A box communication structure
By designing a container interconnection structure, the HVAC system and power system of the containerized data center are interconnected, solving the problems of complex construction and inconvenient maintenance in existing technologies, ensuring the structural strength of the container and avoiding system interference, and improving connectivity efficiency and security.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI SILANG WANWEI COMPUTING TECH CO LTD
- Filing Date
- 2025-07-30
- Publication Date
- 2026-07-14
AI Technical Summary
Existing container connection methods are prone to damaging the container structure, are complex to construct and inconvenient to maintain, and are likely to cause mutual interference between the power system and the HVAC system.
Design a box-type interconnection structure, including a top plate, a bottom plate, side plates, and a support plate, to form an accommodating channel. HVAC pipes and cable trays are installed in the channel to achieve interconnection between the HVAC system and the power system. The connection with the inlet and outlet is achieved by connecting the top plate without damaging the box structure.
It simplifies the construction process, improves connectivity efficiency, ensures the structural strength of the enclosure, facilitates later maintenance, avoids mutual interference between systems, and improves system safety.
Smart Images

Figure CN224503700U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of container connection technology, and in particular to a container connection structure. Background Technology
[0002] In the deployment of containerized data centers, multiple containers typically need to be interconnected through HVAC piping, power systems, etc. In existing technologies, the following solutions are usually adopted: (1) making holes or welding in the container body to connect two adjacent containers; (2) digging trenches and using underground pipes to connect two adjacent containers; (3) installing "flying wires" on the top of the containers to connect two adjacent containers.
[0003] Traditional methods of connecting containers either damage the container's structure or involve complex construction and inconvenient maintenance. Furthermore, traditional connection methods can lead to the cross-deployment of various systems, which can easily cause mutual interference between the power system and the HVAC system.
[0004] Therefore, a box-connection structure is urgently needed to solve the above-mentioned technical problems. Utility Model Content
[0005] The purpose of this utility model is to provide a box-connection structure that simplifies construction, facilitates later maintenance, and improves system safety while ensuring the strength of the box structure.
[0006] To achieve this objective, the present invention adopts the following technical solution:
[0007] This utility model provides a container connection structure, which is installed between two adjacent containerized data center containers, and the sides of the containers are provided with inlets and outlets. The container connection structure includes a top plate, a bottom plate, two side plates, and two support plates. A top plate is positioned directly opposite the bottom of the inlet / outlet; a bottom plate is positioned below the top plate and spaced apart from the top plate along a first direction; the first direction is vertical; two side plates are spaced apart between the top plate and the bottom plate along a second direction, and are respectively perpendicular to the top plate and the bottom plate; the second direction forms an angle with the first direction; the two side plates, the top plate, and the bottom plate can form a receiving channel extending along a third direction; the third direction, the second direction, and the first direction form angles with each other; two support plates are spaced apart within the receiving channel along the second direction; the two support plates can divide the receiving channel into a first functional channel, a maintenance channel, and a second functional channel arranged along the second direction; HVAC pipes are arranged along the third direction in the first functional channel; cable trays are arranged along the third direction in the second functional channel.
[0008] In some embodiments, the above-described enclosure connection structure further includes: a first partition disposed in the first functional channel and capable of dividing the first functional channel into a first sub-channel and a second sub-channel arranged along the first direction; a second partition disposed in the second functional channel and capable of dividing the second functional channel into a third sub-channel and a fourth sub-channel arranged along the first direction; the HVAC duct is disposed in the first sub-channel along the third direction; and the cable tray is disposed in the third sub-channel along the third direction.
[0009] In some embodiments, a patch panel is provided in the second sub-channel along the third direction; the fourth sub-channel is a reserved expansion channel.
[0010] In some embodiments, the position of the first partition in the first direction is adjustable to adjust the size of the first sub-channel and the size of the second sub-channel; and / or, the position of the second partition in the first direction is adjustable to adjust the size of the third sub-channel and the size of the fourth sub-channel.
[0011] In some embodiments, a plurality of first mounting positions are provided on the inner sidewall of the first functional channel along the first direction; the first partition can be selectively mounted at the first mounting position; and / or, a plurality of second mounting positions are provided on the inner sidewall of the second functional channel along the first direction; the second partition can be selectively mounted at the second mounting position.
[0012] In some embodiments, in the second direction, the size of the first functional channel is equal to the size of the second functional channel.
[0013] In some embodiments, in the second direction, the ratio of the size of the first functional channel to the size of the maintenance channel ranges from 1:3 to 1:1.
[0014] In some embodiments, a first limiting component is provided in the first functional channel; the HVAC pipe is disposed on the first limiting component.
[0015] In some embodiments, a second limiting component is provided in the second functional channel; the cable tray is disposed on the second limiting component.
[0016] In some embodiments, steps are provided on the opposite sides of the two side panels; the top of the steps is flush with the top panel.
[0017] The beneficial effects of this utility model are:
[0018] This utility model provides a container connection structure, which includes a top plate directly opposite the bottom of the inlet and outlet on the side of the containerized data center, a bottom plate spaced apart from the top plate along a first direction, and two side plates spaced apart between the top and bottom plates along a second direction. The two side plates, the top plate, and the bottom plate can form an accommodating channel extending along a third direction. At the same time, two support plates are spaced apart along the second direction in this accommodating channel. The two support plates can divide the accommodating channel into a first functional channel, a maintenance channel, and a second functional channel arranged along the second direction. HVAC pipes are installed in the first functional channel along a third direction, and cable trays are installed in the second functional channel along a third direction. This allows for the interconnection of the HVAC systems of two adjacent containerized data centers when connecting their respective containers. The top panels of the connecting structure can be aligned with the bottom of the side entrances and exits of the container. This allows staff to move between the two containers. Furthermore, by connecting the HVAC pipes inside the two adjacent containers to the HVAC pipes in the first functional channel of the connecting structure, the HVAC systems of the two containers can be interconnected. Similarly, by running the cable from one of the two containers through the cable tray in the second functional channel of the connecting structure and connecting it to the cable from the other container, the electrical systems of the two containers can be interconnected. In the process of interconnecting the HVAC and electrical systems of two adjacent boxes using the above-mentioned box-connection structure, it is only necessary to align the top plate with the inlet and outlet, and then connect the pipes and cables inside the two boxes through the first and second functional channels. There is no need to damage the box structure or carry out additional construction, which ensures the overall structural strength of the box, simplifies the work steps, and improves the connection efficiency between the two adjacent boxes. At the same time, a maintenance channel is also set between the first and second functional channels. This maintenance channel separates the HVAC system and the electrical system, which not only facilitates later maintenance and repair, but also avoids mutual interference between the HVAC system and the electrical system, thus improving the system safety. Attached Figure Description
[0019] Figure 1 This utility model provides a box-connection structure and a structural diagram of the box;
[0020] Figure 2 This is a structural diagram of a box-connected structure provided in a specific embodiment of this utility model.
[0021] In the picture:
[0022] 1. Top plate; 11. Maintenance entrance; 2. Bottom plate; 3. Side plate; 4. Support plate; 5. First functional passage; 51. First sub-passage; 52. Second sub-passage; 53. First limiting component; 6. Maintenance passage; 7. Second functional passage; 71. Third sub-passage; 72. Fourth sub-passage; 73. Second limiting component; 8. First partition; 9. Second partition; 10. Box body; 12. Steps; 100. Box body connecting structure;
[0023] X1, first direction; X2, second direction; X3, third direction. Detailed Implementation
[0024] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, the accompanying drawings show only the parts relevant to the present invention, not the entire structure.
[0025] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0026] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0027] In the description of this embodiment, the terms "upper," "lower," "left," and "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings. They are used only for ease of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meaning.
[0028] Combination Figure 1 , Figure 2 As shown, this embodiment provides a container connection structure 100, which is disposed between two adjacent containerized data center containers 10. An entrance / exit is provided on the side of each containerized data center container 10. The container connection structure 100 includes: a top plate 1, a bottom plate 2, two side plates 3, and two support plates 4.
[0029] The aforementioned top plate 1 is positioned directly opposite the entrance / exit located on the side of the containerized data center housing 10. It is easy to understand that the opposite sides of the top plate 1 are respectively positioned opposite the entrances / exits of two adjacent housings 10. Workers can walk on this top plate 1 to move between the adjacent containerized data center housings 10.
[0030] like Figure 2 As shown, the bottom plate 2 is disposed below the top plate 1 and is spaced apart from the top plate 1 along a first direction X1. Here, the first direction X1 is, for example, a vertical direction.
[0031] The two side plates 3 are spaced apart along the second direction X2 between the top plate 1 and the bottom plate 2, and are respectively perpendicular to the top plate 1 and the bottom plate 2. Here, the second direction X2 forms an angle with the first direction X1, for example, 90°. The two side plates 3, the top plate 1, and the bottom plate 2 can form a receiving channel extending along a third direction X3. Here, the third direction X3 forms an angle with both the second direction X2 and the first direction X1, for example, 90°. It is easy to understand that the third direction X3 is the connecting direction of the inlet and outlet of two adjacent boxes 10.
[0032] The two support plates 4 are spaced apart along the second direction X2 within the aforementioned receiving channel. The two support plates 4 divide the receiving channel into a first functional channel 5, a maintenance channel 6, and a second functional channel 7, arranged along the second direction X2. Figure 1 Taking the shown perspective as an example, the middle part of the aforementioned accommodating channel is the maintenance channel 6, the left side is the first functional channel 5, and the right side is the second functional channel 7. In other words, the maintenance channel 6 is adjacent to the first functional channel 5 and the second functional channel 7, respectively. HVAC ducts are installed in the first functional channel 5 along a third direction X3, and cable trays are installed in the second functional channel 7 along a third direction X3.
[0033] Therefore, the enclosure connection structure 100 provided in this embodiment includes a top plate 1 directly opposite the bottom of the inlet and outlet on the side of the containerized data center enclosure 10, a bottom plate 2 spaced apart from the top plate 1 along the first direction X1, and two side plates 3 spaced apart between the top plate 1 and the bottom plate 2 along the second direction X2. The two side plates 3, the top plate 1, and the bottom plate 2 can form an accommodating channel extending along the third direction X3. At the same time, two support plates 4 are spaced apart along the second direction X2 in this accommodating channel. The two support plates 4 can divide the accommodating channel into a first functional channel 5, a maintenance channel 6, and a second functional channel 7 arranged along the second direction X2. HVAC pipes are installed in the first functional channel 5 along the third direction X3, and cable trays are installed in the second functional channel 7 along the third direction X3. This allows for the interconnection of the HVAC systems of two adjacent containerized data centers when connecting two adjacent containerized data center units 10. The top plate 1 of the connecting structure 100 can be positioned so that the opposite sides of the top plate 1 face the bottom of the entrance / exit on the side of the unit 10. This allows staff to move between the two adjacent containerized data center units 10. Furthermore, by connecting the HVAC pipes inside the two adjacent containerized data center units 10 to the HVAC pipes in the first functional channel 5 of the connecting structure 100, the HVAC systems of the two adjacent units 10 can be interconnected. Similarly, by running the cable inside one of the two adjacent units 10 through the cable tray in the second functional channel 7 of the connecting structure 100 and connecting it to the cable inside the other unit 10, the electrical systems of the two adjacent units 10 can be interconnected. In the process of interconnecting the HVAC system and electrical system of two adjacent boxes 10 using the aforementioned box connection structure 100, it is only necessary to align the top plate 1 with the inlet and outlet, and then connect the pipes and cables inside the two boxes 10 through the first functional channel 5 and the second functional channel 7. There is no need to damage the structure of the box 10 or carry out additional construction, which ensures the overall structural strength of the box 10, simplifies the work steps, and improves the connection efficiency of the two adjacent boxes 10. At the same time, a maintenance channel 6 is also provided between the first functional channel 5 and the second functional channel 7. This maintenance channel 6 separates the HVAC system and the electrical system, which can facilitate later maintenance and repair, and also avoid mutual interference between the HVAC system and the electrical system, thereby improving the safety of the system.
[0034] As described above, when the HVAC system or electrical system requires maintenance, personnel can enter the maintenance passage 6 and move along it to the location to be maintained (e.g., the bottom of the two containerized data centers connected by the containerization structure) for maintenance. It is easy to understand that personnel can enter the maintenance passage 6 in the following ways: a maintenance entrance 11 is provided on the top plate 1 of the containerization structure, and a cover plate is movably connected to the opening of the maintenance entrance 11. When the HVAC system or electrical system requires maintenance, personnel can open the cover plate and enter the maintenance passage 6 through the maintenance entrance 11. The cover plate and maintenance entrance 11 can be movably connected in the following ways: one side of the cover plate is hinged to the opening of the maintenance entrance 11, allowing the maintenance entrance 11 to be opened by lifting the cover plate; or, a sliding structure similar to a slide rail is provided between the cover plate and the top plate 1, allowing the maintenance entrance 11 to be opened by sliding the cover plate. Those skilled in the art can flexibly configure this according to actual usage requirements, and no further limitations are made here.
[0035] In some embodiments, such as Figure 2 As shown, the aforementioned box-type connecting structure 100 further includes a first partition 8 and a second partition 9. The first partition 8 is disposed inside the first functional channel 5 and is capable of dividing the first functional channel 5 into a first sub-channel 51 and a second sub-channel 52 arranged along a first direction X1. In other words, the first partition 8 is disposed parallel to the second direction X2 inside the first functional channel 5, dividing the first functional channel 5 into a first sub-channel 51 and a second sub-channel 52 located on both sides of the first partition 8. Figure 1 Taking the view shown as an example, the channel above the first partition 8 is the first sub-channel 51, and the channel below the first partition 8 is the second sub-channel 52.
[0036] like Figure 2 As shown, the second partition 9 is disposed inside the second functional channel 7 and can divide the second functional channel 7 into a third sub-channel 71 and a fourth sub-channel 72 arranged along the first direction X1. In other words, the second partition 9 is disposed parallel to the second direction X2 inside the second functional channel 7, dividing the second functional channel 7 into the third sub-channel 71 and the fourth sub-channel 72 located on both sides of the second partition 9. Figure 1 Taking the view shown as an example, the third sub-channel 71 is located above the second partition 9, and the fourth sub-channel 72 is located below the second partition 9.
[0037] The aforementioned HVAC ducts are installed in the first sub-channel 51 along the third direction X3. The aforementioned cable trays are installed in the third sub-channel 71 along the third direction X3.
[0038] With the above settings, the first functional channel 5 and the second functional channel 7 can be divided into more functional sub-channels, which enables the enclosure connection structure 100 to connect more lines or pipes, thus improving the practicality of the enclosure connection structure 100.
[0039] For example, a patch panel is provided in the second sub-channel 52 along the third direction X3. This patch panel is a low-voltage patch panel. It is easy to understand that "low-voltage" here refers to a safe voltage system below 36V. Low-voltage fiber optic lines and other lines can be installed on this patch panel. The fourth sub-channel 72 is a reserved expansion channel to facilitate future functional expansion.
[0040] In some embodiments, the position of the first partition 8 in the first direction X1 is adjustable to adjust the size of the first sub-channel 51 and the second sub-channel 52. It is easy to understand that the "size of the first sub-channel 51 and the size of the second sub-channel 52" here refers to the dimensions (height) of the first sub-channel 51 and the second sub-channel 52 in the first direction X1. Furthermore, since the first sub-channel 51 and the second sub-channel 52 are formed by the first partition 8 separating the first functional channel 5, and the size of the first functional channel 5 in the first direction X1 is a fixed value, the sizes of the first sub-channel 51 and the second sub-channel 52 are inversely related; that is, when the first sub-channel 51 increases in size, the second sub-channel 52 decreases, and vice versa.
[0041] The position of the second partition 9 in the first direction X1 is adjustable to adjust the size of the third sub-channel 71 and the fourth sub-channel 72. Similarly, the "size of the third sub-channel 71 and the fourth sub-channel 72" here refers to the dimensions (height) of the third sub-channel 71 and the fourth sub-channel 72 in the first direction X1. Since the third sub-channel 71 and the fourth sub-channel 72 are formed by the second partition 9 separating the second functional channel 7, and the dimension of the second functional channel 7 in the first direction X1 is a fixed value, the sizes of the third sub-channel 71 and the fourth sub-channel 72 are inversely related; that is, when the third sub-channel 71 increases, the fourth sub-channel 72 decreases, and vice versa.
[0042] It is easy to understand that the two schemes described above, "the first partition 8 is adjustable in position in the first direction X1" and "the second partition 9 is adjustable in position in the first direction X1," can be set simultaneously or selectively. That is, in the above-mentioned box-connecting structure 100, only the first partition 8 can be set to be adjustable in position in the first direction X1, only the second partition 9 can be set to be adjustable in position in the first direction X1, or both the first partition 8 and the second partition 9 can be set to be adjustable in position in the first direction X1. Those skilled in the art can flexibly set it according to actual usage needs, and no further limitations are made here.
[0043] The above-described configuration allows the enclosure connection structure 100 to connect two adjacent containerized data center enclosures 10. The positions of the first partition 8 and the second partition 9 in the first direction X1 can be adjusted to change the size of the first sub-channel 51, the second sub-channel 52, the third sub-channel 71, and the fourth sub-channel 72, respectively. This allows the enclosure connection structure 100 to accommodate pipes or lines of different sizes. For example, if the HVAC pipes are large while the low-voltage cables on the patch panel are small, adjusting the position of the first partition 8 in the first direction X1 increases the size of the first sub-channel 51 and decreases the size of the second sub-channel 52, providing more space for the HVAC pipes. Similarly, if cables on cable trays require more space for heat dissipation, the size of the third sub-channel 71 can be appropriately increased.
[0044] In some embodiments, multiple first mounting positions are provided on the inner sidewall of the first functional channel 5 along the first direction X1. The first partition 8 can be selectively installed at one of the first mounting positions. For example, the first partition 8 can be installed at the first mounting position by: providing multiple mounting through holes along the first direction X1 on the two inner sidewalls of the first functional channel 5 (i.e., side plate 3 and support plate 4), with the mounting through holes on the two inner sidewalls corresponding one-to-one in the second direction X2; and fixing the first partition 8 by bolts passing through the mounting through holes. This allows the first partition 8 to be installed in different positions of the mounting through holes, thus enabling position adjustment of the first partition 8 in the first direction X1. Alternatively, multiple mounting rails extending along a third direction X3 are provided on the two inner sidewalls of the first functional channel 5 (i.e., side plate 3 and support plate 4), with the mounting rails on the two inner sidewalls corresponding one-to-one in the second direction X2. The first partition 8 can be inserted into different positions of the mounting rails along the third direction X3, similarly enabling position adjustment of the first partition 8 in the first direction X1.
[0045] And / or,
[0046] Multiple second mounting positions are provided on the inner wall of the second functional channel 7 along the first direction X1. The second partition 9 can be selectively installed in one of the second mounting positions. For example, the second partition 9 can be installed in the second mounting position by: providing multiple mounting through holes along the first direction X1 on the two inner walls of the second functional channel 7 (i.e., side plate 3 and support plate 4), with the mounting through holes on the two inner walls corresponding one-to-one in the second direction X2; and fixing the second partition 9 by bolts passing through the mounting through holes. This allows the second partition 9 to be installed in different positions of the mounting through holes, thus achieving position adjustment of the second partition 9 in the first direction X1. Alternatively, multiple mounting rails extending along the third direction X3 are provided on the two inner walls of the second functional channel 7 (i.e., side plate 3 and support plate 4), with the mounting rails on the two inner walls corresponding one-to-one in the second direction X2. The second partition 9 can be inserted into the mounting rails at different positions along the third direction X3, similarly achieving position adjustment of the first partition 9 in the first direction X1.
[0047] The above settings enable the adjustment of the position of the first partition 8 and / or the second partition 9 in the first direction X1. The structure is simple, easy to manufacture, and easy to operate.
[0048] In some embodiments, in the second direction X2, the dimensions of the first functional channel 5 and the second functional channel 7 are equal. That is, the width of the first functional channel 5 is equal to the width of the second functional channel 7. In other words, the distance between the support plate 4 located in the left half of the box-connecting structure 100 and the side plate 3 located in the left half of the box-connecting structure 100 is the same as the distance between the support plate 4 located in the right half of the box-connecting structure 100 and the side plate 3 located in the right half of the box-connecting structure 100. By this arrangement, the support positions of the support plates 4 on the top plate 1 and the bottom plate 2 can be symmetrically distributed within the receiving channel, thereby ensuring uniform stress on the top plate 1, the bottom plate 2, and the two support plates 4, optimizing the stress distribution of the box-connecting structure 100, and indirectly improving the structural strength of the box-connecting structure 100.
[0049] In some embodiments, the ratio of the size of the first functional channel 5 to the size of the maintenance channel 6 in the second direction X2 ranges from 1:3 to 1:1. For example, the size of the first functional channel 5 in the second direction X2 is L1, and the size of the maintenance channel 6 in the second direction X2 is L2. For instance, a ratio of 1:3 means 3L1 = L2; a ratio of 1:2 means 2L1 = L2; a ratio of 2:3 means 3L1 = 2L2; a ratio of 5:6 means 6L1 = 5L2; and a ratio of 1:1 means L1 = L2. Through this setting, the sizes of the first functional channel 5 and the maintenance channel 6 can be kept within a suitable range, ensuring both the passability of the first functional channel 5 and the maintenance channel 6, and the structural strength of the enclosure connection structure 100.
[0050] In some embodiments, such as Figure 1 As shown, a first limiting component 53 is provided within the first functional channel 5. The HVAC pipe is disposed on the first limiting component 53. The first limiting component 53 is, for example, a "U"-shaped or semi-circular arc-shaped limiting member, with the HVAC pipe disposed in the middle recessed portion of the "U"-shaped or semi-circular arc-shaped limiting member. It is easy to understand that the extension direction of the middle recessed portion of the "U"-shaped or semi-circular arc-shaped limiting member is the same as the extension direction of the HVAC pipe, that is, extending along the third direction X3. Furthermore, the "U"-shaped or semi-circular arc-shaped limiting member can be a single integral structure, penetrating the first functional channel 5 along the third direction X3; the "U"-shaped or semi-circular arc-shaped limiting member can also be a segmented structure, with multiple "U"-shaped or semi-circular arc-shaped limiting members arranged at intervals along the third direction X3 inside the first functional channel 5. Both of the above-mentioned settings can achieve the function of limiting the movement of HVAC pipes. Those skilled in the art can flexibly set them according to actual usage needs, and no further restrictions will be imposed here.
[0051] The above settings can prevent HVAC pipes from shaking or shifting within the first functional channel 5, thus improving the stability of the HVAC system connection.
[0052] In some embodiments, such as Figure 1As shown, a second limiting component 73 is provided within the second functional channel 7. The cable tray is mounted on this second limiting component 73. The second limiting component 73 may be, for example, two limiting blocks or two limiting posts spaced apart, with the cable tray positioned between the two limiting blocks or two limiting posts. It is easy to understand that the limiting blocks or limiting posts should extend along the first direction, with every two limiting blocks or every two limiting posts forming a group. Therefore, multiple groups of limiting blocks or limiting posts can be spaced apart within the second functional channel 7 in the third direction X3. Of course, the limiting blocks or limiting posts can also be replaced with long strip-shaped limiting plates extending along the third direction. Both of these configuration methods can achieve the limiting effect on the cable tray. Those skilled in the art can flexibly configure them according to actual usage requirements; further limitations are not specified here.
[0053] This configuration prevents the cable tray from swaying or shifting within the second functional channel 7, thus improving the stability of the power system connection.
[0054] In some embodiments, such as Figure 1 As shown, steps 12 are respectively provided on the opposite sides of the two side panels 3 of the box-type connecting structure 100. That is, with Figure 1 Taking the shown viewpoint as an example, a step 12 is provided on the left side of the side panel 3 located in the left half of the box-connecting structure 100, and a step 12 is also provided on the right side of the side panel 3 located in the right half of the box-connecting structure 100. The top of the step 12 is flush with the top plate 1 of the box-connecting structure 100. This arrangement facilitates workers to walk from the ground to the top plate 1 of the box-connecting structure 100, improving the practicality of the box-connecting structure 100.
[0055] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make various obvious changes, readjustments, and substitutions without departing from the protection scope of this utility model. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.
Claims
1. A container connection structure, disposed between two adjacent containerized data center containers (10), wherein the sides of the containers (10) are provided with inlets and outlets, characterized in that, include: The top plate (1) is positioned directly opposite the bottom of the inlet and outlet; A base plate (2) is disposed below the top plate (1) and spaced apart from the top plate (1) along a first direction (X1); the first direction (X1) is a vertical direction; Two side plates (3) are spaced apart between the top plate (1) and the bottom plate (2) along a second direction (X2), and are respectively perpendicular to the top plate (1) and the bottom plate (2); the second direction (X2) is set at an angle to the first direction (X1); the two side plates (3), the top plate (1) and the bottom plate (2) can form a receiving channel extending along a third direction (X3); the third direction (X3), the second direction (X2) and the first direction (X1) are set at angles to each other; Two support plates (4) are spaced apart in the receiving channel along the second direction (X2); the two support plates (4) can divide the receiving channel into a first functional channel (5), a maintenance channel (6), and a second functional channel (7) arranged along the second direction (X2); A heating and ventilation pipe is provided in the first functional channel (5) along the third direction (X3); a cable tray is provided in the second functional channel (7) along the third direction (X3).
2. The box-type communication structure according to claim 1, characterized in that, Also includes: A first partition (8) is disposed in the first functional channel (5) and is capable of dividing the first functional channel (5) into a first sub-channel (51) and a second sub-channel (52) arranged along the first direction (X1). The second partition (9) is disposed in the second functional channel (7) and is capable of dividing the second functional channel (7) into a third sub-channel (71) and a fourth sub-channel (72) arranged along the first direction (X1); The HVAC duct is arranged in the first sub-channel (51) along the third direction (X3); the cable tray is arranged in the third sub-channel (71) along the third direction (X3).
3. The box-type communication structure according to claim 2, characterized in that, A patch panel is provided in the second sub-channel (52) along the third direction (X3); the fourth sub-channel (72) is a reserved expansion channel.
4. The box-connection structure according to claim 2, characterized in that, The position of the first partition (8) in the first direction (X1) is adjustable to adjust the size of the first sub-channel (51) and the size of the second sub-channel (52); And / or, The position of the second partition (9) in the first direction (X1) is adjustable to adjust the size of the third sub-channel (71) and the size of the fourth sub-channel (72).
5. The box-connection structure according to claim 4, characterized in that, The inner wall of the first functional channel (5) is provided with a plurality of first installation positions along the first direction (X1); the first partition (8) can be selectively installed at one of the first installation positions; And / or, The inner wall of the second functional channel (7) is provided with a plurality of second installation positions along the first direction (X1); the second partition (9) can be selectively installed at one of the second installation positions.
6. The box-type communication structure according to claim 1, characterized in that, In the second direction (X2), the size of the first functional channel (5) is equal to the size of the second functional channel (7).
7. The box-connection structure according to claim 6, characterized in that, In the second direction (X2), the ratio of the size of the first functional channel (5) to the size of the maintenance channel (6) is in the range of 1:3 to 1:
1.
8. The box-type communication structure according to any one of claims 1 to 7, characterized in that, The first functional channel (5) is provided with a first limiting component (53); the HVAC pipe is provided on the first limiting component (53).
9. The box-type communication structure according to any one of claims 1 to 7, characterized in that, The second functional channel (7) is provided with a second limiting component (73); the cable tray is provided on the second limiting component (73).
10. The box-type communication structure according to any one of claims 1 to 7, characterized in that, Steps (12) are provided on the opposite sides of the two side plates (3); the top of the steps (12) is flush with the top plate (1).