Modular deployment structure of server cabinet with suspension support device and application thereof

CN121487177BActive Publication Date: 2026-08-07中科云达(北京)科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
中科云达(北京)科技有限公司
Filing Date
2026-01-06
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

然而,该技术聚焦于服务器单元在标准化机柜或机箱内部的安装与维护体验,并未涉及服务器设备整体在野外复杂地面环境下的外部部署、固定与稳定支撑问题

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Abstract

The application relates to the technical field of server installation equipment, in particular to a server cabinet modular deployment structure fusing a suspension support device and application thereof, which comprises a hanger group and a support group; the support group comprises a pair of main support rods, elastic sleeve sets a connecting rod on the upper end of the main support rods, the connecting rod is hingedly connected with the top side of the hanger group; two pairs of auxiliary support rods, the outward end of the two auxiliary support rods on the same side is rotationally connected with the bottom end of a main support rod, a linkage rod is threadedly connected between the opposite ends of the two coaxially arranged auxiliary support rods, and the threaded area of the linkage rod is divided into two sections and oppositely arranged. Through the sliding cooperation of the arc groove at the bottom of the hanger and the special bolt at the upper end of the bracket, combined with the linkage of the pull rod, four brackets can independently swing back and forth to adaptively level when the ground is uneven; meanwhile, the elastic hinge formed by the connecting rod and the spring between the main support rod and the hanger realizes automatic horizontal fine adjustment in the left-right direction, so that the server module can always be horizontally and stably suspended under complex terrain.
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Description

Technical Field

[0001] This invention relates to the field of server installation equipment technology, specifically to a modular deployment structure for server racks that integrates suspension support devices and its application. Background Technology

[0002] With the rapid development of information technology, especially in special application scenarios such as emergency communication, field exploration, and military command, the demand for mobile data centers that can be quickly deployed and operate stably is becoming increasingly urgent.

[0003] Patent application CN202122905627.X discloses a structure for deploying a distributed blockchain server, including a chassis and servers. Multiple servers are installed within the chassis via server mounting racks. Each server mounting rack includes an upper mounting plate, a lower mounting plate, and a rear mounting plate. The upper and lower mounting plates are connected to the rear mounting plate via horizontal plates. The upper and lower mounting plates are positioned vertically, and the servers are installed between the upper and lower mounting plates, with one end of each server resting on the rear mounting plate. This utility model's distributed blockchain server deployment structure, including the chassis, ensures a clean and tidy interior after server installation by using multiple fiber optic cable adapters to bundle the cables within the chassis, maintaining a neat and aesthetically pleasing appearance.

[0004] Current server technology primarily focuses on the reliability and aesthetics of the equipment itself. However, this technology concentrates on the installation and maintenance experience of server units within standardized racks or chassis, without addressing the issues of external deployment, fixation, and stable support of the entire server equipment in complex outdoor environments.

[0005] Currently, the common practice for deploying servers outdoors is to use traditional ruggedized racks or simple brackets. However, these solutions have significant limitations: First, deployment efficiency is low, relying on manual handling and leveling, making rapid response difficult; second, environmental adaptability is poor, unable to automatically adapt to uneven ground, leading to uneven stress on the equipment and risks of vibration and tilting; third, stability is insufficient, especially on soft ground where there is a lack of effective anchoring mechanisms, making it susceptible to displacement or tipping due to external forces. Although solutions such as containerized data centers exist, their large size and reliance on heavy transport vehicles cannot meet the needs for miniaturized, highly mobile, and agile deployment. Summary of the Invention

[0006] In order to overcome the deficiencies in the prior art, the purpose of this invention is to provide a modular deployment structure for server racks with integrated suspension support devices and its application, so as to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, the present invention provides a modular deployment structure for server racks with integrated suspension support devices, including rack groups for modularly supporting server equipment; and support groups symmetrically and movably connected to both sides of the rack groups for unfolding on the ground to provide support.

[0008] The support group includes:

[0009] A pair of main support rods with a frame structure, with a connecting rod elastically sleeved at the upper end, and the connecting rod is hinged to the top side of the bracket assembly;

[0010] Two pairs of auxiliary support rods, with the two auxiliary support rods on the same side rotatably connected to the bottom end of a main support rod at their outward ends, and a linkage rod threaded between the opposite ends of the two coaxial auxiliary support rods, with the threaded area of ​​the linkage rod divided into two segments and arranged in opposite directions. By rotating the linkage rod, the two coaxial auxiliary support rods are driven to move synchronously towards or in opposite directions, thereby driving a pair of main support rods to retract or expand synchronously.

[0011] Several support blocks are fixed to the outer end of the auxiliary support rod and hinged to the bottom end of the main support rod;

[0012] Several ground anchors are correspondingly hinged to the bottom of the support block;

[0013] The outer wall of the hinge shaft of the ground anchor is provided with a toothed column, and the bottom end of the main support rod is embedded with a linkage toothed block, which meshes with the toothed column. When the main support rod rotates from the retracted state to the extended state, the meshing transmission between the linkage toothed block and the toothed column drives the ground anchor to flip out from the bottom of the support block and insert into the soil to form a support pre-tightened state.

[0014] As a further improvement to this technical solution, the bracket assembly includes a pair of hangers, several brackets, and several support rods; each pair of brackets is slidably hung below the hanger; several support rods are inserted horizontally and vertically at intervals between two brackets on the same side to form a multi-layer bearing plane for supporting the server equipment; the side wall of the bracket and at the end of the support rod are fitted with a stop block for clamping the end of the server equipment.

[0015] As a further improvement to this technical solution, clamps are fixed at both ends of the bottom of the hanger, and arc grooves are opened through the side walls of the clamps. The upper end of the bracket is provided with a flat block with holes and is engaged with the clamps. Then, special bolts are slidably fitted through the arc grooves. A pull rod is fitted at one end of a pair of special bolts on the same side and threaded with a nut. Several brackets swing back and forth under the hanger to form a vertical arrangement.

[0016] As a further improvement to this technical solution, protruding columns are fixed on both sides of the head end of the special bolt, and pressure columns are fixed on both sides of the pull rod. The protruding columns and pressure columns are clamped on both sides of the flat block at the upper end of the bracket, and the pull rod stabilizes the front and rear spacing of several brackets, thereby adjusting the suspension posture synchronously by sliding along the arc groove.

[0017] As a further improvement to this technical solution, the bracket has several equally spaced slots on its inner side, the inner end of the slots is enlarged and is adapted to be inserted into one side of the support rod; a locking post is embedded on the front side of the bracket and between every two adjacent slots, the locking post is mushroom-shaped and is adapted to be engaged with the locking opening on the side wall of the stop block.

[0018] As a further improvement to this technical solution, each bottom end of the main support rod is provided with a rod groove, and a square sliding groove is provided through the upper side wall of the rod groove. The linkage tooth block is composed of a rounded cuboid and several tooth blocks provided on one side wall. The linkage tooth block is engaged and slides with the rod groove. A square rod is inserted into the other side wall of the linkage tooth block and slides up and down with the square rod. The outer end of the square rod is fixed to the position of the linkage tooth block by a nut.

[0019] As a further improvement to this technical solution, the top surface of the support block and near the secondary support rod is provided with an opening, the bottom end of the main support rod is placed in the opening and rotatably connected by a pin; the bottom surface of the support block is provided with a groove that communicates with the opening, the ground anchor is fitted and engaged with the groove, and the toothed column is rotatably connected to the side wall of the groove on the central axis by a pin.

[0020] As a further improvement to this technical solution, the ground anchor is flat and its top surface is provided with a material distribution slope that protrudes in the center line area. The long side wall of the support block is provided with a groove that communicates with the top of the groove. The depth of the groove is greater than the thickness of the ground anchor.

[0021] As a further improvement to this technical solution, it also includes a line support rod that is slidably disposed on the top of a pair of hangers, wherein the top surface of the line support rod is rotatably fitted with several line clips for fixing the cable.

[0022] This invention also provides the application of a modular deployment structure for server racks with integrated suspension support devices, which is used for the rapid deployment and stable support of server equipment in outdoor and field mobile command posts.

[0023] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0024] 1. The modular deployment structure of the server rack with integrated suspension support device and its application achieve rapid adaptive leveling and stable suspension. Through the sliding engagement of the arc groove at the bottom of the hanger and the special bolt at the top of the bracket, combined with the linkage of the tie rod, the four brackets can independently swing back and forth to adaptively level themselves when the ground is uneven. At the same time, the main support rod and the hanger are connected by an elastic hinge consisting of a connecting rod and a spring, which realizes automatic horizontal fine adjustment in the left and right directions, thereby ensuring that the server module always maintains a horizontal and stable suspension in complex terrain.

[0025] 2. The modular deployment structure of the server rack integrated suspension support device and its application provide linked self-anchoring support, significantly improving the stability of soft foundations. When the support assembly is deployed, the linkage toothed block at the bottom of the main support rod engages with the toothed column on the ground anchor, automatically driving the ground anchor to flip out and insert into the ground. This design achieves simultaneous completion of support and anchoring, significantly improving the resistance to overturning and subsidence on soft soil.

[0026] 3. The modular deployment structure of this integrated suspension support device for server racks and its application features adaptability to different ground surfaces and self-cleaning capabilities, enhancing reliability and flexibility. Through a sliding, interconnected toothed block design, it can disengage from the ground anchor on hard surfaces, adapting to various ground types. Simultaneously, the material distribution slope on the top surface of the ground anchor and the groove on the side wall of the support block effectively drain soil brought in during anchor retrieval, preventing jamming and ensuring long-term reliable operation of the mechanism. Attached Figure Description

[0027] The accompanying drawings described herein are for illustrative purposes only and are not intended to limit the scope of the invention in any way. Furthermore, the shapes and proportions of the components in the drawings are merely illustrative to aid in understanding the invention and do not specifically limit the shapes and proportions of the components. Those skilled in the art, guided by the teachings of this invention, will select various possible shapes and proportions to implement the invention according to specific circumstances.

[0028] Figure 1 This is a schematic diagram of the overall assembly structure of the present invention;

[0029] Figure 2 For the present invention Figure 1 The main view;

[0030] Figure 3 This is a schematic diagram of the mounting bracket assembly structure of the present invention;

[0031] Figure 4 This is a schematic diagram of the hanger structure of the present invention;

[0032] Figure 5 This is a split view of a pair of brackets of the present invention;

[0033] Figure 6This is an exploded view of the line support rod of the present invention;

[0034] Figure 7 This is a schematic diagram of the support assembly structure of the present invention;

[0035] Figure 8 This is an exploded view of the main support rod of the present invention;

[0036] Figure 9 This is an exploded view of the secondary support rod of the present invention;

[0037] Figure 10 This is a split view of the support block and ground anchor of the present invention;

[0038] Figure 11 This is a schematic diagram of the support assembly structure from the bottom view of the present invention;

[0039] Figure 12 This is a split view of the bottom of the support block of the present invention;

[0040] The meanings of the labels in the diagram are as follows:

[0041] 100. Hanger assembly; 110. Hanger bracket; 111. Clamping plate; 112. Arc groove; 113. Hinge block; 114. Support shaft; 115. Connecting shaft; 120. Bracket; 121. Slot; 122. Locking post; 130. Support rod; 140. Stop block; 150. Special bolt; 151. Protruding post; 160. Tie rod; 161. Pressure post; 170. Cable support rod; 171. Cable clamp;

[0042] 200. Support assembly; 210. Main support rod; 211. Rod groove; 212. Slide groove; 213. Thickened shaft; 214. Insertion hole; 220. Connecting rod; 221. Spring; 230. Secondary support rod; 231. Linkage rod; 232. Support block; 2321. Through opening; 2322. Groove; 2323. Leakage groove; 240. Ground anchor; 241. Tooth column; 242. Spring piece; 243. Material distribution slope; 250. Linkage tooth block; 260. Rubber wheel; 261. Fixing sleeve. Detailed Implementation

[0043] The details of the present invention can be more clearly understood by referring to the accompanying drawings and the description of specific embodiments. However, the specific embodiments of the present invention described herein are for illustrative purposes only and should not be construed as limiting the invention in any way. Under the teachings of this invention, those skilled in the art will conceive of any possible variations of the invention, all of which should be considered within the scope of the invention. The terms "installation" and "connection" should be interpreted broadly, referring to direct connection as well as indirect connection through an intermediate medium.

[0044] The terms "central axis," "vertical," "horizontal," "front," "rear," "upper," "lower," "left," "right," "top," "bottom," "inner," and "outer" used herein to indicate orientation or positional relationships are based on the orientation or positional relationships shown in the accompanying drawings and are used only for the convenience of describing the invention and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, in the description of the invention, "a number" means two or more, unless otherwise explicitly specified.

[0045] Please see Figures 1-6 As shown, this invention provides a modular deployment structure for server racks with integrated suspension support devices, which is used for the rapid deployment and stable support of server equipment in outdoor and field mobile command posts. The deployment structure includes a rack assembly 100 for modularly supporting server equipment; and a support assembly 200, symmetrically and movably connected to both sides of the rack assembly 100, for unfolding on the ground to provide support.

[0046] Specifically, the mounting bracket assembly 100 includes a pair of hangers 110, several brackets 120, and several support rods 130; each pair of brackets 120 is slidably hung below the hanger 110; several support rods 130 are horizontally and vertically spaced between two brackets 120 on the same side, forming a multi-layered bearing plane for supporting the server equipment; a stop block 140 is snapped into the side wall of the bracket 120 and at the end of the support rod 130 to clamp the end of the server equipment, so that the server equipment is restricted in all directions and stably supported; the length of the support rod 130 is greater than the length of the server, so as to adjust the front and rear spacing of the bracket 120 to adapt to the placement of the server.

[0047] Furthermore, the bracket 120 has several equally spaced slots 121 on its inner side. The inner end of the slot 121 is enlarged and is adapted to fit and insert into one side of the support rod 130, thereby forming a limiting structure to ensure that the support rod 130 will not slide left or right and slip off. On the front side of the bracket 120, and between every two adjacent slots 121, there is a locking post 122. The locking post 122 is mushroom-shaped and is adapted to fit and engage with the side wall locking slot of the stop block 140, thereby forming a limiting structure to ensure that the stop block 140 stably supports the front and rear ends of the server.

[0048] Furthermore, to ensure the server equipment can be vertically suspended on uneven outdoor ground, clamping plates 111 are fixed at both ends of the bottom of the hanger 110, and the two are welded together to form an integral structure. A connecting shaft 115 is inserted between a pair of hangers 110 to adjust the left and right spacing to match the width of the server, and is positioned by bolts on the bottom surface of the hanger 110. An arc groove 112 is provided through the side wall of the clamping plate 111, and a flat block with a hole is provided at the upper end of the bracket 120 and is engaged with the clamping plate 111. A special bolt 150 is then used to slide through the arc groove 112. A pull rod 160 is fitted at one end of a pair of special bolts 150 on the same side and threaded with a nut. Several brackets 120 swing back and forth below the hanger 110 to form a vertical arrangement, so that several servers are suspended by several brackets 120 and the angle with the hanger 110 is adaptively adjusted through the arc groove 112 to maintain vertical hanging.

[0049] Specifically, in order to allow the bracket 120 to slide freely, protruding posts 151 are fixed on both sides of the head end of the special bolt 150, and pressing posts 161 are fixed on both sides of the pull rod 160. The protruding posts 151 and pressing posts 161 are clamped on both sides of the flat block at the upper end of the bracket 120 to avoid clamping the clamping plate 111. Then, the pull rod 160 stabilizes the front and rear distance of several brackets 120, and then slides synchronously along the arc groove 112 to adjust the suspension posture.

[0050] Furthermore, the deployment structure also includes a cable support rod 170 slidably mounted on the top of a pair of hangers 110. Several cable clips 171 are rotatably sleeved on the top surface of the cable support rod 170 for fixing cables. A support shaft 114 is sleeved on the top surface of the hanger 110 through a pair of fixing rings. The two ends of the cable support rod 170 are fixed with bushings that are tightly fitted with the support shaft 114 and can slide. Adjusting the position of the cable support rod 170 to suspend the cable makes it convenient to connect the server with supporting equipment such as power supply and monitoring.

[0051] like Figures 7-12 As shown, the support assembly 200 includes a pair of main support rods 210 in a frame structure, two pairs of auxiliary support rods 230, several support blocks 232, and several ground anchors 240. The upper ends of the two vertical rods of the main support rods 210 are elastically fitted with connecting rods 220, which are hinged to the top side of the hanger assembly 100. Both ends of the side wall of the hanger 110 are fixedly fitted with hinge blocks 113, and the upper end of the connecting rod 220 is rotatably connected to the hinge blocks 113 by a pin. The lower end of the connecting rod 220 is fixedly fitted with a round rod, which is inserted and slidably connected to the upper end of the main support rod 210. A spring 221 is fitted on the outside of the round rod, and the two ends of the spring 221 are fixedly connected to the lower end of the connecting rod 220 and the upper end of the main support rod 210, respectively, thus forming an elastic connection between the main support rod 210 and the hanger 110.

[0052] When the main support rod 210 is placed on uneven outdoor ground, it is vertically suspended below the bracket 110 due to the weight of the server. Therefore, this flexible setting automatically adjusts the unfolding angle, allowing the server to automatically adjust its horizontal level. The height of the main support rod 210 is greater than the height of the bracket 120, so that the server equipment is supported off the ground, preventing it from touching the ground and getting damp and dirty.

[0053] Furthermore, the two auxiliary support rods 230 on the same side are rotatably connected to the bottom ends of the two vertical rods of a main support rod 210 at their outward ends, thereby unfolding the pair of main support rods 210 to form a stable support state with a large ground contact area; a linkage rod 231 is threadedly connected between the opposite ends of the two coaxial auxiliary support rods 230, and the threaded area of ​​the linkage rod 231 is divided into two sections and arranged in opposite directions. By rotating the linkage rod 231, the two coaxial auxiliary support rods 230 are driven to move synchronously towards or in opposite directions, thereby driving the pair of main support rods 210 to retract or unfold synchronously. A lever is inserted through the middle of the linkage rod 231, and the linkage rod 231 is continuously rotated by alternately moving the lever back and forth.

[0054] Furthermore, several support blocks 232 are fixed to the outer ends of the secondary support rods 230 and welded into an integral structure; the support blocks 232 are hinged to the bottom ends of the vertical rods of the main support rods 210; when the distance between a pair of secondary support rods 230 is adjusted, the angle between the main support rods 210 and the support blocks 232 is automatically adjusted, and the main support rods 210 are simultaneously extended and retracted.

[0055] Furthermore, several ground anchors 240 are correspondingly hinged to the bottom of the support block 232; the outer wall of the hinge shaft of the ground anchor 240 is provided with a toothed column 241, and the bottom end of the main support rod 210 is embedded with a linkage toothed block 250, which meshes with the toothed column 241; when the main support rod 210 rotates from the retracted state to the extended state, the ground anchor 240 is driven to flip out from the bottom of the support block 232 and insert into the soil to form a support pre-tightening state through the meshing transmission of the linkage toothed block 250 and the toothed column 241, making the support more secure on soft ground such as outdoor soil.

[0056] Furthermore, each bottom end of the main support rod 210 has a rod groove 211 in the middle, and a square sliding groove 212 is formed through the upper side wall of the rod groove 211. The linkage tooth block 250 is composed of a rounded cuboid and several tooth blocks on one side wall. The linkage tooth block 250 is engaged and slides with the rod groove 211. A square rod is inserted into the other side wall of the linkage tooth block 250 and slides up and down with the sliding groove 212, thereby adjusting the sliding displacement of the linkage tooth block 250 along the long side of the vertical rod of the main support rod 210. When encountering hard ground, the ground anchor 240 cannot be used. By lifting the linkage tooth block 250 to disengage from the ground anchor 240, the flipping movement of the ground anchor 240 when the main support rod 210 is unfolded can be eliminated. The outer end of this square rod is provided with a threaded rod, and the position of the linkage tooth block 250 is fixed by a nut.

[0057] Furthermore, a through-hole 2321 is provided on the top surface of the support block 232 near the secondary support rod 230. The bottom end of the main support rod 210 is placed in the through-hole 2321 and is rotatably connected by a pin. The width of the through-hole 2321 is greater than the thickness of the vertical rod of the main support rod 210, so that the main support rod 210 has room for angle adjustment. A groove 2322 is provided on the bottom surface of the support block 232, which is connected to the through-hole 2321. The ground anchor 240 is fitted and engaged with the groove 2322. The toothed column 241 is rotatably connected to the side wall of the groove 2322 on the central axis by a pin.

[0058] Furthermore, the ground anchor 240 is flat and has a distribution slope 243 with a centrally protruding area on its top surface, so that soil and ash cannot accumulate on the distribution slope 243, thus avoiding obstruction of the ground anchor 240's retraction into the groove 2322. The long side wall of the support block 232 has a trough 2323 that communicates with the top of the groove 2322, so that some of the soil and ash brought into the groove 2322 by the ground anchor 240 can slide from the distribution slope 243 to the trough 2323 and be discharged, further eliminating the situation where the ground anchor 240 is obstructed by soil and ash, thus affecting its retraction. The depth of the groove 2322 is greater than the thickness of the ground anchor 240, so that when the ground anchor 240 resets, it can bring some soil and ash into the groove 2322 for temporary storage, thus avoiding affecting the complete reset of the ground anchor 240.

[0059] In addition, a folded spring piece 242 is bonded to the top surface of the rotating end of the ground anchor 240. It is made of spring steel and is a U-shaped piece. After the linkage tooth block 250 is removed from the meshing tooth column 241, the spring piece 242 will ensure that the ground anchor 240 is always hidden in the groove 2322, and ensure that the support block 232 is placed in close contact with the hard ground.

[0060] Furthermore, to facilitate easy relocation of the deployment structure, a thickened shaft 213 and a rubber wheel 260 are fixedly installed between the bottom of the main support rods 210. A fixing sleeve 261, fitted onto the thickened shaft 213, is fixed to one end of the axle of the rubber wheel 260. The central axis of the fixing sleeve 261 is perpendicular to the central axis of the wheel axle, allowing the rubber wheel 260 to rotate up and down inside the main support rods 210, enabling it to lift off and touch the ground. When the rubber wheel 260 is off the ground, the server equipment is stably supported by the pair of main support rods 210; when the rubber wheel 260 touches the ground, it pushes the main support rods 210, propelling the deployment structure for relocation.

[0061] Furthermore, the outer wall of the fixed sleeve 261 is threaded with bolts, and the middle side wall and top wall of the thickened shaft 213 are provided with insertion holes 214 so that the bolts can be inserted into the insertion holes 214, so that the rubber wheel 260 is kept in a state of being off the ground and in contact with the ground.

[0062] When used outdoors, the modular deployment structure of the server rack with the integrated suspension support device of the present invention allows multiple servers to be installed in a frame consisting of four brackets 120 and multiple layers of support rods 130, and the cables are connected and fixed to the cable support rods 170 to form a server rack module.

[0063] After the server rack module is placed on the ground, the rotating linkage 231 drives the two auxiliary support rods 230 to move towards each other via a thread, thereby pushing the lower ends of the two main support rods 210 outward, causing the main support rods 210 to unfold around the hinge point between their upper ends and the hanger 110. During this process, the linkage tooth block 250 at the bottom of the main support rod 210 drives the toothed column 241 of the ground anchor 240 to engage, causing the ground anchor 240 to flip out from the groove 2322 at the bottom of the support block 232, and the toothed column 241 to insert into the ground under the action of gravity and downward pressure.

[0064] Because the ground may be uneven, the upper ends of the four brackets 120 will slide within the arc grooves 112 of the hanger 110 under the action of gravity, adjusting their front and rear positions. Through the elastic connection between the main support rod 210 and the hanger 110, the server can automatically adjust its horizontal position. That is, the four brackets 120 automatically adjust to be vertically suspended on the ground, so that the server equipment remains horizontal and stable.

[0065] After the work is completed, the linkage rod 231 is rotated in the opposite direction to retract the support assembly 200. The rotation of the main support rod 210 will pull the ground anchor 240 from the ground and retract it into the support block 232. The entire module can then be moved by lifting it.

[0066] It should be noted that the fixed connection and fixing method of the present invention are achieved by conventional fixing means such as bolt connection, welding, or bonding that are compatible with each other. These are existing technologies and will not be described in detail here. The above embodiments are only for illustrating the technical concept and features of the present invention, and their purpose is to enable those skilled in the art to understand the content of the present invention and implement it accordingly. They should not be used to limit the scope of protection of the present invention. All equivalent changes or modifications made according to the spirit and essence of the present invention should be covered within the scope of protection of the present invention.

Claims

1. A modular deployment structure for server racks integrating suspension support devices, characterized in that: Includes a mounting bracket assembly for modularly supporting server equipment; and a support assembly, symmetrically and movably connected to both sides of the mounting bracket assembly, for unfolding on the ground to provide support. The support group includes: A pair of main support rods with a frame structure, with a connecting rod elastically sleeved at the upper end, and the connecting rod is hinged to the top side of the bracket assembly; Two pairs of auxiliary support rods, with the two auxiliary support rods on the same side rotatably connected to the bottom end of a main support rod at their outward ends, and a linkage rod threaded between the opposite ends of the two coaxial auxiliary support rods, with the threaded area of ​​the linkage rod divided into two segments and arranged in opposite directions. By rotating the linkage rod, the two coaxial auxiliary support rods are driven to move synchronously towards or in opposite directions, thereby driving a pair of main support rods to retract or expand synchronously. Several support blocks are fixed to the outer end of the auxiliary support rod and hinged to the bottom end of the main support rod; Several ground anchors are correspondingly hinged to the bottom of the support block; The outer wall of the hinge shaft of the ground anchor is provided with a toothed column, and the bottom end of the main support rod is embedded with a linkage toothed block, which meshes with the toothed column; when the main support rod rotates from the retracted state to the extended state, the meshing transmission between the linkage toothed block and the toothed column drives the ground anchor to flip out from the bottom of the support block and insert into the soil to form a support pre-tightened state. The mounting bracket assembly includes a pair of hangers, several brackets, and several support rods; each pair of brackets is slidably hung below the hanger; several support rods are horizontally and vertically spaced between two brackets on the same side to form a multi-layer bearing plane for supporting the server equipment; the side wall of the bracket and at the end of the support rod are fitted with a stop block for clamping the end of the server equipment. Both ends of the bottom of the hanger are fixed with clamps. The side walls of the clamps are provided with arc grooves. The upper end of the bracket is provided with a flat block with holes and is engaged with the clamps. A special bolt is then used to slide through the arc groove. One end of a pair of special bolts on the same side is fitted with a pull rod and threaded with a nut. Several brackets swing back and forth under the hanger to form a vertical arrangement.

2. The modular deployment structure of the server rack with integrated suspension support device according to claim 1, characterized in that: The special bolt has protruding posts fixed on both sides of its head end, and pressure posts are fixed on both sides of the pull rod. The protruding posts and pressure posts are clamped on both sides of the flat block at the upper end of the bracket, and the pull rod stabilizes the front and rear distance of several brackets, thereby adjusting the suspension posture synchronously by sliding along the arc groove.

3. The modular deployment structure of the server rack with integrated suspension support device according to claim 2, characterized in that: The bracket has several equally spaced slots on its inner side. The inner end of each slot is enlarged and is adapted to be inserted into one side of the support rod. A locking post is embedded on the front side of the bracket between each pair of adjacent slots. The locking post is mushroom-shaped and is adapted to be engaged with the locking opening on the side wall of the stop block.

4. The modular deployment structure of the server rack with integrated suspension support device according to claim 1, characterized in that: Each bottom end of the main support rod has a rod groove in the middle, and a square sliding groove is opened through the upper side wall of the rod groove. The linkage tooth block is composed of a rounded cuboid and several tooth blocks on one side wall. The linkage tooth block is engaged and slides with the rod groove. A square rod is inserted into the other side wall of the linkage tooth block and slides up and down with the square rod in the sliding groove. The outer end of the square rod is fixed to the position of the linkage tooth block by a nut.

5. The modular deployment structure of the server rack with integrated suspension support device according to claim 4, characterized in that: The top surface of the support block and near the secondary support rod has an opening, and the bottom end of the main support rod is placed in the opening and rotatably connected by a pin; the bottom surface of the support block has a groove that communicates with the opening, the ground anchor is fitted and engaged with the groove, and the toothed column is rotatably connected to the side wall of the groove on the central axis by a pin.

6. The modular deployment structure of the server rack with integrated suspension support device according to claim 5, characterized in that: The ground anchor is flat and has a material distribution slope that protrudes in the center line area on its top surface. The long side wall of the support block has a groove that communicates with the top of the groove. The depth of the groove is greater than the thickness of the ground anchor.

7. The modular deployment structure of the server rack with integrated suspension support device according to claim 1, characterized in that: It also includes a cable support rod that is slidably mounted on the top of a pair of hangers, wherein the top surface of the cable support rod is rotatably fitted with several cable clips for fixing cables.

8. The application of a modular deployment structure for server racks integrating suspension support devices, as described in claim 7, is characterized in that: It is used for the rapid deployment and stable support of server equipment in outdoor and field mobile command posts.

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