Edge diagnostic host embedded case with good heat dissipation effect

By designing a detachable longitudinal and transverse beam frame structure, combined with a fan to introduce airflow, the structural instability and poor heat dissipation of the edge computing host chassis were solved, achieving stable motherboard installation and efficient heat dissipation.

CN224536416UActive Publication Date: 2026-07-21BEIJING JINGNENG CLEAN ENERGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING JINGNENG CLEAN ENERGY CO LTD
Filing Date
2025-07-08
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing edge computing host chassis structures are unstable, have poor heat dissipation, and cannot be adjusted and adapted to different edge computing motherboards.

Method used

An edge diagnostic host embedded chassis including a front cover, a rear cover, and a housing is designed. The support frame is formed by four rectangular array longitudinal beams. Combined with detachable crossbeams and slider locking components, it enables the motherboard to be suspended and the fan to introduce airflow for heat dissipation. The motherboard position can also be adjusted to accommodate different sizes.

Benefits of technology

It improves the stability and heat dissipation of the chassis, and can be adjusted according to the motherboard size to ensure stable installation and efficient heat dissipation of the motherboard.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224536416U_ABST
    Figure CN224536416U_ABST
Patent Text Reader

Abstract

The utility model discloses an edge diagnosis host computer embedded type machine case with good heat dissipation effect, including front cover and back cover and setting between front cover and back cover's warehouse body, the warehouse body forms the cavity of half surrounding between front cover and back cover, four longitudinal beams have in the half surrounding cavity of warehouse body formation rectangular array, two ends of longitudinal beam are detachable connection with front cover and back cover respectively, the utility model discloses four rectangular array's longitudinal beam connects front cover and back cover, and the shape support of half surrounding warehouse body is carried out, and the inner chamber of warehouse body is closed to the warehouse cover, through the edge of warehouse body and the embedded cooperation of cover, and then through the longitudinal beam to the dismounting of warehouse cover is guided, and the dismounting of mainboard and its accessory fittings and warehouse cover is convenient, and through the lower crossbeam connection lower two longitudinal beams, and the reinforcement connection of lower two longitudinal beams is carried out, further improve the transverse stability of warehouse body bottom, and the mainboard is installed in the air by lower crossbeam simultaneously, and it is favorable to the heat dissipation of mainboard.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of chassis technology, specifically to an edge diagnostic host embedded chassis with good heat dissipation. Background Technology

[0002] Edge computing is a distributed architecture solution that enables computation and processing at the edge where data is generated. It offloads data processing, computing, and storage capabilities to devices or local servers closer to the data source, rather than relying entirely on remote cloud data centers. This model reduces latency caused by data transmission, improves system response speed, reduces cloud load, and enhances system real-time performance and reliability. It effectively utilizes technologies such as data mining, big data analytics, artificial intelligence, containerization, distributed computing, and cluster deployment to provide centralized, intelligent, and remote device operation and management, addressing the problems of high latency, high bandwidth consumption, and insufficient privacy and security that have gradually emerged in traditional centralized computing models.

[0003] In existing technologies, the chassis of edge computing hosts are mostly structurally unstable, lack stable support, have poor heat dissipation, and are often fixed in place, making them unadjustable and adaptable to different edge computing motherboards. Therefore, this paper proposes an embedded chassis for an edge diagnostic host with good heat dissipation. Utility Model Content

[0004] The purpose of this utility model is to provide an edge diagnostic host embedded chassis with good heat dissipation in order to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model specifically adopts the following technical solution: An edge diagnostic host embedded chassis with good heat dissipation includes a front cover and a rear cover, and a compartment disposed between the front cover and the rear cover. The compartment forms a semi-enclosed cavity between the front cover and the rear cover. Four longitudinal beams are arranged in a rectangular array in the semi-enclosed cavity formed by the compartment. The two ends of the longitudinal beams are detachably connected to the front cover and the rear cover, respectively. Two parallel lower crossbeams are detachably connected between the two lower longitudinal beams. The lower crossbeams are used to install the motherboard of the edge diagnostic host. A compartment cover is slidably fitted at the top of the compartment. One end of the compartment cover extends into the front cover, and the other end of the compartment cover is detachably connected to the rear cover.

[0006] Preferably, the end face of the front cover opposite to the rear cover has two parallel concave air inlets, the end face of the rear cover has air outlets evenly distributed, and the inner end face of the front cover is detachably connected to a fan corresponding to the air inlets.

[0007] Preferably, both the front cover and the rear cover have detachable connecting strips on their end faces near the compartment body. The side walls of the connecting strips are detachably connected to the ends of the compartment body, and the two ends of the connecting strips are detachably connected to the ends of the upper and lower longitudinal beams, respectively.

[0008] Preferably, two parallel upper crossbeams are detachably connected between the two upper longitudinal beams, with the two upper crossbeams respectively close to the front cover and the rear cover.

[0009] Preferably, each of the four longitudinal beams has a longitudinal guide groove on its end face near the lower crossbeam and the upper crossbeam. A first slider that slides in cooperation with the longitudinal guide groove is housed in the inner cavity of the longitudinal beam. A first locking member is threaded through both ends of the lower crossbeam and the upper crossbeam. The first locking member is threadedly connected to the first slider.

[0010] Preferably, the top surfaces of both lower crossbeams are provided with transverse guide grooves, and a second slider is accommodated in the inner cavity of the lower crossbeam. The second slider is slidably engaged with the transverse guide grooves, and the second slider is threadedly connected to a second locking member. The second locking member is used to connect to the motherboard of the edge diagnostic host.

[0011] The beneficial effects of this utility model are as follows: 1. This utility model uses four rectangular arrayed longitudinal beams to connect the front and rear covers, forming a frame that supports the compartment. This provides conformal support to the semi-enclosed compartment, and the compartment cover seals the inner cavity. The compartment and the cover fit together at the edges, and the longitudinal beams guide the disassembly and assembly of the cover, facilitating the removal and assembly of the motherboard, its accessories, and the cover. A lower crossbeam connects to the two lower longitudinal beams, reinforcing them and further improving the lateral stability of the compartment bottom. The lower crossbeam also suspends the motherboard, making the structure more stable and improving heat dissipation. A fan draws external air into the compartment through the air inlet and exhausts it through the air outlet. The airflow within the compartment exchanges heat with the suspended motherboard, further enhancing the heat dissipation effect.

[0012] 2. This utility model connects the two upper longitudinal beams through the upper crossbeam, thereby reinforcing the connection of the two upper longitudinal beams and further improving the lateral stability of the top of the silo. The two longitudinal beams on the same side are connected by two connecting strips on one side of the front cover and the rear cover, forming a rectangular frame between the front cover and the rear cover, which effectively improves the stability of the two longitudinal beams on the same side and further improves the longitudinal stability of both sides of the silo.

[0013] 3. This utility model uses a first locking member and a first slider to slide the lower and upper crossbeams to the two lower and two upper longitudinal beams respectively. Loosening the first locking member releases the locking state of the lower and upper crossbeams, allowing the spacing between the two lower crossbeams to be adjusted according to the longitudinal dimensions of the motherboard. This also makes it easier to adjust the position of the motherboard along the longitudinal beams. Simultaneously, the motherboard is positioned by the second locking member, and the motherboard of the edge diagnostic host is fixed on the two lower crossbeams by the sliding engagement of the second slider with the lower crossbeams. This allows the lateral position of the second slider and the second locking member to be adjusted according to the motherboard size, making it easier to adjust the lateral installation position according to the lateral dimensions of the motherboard. Attached Figure Description

[0014] Figure 1 This is a three-dimensional schematic diagram of the present invention; Figure 2 This is an exploded view of the present invention; Figure 3 This is a half-sectional schematic diagram of the present invention; Figure 4 This is a three-dimensional schematic diagram of the cooperation between the longitudinal beam, lower crossbeam, and upper crossbeam in this utility model; Figure 5 This is a three-dimensional schematic diagram of the front cover in this utility model; Figure 6 This is a three-dimensional schematic diagram of the back cover in this utility model.

[0015] Reference numerals: 1. Front cover; 2. Air inlet; 3. Handle; 4. Rear cover; 5. Air outlet; 6. Chamber body; 7. Chamber cover; 8. Fan; 9. Grille cover; 10. Longitudinal beam; 11. Connecting strip; 12. Longitudinal guide groove; 13. Lower crossbeam; 14. Upper crossbeam; 15. First slider; 16. First locking element; 17. Transverse guide groove; 18. Second slider; 19. Second locking element; 20. Filter screen. Detailed Implementation

[0016] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings.

[0017] Please see Figure 1 - Figure 6This utility model provides an embedded edge diagnostic host chassis with good heat dissipation, including a front cover 1, a rear cover 4, and a compartment 6 disposed between the front cover 1 and the rear cover 4. The compartment 6 forms a semi-enclosed cavity between the front cover 1 and the rear cover 4. Specifically, the front cover 1 forms a concave cavity facing the rear cover 4. The cross-section of the compartment 6 is U-shaped. The front end of the compartment 6 extends into the concave cavity of the front cover 1 and fits against the inner wall of the concave cavity of the front cover 1. The rear end of the compartment 6 covers the outer wall of the rear cover 4. The two ends of the compartment 6 are connected to the front cover 1 and the rear cover 4 by screws. Four longitudinal beams 10 are arranged in a rectangular array in the semi-enclosed cavity formed by the compartment 6. The two ends of the longitudinal beams 10 are detachably connected to the front cover 1 and the rear cover 4, respectively. Specifically, the four longitudinal beams 10 are arranged in a rectangular array to form a frame structure supporting the compartment 6. Two parallel lower crossbeams 13 are detachably connected between the two lower longitudinal beams 10. The lower crossbeams 13 are used to install the motherboard of the edge diagnostic host. The top of the compartment 6 is slidably fitted with a cover 7. Specifically, the two sides of the compartment body 6 and the cover 7 are fitted together and conform to the shape of the upper longitudinal beam 10. One end of the cover 7 extends into the front cover 1, and the other end of the cover 7 is detachably connected to the rear cover 4. Specifically, the end of the cover 7 facing away from the front cover 1 is connected to the rear cover 4 by screws. The front cover 1 and the rear cover 4 are connected by four rectangular array longitudinal beams 10, forming a frame that supports the compartment body 6 and provides conformal support for the semi-enclosed compartment body 6. The enclosure 6 is supported by a cover 7 that seals the inner cavity of the enclosure 6. The enclosure 6 and the cover 7 fit together with each other, and the longitudinal beams 10 guide the installation and removal of the cover 7, facilitating the installation and removal of the motherboard and its accessories and the cover 7. The lower crossbeam 13 connects the two lower longitudinal beams 10, reinforcing the connection and further improving the lateral stability of the bottom of the enclosure 6. At the same time, the lower crossbeam 13 suspends the motherboard, making the structure more stable and better for heat dissipation.

[0018] In this embodiment, the front cover 1 has two parallel concave air inlets 2 on the side opposite to the rear cover 4, and the rear cover 4 has air outlets 5 evenly distributed on its end face. The inner end face of the front cover 1 is detachably connected to a fan 8 corresponding to the air inlet 2. The concave air inlet 2 positions and installs the fan 8. Through the cooperation of the air inlet 2 and the air outlet 5, the fan 8 draws external air into the chamber 6 through the air inlet 2 and discharges it through the air outlet 5. The air flowing in the chamber 6 exchanges heat with the suspended motherboard, further improving the heat dissipation effect.

[0019] In this embodiment, a grille cover 9 is recessed into the air inlet 2. The inner cavity of the grille cover 9 is provided with a filter screen 20. Specifically, the end face of the grille cover 9 is evenly distributed with grid holes. The filter screen 20 is dustproof cotton, which is laid in the inner cavity of the grille cover 9. The grille cover 9 can protect the air inlet 2, and the filter screen 20 can filter and remove dust from the air entering the chamber 6.

[0020] In this embodiment, furthermore, connecting strips 11 are detachably connected to both sides of the end face of the front cover 1 and the rear cover 4 near the compartment 6. The side wall of the connecting strip 11 is detachably connected to the end of the compartment 6. Specifically, the screws that connect the two ends of the compartment 6 to the front cover 1 and the rear cover 4 are simultaneously connected to the connecting strips 11. The two ends of the connecting strip 11 are detachably connected to the ends of the upper and lower longitudinal beams 10, respectively. Specifically, the connecting strip 11 is connected to the front cover 1 and the rear cover 4 by screws. Both ends of the end face of the connecting strip 11 near the longitudinal beam 10 are formed with bosses, and the bosses extend into the port of the longitudinal beam 10 and are connected to the longitudinal beam 10 by screws. Thus, the two longitudinal beams 10 on the same side can be connected by the two connecting strips 11 on the front cover 1 and the rear cover 4 to form a rectangular frame between the front cover 1 and the rear cover 4, which effectively improves the stability of the two longitudinal beams 10 on the same side and further improves the longitudinal stability of both sides of the compartment 6.

[0021] In this embodiment, two parallel upper crossbeams 14 are detachably connected between the two upper longitudinal beams 10. The two upper crossbeams 14 are close to the front cover 1 and the rear cover 4 respectively, so that the two upper longitudinal beams 10 can be connected through the upper crossbeams 14, thereby reinforcing the connection between the two upper longitudinal beams 10 and further improving the lateral stability of the top of the hopper 6.

[0022] In this embodiment, furthermore, each of the four longitudinal beams 10 has a longitudinal guide groove 12 on its end face near the lower crossbeam 13 and the upper crossbeam 14. The inner cavity of the longitudinal beam 10 accommodates a first slider 15 that slides in cooperation with the longitudinal guide groove 12. Specifically, the top of the first slider 15 has a boss that extends into the longitudinal guide groove 12. Both ends of the lower crossbeam 13 and the upper crossbeam 14 are provided with a first locking member 16. The first locking member 16 is threadedly connected to the first slider 15. Specifically, the middle part of the first slider 15 has a through internal threaded hole. The first locking member 16 is an internal hex bolt. The threaded section of the first locking member 16 extends into the inner cavity of the longitudinal beam 10 through the longitudinal guide groove 12 and is threadedly connected to the internal threaded hole of the first slider 15. Loosening the first locking member 16 releases the locking state of the lower crossbeam 13 and the upper crossbeam 14, which facilitates the adjustment of the distance between the two lower crossbeams 13 according to the longitudinal dimension of the main board, and also makes it easier to adjust the position of the main board along the longitudinal beam 10.

[0023] In this embodiment, furthermore, the top surfaces of both lower crossbeams 13 are provided with transverse guide grooves 17. A second slider 18 is accommodated in the inner cavity of the lower crossbeam 13. The second slider 18 slides in cooperation with the transverse guide grooves 17. Specifically, the top of the second slider 18 forms a boss that extends into the transverse guide groove 17. The second slider 18 is threadedly connected to a second locking member 19. The second locking member 19 is used to connect the motherboard of the edge diagnostic host. Specifically, the second locking member 19 is an internal hex bolt. The middle part of the second slider 18 is provided with a through internal threaded hole. The second locking member 19 is used to connect the four corners of the motherboard. The motherboard can be positioned by the second locking member 19. By cooperating with the second slider 18, the motherboard of the edge diagnostic host is fixed on the two lower crossbeams 13. Thus, the transverse position of the second slider 18 and the second locking member 19 can be adjusted according to the size of the motherboard, making it more convenient to adjust the transverse installation position according to the transverse size of the motherboard.

[0024] In this embodiment, the front cover 1 is further provided with handles 3 on both ends of the side face away from the rear cover 4. Specifically, the two ends of the handles 3 extend into the inner cavity of the connecting strip 11. The inner wall of the connecting strip 11 contains nuts that cooperate with the ends of the handles 3, so that the handles 3 can be locked to the front cover 1 by the nuts, making it more convenient to assemble and disassemble the handles 3.

[0025] The working principle of this utility model: Connect the motherboard of the edge diagnostic host to the second slider 18 via the second locking member 19. After adjusting the position of the motherboard, tighten the second locking member 19 to fix the motherboard to the lower crossbeam 13. Based on the interface position and the longitudinal dimensions of the motherboard, slide the lower crossbeam 13 to bring the motherboard close to the back cover 4. After the motherboard interface is engaged with the back cover 4, tighten the first locking piece 16 to fix the position of the lower crossbeam 13. After connecting the fan 8 to the motherboard interface, slide the cover 7 into the front cover 1 along the longitudinal beam 10, and lock the rear end of the cover 7 to the rear cover 4 with screws. Power and data connections are established via an external wiring harness. Fan 8 draws external air into the housing 6 through the air inlet 2 and exhausts it through the air outlet 5. The airflow within the housing 6 heats the suspended motherboard, effectively improving heat dissipation.

[0026] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An edge diagnostic host embedded chassis with good heat dissipation, comprising a front cover (1) and a rear cover (4) and a housing (6) disposed between the front cover (1) and the rear cover (4), characterized in that: The compartment (6) forms a semi-enclosed cavity between the front cover (1) and the rear cover (4). The semi-enclosed cavity formed by the compartment (6) has four longitudinal beams (10) arranged in a rectangular array. The two ends of the longitudinal beams (10) are detachably connected to the front cover (1) and the rear cover (4) respectively. There are two parallel lower crossbeams (13) detachably connected between the two lower longitudinal beams (10). The lower crossbeams (13) are used to install the motherboard of the edge diagnostic host. The top of the compartment (6) is slidably fitted with a compartment cover (7). One end of the compartment cover (7) extends into the front cover (1), and the other end of the compartment cover (7) is detachably connected to the rear cover (4).

2. The edge diagnostic host embedded chassis with good heat dissipation as described in claim 1, characterized in that: The front cover (1) has two parallel concave air inlets (2) on the side opposite to the rear cover (4). The rear cover (4) has air outlets (5) evenly distributed on its end face. The inner end face of the front cover (1) is detachably connected to a fan (8) corresponding to the air inlet (2).

3. The edge diagnostic host embedded chassis with good heat dissipation according to claim 1, characterized in that: Both the front cover (1) and the rear cover (4) are detachably connected to connecting strips (11) on both sides of the end face near the compartment (6). The side wall of the connecting strip (11) is detachably connected to the end of the compartment (6), and the two ends of the connecting strip (11) are detachably connected to the ends of the upper and lower longitudinal beams (10), respectively.

4. The edge diagnostic host embedded chassis with good heat dissipation according to claim 1, characterized in that: Two parallel upper crossbeams (14) are detachably connected between the two upper longitudinal beams (10), and the two upper crossbeams (14) are close to the front cover (1) and the rear cover (4), respectively.

5. The edge diagnostic host embedded chassis with good heat dissipation according to claim 4, characterized in that: The end faces of the four longitudinal beams (10) near the lower crossbeam (13) and the upper crossbeam (14) are provided with longitudinal guide grooves (12). The inner cavity of the longitudinal beam (10) is provided with a first slider (15) that slides with the longitudinal guide groove (12). The two ends of the lower crossbeam (13) and the upper crossbeam (14) are provided with first locking members (16), and the first locking members (16) are threadedly connected to the first slider (15).

6. The edge diagnostic host embedded chassis with good heat dissipation according to claim 1, characterized in that: The top surfaces of the two lower crossbeams (13) are provided with transverse guide grooves (17). The inner cavity of the lower crossbeam (13) contains a second slider (18). The second slider (18) is slidably engaged with the transverse guide groove (17). The second slider (18) is threadedly connected to a second locking member (19). The second locking member (19) is used to connect to the motherboard of the edge diagnostic host.