are fixedly connected to the inner wall of the outer casing 1. Heat dissipation holes are provided on the outer surfaces of both the outer casing 1 and the side shell 2. The baffles 9 are located on the sides of the heat dissipation holes. The heat dissipation component 6 is located on... On the side of the processor component 7, the anti-detachment component 5 is located between the power supply device 8 and the inner wall of the outer casing 1. The shield 9 is used to shield the heat dissipation holes and reduce the probability of dust entering the interior of the outer casing 1. By sliding the side shell 2 in the inner cavity of the outer casing 1, the outer casing 1 is expanded as a whole, increasing the internal space of the outer casing 1, so that there is room to accommodate the continuous upgrading of the host core hardware. When the plug 4 is inserted into the socket 3, the side shell 2 is fixed in the inner cavity of the outer casing 1. The anti-detachment component 5 is used to prevent the connector from falling off during insertion. The heat dissipation component 6 is used to dissipate heat from the processor component 7 and the interior of the outer casing 1.

[0023] Please see Figure 2 , Figure 3 and Figure 4As shown, the anti-fall-off component 5 includes a protective plate 51. A first connecting seat 52 is fixedly installed in the inner cavity of the protective plate 51, and a second connecting seat 53 is fixedly installed in the inner cavity of the protective plate 51. A limit rod 54 is fixedly installed on the outer surface of the protective plate 51. A support bar 55 is fixedly installed at the end of the protective plate 51 away from the limit rod 54. A first buffer mechanism 56 is fixedly connected to the inner wall of the outer casing 1. A second buffer mechanism 57 is provided at both ends of the protective plate 51. There are two of each of the first buffer mechanism 56 and the second buffer mechanism 57. The first connecting seat 52, the second connecting seat 53, and the limit rod 54 are all slidably connected to the outer casing 1. The support bar 55 is in close contact with the power supply device 8. Cables are provided at the ends of the first connecting seat 52 and the second connecting seat 53. The cables are electrically connected to the power supply device 8, and the cables are bent between the protective plate 51 and the power supply device 8. The protective plate 51 and the inner wall of the outer casing 1 have... The spacing is achieved through the first buffer mechanism 56 and the second buffer mechanism 57 to flexibly connect the protective plate 51 and the outer casing 1. When the connector is inserted into the first connecting seat 52 and the second connecting seat 53, it can provide a certain buffering effect. When the connector is dragged, the first connecting seat 52 and the second connecting seat 53 will be partially exposed to prevent the connector from falling off. When the force is large, an alarm will be triggered to remind the user to check. When the connector is pulled out unplanned, the limit rod 54 can be pressed to prevent the protective plate 51 from moving as a whole. When the connector is pulled out from the inner cavity of the first connecting seat 52 or the second connecting seat 53, the protective plate 51 will not move. That is, the first buffer mechanism 56 and the second buffer mechanism 57 will not provide buffering. The support bar 55 contacts the power device 8 to prevent the protective plate 51 from moving towards the power device 8 when the connector is inserted, thus avoiding the phenomenon that the connector is not inserted properly.

[0024] Please see Figure 2 , Figure 5 , Figure 6 and Figure 7As shown, the first buffer mechanism 56 includes a first buffer frame 561. A slider 562 is slidably connected to the inner cavity of the first buffer frame 561. A receiving hole 563 is provided on the outer surface of the slider 562. A first sliding rod 564 is fixedly installed on the outer surface of the receiving hole 563. A first spring 565 is sleeved on the outer surface of the first sliding rod 564. First fixing blocks 566 are fixedly installed on the outer surfaces of both ends of the first buffer frame 561. The first sliding rod 564 and the first fixing blocks 566 are slidably connected. A first button 567 is provided on the outer surface of the first fixing block 566. A first horn 568 is fixedly installed on the side of the first fixing block 566 away from the first button 567. The first button 567 and the first horn 568 are electrically connected, and pressing the first button 567 controls the first... The horn 568 sounds an alarm. The first spring 565 is located between the slider 562 and the first fixed block 566. The first buffer frame 561 is fixedly connected to the inner wall of the outer casing 1. One end of the slider 562 is an inclined surface, and the storage hole 563 is located at the bottom end of the inclined surface. The second buffer mechanism 57 includes a second buffer frame 571. A fixed rod 572 is fixedly installed on the inner wall of the second buffer frame 571. A baffle 573 is fixedly installed on the outer surface of the second buffer frame 571. A second spring 574 is sleeved in the middle of the fixed rod 572. A slide block 575 is slidably connected to the outer surface of the fixed rod 572. A connecting strip 576 is rotatably connected to the inner cavity of the slide block 575. A buffer plate 577 is rotatably connected to the end of the connecting strip 576 away from the slide block 575. The two ends of the second buffer frame 571... A push rod 578 is fixedly installed. There are two slides 575 located at both ends of the second spring 574. The slides 575 and the baffle 573 are in contact. The second buffer frame 571 and the protective plate 51 are fixedly connected. The buffer plate 577 and the slider 562 have a gap. The top of the inclined surface of the push rod 578 and the slider 562 are in contact. When the push rod 578 is pressed down, it is inserted into the receiving hole 563. At this time, the slider 562 squeezes the first button 567. When the connector is unplanned to be pulled out, the connector is inserted into the cavity of the first connecting seat 52 or the second connecting seat 53. At this time, the connector drives the first connecting seat 52 or the second connecting seat 53 to slide in the cavity of the outer box 1. At this time, the protective plate 51 moves towards the outer box 1. The inner wall slides, and the movement of the protective plate 51 drives the second buffer frame 571 to move towards the first buffer frame 561. As the second buffer frame 571 moves, the push rod 578 presses against the inclined surface of the slider 562. At this time, the slider 562 presses against the first spring 565, so that the elastic force of the first spring 565 makes the protective plate 51 and the outer box 1 flexibly connected, achieving a buffering effect. At the same time, as the second buffer frame 571 continues to move, the first sliding rod 564 slides in the inner cavity of the first fixed block 566. When the push rod 578 and the storage hole 563 are engaged, the slider 562 presses against the first button 567, causing the first horn 568 to sound an alarm, reminding the user that the protective plate 51 is moving outward, that is, there is a dragging phenomenon. As the dragging continues...After the push rod 578 is inserted into the inner cavity of the storage hole 563, the flat surfaces of the buffer plate 577 and the slider 562 come into contact. At this time, the distance between the buffer plate 577 and the second buffer frame 571 decreases, causing the connecting strip 576 to rotate in the inner cavity of the slide block 575. This causes the slide block 575 to slide on the fixed rod 572 and compress the second spring 574. After the alarm is triggered, the protective plate 51 can also move a certain distance to achieve a secondary buffering effect. This provides the user with a certain reaction time and prevents the connector from falling off. Therefore, the anti-fall-off component 5 can provide a double buffering effect when the connector is dragged, achieving the effect of buffering first, then alarming, and then buffering again. This provides the user with time to troubleshoot the problem and reminds the user that the connector is being dragged. The user should stop dragging in time to prevent computer malfunction and affect the continuous use of the computer.

[0025] Please see Figure 8 and Figure 9 As shown, the heat dissipation assembly 6 includes a connecting frame 61, a noise reduction mechanism 62 at the bottom of the connecting frame 61, a positioning mechanism 63 on the outer surface of the noise reduction mechanism 62, a first motor 64 in the middle of the connecting frame 61, a moving mechanism 65 in the inner cavity of the connecting frame 61, a gear 66 in the middle of the connecting frame 61, and a third slide rod 67 slidably connected to the inner cavity of the moving mechanism 65. The noise reduction mechanism 62 is used to reduce noise during the heat dissipation process, and the positioning mechanism 63 is used to limit the connecting frame 61 when it shakes significantly, preventing the connecting frame 61 from generating noise. The operation of the first motor 64 drives the gear 66 to rotate, and the rotation of the gear 66 drives the moving mechanism 65 to move, thereby improving the overall heat dissipation effect of the host.

[0026] Please see Figure 8 and Figure 9As shown, the moving mechanism 65 includes a moving frame 651. Slide grooves 652 are provided at both ends of the moving frame 651. A second motor 653 is slidably connected to the inner cavity of the slide grooves 652. A cooling fan 654 is provided on the outer surface of the second motor 653. The output end of the second motor 653 is sleeved with the cooling fan 654. Drive plates 655 are fixedly installed at both ends of the connecting frame 61. Drive grooves 656 are provided on the outer surface of the drive plates 655. The drive grooves 656 are arranged in a "V" shape to facilitate the vertical displacement of the cooling fan 654. A third slide rod 67 is fixedly connected to the side of the second motor 653 away from the cooling fan 654. The third slide rod 67 is slidably connected to the drive groove 656. Half of the gear 66 is smooth, thus the gear 66 is used to drive the moving frame 651 to reciprocate within the inner cavity of the connecting frame 61. A rack is provided on the inner wall of the moving frame 651. The gear 66 meshes with the rack on the moving frame 651. When the upper end of the movable frame 651 begins to engage, the lower end of the movable frame 651 disengages and disengages. The output end of the first motor 64 is sleeved with the gear 66, and the third slide rod 67 is slidably connected to the slide groove 652. When the first motor 64 works, it drives the gear 66 to rotate. The rotation of the gear 66 drives the movable frame 651 to slide in the inner cavity of the connecting frame 61. The movement of the movable frame 651 drives the second motor 653 to move. The movement of the second motor 653 drives the third slide rod 67 to slide in the inner cavity of the drive groove 656 on the drive plate 655. At this time, the cooling fan 654 moves left and right while moving up and down along the drive groove 656. In this way, the cooling fan 654 can move in multiple directions, increasing the heat dissipation range. That is, by adjusting the position of the cooling fan 654, the airflow inside and outside the chassis can be guided more effectively, which can improve the heat dissipation efficiency and make the cooling fan 654 cover a wider area, thereby improving the overall heat dissipation effect of the chassis.

[0027] Please see Figure 9 , Figure 10 , Figure 11 and Figure 12As shown, the noise reduction mechanism 62 includes a movable block 621. Second slide rods 622 are fixedly connected to both ends of the movable block 621. A third spring 623 is sleeved on the outer surface of the second slide rod 622. A second fixed block 624 is sleeved on the outer surface of the second slide rod 622. The second fixed block 624 is fixedly connected to the bottom wall of the outer casing 1. The movable block 621 is slidably connected to the bottom wall of the outer casing 1. The third spring 623 is located between the movable block 621 and the second fixed block 624. The upper surface of the movable block 621 is fixedly connected to the lower surface of the connecting frame 61. The positioning mechanism 63 includes a positioning frame 631. A threaded rod 632 is rotatably connected to the inner cavity of the positioning frame 631. An adjusting block 633 is slidably connected to the inner cavity of the positioning frame 631. There are two adjusting blocks 633, and the two adjusting blocks... The adjusting block 633 is slidably connected with a staggered arrangement. A positioning groove 634 is provided on the outer surface of the adjusting block 633. A fixing frame 635 is fixedly connected to the bottom wall of the outer casing 1. A spring rod 636 is slidably connected to the inner cavity of the fixing frame 635. A positioning wheel 637 is rotatably connected to one end of the spring rod 636. A fixing ring 638 is fixedly connected to the outer surface of the spring rod 636. A second button 639 is provided on the outer surface of the fixing frame 635. A fourth spring 6310 is sleeved on the outer surface of the spring rod 636. A second horn 6311 is provided on the outer surface of the fixing frame 635. The adjusting block 633 and the threaded rod 632 are connected by a thread. Two adjusting blocks 633 on the threaded rod 632 are symmetrically distributed about the threaded rod 632. The threads at both ends of the threaded rod 632 are in opposite directions and can be adjusted by rotation. The moving threaded rod 632 drives the adjusting block 633 to move within the cavity of the positioning frame 631, causing a change in the distance between the two misaligned adjusting blocks 633. The misalignment of the adjusting blocks 633 serves to abut against the positioning wheel 637, ensuring stability when the positioning wheel 637 is not engaged with the positioning groove 634. This change in the distance between the positioning grooves 634 allows for the setting of an alarm distance. When the connecting frame 61 vibrates to the set distance, the positioning wheel 637 engages with the positioning groove 634, triggering an alarm. The positioning frame 631 and the moving block 621 are fixedly connected. The positioning wheel 637 and the outer surface of the adjusting block 633 are in close contact, with the positioning wheel 637 located in the middle of the two adjusting blocks 633. The second button 639 and the second horn 6311 are electrically connected, and the second button 639 is pressed... The pressure control activates the second horn 6311 to sound an alarm. The fourth spring 6310 is located between the inner wall of the fixed ring 638 and the fixed bracket 635. The fixed ring 638 and the fixed bracket 635 are slidably connected. The fixed ring 638 and the second button 639 are at the same height, and there is a gap between the fixed ring 638 and the second button 639. As the cooling fan 654 rotates, the connecting bracket 61 shakes. The shaking of the connecting bracket 61 causes the moving block 621 to move. At this time, the moving block 621 compresses the third spring 623. The second fixed block 624 is fixed to the outer casing 1. Under the elastic force of the third spring 623, the moving block 621 always tends to be between the two second fixed blocks 624, thereby reducing the impact of the cooling fan 654 rotating on the moving block 621.That is, the entire connecting frame 61 can be flexibly connected to the outer casing 1. When the cooling fan 654 rotates and vibrates, the elasticity of the third spring 623 will deform, thereby reducing the transmission of vibration. When the moving block 621 shakes significantly, the movement of the moving block 621 drives the positioning frame 631 to move. The movement of the positioning frame 631 drives the adjusting block 633 to move. When the adjusting block 633 moves to a certain position, under the elastic force of the fourth spring 6310, the elastic rod 636 slides in the inner cavity of the fixed frame 635, causing the positioning wheel 637 to engage with the positioning groove 634. At the same time, the movement of the elastic rod 636 drives the fixed ring 638 to move. The movement of the fixed ring 638 causes the fixed ring 638 to press the second button 639. The pressing of the second button 639 causes the second horn 6311 to sound an alarm. The alarm sound of the second horn 6311 and the first horn... The alarm sound of the 568 is differentiated for easy maintenance of corresponding problems. Simultaneously with the alarm, the positioning wheel 637 positions the adjusting block 633, limiting the positioning frame 631 and thus fixing the connecting frame 61. Initially, a noise reduction mechanism 62 flexibly limits the connecting frame 61, reducing the impact of the first motor 64 and the second motor 653 on the connecting frame 61 during operation. During prolonged use, the noise reduction mechanism 62 reduces noise when the cooling fan 654 rotates, reducing wear between devices and thus reducing noise. As the cooling fan 654 continues to operate, the vibration of the noise reduction mechanism 62 increases. When it reaches a certain level, the positioning wheel 637 limits the adjusting block 633, preventing the connecting frame 61 from shaking. This also triggers an alarm for user maintenance, extending the lifespan of the main unit.

[0028] In summary, the shield 9 is used to block the heat dissipation holes, reducing the probability of dust entering the outer casing 1. By sliding the side shell 2 inside the outer casing 1, the outer casing 1 is expanded as a whole, increasing the internal space of the outer casing 1 to accommodate continuous upgrades to the host core hardware. When the plug 4 is inserted into the socket 3, it fixes the side shell 2 in the inner cavity of the outer casing 1. The anti-detachment component 5 is used to prevent the connector from falling off during insertion. The heat dissipation component 6 is used to dissipate heat from the processor component 7 and the interior of the outer casing 1. The first buffer mechanism 56 and the second buffer mechanism 57 flexibly connect the protective plate 51 and the outer casing 1. At this time, when the connector is inserted into the first connector 52 and the second connector 53, it can have a certain buffering effect. When the connector is dragged, the first connector 52 and the second connector 53 will be partially exposed to prevent the connector from falling off. An alarm will be triggered when the force is too strong, reminding the user to check. When the connector is pulled out unplanned, the limit rod 54 can be pressed to prevent the protective plate 51 from moving. At this time, when the connector is pulled out from the inner cavity of the first connector 52 or the second connector 53, the protective plate 51 will not move. That is, the first buffer mechanism 56 and the second buffer mechanism 57 will not provide buffering. The support bar 55 contacts the power device 8 to prevent the protective plate 51 from moving towards the power device 8 when the connector is inserted, thus avoiding the phenomenon that the connector is not inserted properly. The noise reduction mechanism 62 is used to reduce noise during heat dissipation. The positioning mechanism 63 is used to limit the connector 61 when it shakes a lot, preventing the connector 61 from generating noise. The operation of the first motor 64 drives the gear 66 to rotate. The rotation of the gear 66 drives the moving mechanism 65 to move, thereby improving the overall heat dissipation effect of the host.

[0029] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.

[0030] The above description is merely a preferred embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present application, based on the technical solution and concept of the present application, should be covered within the scope of protection of the present application.

Claims

1. A scalable computer host, comprising an outer casing (1), a processor component (7), and a power supply device (8), characterized in that, The inner cavity of the outer box (1) is slidably connected to a side shell (2), and the side shell (2) has insertion holes (3) on both sides. The inner cavity of the outer box (1) is connected to a plug (4) by a threaded rotation. The inner wall of the outer box (1) is provided with an anti-drop component (5). The inner cavity of the outer box (1) is provided with a heat dissipation component (6). The inner walls of both the outer box (1) and the side shell (2) are provided with baffles (9). The heat dissipation assembly (6) includes a connecting frame (61), a noise reduction mechanism (62) is provided at the bottom of the connecting frame (61), a positioning mechanism (63) is provided on the outer surface of the noise reduction mechanism (62), a first motor (64) is provided in the middle part of the connecting frame (61), a moving mechanism (65) is provided in the inner cavity of the connecting frame (61), a gear (66) is provided in the middle part of the connecting frame (61), and a third slide rod (67) is slidably connected to the inner cavity of the moving mechanism (65).

2. The scalable computer host as described in claim 1, characterized in that, The processor component (7) and the power supply device (8) are both fixedly connected to the inner wall of the outer casing (1). The outer surface of the outer casing (1) and the side shell (2) are provided with heat dissipation holes. The shielding plate (9) is located on the side of the heat dissipation hole. The heat dissipation component (6) is located on the side of the processor component (7). The anti-falling component (5) is located between the power supply device (8) and the inner wall of the outer casing (1).

3. The scalable computer host as described in claim 1, characterized in that, The noise reduction mechanism (62) includes a movable block (621), with a second slide rod (622) fixedly connected to both ends of the movable block (621). A third spring (623) is sleeved on the outer surface of the second slide rod (622), and a second fixed block (624) is sleeved on the outer surface of the second slide rod (622). The second fixed block (624) is fixedly connected to the bottom wall of the outer box (1), and the movable block (621) is slidably connected to the bottom wall of the outer box (1). The third spring (623) is located between the movable block (621) and the second fixed block (624). The upper surface of the movable block (621) is fixedly connected to the lower surface of the connecting frame (61).

4. A scalable computer host as described in claim 3, characterized in that, The positioning mechanism (63) includes a positioning frame (631), a threaded rod (632) is rotatably connected to the inner cavity of the positioning frame (631), an adjusting block (633) is slidably connected to the inner cavity of the positioning frame (631), there are two adjusting blocks (633), and the two adjusting blocks (633) are slidably connected in a staggered manner, a positioning groove (634) is provided on the outer surface of the adjusting block (633), a fixing frame (635) is fixedly connected to the bottom wall of the outer box (1), a spring rod (636) is slidably connected to the inner cavity of the fixing frame (635), a positioning wheel (637) is rotatably connected to one end of the spring rod (636), a fixing ring (638) is fixedly connected to the outer surface of the spring rod (636), a second button (639) is provided on the outer surface of the fixing frame (635), a fourth spring (6310) is sleeved on the outer surface of the spring rod (636), and a second horn (6311) is provided on the outer surface of the fixing frame (635).

5. A scalable computer host as described in claim 4, characterized in that, The adjusting block (633) and the threaded rod (632) are connected by threads. The two adjusting blocks (633) on the threaded rod (632) are symmetrically distributed about the threaded rod (632). The threads at both ends of the threaded rod (632) are opposite in direction. The positioning frame (631) and the moving block (621) are fixedly connected. The positioning wheel (637) is in close contact with the outer surface of the adjusting block (633), and the positioning wheel (637) is located in the middle of the two adjusting blocks (633). The second pressing... The button (639) and the second horn (6311) are electrically connected, and pressing the second button (639) controls the second horn (6311) to sound an alarm. The fourth spring (6310) is located between the inner wall of the fixing ring (638) and the fixing bracket (635). The fixing ring (638) and the fixing bracket (635) are slidably connected. The fixing ring (638) and the second button (639) are at the same height, and there is a gap between the fixing ring (638) and the second button (639).

6. A scalable computer host as described in claim 1, characterized in that, The moving mechanism (65) includes a moving frame (651), with sliding grooves (652) at both ends of the moving frame (651). A second motor (653) is slidably connected to the inner cavity of the sliding groove (652). A cooling fan (654) is provided on the outer surface of the second motor (653). The output end of the second motor (653) is sleeved with the cooling fan (654). A drive plate (655) is fixedly installed at both ends of the connecting frame (61), and a drive groove (656) is provided on the outer surface of the drive plate (655). The drive slot (656) is arranged in a "V" shape. The second motor (653) is fixedly connected to the side away from the cooling fan (654) with a third slide rod (67). The third slide rod (67) and the drive slot (656) are slidably connected. The gear (66) is smooth on one side. The inner wall of the moving frame (651) is provided with a rack. The gear (66) and the rack on the moving frame (651) mesh. The output end of the first motor (64) is sleeved with the gear (66). The third slide rod (67) and the slide groove (652) are slidably connected.

7. A scalable computer host as described in claim 1, characterized in that, The anti-fall-off component (5) includes a protective plate (51), a first connecting seat (52) is fixedly installed in the inner cavity of the protective plate (51), a second connecting seat (53) is fixedly installed in the inner cavity of the protective plate (51), a limit rod (54) is fixedly installed on the outer surface of the protective plate (51), a support strip (55) is fixedly installed at one end of the protective plate (51) away from the limit rod (54), a first buffer mechanism (56) is fixedly connected to the inner wall of the outer box (1), and a second buffer mechanism (57) is provided at both ends of the protective plate (51). There are two of the first buffer mechanism (56) and the second buffer mechanism (57). The first connecting seat (52), the second connecting seat (53) and the limiting rod (54) are all slidably connected to the outer box (1). The support bar (55) is in close contact with the power device (8). The ends of the first connecting seat (52) and the second connecting seat (53) are provided with cables. The cables are electrically connected to the power device (8). The cables are bent between the protective plate (51) and the power device (8). There is a gap between the protective plate (51) and the inner wall of the outer box (1).

8. A scalable computer host as described in claim 7, characterized in that, The first buffer mechanism (56) includes a first buffer frame (561), a slider (562) is slidably connected to the inner cavity of the first buffer frame (561), a receiving hole (563) is provided on the outer surface of the slider (562), a first sliding rod (564) is fixedly installed on the outer surface of the receiving hole (563), a first spring (565) is sleeved on the outer surface of the first sliding rod (564), and first fixing blocks (566) are fixedly installed on the outer surfaces of both ends of the first buffer frame (561). The first sliding rod (564) and the first fixing block (566) are slidably connected. The outer surface of the first button (567) is provided with a first button (567). The first horn (568) is fixedly installed on the side of the first fixing block (566) away from the first button (567). The first button (567) and the first horn (568) are electrically connected, and the pressing of the first button (567) controls the first horn (568) to sound an alarm. The first spring (565) is located between the slider (562) and the first fixing block (566). The first buffer frame (561) is fixedly connected to the inner wall of the outer box (1). One end of the slider (562) is an inclined surface, and the storage hole (563) is located at the bottom end of the inclined surface.

9. A scalable computer host as described in claim 8, characterized in that, The second buffer mechanism (57) includes a second buffer frame (571), a fixed rod (572) is fixedly installed on the inner wall of the second buffer frame (571), a baffle (573) is fixedly installed on the outer surface of the second buffer frame (571), a second spring (574) is sleeved in the middle part of the fixed rod (572), a slide block (575) is slidably connected to the outer surface of the fixed rod (572), a connecting strip (576) is rotatably connected to the inner cavity of the slide block (575), a buffer plate (577) is rotatably connected to the end of the connecting strip (576) away from the slide block (575), and push rods (578) are fixedly installed at both ends of the second buffer frame (571).

10. A scalable computer host as described in claim 9, characterized in that, There are two slide blocks (575) located at both ends of the second spring (574). The slide blocks (575) and the baffle (573) are in contact. The second buffer frame (571) and the protective plate (51) are fixedly connected. The buffer plate (577) and the slider (562) have a gap. The push rod (578) and the top of the inclined surface of the slider (562) are in contact. When the push rod (578) is pressed down, the push rod (578) and the storage hole (563) are inserted. At this time, the slider (562) squeezes the first button (567).