A server integration cabinet
By using a power supply method that combines power modules and copper busbars in the server rack, the high cost and complexity of traditional rack power supply methods are solved, enabling rapid power supply connection and optimized heat dissipation, thereby improving equipment stability and space utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- GUANGDONG HIWAVE TECH
- Filing Date
- 2026-05-20
- Publication Date
- 2026-07-31
AI Technical Summary
Traditional server rack power supply methods suffer from high hardware costs, complex installation, difficult maintenance, tangled cables, and poor heat dissipation, and cannot achieve rapid power supply connection and modular deployment.
The power supply method adopts a combination of power modules and copper busbars. The copper busbars deliver power in layers to the independent power distribution units of each mounting frame. Combined with an automatic cable retraction device and modular design, it achieves fast plug-and-play power supply and optimized heat dissipation.
It reduces hardware costs and installation complexity, simplifies the disassembly and assembly process of the power distribution unit, avoids messy cables, and improves heat dissipation efficiency and equipment stability.
Smart Images

Figure CN122497027A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of server rack technology, and more specifically to a server integrated rack. Background Technology
[0002] In data centers, cloud computing rooms, and enterprise server rooms, server racks are the core infrastructure for the centralized installation, hosting, and standardized management of server equipment. To achieve high-density integrated deployment of server equipment, multiple server frames are typically stacked along the height inside the rack. These frames organize and position the servers, facilitating centralized operation, maintenance, and expansion management, and effectively improving the utilization rate of data center space and operational efficiency.
[0003] The current traditional server rack power supply method generally adopts the vertical centralized power distribution unit power supply mode: that is, the main power distribution unit is laid out along the height direction inside the rack, and each layer of server frame is directly connected to the power distribution unit through independent power supply cables, thereby providing power supply to the server components within the frame.
[0004] This traditional power supply architecture and overall rack design require pre-installed power distribution units covering the entire height, regardless of whether the rack is filled with server frames. Unused power distribution unit sections become idle and redundant, increasing hardware and installation costs. Furthermore, the long strip-shaped power distribution unit is difficult to install, remove, and replace, and partial failures require a complete power outage for repair, affecting the normal operation of the rack. In addition, the full-height power distribution unit occupies vertical space in the rack, and independent wiring for each frame leads to tangled cables, which not only obstructs the heat dissipation airflow but also increases the difficulty of maintenance. Moreover, when adding a new server frame, wiring must be redone on the full-height power distribution unit, making it impossible to achieve quick and modular power supply integration. Summary of the Invention
[0005] The purpose of this invention is to address the aforementioned shortcomings in the prior art by providing a server integration cabinet.
[0006] The objective of this invention is achieved through the following technical solution: a server integrated cabinet, comprising a cabinet body; the cabinet body is provided with multiple mounting frames along the height direction; Each mounting frame includes a frame body and a power distribution unit disposed within the frame body; the frame body contains a server component electrically connected to the power distribution unit. The cabinet body is equipped with a power module and a copper busbar; the power module is electrically connected to the copper busbar; the copper busbar extends along the height direction; the power distribution unit of each mounting frame is electrically connected to the copper busbar.
[0007] The present invention is further configured such that the copper busbar is provided with multiple connectors; the power distribution unit is provided with a connection joint; the power distribution unit is provided with an automatic wire take-up device; and the connection joint is connected to the connector through the automatic wire take-up device.
[0008] The present invention is further configured such that an air inlet area is provided at one end of the cabinet body along the length direction; and an air outlet area is provided at the other end of the cabinet body along the length direction. The frame body has a receiving cavity; the receiving cavity has a partition; the partition divides the receiving cavity into a first cavity and a second cavity; one end of the frame body along its length has a first air inlet and a second air inlet; the other end of the frame body along its length has a first air outlet and a second air outlet; the first air inlet and the first air outlet are respectively connected to the first cavity; the second air inlet and the second air outlet are respectively connected to the second cavity; the first air inlet and the second air inlet are respectively connected to the air inlet area; the first air outlet and the second air outlet are respectively connected to the air outlet area. The server components include a first server and a second server; At one end of the frame body along the length direction, the first cavity is provided with a first server and the width of the first cavity is greater than the width of the second cavity; at the other end of the frame body along the length direction, the second cavity is provided with a second server and the width of the second cavity is greater than the width of the first cavity.
[0009] The present invention is further configured such that the partition includes a first panel, a second panel, and an inclined portion disposed between the first panel and the second panel; the first panel is disposed at one end of the frame body along the length direction; and the second panel is disposed at the other end of the frame body along the length direction.
[0010] The present invention is further configured such that the number of the first servers is multiple; the multiple first servers are arranged in the first cavity along the width direction; the number of the second servers is multiple; and the multiple second servers are arranged in the second cavity along the width direction.
[0011] The present invention is further configured such that the first cavity is provided with a support plate on the top of the first server and the second cavity is provided with a support plate on the top of the second server; the support plate is provided with a plurality of movable pressing members along the width direction; the pressing members include pressing plates for abutting against the top of the first server and the top of the second server.
[0012] The present invention is further configured such that both the first cavity and the second cavity are provided with a plurality of partition grooves arranged along the width direction; the first server and the second server are respectively disposed in the partition grooves; and the pressing member is disposed at the top of the partition groove.
[0013] The present invention is further configured such that the pressing member includes a hinged arm and a lifting arm; the pressing plate is disposed between the hinged arm and the lifting arm; the hinged arm is hinged to the support plate; the support plate is threaded with a plurality of adjusting screws; the adjusting screws pass through the support plate and abut against the top of the pressing plate; the support plate is provided with a clearance hole; the lifting arm passes through the clearance hole.
[0014] The present invention is further configured such that a baffle plate is detachably connected to the bottom of the first cavity; the baffle plate is provided with a first baffle strip for abutting against the side wall of the first server; the first baffle strip extends along the width direction. The other end of the frame body along the length direction is detachably connected to a cable management plate; the cable management plate is provided with a second blocking strip for abutting against the side wall of the second server; the second blocking strip extends along the width direction.
[0015] The present invention is further configured such that a telescopic guide rail is provided between the side wall of the frame body along the width direction and the cabinet body; the telescopic guide rail extends along the length direction.
[0016] The beneficial effects of this invention are as follows: This invention uses a power module as the main power supply and a copper busbar as the vertical main power supply bus to deliver power in layers to the independent power distribution units of each installation frame, and then supplies power to the corresponding server components. The installation frame can be deployed as needed, there are no idle power supply sections, and the cost is greatly reduced. Attached Figure Description
[0017] The invention will be further described with reference to the accompanying drawings, but the embodiments in the drawings do not constitute any limitation on the invention. For those skilled in the art, other drawings can be obtained based on the following drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a structural schematic diagram from another perspective of the present invention; Figure 3 This is a cross-sectional view of the present invention; Figure 4 This is a schematic diagram of the structure of the present invention after the installation tray is hidden; Figure 5 This is a schematic diagram of the installation tray of the present invention; Figure 6 This is a structural schematic diagram of the mounting tray of the present invention from another perspective; Figure 7 This is a cross-sectional view of the mounting tray of the present invention after concealing the first and second sealing plates; Figure 8 yes Figure 7 A magnified view of part A in the middle; Figure 9 This is a schematic diagram of the structure of the mounting tray of the present invention after concealing the first sealing plate and the second sealing plate; Figure 10 yes Figure 9 A magnified view of part B in the middle; Figure 11 This is a schematic diagram of the structure of the present invention with the first and second sealing plates hidden in the mounting tray, from another perspective. Figure 12 yes Figure 11 A magnified view of part C in the middle; The components include: 1. Frame body; 11. Receiving cavity; 12. Telescopic guide rail; 2. First cavity; 21. First air inlet; 22. First air outlet; 23. First server; 24. Divider slot; 3. Second cavity; 31. Second air inlet; 32. Second air outlet; 33. Second server; 4. Partition; 41. First panel; 42. Second panel; 43. Inclined part; 51. First sealing plate; 52. Second sealing plate; 61. Support plate; 6 2. Adjusting screw; 63. Clearance hole; 64. Baffle plate; 65. First baffle strip; 71. Pressure plate; 72. Hinge arm; 73. Lifting arm; 8. Cable management plate; 81. Cable management trough; 82. Second baffle strip; 9. Power distribution unit; 91. Connecting connector; 101. Cabinet body; 102. Air intake area; 103. Air exhaust area; 104. Power module; 105. Copper busbar; 106. Connector; 107. Front door; 108. Rear door. Detailed Implementation
[0019] The present invention will be further described in conjunction with the following embodiments.
[0020] Depend on Figures 1 to 12 As can be seen, the server integrated cabinet described in this embodiment includes a cabinet body 101; the cabinet body 101 is provided with multiple mounting frames along the height direction; Each mounting frame includes a frame body 1 and a power distribution unit 9 disposed in the frame body 1; the frame body 1 contains a server component electrically connected to the power distribution unit 9. The cabinet body 101 is provided with a power module 104 and a copper busbar 105; the power module 104 is electrically connected to the copper busbar 105; the copper busbar 105 extends along the height direction; the power distribution unit 9 of each mounting frame is electrically connected to the copper busbar 105 respectively.
[0021] Specifically, in this embodiment, a server integrated cabinet uses a power module 104 as the main power supply and a copper busbar 105 as the vertical main power supply bus to deliver power in layers to the independent power distribution units 9 of each mounting frame, and then to supply power to the corresponding server components.
[0022] This embodiment eliminates the need for a main power distribution unit 9 to extend vertically within the rack body 101. Instead, it employs a design where each mounting frame has its own independently configured power distribution unit 9. This allows for the deployment of mounting frames as needed, eliminating idle power supply sections and significantly reducing hardware investment and on-site installation costs. Furthermore, each mounting frame's power distribution unit 9 is independently electrically connected to the copper busbar 105 of the rack body 101. A power supply failure in a single mounting frame only requires powering off that frame for maintenance, without shutting down the power module 104 of the rack body 101, ensuring the continued operation of other server components. The modular design also simplifies the disassembly, assembly, and replacement of the power distribution unit 9.
[0023] This embodiment describes a server integrated cabinet. The copper busbar 105 is equipped with multiple connectors 106; the power distribution unit 9 is equipped with a connection connector 91; the power distribution unit 9 is equipped with an automatic cable retraction device; the connection connector 91 is connected to the connectors 106 via the automatic cable retraction device. This embodiment utilizes the connectors 106 of the copper busbar 105 and the connection connector 91 of the power distribution unit 9 to achieve quick plug-and-play power supply. The automatic cable retraction device can automatically collect redundant cables, avoiding cable tangling, reducing airflow obstruction, improving wiring efficiency and cabinet neatness, while also adapting to the power supply docking requirements of mounting frames of different heights.
[0024] The server integrated cabinet described in this embodiment has an air inlet area 102 at one end of the cabinet body 101 along the length direction, and an air outlet area 103 at the other end of the cabinet body 101 along the length direction. The frame body 1 has a receiving cavity 11; the receiving cavity 11 has a partition 4; the partition 4 divides the receiving cavity 11 into a first cavity 2 and a second cavity 3; one end of the frame body 1 along the length direction has a first air inlet 21 and a second air inlet 31; the other end of the frame body 1 along the length direction has a first air outlet 22 and a second air outlet 32; the first air inlet 21 and the first air outlet 22 are respectively connected to the first cavity 2; the second air inlet 31 and the second air outlet 32 are respectively connected to the second cavity 3; the first air inlet 21 and the second air inlet 31 are respectively connected to the air inlet area 102; the first air outlet 22 and the second air outlet 32 are respectively connected to the air outlet area 103. The server components include a first server 23 and a second server 33; At one end of the frame body 1 along the length direction, the first cavity 2 is provided with a first server 23 and the width of the first cavity 2 is greater than the width of the second cavity 3; at the other end of the frame body 1 along the length direction, the second cavity 3 is provided with a second server 33 and the width of the second cavity 3 is greater than the width of the first cavity 2.
[0025] Specifically, the server integrated cabinet described in this embodiment divides the cabinet body 101 into mutually independent air inlet zone 102 and air outlet zone 103, which can ensure that the airflow flows along the direction of the air inlet zone 102, the frame body 1 and the air outlet zone 103, prevent the airflow organization from being disordered and effectively improve the heat dissipation effect.
[0026] In addition, the frame body 1 divides the accommodating cavity 11 into two independent first cavities 2 and second cavities 3 by a partition 4. A first heat dissipation channel is formed between the air inlet area 102, the first air inlet 21, the first cavity 2, the first air outlet 22 and the air outlet area 103. A second heat dissipation channel is formed between the air inlet area 102, the second air inlet 31, the second cavity 3, the second air outlet 32 and the air outlet area 103. The first heat dissipation channel and the second heat dissipation channel do not interfere with each other, so that the heat dissipation airflow of the first server 23 and the second server 33 can be kept smooth.
[0027] In addition, at one end of the frame body 1 along the length direction, the first server 23 is set in the wider first cavity 2, and at the other end of the frame body 1 along the length direction, the second server 33 is set in the wider second cavity 3. Through the above arrangement, the servers are installed at the wide end of the corresponding cavity, which can accommodate more servers. The airflow channel utilizes the narrow end of the corresponding cavity, which can accelerate the airflow speed. In this embodiment, through the staggered layout of wide cavity for server installation and narrow cavity for airflow, the installation function and airflow function of the first cavity 2 and the second cavity 3 are spatially complementary, which effectively utilizes the space of the installation frame and ensures that the servers do not block each other during installation, thus ensuring the heat dissipation effect of the servers.
[0028] The server integrated cabinet described in this embodiment includes a partition 4 comprising a first panel 41, a second panel 42, and an inclined portion 43 disposed between the first panel 41 and the second panel 42; the first panel 41 is disposed at one end of the frame body 1 along the length direction; and the second panel 42 is disposed at the other end of the frame body 1 along the length direction.
[0029] Specifically, the above-mentioned arrangement ensures that the width misalignment design of the first cavity 2 and the second cavity 3 is more reasonable, which not only does not affect the stable installation of the first server 23 and the second server 33, but also guides the heat dissipation airflow to pass smoothly through the first cavity 2 and the second cavity 3, reduces airflow resistance, and further improves the heat dissipation effect.
[0030] This embodiment describes a server integration cabinet, in which multiple first servers 23 are arranged along the width direction in a first cavity 2; multiple second servers 33 are arranged along the width direction in a second cavity 3. This embodiment utilizes the width advantage of the first cavity 2 and the second cavity 3 at their corresponding ends to arrange multiple first servers 23 and second servers 33 along the width direction. Furthermore, relying on independent heat dissipation airflow channels, the heat dissipation channels of the multiple first servers 23 and second servers 33 will not obstruct each other, and airflow of the same temperature can flow evenly through each first server 23 and second server 33. This significantly increases the number of servers that a single mounting frame can support without affecting heat dissipation.
[0031] In this embodiment, a server integrated cabinet is provided with support plates 61 on the top of the first cavity 2 (first server 23) and the second cavity 3 (second server 33). The support plates 61 have multiple movable pressing members along their width. Each pressing member includes a pressing plate 71 for abutting against the tops of the first server 23 and the second server 33. Specifically, the support plates 61 provide a stable mounting carrier for the pressing members. The movable pressing members, through the pressing plates 71, adhere to the tops of the first server 23 and the second server 33, achieving vertical clamping and fixing of the first server 23 and the second server 33, preventing them from shaking or shifting, and improving the stability of the equipment installation.
[0032] The server integrated cabinet described in this embodiment has multiple partition slots 24 arranged along its width in both the first cavity 2 and the second cavity 3. The first server 23 and the second server 33 are respectively disposed in the partition slots 24. The pressure member is disposed on the top of the partition slot 24. The partition slots 24 independently limit and separate the first server 23 and the second server 33 in the width direction, avoiding mutual squeezing and collision between server components. They are fixed together with the pressure plate 71 at the top, and at the same time, they organize the arrangement of server components, facilitating operation and maintenance and smooth airflow for heat dissipation.
[0033] The server integrated cabinet described in this embodiment includes a pressure member that further comprises a hinged arm 72 and a lifting arm 73. A pressure plate 71 is disposed between the hinged arm 72 and the lifting arm 73. The hinged arm 72 is hinged to a support plate 61. The support plate 61 is threaded with multiple adjusting screws 62. The adjusting screws 62 pass through the support plate 61 and abut against the top of the pressure plate 71. The support plate 61 is provided with a clearance hole 63. The lifting arm 73 passes through the clearance hole 63. Specifically, the hinged arm 72 enables the flexible flipping of the pressure plate 71, the adjusting screws 62 are screwed into the support plate 61 to abut against the top of the pressure plate 71, the lifting arm 73 facilitates manual lifting of the pressure plate 71 for unlocking, and the clearance hole 63 provides ample space for the lifting arm 73 to move.
[0034] In this embodiment, a server integrated cabinet is provided, wherein a baffle plate 64 is detachably connected to the bottom of the first cavity 2; the baffle plate 64 is provided with a first baffle strip 65 for abutting against the side wall of the first server 23; the first baffle strip 65 extends along the width direction; a cable management plate 8 is detachably connected to the other end of the frame body 1 along the length direction; the cable management plate 8 is provided with a second baffle strip 82 for abutting against the side wall of the second server 33; the second baffle strip 82 extends along the width direction.
[0035] Specifically, the detachable baffle 64 and cable management plate 8 respectively use the first baffle 65 and the second baffle 82 to laterally limit the side wall of the first server 23 and the second server 33, further strengthening the fixing effect of the first server 23 and the second server 33 and preventing the first server 23 and the second server 33 from horizontally shifting; the detachable design facilitates installation, maintenance and replacement, and the cable management plate 8 can also take into account the function of cable tidying up, optimizing the internal wiring of the cabinet body 101.
[0036] In this embodiment of the server integrated cabinet, a telescopic guide rail 12 is provided between the side wall of the frame body 1 along the width direction and the cabinet body 101; the telescopic guide rail 12 extends along the length direction. The telescopic guide rail 12 can be a roller-type telescopic guide rail; this arrangement makes it easier to pull out the frame body 1 and the power distribution unit 9, facilitating the replacement and maintenance of various components.
[0037] In this embodiment of the server integrated cabinet, the cable management board 8 is provided with cable management grooves 81. This feature facilitates the organization of cables.
[0038] In this embodiment, a server integrated cabinet has a first sealing plate 51 detachably connected to the top of one end of the frame body 1 along its length; and a second sealing plate 52 detachably connected to the top of the other end of the frame body 1 along its length. This configuration protects the server components.
[0039] The server integrated cabinet described in this embodiment has a front door 107 at one end along the length direction of the cabinet body 101, and a rear door 108 at the other end along the length direction of the cabinet body 101. Specifically, in the server integrated cabinet described in this embodiment, when the first server 23 needs to be disassembled or repaired, the front door 107 is first opened, and then the frame body 1 is pulled out towards the air intake area 102 at the front of the cabinet body 101 via the telescopic guide rail 12. Then, the first sealing plate 51 is removed, and then the baffle plate 64 is disassembled to release the horizontal restriction on all the first servers 23. Next, the first server 23 to be disassembled is determined, and the corresponding adjusting screw 62 is rotated, so that the adjusting screw 62 moves horizontally. The rod of the adjusting screw 62 is misaligned with the top of the pressure plate 71, and the rod of the adjusting screw 62 no longer abuts against the top of the pressure plate 71. At this time, the lifting arm 73 can be lifted by lifting the clearance hole 63, and the pressure plate 71 can be rotated and lifted along the hinge of the hinge arm 72 and the support plate 61, so that the pressure plate 71 is separated from the top of the first server 23, and the first server 23 can be taken out from the partition slot 24 in the horizontal direction.
[0040] When it is necessary to disassemble or assemble the second server 33, first open the rear door 108, then remove the cable management board 8 to release the horizontal restrictions on all the second servers 33. Next, identify the second server 33 to be disassembled or assembled, and rotate the corresponding adjusting screw 62 to move the adjusting screw 62 horizontally. The rod of the adjusting screw 62 is misaligned with the top of the pressure plate 71, and the rod of the adjusting screw 62 no longer abuts against the top of the pressure plate 71. At this time, the lifting arm 73 can be lifted through the clearance hole 63, and the pressure plate 71 can be rotated and lifted along the hinge of the hinge arm 72 and the support plate 61, so that the pressure plate 71 is separated from the top of the second server 33. The second server 33 can then be directly pulled out horizontally from the air outlet area 103 at the rear of the cabinet body 101.
[0041] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit the scope of protection of the present invention. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the essence and scope of the technical solutions of the present invention.
Claims
1. A server integration cabinet, characterized by: Includes a cabinet body (101); the cabinet body (101) is provided with multiple mounting frames along the height direction; Each mounting frame includes a frame body (1) and a power distribution unit (9) disposed in the frame body (1); the frame body (1) contains a server component electrically connected to the power distribution unit (9). The cabinet body (101) is provided with a power module (104) and a copper busbar (105); the power module (104) is electrically connected to the copper busbar (105); the copper busbar (105) extends along the height direction; the power distribution unit (9) of each mounting frame is electrically connected to the copper busbar (105).
2. The server integration cabinet of claim 1, wherein: The copper busbar (105) is provided with multiple connectors (106); the power distribution unit (9) is provided with a connection joint (91); the power distribution unit (9) is provided with an automatic wire take-up device; the connection joint (91) is connected to the connector (106) through the automatic wire take-up device.
3. The server integration cabinet of claim 1, wherein: The cabinet body (101) has an air inlet area (102) at one end along its length; the cabinet body (101) has an air outlet area (103) at the other end along its length. The frame body (1) is provided with a receiving cavity (11); the receiving cavity (11) is provided with a partition (4); the partition (4) divides the receiving cavity (11) into a first cavity (2) and a second cavity (3); one end of the frame body (1) along the length direction is provided with a first air inlet (21) and a second air inlet (31); the other end of the frame body (1) along the length direction is provided with a first air outlet (22) and a second air outlet (32); the first air inlet (21) and the first air outlet (22) are respectively connected to the first cavity (2); the second air inlet (31) and the second air outlet (32) are respectively connected to the second cavity (3); the first air inlet (21) and the second air inlet (31) are respectively connected to the air inlet area (102); the first air outlet (22) and the second air outlet (32) are respectively connected to the air outlet area (103); The server components include a first server (23) and a second server (33); At one end of the frame body (1) along the length direction, the first cavity (2) is provided with a first server (23) and the width of the first cavity (2) is greater than the width of the second cavity (3); at the other end of the frame body (1) along the length direction, the second cavity (3) is provided with a second server (33) and the width of the second cavity (3) is greater than the width of the first cavity (2).
4. The server integration cabinet of claim 3, wherein: The partition (4) includes a first panel (41), a second panel (42), and an inclined portion (43) disposed between the first panel (41) and the second panel (42); the first panel (41) is disposed at one end of the frame body (1) along the length direction; the second panel (42) is disposed at the other end of the frame body (1) along the length direction.
5. The server integration cabinet of claim 3, wherein: The number of first servers (23) is multiple; multiple first servers (23) are arranged along the width direction in the first cavity (2); the number of second servers (33) is multiple; multiple second servers (33) are arranged along the width direction in the second cavity (3).
6. The server integration cabinet of claim 5, wherein: The first cavity (2) is provided with a support plate (61) on the top of the first server (23) and the second cavity (3) is provided with a support plate (61) on the top of the second server (33); the support plate (61) is provided with a plurality of movable pressing members along the width direction; the pressing members include a pressing plate (71) for abutting against the top of the first server (23) and the top of the second server (33).
7. The server integration cabinet of claim 6, wherein: Both the first cavity (2) and the second cavity (3) are provided with a plurality of partition grooves (24) arranged along the width direction; the first server (23) and the second server (33) are respectively disposed in the partition grooves (24); the pressing member is disposed at the top of the partition grooves (24).
8. The server integration cabinet of claim 6, wherein: The pressing component also includes a hinged arm (72) and a lifting arm (73); the pressing plate (71) is disposed between the hinged arm (72) and the lifting arm (73); the hinged arm (72) is hinged to the support plate (61); the support plate (61) is threaded with a plurality of adjusting screws (62); the adjusting screws (62) pass through the support plate (61) and abut against the top of the pressing plate (71); the support plate (61) is provided with a clearance hole (63); the lifting arm (73) passes through the clearance hole (63).
9. The server integration cabinet of claim 6, wherein: A baffle plate (64) is detachably connected to the bottom of the first cavity (2); the baffle plate (64) is provided with a first baffle strip (65) for abutting against the side wall of the first server (23); the first baffle strip (65) extends along the width direction; The other end of the frame body (1) along the length direction is detachably connected to a cable management plate (8); the cable management plate (8) is provided with a second blocking strip (82) for abutting against the side wall of the second server (33); the second blocking strip (82) extends along the width direction.
10. The server integration cabinet of claim 1, wherein: The frame body (1) is provided with a telescopic guide rail (12) between its side wall along the width direction and the cabinet body (101); the telescopic guide rail (12) extends along the length direction.