Supercomputing server device

By integrating the control board module into the power box and adopting a hidden wiring design, the optimization needs of supercomputer server devices in space layout and hardware maintenance are solved, and space saving and on-site installation and maintenance are achieved.

CN222927002UActive Publication Date: 2025-05-30SHENZHEN MICROBT ELECTRONICS TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421754912.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-23
Publication Date
2025-05-30
Estimated Expiration
2034-07-23

AI Technical Summary

Technical Problem

Existing supercomputing server devices have optimization requirements in terms of space layout and hardware maintenance, especially when deployed on a large scale, the equipment takes up a lot of space and is inconvenient to maintain.

Method used

By integrating the control board module into the power box, the installation position of the control board module is optimized, space is saved, and the hidden wiring design is adopted to realize the power supply and control connection between the computing power module, power module and control board module.

Benefits of technology

The space optimization of supercomputer server devices is realized, the on-site installation and maintenance process is simplified, the risk of cable exposure is reduced, and the overall integration and simplicity is improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222927002U_ABST
    Figure CN222927002U_ABST
Patent Text Reader

Abstract

The utility model relates to a supercomputing server device, which comprises a case in which a computing power module is mounted; the power box is mounted on a side plate of the case, a power module is mounted in the power box, and a control panel mounting port is formed in the power box; and the control panel module is mounted at the control panel mounting port. The installation position of the control panel module is optimized, the control panel module is integrated to the power box, the independent occupied space of the control panel module is saved, optimization of the occupied space on the whole super-computing server is facilitated, and quick assembly and disassembly of the super-computing server device on site are facilitated.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present disclosure relates to the field of supercomputing devices, and particularly to a supercomputer server device. Background Art

[0002] With the development of network data applications and AI applications, the demand for supercomputing devices with powerful data processing capabilities is increasing day by day, and the requirements for supercomputing devices are also increasing continuously.

[0003] As an important device of supercomputing, supercomputer servers are in great demand in terms of quantity and scale. For example, a large number of supercomputer servers need to be deployed in the supercomputer server computer room. There are optimization requirements in many aspects such as the spatial layout of supercomputer servers and the convenience of equipment maintenance. Summary of the Utility Model

[0004] In view of this, the present disclosure provides a supercomputer server device to help optimize its occupied space and help improve the convenience of its hardware maintenance.

[0005] The technical solution of the present disclosure is realized as follows:

[0006] According to one aspect of the embodiments of the present disclosure, a supercomputer server device is provided, including:

[0007] A chassis, in which a computing power module is installed;

[0008] A power supply box, which is installed on the side plate of the chassis of the chassis, a power supply module is installed in the power supply box, and a control board installation opening is provided on the power supply box; and,

[0009] A control board module, which is installed in the control board installation opening.

[0010] In a possible implementation manner, the control board installation opening is provided on the front end face of the power supply box and is adjacent to the chassis.

[0011] In a possible implementation manner, the control board module includes:

[0012] A carrier board, which is installed in the control board installation opening;

[0013] A control board, which is fixed to the carrier board and is electrically connected to the power supply module and the computing power module through a data cable.

[0014] In a possible implementation manner, the carrier board includes:

[0015] A cover plate part, which is installed in the control board installation opening;

[0016] A side carrier board part, which is perpendicular to the cover plate part;

[0017] Wherein, the control board is fixed to the side loading board part and faces the direction of the cover board part and the chassis.

[0018] In a possible implementation manner, the power supply box is provided with auxiliary fixing parts at two edges opposite to the control board mounting opening, and the cover board part is mounted to the control board mounting opening through the auxiliary fixing parts.

[0019] In a possible implementation manner, a cable slot opening is formed on the chassis side plate, and a data cable electrically connecting the control board module and the computing power module enters the interior of the chassis from one side of the control board module through the cable slot opening.

[0020] In a possible implementation manner, the power supply module is electrically connected to the computing power module through a power supply copper bar;

[0021] A copper bar slot opening is formed on the chassis side plate, and the power supply copper bar enters the interior of the chassis from one side of the power supply box through the copper bar slot opening.

[0022] In a possible implementation manner, an opening is formed on the power supply box side plate of the power supply box facing the chassis side plate, and the power supply copper bar electrically connecting the power supply module and the computing power module, as well as the data cable electrically connecting the control board module and the computing power module, are all led out from the power supply box through the opening.

[0023] In a possible implementation manner, the power supply box is mounted to the chassis side plate through an auxiliary fixing component, and the auxiliary fixing component includes:

[0024] A support bar, which is arranged on the chassis side plate and extends linearly along the front-back direction of the chassis. The support bar has a groove, and the extending direction of the groove is the same as the extending direction of the support bar;

[0025] A hanging hook, which is arranged on the power supply box side plate of the power supply box facing the chassis side plate, and the position of the hanging hook matches the position of the support bar. The hanging hook is hung in the groove;

[0026] A first fixing flange, which extends outwards from the chassis top plate of the chassis towards the power supply box. At least one first mounting hole is formed on the first fixing flange;

[0027] A second fixing flange, which extends outwards from the power supply box top plate of the power supply box towards the chassis, and the second fixing flange overlaps on the first fixing flange. At least one second mounting hole is formed on the second fixing flange, and the position of the second mounting hole matches the position of the first mounting hole; and,

[0028] A fastener is inserted through the first mounting hole and the second mounting hole.

[0029] In a possible implementation, the supercomputer server device further includes:

[0030] A first fan module is installed on the front end face of the chassis; a first fan connection terminal is provided on the front end face of the power supply box adjacent to the front end face of the chassis, and the power supply control cable of the first fan module is electrically connected to the first fan connection terminal; and / or,

[0031] A second fan module is installed on the rear end face of the chassis; a second fan connection terminal is provided on the rear end face of the power supply box adjacent to the rear end face of the chassis, and the power supply control cable of the second fan module is electrically connected to the second fan connection terminal.

[0032] As can be seen from the above solution, in the supercomputer server device of the present disclosure, the installation position of the control board module is optimized, and the control board module is integrated into the power supply box, saving the separate occupied space of the control board module, which helps to optimize the occupied space of the entire supercomputer server and helps to realize the rapid assembly and disassembly of the supercomputer server device on site. Among them, the position of the control board module is located at the front end face position of the power supply box, which is conducive to the disassembly and assembly of the control board module on site. Especially when a large number of supercomputer server devices are arranged on the cabinet or rack, the on-site staff does not need to remove the supercomputer server device from the cabinet or rack. They only need to directly face the supercomputer server device to install the control board module on the front end face of the power supply box or remove the control board module from the front end face of the power supply box, which helps to reduce the disassembly and assembly difficulty of the control board module on site. When the control board module is installed on the control board installation opening, the cover part can become a part of the front panel of the power supply box, which can keep the overall appearance of the power supply box simple and also helps to improve the integration degree of the power supply box and the control board module. In the supercomputer server device of the present disclosure, when the power supply box together with the control board module is installed on the chassis side plate of the chassis, the power supply busbar and the data cable will be blocked and protected inside the power supply box and the chassis, becoming the internal wiring of the supercomputer server device, and there is no need to additionally set a shield to block and protect the power supply busbar, which helps to simplify the supercomputer server device and reduce the potential risks such as increased vulnerability caused by the exposure of the power supply busbar and the data cable outside the supercomputer server device. Description of the Drawings

[0033] Figure 1 is a schematic structural diagram of a supercomputer server device provided by an embodiment of the present disclosure from the front side direction perspective;

[0034] Figure 2It is a schematic structural diagram of the rear lateral direction perspective of the supercomputer server device according to an embodiment of the present disclosure;

[0035] Figure 3 It is a schematic exploded structural diagram of the supercomputer server device according to an embodiment of the present disclosure;

[0036] Figure 4 It is a schematic structural diagram of the control board module in an embodiment of the present disclosure;

[0037] Figure 5 It is a schematic structural diagram of the front lateral direction perspective of the power supply box in an embodiment of the present disclosure;

[0038] Figure 6 It is a schematic structural diagram of the front lateral direction perspective of the chassis in an embodiment of the present disclosure;

[0039] Figure 7 For Figure 6 It is an enlarged structural diagram of the support bar and the copper row notch part in

[0040] Figure 8 For Figure 5 It is an enlarged structural diagram of the hanging hook part in Specific embodiments

[0041] In order to make the purpose, technical solutions and advantages of the present disclosure clearer, the following examples are given with reference to the accompanying drawings to further elaborate on the present disclosure in detail.

[0042] It should be noted that the terms "first", "second", etc. in the specification, claims and above-mentioned drawings of the present disclosure are used to distinguish similar objects, and do not necessarily describe a specific order or sequence.

[0043] For the convenience of hardware installation and maintenance, in the related art, supercomputer servers, such as air-cooled supercomputer servers, usually adopt a modular design concept. The supercomputer server is decomposed into three parts: a computing power module component, a control module component, and a power supply module component. The fan module for cooling the computing power module in the air-cooled supercomputer server can usually be directly installed on the computing power module component, and during on-site installation, the three parts can be assembled.

[0044] In the related art, the computing power module component, the control module component, and the power supply module component usually adopt a box form respectively. During assembly, the power supply module component box is fixed on a certain surface of the computing power module component box (for example, the left side or the right side of the computing power module component box), and the control module component box is fixed on another certain surface of the computing power module component (for example, the upper surface of the computing power module component box), and then the computing power module component, the control module component, and the power supply module component are connected through power supply cables, data cables, etc.

[0045] This design method can reduce the difficulty of installing and disassembling on-site equipment for maintenance, and the modular design is also easy to repair. For example, when the power supply module fails, only the power supply module component box needs to be disassembled from the supercomputer server and replaced, and the disassembled independent power supply module can be repaired.

[0046] However, this design method also has some problems and there is still room for further optimization. For example, in this design method, the computing power module component box, the power supply module component box, and the control module component box will each occupy a certain independent space, and the overall space occupied by the assembled supercomputer server is determined by the layout and the space occupied by each of these three parts. When arranging a large number of supercomputer servers in a supercomputer service center, in the case of limited space in the server computer room, as the number of supercomputer servers increases, it will be difficult for the server computer room to accommodate more supercomputer servers. Therefore, the space optimization of supercomputer servers still needs to be further improved. In addition, in related designs, the power supply lines and control lines connecting the computing power module, the control module, and the power supply module are usually laid outside the computing power module component box, the power supply module component box, and the control module component box. In the case of a large number of supercomputer servers, a large number of external cables not only make the site messy, but also cause certain interference to the installation and maintenance of supercomputer servers.

[0047] In view of this, the embodiments of the present disclosure provide a supercomputer server device that further integrates the control board module and the power supply module to optimize the space of the supercomputer server, and adopts a hidden wire routing design. When the computing power module, the power supply module, and the control board module are still independent and detachable, the power supply and control connections between the computing power module, the power supply module, and the control board module are realized within the supercomputer server device. Furthermore, it meets the requirements of miniaturization and simplicity of supercomputer servers, helps the server computer room accommodate more supercomputer servers, and helps the convenience of on-site installation and maintenance of supercomputer servers.

[0048] Figure 1 It is a schematic structural diagram of the front-side direction perspective of a supercomputer server device provided by the embodiments of the present disclosure. Figure 2 It is a schematic structural diagram of the rear-side direction perspective of the supercomputer server device according to the embodiments of the present disclosure. Figure 3 It is an exploded structural diagram of the supercomputer server device according to the embodiments of the present disclosure. As Figure 1 、 Figure 2 、 Figure 3 shown, the supercomputer server device mainly includes a chassis 1, a power supply box 2, and a control board module 3. Among them, a computing power module 14 is installed in the chassis 1. In an illustrative embodiment, the number of computing power modules 14 is at least one. The power supply box 2 is installed on the chassis side plate 13 of the chassis 1 through an auxiliary fixing component. A power supply module is installed in the power supply box 2, and a control board installation opening 21 is provided on the power supply box 2 (Figure 3 , Figure 5 (the area enclosed by the left dashed line in the figure). The control board module 3 is installed in the control board installation opening 21.

[0049] In the supercomputer server device according to the embodiment of the present disclosure, the installation position of the control board module 3 is optimized, and the control board module 3 is integrated into the power supply box 2, saving the separate occupied space of the control board module 3, which helps to optimize the occupied space of the overall supercomputer server.

[0050] As Figure 1 , Figure 2 , Figure 3 shown, in the schematic embodiment, the control board installation opening 21 is opened on the front surface of the power supply box 2 and is adjacent to the chassis 1. The control board installation opening 21 is opened on the front surface of the power supply box 2, and the control board module 3 is installed in the control board installation opening 21, so that the position of the control board module 3 is located at the front surface position of the power supply box 2. This structure is beneficial to the disassembly and assembly of the control board module 3 on site. Especially when a large number of supercomputer server devices are arranged on the cabinet or rack, the on-site staff does not need to remove the supercomputer server device from the cabinet or rack. They only need to directly face the supercomputer server device to install the control board module 3 on the front surface of the power supply box 2 or remove the control board module 3 from the front surface of the power supply box 2, which helps to reduce the disassembly and assembly difficulty of the control board module 3 on site.

[0051] Figure 4 is a schematic structural diagram of the control board module in the embodiment of the present disclosure. As Figure 4 and in combination with Figure 1 , Figure 3As shown, in the illustrative embodiment, the control board module 3 includes a carrier board 31 and a control board 32. Among them, the carrier board 31 is snap-fitted and installed in the control board installation opening 21. The control board 32 is fixed to the carrier board 31 and is electrically connected to the power supply module and the computing power module 14 through a data cable. In the illustrative embodiment, the carrier board 31 includes a cover plate portion 311 and a side carrier board portion 312. Among them, the cover plate portion 311 is snap-fitted and installed in the control board installation opening 21. The side carrier board portion 312 is perpendicular to the cover plate portion 311. In the illustrative embodiment, the cross-section of the side carrier board portion 312 and the cover plate portion 311 is in an "L" configuration. Among them, the control board 32 is fixed to the side carrier board portion 312 and faces the directions of the cover plate portion 311 and the chassis 1, that is to say, the control board 32 faces the internal space of the "L" configuration. In this way, when the control board module 3 is installed on the control board installation opening 21, the cover plate portion 311 can become a part of the front panel of the power supply box 2, so as to keep the overall appearance of the power supply box 2 simple, and also helps to improve the integration degree of the power supply box 2 and the control board module 3. Moreover, the "L" configuration of the carrier board 31 can also reserve enough space between the cover plate portion 311 and the side carrier board portion 312, which helps to dissipate heat from the control board 32 and can be used to accommodate redundant data cables and power supply cables. In the illustrative embodiment, the external ports of the supercomputer server device can be arranged on the cover plate portion 311, such as network cable ports, USB ports, etc.

[0052] Figure 5 is a schematic structural view of the front side direction perspective of the power supply box in the embodiment of the present disclosure, as Figure 5 and in combination with Figure 3 As shown, in the illustrative embodiment, the power supply box 2 is provided with auxiliary fixing members 211 at two opposite edges (such as the upper edge and the lower edge) of the control board installation opening 21, and the cover plate portion 311 is installed on the control board installation opening 21 through the auxiliary fixing members 211.

[0053] Among them, the auxiliary fixing members 211 can be set in different forms according to needs. The embodiment of the present disclosure provides one of the design forms. As Figure 3 、 Figure 5As shown, in the illustrative embodiment, the auxiliary fixing member 211 above the control board mounting opening 21 may be, for example, a folded edge formed by extending and bending the top plate of the power supply box 2 towards the control board mounting opening 21. A threaded hole is provided in the folded edge. The auxiliary fixing member 211 below the control board mounting opening 21 may be, for example, an extended edge formed by extending the front lower plate of the power supply box 2 towards the control board mounting opening 21. A threaded hole is provided in the extended edge. Moreover, threaded holes are provided in the cover plate portion 311 that are in positions matching the threaded holes in the folded edge and the threaded holes in the extended edge. The cover plate portion 311 can be mounted on the control board mounting opening 21 by screws passing through the threaded holes. In other embodiments, the threaded holes can be changed to through holes. Correspondingly, the screws are changed to other components that can pass through the through holes and enable the cover plate portion 311 to be mounted on the control board mounting opening 21, such as fixing pins, etc.

[0054] In the illustrative embodiment, the threaded holes in the folded edge and the threaded holes in the extended edge face the front of the supercomputer server device, thus facilitating on-site disassembly and assembly of the control board module 3 using tools such as screwdrivers and taking advantage of the sufficient space in the front of the supercomputer server device (the position where on-site workers are located).

[0055] Figure 6 is a schematic structural view of the front side direction of the chassis in the embodiment of the present disclosure, as Figure 6 and in combination with Figure 3 shown, the chassis side plate 13 is provided with a cable slot opening 11. The data cable (not shown in the figure) electrically connecting the control board module 3 and the computing power module 14 enters the interior of the chassis 1 from the side of the control board 32 via the cable slot opening 11. With this structure, when the power supply box 2 together with the control board module 3 is installed on the chassis side plate 13 of the chassis 1, the data cable connected from the control board module 3 to the computing power module 14 will be blocked and protected inside the power supply box 2 and the chassis 1, becoming the internal wiring of the supercomputer server device, thereby contributing to the simplification of the supercomputer server device and reducing the potential risks such as increased vulnerability due to the exposure of the data cable outside the supercomputer server device.

[0056] As Figure 6 and in combination with Figure 3 shown, the power module is electrically connected to the computing power module 14 through the power supply copper bar 4. In the illustrative embodiment, the chassis side plate 13 is provided with a copper bar slot opening 12, and the power supply copper bar 4 enters the interior of the chassis 1 from the side of the power supply box 2 via the copper bar slot opening 12. With this structure, when the power supply box 2 is installed on the chassis side plate 13 of the chassis 1, the power supply copper bar 4 will be blocked and protected inside the power supply box 2 and the chassis 1, becoming the internal wiring of the supercomputer server device, contributing to the simplification of the supercomputer server device, and there is no need to additionally provide a shield to block and protect the power supply copper bar 4, also reducing the potential risks such as increased vulnerability due to the exposure of the power supply copper bar 4 outside the supercomputer server device.

[0057] Figure 7 is Figure 6 an enlarged structural schematic diagram of the support bar and the copper busbar notch part in Figure 3 , Figure 6 , Figure 7 As shown in , , , in the illustrative embodiment, the opening of the notch faces the front of the chassis 1, and the notch extends towards the rear of the chassis 1. Among them, the notch includes the above-mentioned cable notch 11 and copper busbar notch 12. That is to say, the openings of the cable notch 11 and the copper busbar notch 12 both face the front of the chassis 1, and the cable notch 11 and the copper busbar notch 12 both extend towards the rear of the chassis 1. With this structure, it is convenient to insert the power supply copper busbar 4 and the data cable into the copper busbar notch 12 and the cable notch 11 before installing the fan module, which helps to reduce the assembly difficulty of the relevant wiring of the computing power module 14 inside the chassis 1.

[0058] As Figure 5 shown in , in the illustrative embodiment, the power supply box side plate 22 of the power supply box 2 facing the chassis side plate 13 is provided with an opening 221 ( Figure 5 the area of the right dotted box in ). The power supply copper busbar 4 that electrically connects the power supply module and the computing power module 14, and the data cable that electrically connects the control board module 3 and the computing power module 14 are both led out from the power supply box 2 through the opening 221. When the control board module 3 is installed on the power supply box 2, the cover part 311 of the control board module 3 will cover the front end face of the power supply box 2, and the opening 221 opened on the power supply box side plate 22 faces the chassis side plate 13, so that the opening 221 is located inside the entire supercomputer server device. The power supply copper busbar 4 and the data cable are led out from the power supply box 2 through the opening 221 and cooperate with the cable notch 11 and the copper busbar notch 12 opened on the chassis side plate 13 to enter the chassis 1 and connect with the computing power module 14. The cooperation between the opening 221 and the cable notch 11 and the copper busbar notch 12 realizes the wiring connection of the power supply copper busbar 4 and the data cable inside the supercomputer server device, and the designed structure of the opening 221 can ensure sufficient space, which helps to improve the convenience of on-site personnel for installing and plugging the power supply copper busbar 4 and the data cable to a certain extent.

[0059] In order to facilitate the disassembly and assembly of the power supply box 2 on site, the embodiment of the present disclosure adopts a structural design that can pull the power supply box 2 in the front-rear direction and can be hung on the chassis side plate 13, and this structure is realized by an auxiliary fixing component. As Figure 5 , Figure 6 shown in , , in the illustrative embodiment, the auxiliary fixing component includes a support bar 131, a hanging hook 222, a first fixing part 132, a second fixing part 223 and a locking part. Among them, the support bar 131 is arranged on the chassis side plate 13 and extends linearly along the front-rear direction of the chassis 1. As Figure 7As shown, in the illustrative embodiment, the support bar 131 has a groove 1311, and the extending direction of the groove 1311 is the same as that of the support bar 131. The hanging hook 222 is provided on the power supply box side plate 22 of the power supply box 2 facing the chassis side plate 13, and the position of the hanging hook 222 matches the position of the support bar 131. The hanging hook 222 is hooked in the groove 1311 and has the freedom to slide along the extending direction of the groove 1311 (i.e., the front-back direction). The first fixing portion 132 extends outward from the chassis top plate of the chassis 1 towards the power supply box 2, and a first locking hole 1321 is formed on the first fixing portion 132. In the illustrative embodiment, the first fixing portion 132 is of a flange type. The second fixing portion 223 extends outward from the power supply box top plate of the power supply box 2 towards the chassis 1, and the second fixing portion 223 overlaps on the first fixing portion 132. A second locking hole 2231 is formed on the second fixing portion 223, and the number and position of the second locking hole 2231 are equal to and match those of the first locking hole 1321. A locking member (not shown in the figure) passes through the first locking hole 1321 and the second locking hole 2231. In the illustrative embodiment, the locking member can be a screw or a fixing pin. When the locking member is a screw, the first locking hole 1321 and the second locking hole 2231 are threaded holes, and when the locking member is a fixing pin, the first locking hole 1321 and the second locking hole 2231 are through holes.

[0060] Figure 8 is Figure 5 the enlarged structural schematic diagram of the hanging hook part in Figure 7 , Figure 8 As shown, in the illustrative embodiment, the opening 221 direction of the groove 1311 is upward, and the hanging hook 222 is arranged downward. Thus, when installing the power supply box 2 on the chassis 1, the hanging hook 222 is hooked in the groove 1311. With this structure, when installing the power supply box 2, only need to slightly lift the power supply box 2 so that the hanging hook 222 is slightly higher than the edge of the groove 1311, and place the power supply box 2 close to the chassis 1 and then lower the power supply box 2, then the hanging hook 222 can be hooked in the groove 1311. Since the support bar 131 adopts a linear extension design structure, and the hanging hook 222 has the freedom to slide along the extending direction of the groove 1311 (i.e., the front-back direction), therefore, when hooking, there is no need to align the power supply box 2 and the chassis 1 in the front-back direction. After hooking, the alignment of the power supply box 2 and the chassis 1 in the front-back direction can be easily achieved by pushing and pulling the power supply box 2 in the front-back direction, which helps to reduce the on-site installation difficulty of the supercomputer server device.

[0061] As Figure 8As shown, in the illustrative embodiment, in order to facilitate the sliding of the hanging hook 222 within the groove 1311, the hanging hook 222 may adopt a multi-segment structure design. In addition, in other embodiments, the hanging hook 222 may also adopt a single-segment extended structure design similar to that of the support bar 131. In the illustrative embodiment, when the hanging hook 222 adopts a single-segment extended structure design, the support bar 131 may adopt either a single-segment extended structure design as shown in Figure 6 , or a multi-segment structure design similar to that of the hanging hook 222 shown in Figure 5 . As long as the cooperation between the support bar 131 and the hanging hook 222 is good and it can ensure the sliding of the hanging hook 222 along the extending direction of the groove 1311 (i.e., the front-back direction) without detachment.

[0062] During on-site installation, the installer lifts the power supply box 2 so that the hanging hook 222 is slightly higher than the edge of the groove 1311. Then, the power supply box 2 is placed close to the chassis 1 and then the power supply box 2 is lowered so that the hanging hook 222 is hooked within the groove 1311. Then, by pushing and pulling the power supply box 2 in the front-back direction, the first locking hole 1321 and the second locking hole 2231 are aligned. Then, inserting the locking member into the first locking hole 1321 and the second locking hole 2231 can complete the installation between the power supply box 2 and the chassis 1. The disassembly process is the opposite. Pull out the locking member from the first locking hole 1321 and the second locking hole 2231, and then pull out the power supply box 2, or slightly lift and pull out the power supply box 2. The whole process does not require the overall movement of the supercomputer server device, and the operation is flexible and simple.

[0063] Because the chassis 1, the power supply box 2, and the control board module 3 need to be connected to the power supply busbar 4 and the data cable, the above operations are carried out with the power supply busbar 4 and the data cable disconnected. When connecting the power supply busbar 4 and the data cable, only need to remove the control board module 3 from the power supply box 2, and insert the power supply busbar 4 and the data cable through the control board installation opening 21 of the power supply box 2 (the ends of the power supply busbar 4 and the data cable inside the chassis 1 can be pre-connected to the computing power module 14 inside the chassis 1). Inside the internal space of the control board installation opening 21, a copper bar plug-in for the power module can be set. When the power supply box 2 is hooked to the chassis 1, the power plug-in end of the power supply busbar 4 and the control board 32 plug-in end of the data cable can just enter the internal space of the control board installation opening 21 through the opening 221 opened on the power supply box side plate 22, so as to facilitate the subsequent insertion of the power plug-in end of the power supply busbar 4 into the copper bar plug-in and the connection of the control board 32 plug-in end of the data cable to the control board module 3.

[0064] In a schematic embodiment, inside the housing of the power supply box 2, a power supply cable connects the power supply module and the control board 32. In a schematic embodiment, inside the housing of the power supply box 2, a data cable and a power supply cable can reserve a redundant length, so that when the control board module 3 is removed from the power supply box 2, enough operating space can be reserved for on-site personnel to plug and unplug the data cable and the power supply cable.

[0065] As Figure 1 , Figure 2 shown, in a schematic embodiment, the supercomputer server device further includes a first fan module 51 and a second fan module 52. The first fan module 51 is installed on the front end face of the chassis 1, and the second fan module 52 is installed on the rear end face of the chassis 1. Among them, on the front end face of the power supply box 2 adjacent to the front end face of the chassis 1, a first fan connection terminal 231 is provided, and the power supply control cable of the first fan module 51 is electrically connected to the first fan connection terminal 231. On the rear end face of the power supply box 2 adjacent to the rear end face of the chassis 1, a second fan connection terminal 232 is provided, and the power supply control cable of the second fan module 52 is electrically connected to the second fan connection terminal 232. Inside the power supply box 2, the first fan connection terminal 231 and the second fan connection terminal 232 are electrically connected to the power supply module. Among them, the installation of the first fan module 51 exactly blocks the openings of the cable slot 11 and the copper busbar slot 12, thereby shielding and protecting the data cable and the power supply copper busbar 4 inside the power supply box 2 and the chassis 1.

[0066] For the first fan module 51 and the second fan module 52 corresponding to the front and rear ends of the chassis 1 on the front and rear sides of the power supply box 2, a first fan connection terminal 231 and a second fan connection terminal 232 are respectively provided. Considering the convenience of installation and maintenance, the first fan connection terminal 231 and the second fan connection terminal 232 adopt the same specifications. Furthermore, the power supply control cables on the front and rear sides of the power supply box 2 can adopt the same specifications to facilitate disassembly and assembly. In addition, the first fan module 51 and the second fan module 52 at the front and rear ends of the chassis 1 are directly connected to the power supply module through the first fan connection terminal 231 and the second fan connection terminal 232 respectively, realizing the near connection of the first fan module 51 and the second fan module 52 to the power supply module, shortening the length of the power supply control cables on the front and rear sides of the power supply box 2, and moreover, no additional adapter board needs to be set, simplifying the connection structure and facilitating the on-site operation between the fan module and the power supply module.

[0067] In a schematic embodiment, each of the first fan module 51 and the second fan module 52 includes at least one fan. The size and number of the fans can be set according to the size of the chassis 1. For example, each of the first fan module 51 and the second fan module 52 in the embodiment of the attached drawings of the present disclosure includes two fans. In other embodiments, the supercomputer server device may only include the first fan module 51 or the second fan module 52, and the number and position of the fan modules are determined according to actual requirements.

[0068] When using the supercomputer server device of the embodiment of the present disclosure to disassemble the control board module 3 on site, only the cover plate portion 311 needs to be disassembled from the front of the supercomputer server device. Since a redundant length is reserved for the data cable and the power supply cable, the control board module 3 can be pulled out a certain distance. Then, the data cable and the power supply cable are pulled out from the corresponding plug-in ends on the control board 32. On the contrary, when installing the control board module 3 on site, first, the data cable and the power supply cable are plugged into the plug-in ends of the control board 32. Then, the cover plate portion 311 is installed in the control board installation opening 21. A redundant length of the data cable and the power supply cable can be placed in the space inside the control board installation opening 21.

[0069] When using the supercomputer server device of the embodiment of the present disclosure to disassemble the power supply box 2 on site, first, the cover plate portion 311 is disassembled from the front of the supercomputer server device. Then, the data cable is pulled out from the corresponding plug-in end on the control board 32, and the locking member is removed from the first fixing portion 132 and the second fixing portion 223. By pushing the power supply box 2 (for example, pushing it backward in the supercomputer server device), a displacement is generated between the power supply box 2 and the chassis 1, so that the power supply copper bar 4 is separated from its power plug-in end (or the power supply copper bar 4 can be manually pulled out from its power plug-in end). Then, the hanging hook 222 is disengaged from the support bar 131, thus completing the separation between the power supply box 2 and the chassis 1. When installing the power supply box 2 on site, the power supply box 2 is moved to hook the hanging hook 222 on the support bar 131. Then, by pushing the power supply box 2 (for example, pushing it forward in the supercomputer server device), a displacement is generated between the power supply box 2 and the chassis 1, so that the power supply copper bar 4 is inserted into its power plug-in end as the power supply box 2 moves (or the power supply copper bar 4 can be manually inserted into its power plug-in end). Then, the locking member is inserted into the first locking hole 1321 and the second locking hole 2231. After that, the control board module 3 can be installed according to the above description.

[0070] In the supercomputer server device according to the embodiments of the present disclosure, the installation position of the control board module 3 is optimized, and the control board module 3 is integrated into the power supply box 2, saving the separate occupied space of the control board module 3, contributing to the optimization of the occupied space of the overall supercomputer server, and facilitating the rapid assembly and disassembly of the supercomputer server device on site. Among them, the position of the control board module 3 is located at the front face position of the power supply box 2, which is conducive to the disassembly and assembly of the control board module 3 on site. Especially when a large number of supercomputer server devices are arranged on the cabinet or rack, the on-site staff does not need to remove the supercomputer server device from the cabinet or rack. They only need to directly face the supercomputer server device to install the control board module 3 on the front face of the power supply box 2 or remove the control board module 3 from the front face of the power supply box 2, which helps to reduce the difficulty of disassembling and assembling the control board module 3 on site. When the control board module 3 is installed on the control board installation opening 21, the cover plate portion 311 can become a part of the front panel of the power supply box 2, thus keeping the overall appearance of the power supply box 2 simple and also contributing to improving the integration degree of the power supply box 2 and the control board module 3. In the supercomputer server device according to the embodiments of the present disclosure, when the power supply box 2 together with the control board module 3 is installed on the chassis side plate 13 of the chassis 1, the power supply copper busbar 4 and the data cable are shielded and protected inside the power supply box 2 and the chassis 1, becoming the internal wiring of the supercomputer server device. There is no need to additionally set a shield to shield and protect the power supply copper busbar 4, which helps to simplify the supercomputer server device and reduces the potential risks such as increased vulnerability caused by the exposure of the power supply copper busbar 4 and the data cable outside the supercomputer server device.

[0071] The above are only the preferred embodiments of the present disclosure and are not intended to limit the present disclosure. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present disclosure shall be included within the scope of protection of the present disclosure.

Claims

1. A supercomputing server device, characterized in that: include: A chassis, wherein a computing power module is installed in the chassis; A power supply box, the power supply box is installed on the side panel of the chassis, a power supply module is installed in the power supply box, and the power supply box is provided with a control panel installation port; and, A control panel module is installed at the control panel installation port.

2. The supercomputing server device according to claim 1, characterized in that: The control panel installation opening is opened at the front end surface of the power box and is adjacent to the chassis.

3. The supercomputing server device according to claim 1, characterized in that: The control panel module comprises: A carrier board, the carrier board is installed at the control board installation opening; A control board, wherein the control board is fixed to the carrier board and is electrically connected to the power module and the computing power module through a data cable.

4. The supercomputing server device according to claim 3, characterized in that: The carrier board comprises: A cover plate portion, the cover plate portion being mounted on the control panel mounting opening; A side loading plate portion, wherein the side loading plate portion is perpendicular to the cover plate portion; Wherein, the control board is fixed to the side loading plate portion and faces the direction of the cover plate portion and the chassis.

5. The supercomputing server device according to claim 4, characterized in that: The power box is provided with auxiliary fixing members at two edges opposite to the control board installation opening, and the cover plate portion is installed on the control board installation opening through the auxiliary fixing members.

6. The supercomputing server device according to claim 1, characterized in that: The side panel of the chassis is provided with a cable slot, and a data cable electrically connecting the control board module and the computing power module enters the body of the chassis from one side of the control board module through the cable slot.

7. The supercomputing server device according to claim 1, characterized in that: The power supply module is electrically connected to the computing power module via a power supply copper busbar; The side plate of the chassis is provided with a copper bar slot, and the power supply copper bar enters into the box body of the chassis from one side of the power box through the copper bar slot.

8. The supercomputing server device according to claim 1, characterized in that: An opening is provided on the side panel of the power box facing the side panel of the chassis, and the power supply copper bus electrically connecting the power module and the computing power module, and the data cable electrically connecting the control board module and the computing power module are all led out from the power box through the opening.

9. The supercomputing server device according to claim 1, characterized in that: The power box is mounted on the side panel of the chassis through an auxiliary fixing assembly, and the auxiliary fixing assembly includes: A support bar, the support bar is arranged on the side plate of the chassis and extends linearly along the front-rear direction of the chassis, the support bar has a groove, and the extension direction of the groove is the same as the extension direction of the support bar; A hook, the hook is arranged on the side plate of the power box facing the side plate of the chassis, and the position of the hook matches the position of the support bar, and the hook is hooked in the groove; A first fixing flange, wherein the first fixing flange is formed by extending the chassis top plate of the chassis toward the power supply box, and at least one first mounting hole is provided on the first fixing flange; A second fixing flange, wherein the second fixing flange is formed by extending the power box top plate of the power box toward the chassis, and the second fixing flange is overlapped on the first fixing flange, and at least one second mounting hole is provided on the second fixing flange, and the position of the second mounting hole matches that of the first mounting hole; and A fastener is inserted into the first mounting hole and the second mounting hole.

10. The supercomputing server device according to claim 1, characterized in that: The supercomputing server device also includes: a first fan module, the first fan module being mounted on the front end face of the chassis; a first fan connection terminal is disposed on the front end face of the power box adjacent to the front end face of the chassis, and a power supply control cable of the first fan module is electrically connected to the first fan connection terminal; and / or, A second fan module is installed on the rear end face of the chassis; a second fan connection terminal is provided on the rear end face of the power box adjacent to the rear end face of the chassis, and a power supply control cable of the second fan module is electrically connected to the second fan connection terminal.