Server cabinet and server system
By setting up connection racks and power management units in the server rack, the problems of complex and easily damaged cables are solved, enabling blind insertion of servers and switches and unified power management, thus improving security and management efficiency.
Patent Information
- Application Number
- PCT/CN2025/084524
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-16
- Filing Date
- 2025-03-24
- Publication Date
- 2025-10-23
AI Technical Summary
The cables in server racks are tangled and easily damaged, leading to safety issues. The long cable lengths increase costs and make it impossible to blind-plug servers and switches or manage power supply uniformly.
A connection rack is installed in the server rack, with first and second connectors on the rack. The downlink cable is located in the receiving cavity. The power management unit performs unified power management and achieves power control through a selector.
It enables blind insertion of servers and switches, avoiding cable tangles and damage, reducing costs, and achieving unified power supply management, improving security and management efficiency.
Smart Images

Figure CN2025084524_23102025_PF_FP_ABST
Abstract
Description
Server cabinet and server system
[0001] Cross-reference to related applications
[0002] The present application claims priority to the Chinese patent application No. 202410458030.0, filed on April 16, 2024, and entitled "Server cabinet and server system", the content of which is incorporated herein by reference in its entirety. TECHNICAL FIELD
[0003] The present application belongs to the field of server cabinets, and particularly relates to a server cabinet and a server system. BACKGROUND
[0004] With the development of science and technology, the application of servers is more and more extensive. Usually, the server is placed in a server cabinet, as shown in FIG. 1, the server cabinet is provided with a switch, and the server can transmit data by connecting the switch with the server. In the related art, a management network port is arranged on the server, one end of a cable is connected to the management network port, and the other end of the cable is connected to the switch. However, in this way, the cables in the server cabinet are complex and the cables are easily damaged, which causes safety problems. In addition, the positions of the servers in the switch are different, which leads to a longer length of the cables and increases the cost. In addition, in the related art, blind insertion of the server and the switch cannot be realized, and the power supply for the server and the switch is not unified, which leads to a complex power supply and cannot realize centralized management of the power supply of each server and switch. SUMMARY
[0005] The purpose of the embodiments of the present application is to provide a server cabinet and a server system, which at least solve the problems that the cables in the server cabinet are complex and the cables are easily damaged, which causes safety problems. In addition, the positions of the servers in the switch are different, which leads to a longer length of the cables and increases the cost. In addition, in the related art, blind insertion of the server and the switch cannot be realized, and the power supply for the server and the switch is not unified, which leads to a complex power supply and cannot realize centralized management of the power supply of each server and switch.
[0006] In a first aspect, the embodiments of the present application provide a server cabinet, which comprises a cabinet body, a connecting frame arranged in the cabinet body, and a power supply management unit.
[0007] The connecting frame has a receiving cavity, and a plurality of first connector joints and a plurality of second connector joint groups are arranged on the outer wall of the connecting frame, the first connector joints are used for connecting servers, the second connector joint groups are used for connecting uplink ports of switches, the first connector joints and the second connector joint groups are partially inserted into the receiving cavity, and each first connector joint and each second connector joint group are electrically connected through a downlink cable, the downlink cable is located in the receiving cavity, the power supply management unit is used for connecting the servers and the switches, and unified power supply management is performed on the servers and the switches;
[0008] The power supply management unit is used for connecting the servers and the switches, and unified power supply management is performed on the servers and the switches; the power supply management unit comprises a power supply centralized management backboard, and a fourth connector joint, a fifth connector joint and a sixth connector joint are arranged on the power supply centralized management backboard, the fourth connector joint is used for connecting the servers, the fifth connector joint is used for connecting the switches, and the sixth connector joint is connected with a power supply management module;
[0009] The power supply centralized management backboard is provided with a gate, the power supply management module and the gate are electrically connected, the fourth connector joint and the fifth connector joint are electrically connected with the gate, and the power supply management module controls the power supply of the servers and / or the switches through the gate, so that unified power supply management is performed on the servers and the switches.
[0010] In some embodiments of the present application, the cabinet body has opposite front and rear sides, and the connecting frame is connected with a rear cover;
[0011] The connecting frame faces the front side of the cabinet body, the rear cover faces the rear side of the cabinet body, the rear cover covers the connecting frame, and the receiving cavity is shielded.
[0012] In some embodiments of the present application, the connecting frame and the rear cover are both cross-shaped, the cabinet body has intersecting first and second directions, the connecting frame comprises a first frame body and a second frame body, the first frame body extends along the first direction, the second frame body extends along the second direction, and the first frame body intersects with the second frame body.
[0013] The first connector joints are arranged on the first frame body, and the second connector joint groups are arranged on the second frame body.
[0014] In some embodiments of the present application, the number of the first connector joints and the number of the second connector joint groups are both pluralities;
[0015] The plurality of first connector joints are spaced apart on the first frame body along the first direction, the plurality of second connector joint groups are spaced apart on the second frame body along the second direction, and each first connector joint is electrically connected with one second connector joint group through a downlink cable.
[0016] In some embodiments of the present application, the difference between the lengths of the cables connecting each group of first connector joints and the second connector joint group is less than a preset value, wherein each group of first connector joints and the second connector joint group includes at least one first connector joint and at least one second connector joint group.
[0017] In some embodiments of the present application, the switch includes a data switch and a management switch, each second connector joint group includes a first sub-joint and a second sub-joint, a plurality of first sub-joints are spaced apart along the second direction, and a plurality of second sub-joints are spaced apart along the second direction.
[0018] The first sub-joint is used to connect a downlink port of the management switch, and the second sub-joint is used to connect a downlink port of the data switch.
[0019] In the plurality of first connector joints, one first connector joint connects one first sub-joint and one second sub-joint through a downlink cable.
[0020] In some embodiments of the present application, the connection frame has opposite two ends along the first direction, and the two ends of the connection frame are connected with the top and the bottom of the cabinet body, respectively.
[0021] In some embodiments of the present application, the cabinet body has intersecting first and second directions, and the connection frame is located at a middle position of the cabinet body along the second direction.
[0022] In some embodiments of the present application, the second frame has a size smaller than that of the cabinet body along the second direction.
[0023] In some embodiments of the present application, the first connector joint and the second connector joint group each have a front surface and a back surface, the front surface is provided with a connection pin and is located outside the accommodation cavity, the connection pin is used to connect a server or a switch, the back surface is located in the accommodation cavity, and the back surfaces of the first connector joint and the second connector joint group are electrically connected through a downlink cable.
[0024] In some embodiments of the present application, the switch includes a data switch and a management switch, and a third connector joint group is further provided on the outer wall of the connection frame, and the third connector joint group is used to connect an uplink port of the switch.
[0025] The third connector joint group includes a third sub-joint and a fourth sub-joint, the third sub-joint is used to connect an uplink port of the management switch, and the fourth sub-joint is used to connect an uplink port of the data switch.
[0026] In some embodiments of the present application, the third connector joint group is located in the accommodation cavity, and the third connector joint group is connected with an uplink cable, the uplink cable is located in the accommodation cavity and passes out from the top of the cabinet body.
[0027] In some embodiments of the present application, the server is internally provided with a first network card and a second network card, the transmission speeds of the first network card and the second network card are different, the server is provided with a connection joint, the first network card and the second network card are connected to the same connection joint, and the first connector joint is used to be connected with the connection joint.
[0028] In some embodiments of the present application, the server has opposite front end and rear end, and the connection joint is arranged at the rear end of the server.
[0029] In some embodiments of the present application, the gate is used to alternately conduct the fourth connector joint and the fifth connector joint, so that the power management module is conducted with the fourth connector joint or the power management module is conducted with the fifth connector joint.
[0030] In some embodiments of the present application, the cabinet body is provided with a power supply frame, and the power supply frame is provided with a power management module.
[0031] In some embodiments of the present application, the cabinet body is provided with a power supply row, the power supply row is provided with a first power supply joint and a second power supply joint, the first power supply joint is used to be connected with the server to supply power to the server, and the second power supply joint is used to be connected with the switch to supply power to the switch.
[0032] In some embodiments of the present application, the cabinet body is provided with a distribution reservoir, the distribution reservoir includes a water inlet pipe and a drain pipe, the water inlet pipe is communicated with the drain pipe, and the water inlet pipe is used to cool and dissipate heat for the server and the switch.
[0033] In the second aspect, the embodiments of the present application provide a server system, the server system includes a server, a switch and the server cabinet of any one of the above-mentioned first aspect;
[0034] The server and the switch are located in the cabinet body, and the server is connected with the first connector joint and the switch is connected with the second connector joint group;
[0035] The server is connected with the fourth connector joint and the switch is connected with the fifth connector joint, so that the power management module controls the power supply of the server and / or the switch through the gate to uniformly manage the power supply of the server and the switch.
[0036] In some embodiments of the present application, the server is internally provided with a first network card and a second network card, the transmission speeds of the first network card and the second network card are different, the server is provided with a connection joint, the first network card and the second network card are connected to the same connection joint, and the connection joint is connected with the first connector joint.
[0037] In some embodiments of the present application, the server has opposite front end and rear end, and the connection joint is arranged at the rear end of the server.
[0038] In some embodiments of the present application, a power supply row is arranged in the cabinet, and the power supply row is provided with a first power supply connector and a second power supply connector;
[0039] The server and the switch are respectively connected with the first power supply connector and the second power supply connector.
[0040] In the embodiments of the present application, since the connecting frame has the accommodating cavity, and the outer wall of the connecting frame is provided with the plurality of first connector connectors and the plurality of second connector connector groups, and the connecting frame is located in the cabinet, when the server and the switch are arranged in the cabinet, the server can be connected with the first connector connectors, and the switch can be connected with the second connector connector groups, that is, when the server and the switch are pushed into the cabinet, after the server and the switch are pushed into the cabinet, the server is connected with the first connector connectors, and the switch is connected with the second connector connector groups, so that the blind insertion of the server and the switch is realized. In addition, since the first connector connectors and the second connector connector groups are partially inserted into the accommodating cavity, and each first connector connector and each second connector connector group are electrically connected through the downlink cable, and the downlink cable is located in the accommodating cavity, after the server and the switch are pushed into the cabinet, the server is connected with the first connector connectors, and the switch is connected with the second connector connector groups, and the first connector connectors and the second connector connector groups are electrically connected through the downlink cable, so that the server and the switch are electrically connected, and the downlink cable is located in the accommodating cavity, which is equivalent to that the downlink cable is accommodated in the connecting frame, and the connecting frame can protect the downlink cable. That is, in the embodiments of the present application, by arranging the connecting frame in the cabinet of the server, and arranging the first connector connectors and the second connector connector groups on the connecting frame, arranging the downlink cable in the accommodating cavity of the connecting frame, and connecting the downlink cable with the first connector connectors and the second connector connector groups respectively, once the server and the switch are arranged in the cabinet, the server is connected with the first connector connectors, and the switch is connected with the second connector connector groups, so that the blind insertion of the server and the switch is realized, and the downlink cable is located in the accommodating cavity, so that the user cannot see the downlink cable from the outside of the cabinet, and the problem of complex downlink cable on the cabinet is avoided. In addition, the connecting frame can protect the downlink cable, and the problem of easy damage of the downlink cable is avoided, so that the safety of the cabinet can be improved. In addition, the downlink cable is located in the accommodating cavity, so that the first connector connectors and the second connector connector groups can be electrically connected through the shorter downlink cable, so that the downlink cable can be saved, and the cost is reduced. In addition, the power supply management unit can uniformly manage the power supply of the server and the switch. BRIEF DESCRIPTION OF DRAWINGS
[0041] FIG. 1 shows a schematic diagram of a server cabinet in the related art, in which a switch and a server are arranged;
[0042] Figure 2 shows a schematic diagram of a server cabinet according to an embodiment of the present application;
[0043] Figure 3 shows a front view of a server cabinet according to an embodiment of the present application;
[0044] Figure 4 shows a perspective view of a server and a switch installed in a cabinet and containing an internal cable interconnection topology of a connection frame from a rear view according to an embodiment of the present application;
[0045] Figure 5 shows a perspective view of a server and a switch installed in a cabinet and containing a connection frame internal switch uplink cable and a whole cabinet centralized power supply cooling from a rear view according to an embodiment of the present application;
[0046] Figure 6 shows a topology diagram of a power supply management module polling control server according to an embodiment of the present application;
[0047] Figure 7 shows a schematic diagram of a power supply centralized management backboard connecting a server and a switch according to an embodiment of the present application;
[0048] Figure 8 shows a perspective view of a server and a switch installed in a cabinet and containing a centralized power supply management module from a rear view according to an embodiment of the present application;
[0049] Figure 9 shows a schematic diagram of a circuit connection in a server according to an embodiment of the present application;
[0050] Figure 10 shows a schematic diagram of a server according to an embodiment of the present application.
[0051] Reference signs: 001: uplink cable; 10: cabinet body; 21: connection frame; 211: first frame body; 212: second frame body; 30: first connector joint; 40: second connector joint group; 41: first sub-joint; 42: second sub-joint; 50: power supply centralized management backboard; 51: power supply management module; 52: gate; 501: fourth connector joint; 502: fifth connector joint; 503: sixth connector joint; 60: power supply frame; 601: power supply; 70: power supply row; 71: positive row; 72: negative row; 80: water distributor; 81: water inlet pipe; 82: water outlet pipe; 90: third connector joint group; 91: third sub-joint; 92: fourth sub-joint; 100: downlink cable; 200: server; 201: centralized power supply module; 210: first network card; 220: second network card; 230: connection joint; 300: switch; 301: management switch; 302: data switch. DETAILED DESCRIPTION
[0052] The terms "first", "second" in the description and claims of the present application can explicitly or implicitly include one or more of the features. In the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more. In addition, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / ", generally indicates that the front and rear associated objects are in an "or" relationship.
[0053] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0054] In the description of the present application, it should be noted that unless otherwise specified and limited, the terms "mounting", "connecting", "connecting" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the communication inside two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0055] Referring to FIG. 2, a schematic diagram of a server cabinet is shown according to an embodiment of the present application; referring to FIG. 3, a front view of a server cabinet is shown according to an embodiment of the present application; referring to FIG. 4, a perspective view of a rear direction of a server and a switch installed in a cabinet and containing a connection rack internal cable interconnection topology is shown according to an embodiment of the present application; referring to FIG. 5, a perspective view of a rear direction of a whole cabinet centralized power supply cooling of a server and a switch installed in a cabinet and containing a connection rack internal switch uplink cable is shown according to an embodiment of the present application; referring to FIG. 6, a topology diagram of a power management module polling control server is shown according to an embodiment of the present application; referring to FIG. 7, a schematic diagram of a power centralized management backboard connecting a server and a switch is shown according to an embodiment of the present application; referring to FIG. 8, a perspective view of a rear direction of a whole cabinet of a server and a switch installed in a cabinet and containing a centralized power supply management module is shown according to an embodiment of the present application; referring to FIG. 9, a schematic diagram of a circuit connection in a server is shown according to an embodiment of the present application. As shown in FIGS. 2-9, the server 200 cabinet includes a cabinet body 10 and a connection rack 21 disposed in the cabinet body 10.
[0056] The connection rack 21 has a receiving cavity, and a plurality of first connector joints 30 and a plurality of second connector joint groups 40 are disposed on the outer wall of the connection rack 21, the first connector joints 30 are used to connect the server 200, the second connector joint groups 40 are used to connect the switch 300, the first connector joints 30 and the second connector joint groups 40 are partially extended into the receiving cavity, and each first connector joint 30 and each second connector joint group 40 are electrically connected by a downlink cable 100, and the downlink cable 100 is located in the receiving cavity. A power supply management unit is used to connect the server 200 and the switch 300, and to uniformly manage the power supply of the server 200 and the switch 300. The power supply management unit can include a power centralized management backboard 50, the power centralized management backboard 50 is provided with a fourth connector joint 501, a fifth connector joint 502, and a sixth connector joint 503, the fourth connector joint 501 is used to connect the server 200, the fifth connector joint 502 is used to connect the switch 300, and the sixth connector joint 503 is connected with a power management module 51; the power centralized management backboard 50 is provided with a gate 52, the power management module 51 is electrically connected with the gate 52, the fourth connector joint 501 and the fifth connector joint 502 are electrically connected with the gate 52, and the power management module 51 controls the power supply of the server 200 and / or the switch 300 through the gate 52, so as to uniformly manage the power supply of the server 200 and the switch 300.
[0057] In the embodiments of the present application, the first connector 30 and the second connector group 40 each have a front surface and a back surface. The front surface is provided with a connection pin for connecting the server 200 or the switch 300, and is located outside the accommodating cavity. The back surface is located in the accommodating cavity, and the back surfaces of the first connector 30 and the second connector group 40 are electrically connected through the downward cable 100.
[0058] In the embodiment of the present application, since the connecting frame 21 has the accommodating cavity, and the outer wall of the connecting frame 21 is provided with the plurality of first connector joints 30 and the plurality of second connector joint groups 40, and the connecting frame 21 is located in the cabinet 10, when the server 200 and the switch 300 are arranged in the cabinet 10, the server 200 can be connected with the connecting pins on the first connector joints 30, and the switch 300 can be connected with the connecting pins on the second connector joint groups 40, that is, when the server 200 and the switch 300 are pushed into the cabinet 10, after the server 200 and the switch 300 are pushed into the cabinet 10, the server 200 is connected with the connecting pins on the first connector joints 30, and the switch 300 is connected with the connecting pins on the second connector joint groups 40, so that the blind insertion of the server 200 and the switch 300 is realized. In addition, since the first connector joints 30 and the second connector joint groups 40 are partially inserted into the accommodating cavity, and each of the first connector joints 30 and the second connector joint groups 40 is electrically connected through the downward cable 100, the downward cable 100 is located in the accommodating cavity, therefore, after the server 200 and the switch 300 are pushed into the cabinet 10, the server 200 is connected with the first connector joints 30, and the switch 300 is connected with the second connector joint groups 40, and the first connector joints 30 and the second connector joint groups 40 are electrically connected through the downward cable 100, so that the server 200 and the switch 300 are electrically connected, and the downward cable 100 is located in the accommodating cavity, which is equivalent to that the downward cable 100 is accommodated in the connecting frame 21, and the connecting frame 21 can protect the downward cable 100. That is, in the embodiment of the present application, by arranging the connecting frame 21 in the cabinet 10 of the server 200, arranging the first connector joints 30 and the second connector joint groups 40 on the connecting frame 21, arranging the downward cable 100 in the accommodating cavity of the connecting frame 21, and connecting the back surface of the first connector joint 30 and the back surface of the second connector joint group 40 with the downward cable 100 respectively, once the server 200 and the switch 300 are arranged in the cabinet 10, the server 200 is connected with the first connector joints 30, and the switch 300 is connected with the second connector joint groups 40, so that the blind insertion of the server 200 and the switch 300 is realized, and the downward cable 100 is located in the accommodating cavity, so that the user cannot see the downward cable 100 from the outside of the cabinet 10, and the problem of complex downward cable 100 on the cabinet 10 is avoided, in addition, the connecting frame 21 can protect the downward cable 100, and the problem that the downward cable 100 is easily damaged is avoided, so that the safety of the cabinet 10 can be improved, in addition, since the downward cable 100 is located in the accommodating cavity, the first connector joint 30 and the second connector joint group 40 can be electrically connected through the shorter downward cable 100, so that the downward cable 100 can be saved, and the cost is reduced. In addition, the power supply management unit can uniformly manage the power supply of the server 200 and the switch 300.
[0059] Since the power centralized management backboard 50 is arranged in the cabinet 10, the fourth connector joint 501, the fifth connector joint 502 and the sixth connector joint 503 are arranged on the power centralized management backboard 50, and the power management module 51 is connected to the sixth connector joint 503, when the server 200 and the switch 300 are placed in the cabinet 10, the server 200 can be connected to the fourth connector joint 501, and the switch 300 can be connected to the fifth connector joint 502. Since the fourth connector joint 501 and the fifth connector joint 502 are both electrically connected to the power management module 51, once the server 200 is connected to the fourth connector joint 501 and the switch 300 is connected to the fifth connector joint 502, the server 200 and the switch 300 can be both electrically connected to the power management module 51, so that the power management module 51 can control the power supply of the server 200 and / or the switch 300. That is, by arranging the power centralized management backboard 50, and arranging the fourth connector joint 501, the fifth connector joint 502 and the sixth connector joint 503 on the power centralized management backboard 50, and connecting the power management module 51 to the sixth connector joint 503, and electrically connecting the fourth connector joint 501 and the fifth connector joint 502 to the power management module 51, after the server 200 and the switch 300 are placed in the cabinet 10, the server 200 and the switch 300 can be uniformly managed, so that the server 200 and the switch 300 can be centrally managed, that is, the centralized power supply of the switch 300 and the server 200 is realized.
[0060] Since the power centralized management backboard 50 is arranged in the cabinet 10, the fourth connector joint 501, the fifth connector joint 502 and the sixth connector joint 503 are arranged on the power centralized management backboard 50, and the power management module 51 is connected to the sixth connector joint 503, when the server 200 and the switch 300 are placed in the cabinet 10, the server 200 can be connected to the fourth connector joint 501, and the switch 300 can be connected to the fifth connector joint 502. Since the fourth connector joint 501 and the fifth connector joint 502 are both electrically connected to the power management module 51, once the server 200 is connected to the fourth connector joint 501 and the switch 300 is connected to the fifth connector joint 502, the server 200 and the switch 300 can be both electrically connected to the power management module 51, so that the power management module 51 can control the power supply of the server 200 and / or the switch 300. That is, by arranging the power centralized management backboard 50, and arranging the fourth connector joint 501, the fifth connector joint 502 and the sixth connector joint 503 on the power centralized management backboard 50, and connecting the power management module 51 to the sixth connector joint 503, and electrically connecting the fourth connector joint 501 and the fifth connector joint 502 to the power management module 51, after the server 200 and the switch 300 are placed in the cabinet 10, the server 200 and the switch 300 can be uniformly managed, so that the server 200 and the switch 300 can be centrally managed, that is, the centralized power supply of the switch 300 and the server 200 is realized.
[0061] In conclusion, in the embodiment of the present application, the connecting frame 21 is arranged in the cabinet 10 of the server 200, the first connector joint 30 and the second connector joint group 40 are arranged on the connecting frame 21, the downward cable 100 is arranged in the accommodating cavity of the connecting frame 21, the downward cable 100 is connected to the back of the first connector joint 30 and the back of the second connector joint group 40 respectively, and the power supply management unit is arranged in the cabinet 10, so that not only the blind insertion of the server 200 and the switch 300 can be realized, but also the downward cable 100 is arranged in the accommodating cavity, so that the user cannot see the downward cable 100 from the outside of the cabinet 10, the problem of complex arrangement of the downward cable 100 on the cabinet 10 is avoided, in addition, the connecting frame 21 can protect the downward cable 100 and avoid the problem of easy damage of the downward cable 100, so that the safety of the cabinet 10 can be improved, and the power supply management unit can uniformly supply power to the server 200 and the switch 300.
[0062] It should be noted that the power management module 51 can be a power management circuit (PMC) structure. In addition, in the embodiment of the present application, the power centralized management backboard 50 can be a printed circuit board (PCB), at this time, the power management module 51 can be provided with a plug-in connector, the plug-in connector is plugged into the sixth connector joint 503, so that the power management module 51 is electrically connected with the fourth connector joint 501 and the fifth connector joint 502 respectively. Of course, the power management module 51 can also be connected with a connecting line, the plug-in connector is arranged on the connecting line and connected to the sixth connector joint 503 on the power centralized management backboard 50, so as to realize the electrical connection with the fourth connector joint 501 and the fifth connector joint 502. Of course, the power centralized management backboard 50 can also be a plate structure formed by other types of materials, for example, the power centralized management backboard 50 is formed by metal, and the power centralized management backboard 50 is a hollow structure, the fourth connector joint 501, the fifth connector joint 502 and the sixth connector joint 503 are arranged on the power centralized management backboard 50, and the connecting line is arranged in the power centralized management backboard 50, and the fourth connector joint 501, the fifth connector joint 502 and the sixth connector joint 503 are electrically connected through the connecting line. For this, the embodiment of the present application does not make any limitation here.
[0063] It should be noted that in the embodiment of the present application, the gate 52 can be a chip, for example, the gate 52 is a PAB9548 chip. Of course, the gate 52 can also be a circuit board with control function. The specific type of the gate 52 is not limited in the embodiment of the present application.
[0064] In addition, in some embodiments, the switch 52 is configured to alternatively connect the power management module 51 to the fourth connector 501 and the fifth connector 502, i.e., the switch 52 is alternatively connected to the fourth connector 501 and the fifth connector 502.
[0065] With such a configuration, when the power management module 51 is in operation, the switch 52 is alternatively connected to the fourth connector 501 and the fifth connector 502, i.e., the switch 52 is connected to the fourth connector 501 and disconnected from the fifth connector 502, so as to be equivalent to that the power management module 51 is only electrically connected to the fourth connector 501, thereby performing power management control on the server 200, and the switch 52 is connected to the fifth connector 502 and disconnected from the fourth connector 501, so as to be equivalent to that the power management module 51 is only electrically connected to the fifth connector 502, thereby performing power management control on the switch 300. That is, the power management module 51 can perform polling management on the server 200 and the switch 300 through the switch 52, so as to reduce the load of the bus connecting the power management module 51 to the fourth connector 501 and the fifth connector 502, and improve the quality of the management signal transmitted by the power management module 51.
[0066] It should be noted that the number of the fourth connectors 501 can be multiple, and in this case, the switch 52 can be sequentially connected to the multiple fourth connectors 501, so as to enable the power management module 51 to perform polling management on the servers 200 connected to the multiple fourth connectors 501. For example, when the number of the fourth connectors 501 is 10, the switch 52 can be first connected to the first fourth connector 501 and disconnected from the other nine fourth connectors 501, so as to enable the power management module 51 to perform power management on the servers 200 connected to the fourth connector 501 to which the switch 52 is connected, and then the switch 52 is connected to the second fourth connector 501 and disconnected from the other nine fourth connectors 501, and so on, until the switch 52 is connected to the tenth fourth connector 501 and disconnected from the other nine fourth connectors 501, and then the switch 52 is connected to the first fourth connector 501 and disconnected from the other nine fourth connectors 501.
[0067] Similarly, when the fourth connector 501 and the fifth connector 502 are both multiple, the switch 52 can be sequentially connected to the fourth connector 501 and the fifth connector 502.
[0068] In addition, in the related art, after the server 200 and the switch 300 are placed in the server 200 cabinet, the number of the servers 200 is multiple, and the positions of the multiple servers 200 in the server 200 cabinet are different. In order to realize that the servers 200 at different positions are all electrically connected with the switch 300, the servers 200 at different positions are electrically connected with the switch 300 through cables. However, the positions of the servers 200 are different, which leads to that when the servers 200 and the switch 300 are connected, the operator needs to first connect one end of the cable to the server 200, and then connect the other end of the cable to the switch 300. Moreover, the cable may need to be wound outside the server 200 cabinet, which leads to that the cable for connecting the servers 200 and the switch 300 is complex, is not easy to arrange and is prone to errors. Moreover, the operator needs to manually connect the cable with the server 200 and the switch 300 respectively, and blind insertion of the server 200 and the switch 300 cannot be realized.
[0069] In the embodiment of the present application, the connecting frame 21 is arranged, the first connector joint 30 and the second connector joint group 40 are arranged on the connecting frame 21, the downlink cable 100 is arranged in the accommodating cavity of the connecting frame 21, and the downlink cable 100 is connected with the first connector joint 30 and the second connector joint group 40 respectively. Therefore, the downlink cable 100 does not need to be wound in the connecting frame 21, so that the length of the required downlink cable 100 is shorter, the cost is reduced, and the downlink cable 100 in the connecting frame 21 avoids being complex. Moreover, when the server 200 and the switch 300 are placed in the cabinet body 10 of the server 200 cabinet, the operator can directly push the server 200 into the cabinet body 10 and push the switch 300 into the cabinet body 10, so that the server 200 can be connected with the first connector joint 30, and the switch 300 can be connected with the second connector joint group 40. That is, the operator only needs to push the server 200 and the switch 300 into the cabinet body 10, so that the server 200 can be directly connected with the first connector joint 30, and the switch 300 can be connected with the second connector joint group 40. The operator does not need to manually connect the cable again, and blind insertion of the server 200 and the switch 300 is realized.
[0070] It should be noted that in the embodiment of the present application, the cabinet 10 can be provided with slide rails or slide grooves, when the server 200 and the switch 300 are placed in the cabinet 10, the server 200 can be placed in the corresponding slide rail or slide groove, the switch 300 can be placed in the corresponding slide rail or slide groove, and the operator applies force to the server 200 and the switch 300 to push the server 200 and the switch 300 into the cabinet 10. In addition, the positions of the first connector joint 30 and the second connector joint group 40 can be set such that the first connector joint 30 corresponds to the server 200 and the second connector joint group 40 corresponds to the switch 300, so that once the server 200 is pushed into the cabinet 10 and the switch 300 is pushed into the cabinet 10, the server 200 can be connected with the first connector joint 30 and the switch 300 can be connected with the second connector joint group 40.
[0071] In addition, in the embodiment of the present application, the first connector joint 30 and the second connector joint group 40 are both joints for transmitting data, that is, after the first connector joint 30 and the second connector joint group 40 are connected with the server 200 and the switch 300 respectively, data can be transmitted between the server 200 and the switch 300.
[0072] In addition, in the embodiment of the present application, the switch 300 includes a data switch 302 and a management switch 301, and the outer wall of the connection frame 21 is further provided with a third connector joint group 90, which is used to connect the uplink port of the switch 300; wherein the third connector joint group 90 includes a third sub-joint 91 and a fourth sub-joint 92, the third sub-joint 91 is used to connect the uplink port of the management switch 301, and the fourth sub-joint 92 is used to connect the uplink port of the data switch 302. Through such a setting, once the switch 300 is connected with the server 200, data can be transmitted between the server 200 and the switch 300.
[0073] In addition, in the embodiment of the present application, the third connector group 90 is located in the accommodating cavity, and the third connector group 90 is connected with the uplink cable 001, and the uplink cable 001 is located in the accommodating cavity and passes out from the top of the cabinet 10. The third connector group 90 has a front surface and a back surface, and the back surface is located in the accommodating cavity and is connected with the uplink cable 001, and the uplink cable 001 passes through the connecting frame 21 and leads out from the top of the rear side of the cabinet 10. That is, in the embodiment of the present application, by arranging the second connector group 40 and the third connector group 90, the second connector group 40 is connected with the first connector 30, the downlink port of the switch 300 is connected with the second connector group 40, and the server 200 is connected with the first connector 30, so that the connection between the switch 300 and the server 200 is realized. The third connector group 90 is connected with the uplink port of the switch 300, so that once the switch 300 is connected with the server 200, the data transmission between the server 200 and the switch 300 can be realized.
[0074] In addition, when the third connector group 90 includes the third sub-connector 91 and the fourth sub-connector 92, the third sub-connector 91 has a front surface and a back surface, and the fourth sub-connector 92 also has a front surface and a back surface. The back surface of the third sub-connector 91 and the back surface of the fourth sub-connector 92 are located in the accommodating cavity of the connecting frame 21, and the back surface of the third sub-connector 91 and the back surface of the fourth sub-connector 92 are both connected with the uplink cable 001. The uplink cable 001 connected with the back surface of the third sub-connector 91 is used to connect the uplink management network port of the total switch 300 outside the cabinet 10, and the uplink cable 001 connected with the back surface of the fourth sub-connector 92 is used to connect the uplink data network port of the total switch 300 outside the cabinet 10.
[0075] In addition, in some embodiments, the cabinet 10 can have opposite front and rear sides, and the connecting frame 21 is connected with a rear cover. The connecting frame 21 faces the front side of the cabinet 10, and the rear cover faces the rear side of the cabinet 10. The rear cover covers the connecting frame 21 and shields the accommodating cavity.
[0076] Since the connecting frame 21 is connected with the rear cover, the rear cover can shield the accommodating cavity, and thus the rear cover further protects the descending cable 100 in the accommodating cavity. Since the connecting frame 21 is towards the front side of the cabinet 10, and the rear cover is towards the rear side of the cabinet 10, when the server 200 and the switch 300 are placed into the cabinet 10, the server 200 and the switch 300 can be placed into the cabinet 10 from the front side to the rear side of the cabinet 10, so that the server 200 can be directly connected with the first connector 30 on the connecting frame 21, and the switch 300 can be directly connected with the second connector group 40 on the connecting frame 21, so that from the front side to the rear side of the cabinet 10, the descending cable 100 cannot be seen, and from the rear side to the front side of the cabinet 10, the descending cable 100 cannot be seen. That is, by mounting the first connector 30 and the second connector group 40 on the connecting frame 21, when the server 200 and the switch 300 are placed into the cabinet 10, the server 200 can be directly connected with the first connector 30, and the switch 300 can be directly connected with the second connector group 40, and the operator cannot see the descending cable 100.
[0077] It should be noted that in the embodiment of the present application, the connecting frame 21 and the rear cover can be detachably connected. For example, the connecting frame 21 is provided with a clamping groove, and the rear cover is provided with a clamping buckle. When the connecting frame 21 needs to be connected with the rear cover, the clamping buckle can be clamped into the clamping groove to realize the connection of the connecting frame 21 and the rear cover. For another example, the connecting frame 21 is provided with a first clamping buckle, and the rear cover is provided with a second clamping buckle. When the connecting frame 21 needs to be connected with the rear cover, the first clamping buckle and the second clamping buckle can be connected. For another example, the connecting frame 21 is provided with a through hole, and the rear cover is provided with a through hole. The connecting frame 21 and the rear cover are connected through bolts. Of course, the connecting frame 21 and the rear cover can also be fixedly connected. For example, the connecting frame 21 and the rear cover are connected through welding. The specific connection mode of the connecting frame 21 and the rear cover is not limited in the embodiment of the present application.
[0078] In addition, in the embodiment of the present application, by arranging the connecting frame 21 and the rear cover, after the first connector 30 and the second connector group 40 are arranged on the connecting frame 21, the descending cable 100 connected by the first connector 30 and the second connector group 40 is located in the accommodating cavity surrounded by the connecting frame 21 and the rear cover, so that no matter from the front side to the rear side of the cabinet 10 or from the rear side to the front side of the cabinet 10, the operator cannot see the descending cable 100, so that the cabinet 10 is more tidy, and the descending cable 100 is avoided from being complex.
[0079] In addition, in some embodiments, as shown in FIG. 5, the connecting frame 21 and the rear cover can both be cross-shaped, the cabinet 10 has a first direction and a second direction intersecting with each other, the connecting frame 21 includes a first frame body 211 and a second frame body 212, the first frame body 211 extends along the first direction, the second frame body 212 extends along the second direction, and the first frame body 211 intersects with the second frame body 212; the first connector joint 30 is arranged on the first frame body 211, and the second connector joint group 40 is arranged on the second frame body 212.
[0080] Since the first frame body 211 extends along the first direction and the second frame body 212 extends along the second direction, the first connector joint 30 can be arranged on the first frame body 211 and the second connector joint group 40 can be arranged on the second frame body 212, and the extension direction of the first frame body 211 can ensure that a plurality of first connector joints 30 are arranged on the first frame body 211, thereby facilitating the arrangement of a plurality of servers 200 in the cabinet 10.
[0081] It should be noted that the first direction can be parallel to the direction of gravity, i.e., the first direction can be a vertical direction, and the second direction can be perpendicular to the first direction, i.e., the second direction can be a horizontal direction.
[0082] In addition, in some embodiments, the number of first connector joints 30 and the number of second connector joint groups 40 can both be multiple; the multiple first connector joints 30 are spaced apart along the first direction on the first frame body 211, and the multiple second connector joint groups 40 are spaced apart along the second direction on the second frame body 212; each first connector joint 30 is electrically connected to the second connector joint group 40 through the downlink cable 100.
[0083] Since the multiple first connector joints 30 are spaced apart along the first direction on the first frame body 211, a plurality of servers 200 can be arranged in the cabinet 10, and each server 200 is connected to one first connector joint 30. Since the multiple second connector joint groups 40 are spaced apart along the second direction on the second frame body 212, after the switch 300 is arranged in the cabinet 10, the multiple interfaces on the switch 300 can be respectively connected to the multiple second connector joint groups 40. Since each first connector joint 30 is electrically connected to the second connector joint group 40 through the downlink cable 100, it is equivalent to that one first connector joint 30 is electrically connected to one second connector joint group 40 through the downlink cable 100. Therefore, once a plurality of servers 200 are arranged in the cabinet 10 and the switch 300 is arranged in the cabinet 10, the multiple servers 200 can be electrically connected to the switch 300, so that data can be transmitted between the multiple servers 200 and the switch 300.
[0084] In addition, in some embodiments, a difference between lengths of the downlink cables 100 connecting each group of the first connector joints 30 and the second connector joint groups 40 is less than a preset value, wherein each group of the first connector joints 30 and the second connector joint groups 40 includes at least one first connector joint 30 and at least one second connector joint group 40.
[0085] Since the difference between lengths of the downlink cables 100 connecting each group of the first connector joints 30 and the second connector joint groups 40 is less than the preset value, it is equivalent that the different first connector joints 30 connect the different second connector joint groups 40 through the downlink cables 100, and the difference between lengths of the different downlink cables 100 is less than the preset value, so that the lengths of the different downlink cables 100 can be ensured to be substantially equal, so that the insertion loss of the link between the different first connector joints 30 and the corresponding second connector joint groups 40 can meet the requirements, and when the lengths of the downlink cables 100 are substantially equal, the processing burden and material cost caused by the inconsistent lengths of the downlink cables 100 can be reduced. That is, by setting the difference between lengths of the downlink cables 100 connecting each group of the first connector joints 30 and the second connector joint groups 40 to be less than the preset value, on the one hand, the requirement of the insertion loss can be met, and on the other hand, the efficiency of processing the downlink cables 100 can be improved, and the material cost of the downlink cables 100 can be reduced. Wherein, the insertion loss refers to the Ethernet KR protocol signal insertion loss SI requirement.
[0086] It should be noted that in the embodiments of the present application, the specific value of the preset value can be set according to actual needs, for example, the preset value can be 3cm, for example, the preset value can be 2cm, for example, the preset value can be 4cm. The specific value of the preset value is not limited in the embodiments of the present application.
[0087] For example, as shown in FIG. 4, in the plurality of first connector jacks 30 on the first frame 211, the first connector jacks 30 above the second frame 212 can be connected to the second connector jack groups 40 on the second frame 212 through the downlink cables 100, so that the first connector jacks 30 on the top of the first frame 211 are connected to the second connector jack groups 40 in the middle of the second frame 212 through the downlink cables 100, and the first connector jacks 30 close to the second frame 212 are connected to the second connector jack groups 40 at the edges of the second frame 212 through the downlink cables 100, so as to ensure that the length difference between the downlink cables 100 connecting each group of first connector jacks 30 and second connector jack groups 40 is less than a preset value. Similarly, in the plurality of first connector jacks 30 on the first frame 211, the first connector jacks 30 below the second frame 212 can be connected to the second connector jack groups 40 on the second frame 212 through the downlink cables 100, so that the first connector jacks 30 on the bottom of the first frame 211 are connected to the second connector jack groups 40 in the middle of the second frame 212 through the downlink cables 100, and the first connector jacks 30 close to the second frame 212 are connected to the second connector jack groups 40 at the edges of the second frame 212 through the downlink cables 100, so as to ensure that the length difference between the downlink cables 100 connecting each group of first connector jacks 30 and second connector jack groups 40 is less than a preset value.
[0088] In addition, in the embodiments of the present application, each group of first connector jacks 30 and second connector jack groups 40 can include one first connector jack 30 and one second connector jack group 40. Of course, each group of first connector jacks 30 and second connector jack groups 40 can include two first connector jacks 30 and two second connector jack groups 40. The embodiments of the present application are not limited in this regard.
[0089] In addition, in some embodiments, the switch 300 can include a data switch 302 and a management switch 301, the second connector jack group 40 includes a first sub-jack 41 and a second sub-jack 42, a plurality of first sub-jacks 41 are spaced apart along the second direction, and a plurality of second sub-jacks 42 are spaced apart along the second direction; the first sub-jack 41 is used to connect a downlink port of the management switch 301, and the second sub-jack 42 is used to connect a downlink port of the data switch 302; in the plurality of first connector jacks 30, one first connector jack 30 is connected to one first sub-jack 41 and one second sub-jack 42 through the downlink cable 100.
[0090] Since the plurality of first sub-joints 41 are spaced apart along the second direction, the plurality of second sub-joints 42 are spaced apart along the second direction, and the first sub-joints 41 and the second sub-joints 42 are spaced apart along the first direction, when the management switch 301 and the data switch 302 are placed in the cabinet 10, the management switch 301 can be connected to the first sub-joints 41, and the data switch 302 can be connected to the second sub-joints 42, that is, a plurality of downstream ports on the management switch 301 can be connected to the plurality of first sub-joints 41, and a plurality of downstream ports on the data switch 302 can be connected to the plurality of second sub-joints 42, ensuring that the management switch 301 and the data switch 302 are accurately connected. Since one first connector joint 30 is connected to one first sub-joint 41 and one second sub-joint 42 through the downstream cable 100, after the server 200 is placed in the cabinet 10 and the server 200 is connected to the first connector joint 30, the server 200 can be electrically connected to the management switch 301 and the data switch 302 at the same time, so that data can be transmitted between the server 200 and the management switch 301 and the data switch 302. That is, by arranging one first connector joint 30 to be connected to one first sub-joint 41 and one second sub-joint 42 through the downstream cable 100, it can be ensured that the server 200 can be electrically connected to the management switch 301 and the data switch 302 at the same time, so as to transmit data.
[0091] In the embodiments of the present application, the server 200 is internally provided with a first network card 210 and a second network card 220, the transmission speeds of the first network card 210 and the second network card 220 are different, the server 200 is provided with a connection joint 230, the first network card 210 and the second network card 220 are connected to the same connection joint 230, and the first connector joint 30 is used to connect the connection joint 230.
[0092] Since the first network card 210 and the second network card 220 are connected to the same connection joint 230, and the connection joint 230 is connected to the first connector joint 30, it is equivalent to reducing the number of connection joints 230 provided on the server 200, so that after the server 200 is placed in the cabinet 10, one first connector joint 30 can be connected to the connection joint 230 on one server 200. In addition, once the number of connection joints 230 on the server 200 is reduced, the cost of the server 200 can be reduced, avoiding the problem of high cost caused by arranging multiple connection joints 230 on the server 200. Moreover, connecting the first network card 210 and the second network card 220 to the same connection joint 230 can also reduce the total length of the downstream cable 100 connecting the first network card 210 and the connection joint 230 and the downstream cable 100 connecting the second network card 220 and the connection joint 230, achieving the purpose of saving the downstream cable 100.
[0093] In addition, in some embodiments, the server 200 has opposite front and rear ends, and the connection joint 230 is arranged at the rear end of the server 200.
[0094] By arranging the connection joint 230 at the rear end of the server 200, the connection joint 230 at the rear end can be directly connected with the first connector joint 30 on the connection frame 21 after the server 200 is placed in the cabinet 10. That is, arranging the connection joint 230 at the rear end of the server 200 can facilitate the connection of the server 200 with the first connector joint 30 after the server 200 is placed in the cabinet 10.
[0095] In addition, in some embodiments, the connection frame 21 has opposite two ends along the first direction, and the two ends of the connection frame 21 are respectively connected with the top and the bottom of the cabinet 10.
[0096] By connecting the two ends of the connection frame 21 with the top and the bottom of the cabinet 10 respectively, the stability of the connection frame 21 in the cabinet 10 can be ensured, and the problem of the connection frame 21 possibly shaking in the cabinet 10 and thus making it difficult to connect the server 200 and the switch 300 with the first connector joint 30 and the second connector joint group 40 respectively can be avoided. That is, by arranging the two ends of the connection frame 21 to be connected with the top and the bottom of the cabinet 10 respectively, the server 200 and the switch 300 can be conveniently arranged in the cabinet 10, and the electrical connection between the server 200 and the switch 300 can be ensured.
[0097] It should be noted that, in the embodiments of the present application, the two ends of the connection frame 21 can be fixedly connected with the top and the bottom of the cabinet 10 respectively, for example, the two ends of the connection frame 21 are welded with the top and the bottom of the cabinet 10 respectively. Of course, the two ends of the connection frame 21 can also be detachably connected with the top and the bottom of the cabinet 10 respectively, for example, the two ends of the connection frame 21 are respectively provided with through holes, the top and the bottom of the cabinet 10 are respectively provided with through holes, a bolt passes through the through hole of the top of the cabinet 10 and the through hole of one end of the connection frame 21 to connect the one end of the connection frame 21 with the top of the cabinet 10, and a bolt passes through the through hole of the bottom of the cabinet 10 and the through hole of the other end of the connection frame 21 to connect the other end of the connection frame 21 with the bottom of the cabinet 10. For another example, the two ends of the connection frame 21 are respectively provided with first buckles, the top and the bottom of the cabinet 10 are respectively provided with second buckles, and the first buckles are buckled with the second buckles to connect the two ends of the connection frame 21 with the top and the bottom of the cabinet 10 respectively. The specific manner of connecting the two ends of the connection frame 21 with the top and the bottom of the cabinet 10 is not limited in the embodiments of the present application.
[0098] In addition, in some embodiments, the cabinet 10 has intersecting first and second directions, and the connection frame 21 can be located at a middle position of the cabinet 10 along the second direction.
[0099] By setting the connecting frame 21 at the middle position of the cabinet 10, when connecting the first connector on the first frame 211 of the connecting frame 21 with the second connector on the second frame 212 through the downlink cable 100, the problem of the downlink cable 100 being too long can be avoided. The connecting frame 21 is cross-shaped, the first frame 211 extends along the first direction, and the second frame 212 extends along the second direction. Therefore, after the plurality of servers 200 are placed in the cabinet 10 and the switch 300 is placed in the cabinet 10, the two sides of the switch 300 are equivalent to having the servers 200. If the connecting frame 21 is not at the middle position, in order to connect the switch 300 with the second connector joint group 40 on the connecting frame 21, the position of the second connector joint group 40 needs to be adjusted, thereby increasing the length of the downlink cable 100, and the problem of the downlink cable 100 being too long can occur, affecting the insertion loss. In the embodiment of the present application, the connecting frame 21 is set at the middle position of the cabinet 10, which can avoid the problem of the downlink cable 100 being too long.
[0100] In addition, in some embodiments, along the second direction, the size of the second frame 212 can be smaller than the size of the cabinet 10.
[0101] Since the size of the second frame 212 is smaller than the size of the cabinet 10, when the connecting frame 21 is arranged in the cabinet 10, the second frame 212 will not contact the cabinet 10, thereby facilitating the arrangement of the connector in the cabinet 10. In addition, by setting the size of the second frame 212 to be smaller than the size of the cabinet 10, material costs can also be saved. If the size of the second frame 212 is equal to or greater than the size of the cabinet 10, when the connecting frame 21 is arranged in the cabinet 10, the second frame 212 can contact the inner wall of the cabinet 10, making it difficult to arrange the connector in the cabinet 10.
[0102] It should be noted that along the second direction, the size of the cabinet 10 can be the width of the cabinet 10, that is, the distance between the two opposite side walls of the cabinet 10 along the second direction. Along the second direction, the size of the second frame 212 can be the length of the second frame 212, that is, the distance between the two opposite ends of the second frame 212 along the second direction.
[0103] In addition, in some embodiments, the cabinet 10 is provided with a power supply frame 60, and the power supply frame 60 is provided with a power management module 51.
[0104] By arranging the power supply frame 60 in the cabinet 10, the power management module 51 can be directly arranged in the power supply frame 60, thereby facilitating the arrangement of the power management module 51. That is, by arranging the power supply frame 60, the power management module 51 can be conveniently arranged in the cabinet 10.
[0105] In addition, in some embodiments, the cabinet 10 is provided with a power supply row 70, and the power supply row 70 is provided with a first power supply connector and a second power supply connector. The first power supply connector is used to be connected with the server 200 to supply power to the server 200, and the second power supply connector is used to be connected with the switch 300 to supply power to the switch 300.
[0106] By arranging the power supply row 70 and the first power supply connector and the second power supply connector on the power supply row 70, when the server 200 and the switch 300 are placed in the cabinet 10, the server 200 can be connected with the first power supply connector, and the switch 300 can be connected with the second power supply connector, so that the server 200 and the switch 300 can be powered at the same time. That is, by arranging the power supply row 70 and the first power supply connector and the second power supply connector on the power supply row 70, centralized power supply to the server 200 and the switch 300 can be realized, so that the power supply to the server 200 and the switch 300 is more unified. The server 200 and the switch 300 are both provided with a direct current power supply module, the power supply row 70 is electrically connected with the direct current power supply module, the switch 300 and the server 200 are centrally powered, and the gate 52 can be electrically connected with the direct current power supply module in the server 200 and the direct current power supply module in the switch 300, so as to uniformly manage the power supply of the server 200 and the switch 300.
[0107] The power supply row 70 can include a positive electrode row 71 and a negative electrode row 72.
[0108] In addition, in the embodiment of the present application, when the cabinet 10 is provided with the power supply frame 60, the power supply frame 60 can be provided with a power supply device 601, the power supply device 601 is electrically connected with the power supply row 70, and the power supply device 601 is electrically connected with the power management module 51. The power supply device 601 can be a PSU power supply.
[0109] It should be noted that the power supply device 601 can be electrically connected with the power management backboard 50, so that the power supply device 601 can supply power to the gate 52 on the power management backboard 50, so that the gate 52 can normally operate.
[0110] In addition, in some embodiments, the cabinet 10 is provided with a water distribution device 80, and the water distribution device 80 includes a water inlet pipe 81 and a drain pipe 82. The water inlet pipe 81 is communicated with the drain pipe 82, and the water inlet pipe 81 is used to cool and dissipate heat for the server 200 and the switch 300.
[0111] By setting the water distribution device 80, after the server 200 and the switch 300 are placed in the cabinet 10, the server 200 and the switch 300 can be connected with the water distribution device 80, so that after the cooling water enters through the water inlet pipe 81, the cooling water can cool and dissipate heat for the server 200 and the switch 300, and then the cooling water flows out from the water outlet pipe 82. That is, by setting the water distribution device 80, the server 200 and the switch 300 in the cabinet 10 can be conveniently cooled and dissipated.
[0112] In addition, in the embodiment of the present application, when the power supply row 70 and the water distribution device 80 are arranged in the cabinet 10, at this time, the power supply row 70 and the water distribution device 80 can be distributed along the second direction, that is, the power supply row 70 is arranged on one side of the cabinet 10, and the water distribution device 80 is arranged on the other side of the cabinet 10, so as to avoid the problem that the power supply row 70 and the water distribution device 80 may affect each other.
[0113] In the embodiment of the present application, since the connecting frame 21 has the accommodating cavity, and the outer wall of the connecting frame 21 is provided with the plurality of first connector joints 30 and the plurality of second connector joint groups 40, and the connecting frame 21 is located in the cabinet 10, when the server 200 and the switch 300 are arranged in the cabinet 10, the server 200 can be connected with the connecting pins on the first connector joints 30, and the switch 300 can be connected with the connecting pins on the second connector joint groups 40, that is, when the server 200 and the switch 300 are pushed into the cabinet 10, after the server 200 and the switch 300 are pushed into the cabinet 10, the server 200 is connected with the connecting pins on the first connector joints 30, and the switch 300 is connected with the connecting pins on the second connector joint groups 40, so that the blind insertion of the server 200 and the switch 300 is realized. In addition, since the first connector joints 30 and the second connector joint groups 40 are partially inserted into the accommodating cavity, and each of the first connector joints 30 and the second connector joint groups 40 is electrically connected through the downlink cable 100 located in the accommodating cavity, after the server 200 and the switch 300 are pushed into the cabinet 10, the server 200 is connected with the first connector joints 30, and the switch 300 is connected with the second connector joint groups 40, and the first connector joints 30 and the second connector joint groups 40 are electrically connected through the downlink cable 100, so that the server 200 and the switch 300 are electrically connected, and the downlink cable 100 is located in the accommodating cavity, which is equivalent to that the downlink cable 100 is accommodated in the connecting frame 21, and the connecting frame 21 can protect the downlink cable 100. In addition, the power supply management unit can uniformly manage the power supply of the server 200 and the switch 300. That is, in the embodiment of the present application, by arranging the connecting frame 21 in the cabinet 10 of the server 200, arranging the first connector joints 30 and the second connector joint groups 40 on the connecting frame 21, arranging the downlink cable 100 in the accommodating cavity of the connecting frame 21, and connecting the back surface of the first connector joints 30 and the back surface of the second connector joint groups 40 with the downlink cable 100 respectively, once the server 200 and the switch 300 are arranged in the cabinet 10, the server 200 is connected with the first connector joints 30, and the switch 300 is connected with the second connector joint groups 40, so that the blind insertion of the server 200 and the switch 300 is realized, and the downlink cable 100 is located in the accommodating cavity, so that the user cannot see the downlink cable 100 from the outside of the cabinet 10, and the problem of complex downlink cable 100 on the cabinet 10 is avoided. In addition, the connecting frame 21 can protect the cable, and the problem of easy damage of the cable is avoided, so that the safety of the cabinet 10 can be improved. In addition, since the cable is located in the accommodating cavity, the first connector joints 30 and the second connector joint groups 40 can be electrically connected through a shorter cable, so that the cable can be saved, and the cost can be reduced.In addition, the power supply management unit can perform unified power supply management on the server 200 and the switch 300, so that the server 200 and the switch 300 can be centrally powered.
[0114] The embodiment of the application provides a server 200 system, which comprises the server 200, the switch 300 and the server 200 cabinet in any one of the above-mentioned embodiments.
[0115] The server 200 and the switch 300 are located in the cabinet body 10, and the server 200 is connected with the first connector joint 30, and the switch 300 is connected with the second connector joint group 40. The server 200 is connected with the fourth connector joint 501, and the switch 300 is connected with the fifth connector joint 502, so that the power supply management module 51 controls the power supply of the server 200 and / or the switch 300 through the gate 52, and performs unified power supply management on the server 200 and the switch 300.
[0116] In the embodiment of the present application, since the connecting frame 21 has the accommodating cavity, and the outer wall of the connecting frame 21 is provided with the plurality of first connector joints 30 and the plurality of second connector joint groups 40, and the connecting frame 21 is located in the cabinet 10, when the server 200 and the switch 300 are arranged in the cabinet 10, the server 200 can be connected with the connecting pins on the first connector joints 30, and the switch 300 can be connected with the connecting pins on the second connector joint groups 40, that is, when the server 200 and the switch 300 are pushed into the cabinet 10, after the server 200 and the switch 300 are pushed into the cabinet 10, the server 200 is connected with the connecting pins on the first connector joints 30, and the switch 300 is connected with the connecting pins on the second connector joint groups 40, so that the blind insertion of the server 200 and the switch 300 is realized. In addition, since the first connector joints 30 and the second connector joint groups 40 are partially inserted into the accommodating cavity, and each of the first connector joints 30 and the second connector joint groups 40 is electrically connected through the downward cable 100, the downward cable 100 is located in the accommodating cavity, therefore, after the server 200 and the switch 300 are pushed into the cabinet 10, the server 200 is connected with the first connector joints 30, and the switch 300 is connected with the second connector joint groups 40, and the first connector joints 30 and the second connector joint groups 40 are electrically connected through the downward cable 100, so that the server 200 and the switch 300 are electrically connected, and the downward cable 100 is located in the accommodating cavity, which is equivalent to that the downward cable 100 is accommodated in the connecting frame 21, and the connecting frame 21 can protect the downward cable 100. That is, in the embodiment of the present application, by arranging the connecting frame 21 in the cabinet 10 of the server 200, arranging the first connector joints 30 and the second connector joint groups 40 on the connecting frame 21, arranging the downward cable 100 in the accommodating cavity of the connecting frame 21, and connecting the back surface of the first connector joints 30 and the back surface of the second connector joint groups 40 with the downward cable 100 respectively, and arranging the server 200 and the switch 300 in the cabinet 10, the server 200 is connected with the first connector joints 30, and the switch 300 is connected with the second connector joint groups 40, so that the blind insertion of the server 200 and the switch 300 is realized, and the downward cable 100 is located in the accommodating cavity, so that the user cannot see the downward cable 100 from the outside of the cabinet 10, and the problem of complex downward cable 100 on the cabinet 10 is avoided. In addition, the connecting frame 21 can protect the downward cable 100, and the problem that the downward cable 100 is easily damaged is avoided, so that the safety of the cabinet 10 is improved. In addition, the downward cable 100 is located in the accommodating cavity, so that the first connector joints 30 and the second connector joint groups 40 can be electrically connected through the shorter downward cable 100, so that the downward cable 100 can be saved, and the cost is reduced, so that the safety of the server 200 system is improved, and the cost is reduced.In addition, the power supply management unit can perform unified power supply management on the server 200 and the switch 300, so that the server 200 and the switch 300 can be centrally powered. That is, the server 200 system in the embodiment of the application can not only realize blind insertion of the server 200 and the switch 300, but also perform unified power supply management on the server 200 and the switch 300, and can also improve the security of the server 200 system and reduce the cost.
[0117] In addition, in some embodiments, as shown in FIG. 10, the server 200 is internally provided with a first network card 210 and a second network card 220, the transmission speeds of the first network card 210 and the second network card 220 are different, the server 200 is provided with a connection joint 230, the first network card 210 and the second network card 220 are connected to the same connection joint 230, and the connection joint 230 is connected to the first connector joint 30.
[0118] Since the first network card 210 and the second network card 220 are connected to the same connection joint 230, and the connection joint 230 is connected to the first connector joint 30, the number of connection joints 230 provided on the server 200 is equivalent to being reduced. Therefore, after the server 200 is placed in the cabinet 10, one first connector joint 30 can be connected to the connection joint 230 on one server 200. In addition, the number of connection joints 230 on the server 200 is reduced, which can reduce the cost of the server 200 and avoid the problem of high cost caused by providing multiple connection joints 230 on the server 200. In addition, connecting the first network card 210 and the second network card 220 to the same connection joint 230 can also reduce the total length of the downlink cable 100 connected between the first network card 210 and the connection joint 230 and between the second network card 220 and the connection joint 230, thereby achieving the purpose of saving the downlink cable 100.
[0119] It should be noted that in the embodiment of the application, the first network card 210 can be a network card for transmitting 1G-BASE-KR management port signals, and the second network card 220 can be a network card for transmitting 100G-BASE-KR4 data port signals. In addition, the server 200 can transmit data in the 100G-BASE-KR4 Ethernet protocol and transmit data in the 1G-BASE-KR Ethernet protocol. Among them, the 100G-BASE-KR4 Ethernet protocol is used to transmit management data, and the 1G-BASE-KR Ethernet protocol is used to transmit service data.
[0120] In addition, in some embodiments, the server 200 has opposite front and rear ends, and the connection joint 230 is arranged at the rear end of the server 200.
[0121] By setting the connecting joint 230 at the rear end of the server 200, the connecting joint 230 at the rear end can be directly connected with the first connector joint 30 on the connecting frame 21 after the server 200 is placed in the cabinet 10. That is, by setting the connecting joint 230 at the rear end of the server 200, the server 200 can be conveniently connected with the first connector joint 30 after being placed in the cabinet 10.
[0122] In addition, in some embodiments, the cabinet 10 is provided with a power supply row 70, the power supply row 70 is provided with a first power supply joint and a second power supply joint; the server 200 and the switch 300 are connected with the first power supply joint and the second power supply joint respectively. The server 200 is provided with a first power supply plug joint, the switch 300 is internally provided with a power supply module, the switch 300 is provided with a second power supply plug joint, the power supply module is electrically connected with the second power supply plug joint, the first power supply plug joint is connected with the first power supply joint, and the second power supply plug joint is connected with the second power supply joint.
[0123] Since the switch 300 is internally provided with the power supply module, and the power supply module is electrically connected with the second power supply plug joint, once the server 200 and the switch 300 are placed in the cabinet 10, the first power supply plug joint is connected with the first power supply joint on the power supply row 70, and the second power supply plug joint is connected with the second power supply joint, the power supply row 70 can supply power to the server 200 through the first power supply joint and supply power to the switch 300 through the second power supply joint. Generally, the voltage required by the server 200 is different from the voltage required by the switch 300, so that once the power of the power supply row 70 is transmitted to the switch 300, the power supply module can convert the power, so that the converted power meets the requirements of the switch 300. That is, by internally providing the switch 300 with the power supply module, once the server 200 and the switch 300 are placed in the cabinet 10 and connected with the power supply row 70, the power supply row 70 can realize centralized power supply to the server 200 and the switch.
[0124] It should be noted that the server 200 is provided with a centralized power supply module 201, and the centralized power supply module 201 is electrically connected with the first power supply plug joint. The centralized power supply module 201 can be a PAB centralized power supply module 201.
[0125] In addition, in the embodiments of the present application, the switch 300 has an uplink port and a downlink port, the downlink port is connected with the second connector joint group 40 on the connecting frame 21, the uplink port of the switch 300 is connected with the third connector joint group 90 on the connecting frame 21, and the back of the third connector joint group 90 is connected with an uplink cable 001, the uplink cable 001 is located in the accommodating cavity of the connecting frame 21 and passes through the connecting frame 21 and is led out from the top end of the rear side of the cabinet 10.
[0126] In the description of the application, reference has been made to descriptive terms such as "one embodiment", "some embodiments", "an embodiment", "example", "specific example" or "some examples" etc. It is emphasized that each of these terms refers to a specific feature, structure, material or characteristic described in connection with a particular embodiment or example. The descriptive terms are not necessarily referring to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics can be combined in any suitable manner in one or more embodiments or examples.
[0127] Although embodiments of this application have been shown and described, it is to be understood that various modifications, substitutions, combinations, and variations can be made therein without departing from the spirit and scope of the application. The scope of the application is defined by the appended claims and their equivalents.
Claims
1. A server cabinet, characterized in that, The server cabinet comprises a cabinet body, a connecting frame arranged in the cabinet body, and a power supply management unit; The connecting frame has a receiving cavity, and a plurality of first connector joints and a plurality of second connector joint groups are arranged on the outer wall of the connecting frame, the first connector joints are configured to connect servers, the second connector joint groups are configured to connect downstream ports of switches, the first connector joints and the second connector joint groups are partially inserted into the receiving cavity, and each of the first connector joints and the second connector joint groups is electrically connected by a downstream cable, which is located in the receiving cavity; The power supply management unit is configured to connect the servers and the switches and to uniformly manage power supply of the servers and the switches; the power supply management unit comprises a power supply centralized management backboard, and a fourth connector joint, a fifth connector joint, and a sixth connector joint are arranged on the power supply centralized management backboard, the fourth connector joint is configured to connect the servers, the fifth connector joint is configured to connect the switches, and the sixth connector joint is connected with a power management module; The power supply centralized management backboard is provided with a gate, the power management module is electrically connected with the gate, the fourth connector joint and the fifth connector joint are electrically connected with the gate, and the power management module controls power supply of the servers and / or the switches through the gate to uniformly manage power supply of the servers and the switches.
2. The server cabinet of claim 1, wherein, The cabinet body has opposite front and rear sides, and the connecting frame is connected with a rear cover; The connecting frame faces the front side of the cabinet body, the rear cover faces the rear side of the cabinet body, the rear cover covers the connecting frame, and the receiving cavity is shielded.
3. The server cabinet of claim 2, wherein, The connecting frame and the rear cover are both cross-shaped, the cabinet body has intersecting first and second directions, the connecting frame comprises a first frame body and a second frame body, the first frame body extends along the first direction, the second frame body extends along the second direction, and the first frame body intersects with the second frame body; The first connector joints are arranged on the first frame body, and the second connector joint groups are arranged on the second frame body.
4. The server cabinet of claim 3, wherein, A plurality of the first connector joints are spaced apart along the first direction on the first frame body, and a plurality of the second connector joint groups are spaced apart along the second direction on the second frame body.
5. The server cabinet of claim 4, wherein, The length difference between the downstream cables connecting each group of the first connector joints and the second connector joint groups is less than a preset value, wherein each group of the first connector joints and the second connector joint groups comprises at least one first connector joint and at least one second connector joint group.
6. The server cabinet of claim 4, wherein, The switches comprise data switches and management switches, each of the second connector joint groups comprises a first sub-joint and a second sub-joint, a plurality of the first sub-joints are spaced apart along the second direction, and a plurality of the second sub-joints are spaced apart along the second direction; The first sub-connector is configured to connect a downlink port of the management switch, and the second sub-connector is configured to connect a downlink port of the data switch. In the plurality of first connector joints, one first connector joint is connected to one first sub-connector and one second sub-connector through a downlink cable.
7. The server cabinet of claim 1, wherein, The connection frame has opposite two ends in the first direction, and the two ends of the connection frame are connected to the top and the bottom of the cabinet body, respectively.
8. The server cabinet of claim 1, wherein, The cabinet body has intersecting first and second directions, and the connection frame is located in the middle of the cabinet body in the second direction.
9. The server cabinet of claim 3, wherein, In the second direction, the size of the second frame body is smaller than the size of the cabinet body.
10. The server cabinet of claim 1, wherein, The first connector joint and the second connector joint group each have a front surface and a back surface, the front surface is provided with a connection pin and is located outside the accommodating cavity, the connection pin is configured to connect a server or a switch, and the back surface is located in the accommodating cavity, and the back surfaces of the first connector joint and the second connector joint group are electrically connected through a downlink cable.
11. The server cabinet of claim 1, wherein, The switch includes a data switch and a management switch, and a third connector joint group is further provided on the outer wall of the connection frame, and the third connector joint group is configured to connect an uplink port of the switch. The third connector joint group includes a third sub-connector and a fourth sub-connector, the third sub-connector is configured to connect an uplink port of the management switch, and the fourth sub-connector is configured to connect an uplink port of the data switch.
12. The server cabinet of claim 11, wherein, The third connector joint group is located in the accommodating cavity, and an uplink cable is connected to the third connector joint group, the uplink cable is located in the accommodating cavity and passes out from the top of the cabinet body.
13. The server cabinet of claim 1, wherein, The server is internally provided with a first network card and a second network card, the transmission speeds of the first network card and the second network card are different, the server is provided with a connection joint, the first network card and the second network card are connected to the same connection joint, and the first connector joint is configured to be connected to the connection joint.
14. The server cabinet of claim 13, wherein, The server has opposite front and rear ends, and the connection joint is arranged at the rear end of the server.
15. The server cabinet of claim 1, wherein, The gate is configured to alternately conduct each fourth connector joint and each fifth connector joint, so that the power management module is conducted with each fourth connector joint or the power management module is conducted with each fifth connector joint.
16. The server cabinet of claim 1, wherein, The cabinet body is provided with a power supply frame, and the power supply frame is provided with the power management module.
17. The server cabinet of claim 1, wherein, The cabinet body is provided with a power supply row, the power supply row is provided with a first power supply joint and a second power supply joint, the first power supply joint is configured to be connected to the server to supply power to the server, and the second power supply joint is configured to be connected to the switch to supply power to the switch.
18. The server cabinet of claim 1, wherein, The cabinet body is provided with a distribution header, the distribution header includes a water inlet pipe and a drain pipe, the water inlet pipe is in communication with the drain pipe, and the water inlet pipe is configured to cool and dissipate heat for the server and the switch.
19. A server system, characterized by The server system comprises a server, a switch and the server cabinet of any one of claims 1-18; The server and the switch are located in the cabinet body, and the server is connected with the first connector joint, and the switch is connected with the second connector joint group; The server is connected with the fourth connector joint, and the switch is connected with the fifth connector joint, so that the power management module controls the power supply of the server and / or the switch through the gate, and the server and the switch are uniformly managed.
20. The server system of claim 19, wherein, The server is internally provided with a first network card and a second network card, the transmission speeds of the first network card and the second network card are different, the server is provided with a connection joint, the first network card and the second network card are connected to the same connection joint, and the connection joint is connected with the first connector joint.
21. The server system of claim 20, wherein, The server has opposite front end and rear end, and the connection joint is arranged at the rear end of the server.
22. The server system of claim 19, wherein, The cabinet body is provided with a power supply row, and the power supply row is provided with a first power supply joint and a second power supply joint; The server and the switch are respectively connected with the first power supply joint and the second power supply joint.
Citation Information
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