Floor leveling device for box-type data center and automatic leveling method
By using a combination of cabinet racks and adjustment components in modular data centers, the problems of insufficient space occupation and leveling flexibility of traditional raised floors are solved, and efficient raising and leveling of electrostatic floors are achieved to adapt to changes in equipment layout.
Patent Information
- Application Number
- CN202510790533.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-13
- Publication Date
- 2025-09-23
AI Technical Summary
Traditional raised floors take up too much space in modular data centers and lack leveling flexibility, making it difficult to adapt to the needs of dynamic adjustments to equipment layout.
A leveling device including a cabinet frame, a node plate and an adjustment component is used. By installing the node plate on the frame rod and using a stiffening square tube to improve the support strength, the height of the second adjustment rod is adjusted in combination with the adjustment component to achieve the overhead and leveling of the electrostatic floor.
It reduces the use of outriggers, frees up floor space, improves floor adjustability and leveling accuracy, and adapts to the needs of dynamic adjustment of equipment layout.
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Figure CN120683980A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of floor leveling, and in particular to a floor leveling device and an automatic leveling method for a box-type data center. Background Art
[0002] In the data center industry, especially in the construction of box-type or modular data centers, floor leveling is a critical step in ensuring stable equipment installation and operation. Currently, most data room floors on the market use a traditional raised floor structure, which is mainly composed of panels, supports, support beams, and connecting accessories. This structure relies on tall and long legs to achieve overhead support. However, in space-constrained scenarios such as modular data centers, this structure has significant drawbacks: On the one hand, there's the significant issue of space occupation. The raised floors in modular data centers are often filled with pipes, cables, and other facilities. The long, tall legs of traditional supports excessively occupy limited space, increasing manufacturing and installation difficulties and hindering subsequent maintenance and repair, resulting in low space utilization.
[0003] On the other hand, leveling flexibility is insufficient. Traditional raised floors rely on fixed fulcrums for leveling. If there are no fulcrums on site, additional ones must be installed. This not only increases cost and installation complexity, but also has limited leveling accuracy and detachability, making it difficult to adapt to the dynamic adjustments required for equipment layout within the data center.
[0004] To this end, the present application provides a floor leveling device and an automatic leveling method for a box-type data center to solve the above-mentioned problems. Summary of the Invention
[0005] In order to improve the adjustability of the elevated electrostatic floor of a modular data center and reduce the occupancy rate of the ground space, the present application provides a floor leveling device and an automatic leveling method for a box-type data center.
[0006] In a first aspect, the present application provides a floor leveling device for a box-type data center, which adopts the following technical solution: A floor leveling device for a box-type data center includes cabinet racks arranged on two symmetrical inner sides of the box-type data center, the cabinet racks including rack rods, the top surface of the rack rods being provided with a first adjusting rod, the top end of the first adjusting rod being provided with a support frame plate for supporting and placing the cabinet, the top ends of the rack rods adjacent to the cabinet racks on the two symmetrical inner sides being provided with node plates, the bottom surfaces of the node plates being provided with stiffening square tubes, the top surfaces of the node plates being adjustably provided with a second adjusting rod, the top surface of the second adjusting rod being provided with a top plate, the top surface of the top plate being provided with an electrostatic floor, the electrostatic floor being provided adjacent to the support frame plate, and the top plate being provided with an adjustment component for adjusting the height of the second adjusting rod.
[0007] By adopting the above technical solution, when it is necessary to suspend the electrostatic floor in a box-type data center, the node plate is first mounted on the first adjusting rod, and then the node plate is fixed to the top of the rack rod by bolts, and the supporting strength of the node plate is increased by reinforcing square tubes. Then, the electrostatic floor is installed on the top surface of the top plate, and then the height of the second adjusting rod is adjusted by the adjustment component according to actual needs. The second adjusting rod adjusts the height of the electrostatic floor through the top plate. By installing the node plate on the rack rod, the electrostatic floor is finally suspended, which reduces the use of legs, thereby freeing up ground space and reducing the ground space occupancy rate.
[0008] Optionally, the adjustment assembly includes an upper fastener and a lower fastener, the upper fastener is arranged above the node plate, and the lower fastener is arranged below the node plate, and the upper fastener and the lower fastener are respectively threadedly connected to the second adjustment rod.
[0009] By adopting the above technical solution, when the height of the electrostatic floor needs to be adjusted, the upper fastener and the lower fastener are first loosened respectively, and then the height of the second adjusting rod is adjusted. The second adjusting rod adjusts the height of the electrostatic floor through the top plate, and finally the upper fastener and the lower fastener are tightened to complete the height leveling of the electrostatic floor, which is conducive to improving the adjustability of the overhead electrostatic floor.
[0010] Optionally, a long groove is provided on the side wall of the node plate, the long groove is slidably connected to the first adjustment rod, a plurality of through holes are provided on the top surface of the node plate, and the node plate is fixedly connected to the frame rod through the plurality of through holes.
[0011] By adopting the above technical solution, when the node plate needs to be installed, first align the long slot and move it in the direction close to the first adjusting rod until the stiffening square is in contact with the side wall of the frame rod, then use a bolt to fix the node plate to the top of the frame rod through one of the through holes, and put the node plate on the first adjusting rod through the long slot, so that the node plate is suitable for first adjusting rods of different specifications, thereby improving the installation and use adaptability range of the node plate and improving the convenience of installing the node plate.
[0012] Optionally, the adjustment assembly includes a fixed sleeve, which passes through and is fixedly arranged on the top surface of the node plate, a conical chuck is arranged in the fixed sleeve, the second adjustment rod slides through the fixed sleeve and the conical chuck, and the fixed sleeve is provided with a locking member for clamping the conical chuck.
[0013] By adopting the above technical solution, when the height of the electrostatic floor needs to be adjusted, the locking piece is first loosened. At this time, the conical collet is opened, and the second adjusting rod can freely rise and fall and slide in the conical collet and the fixed sleeve. The second adjusting rod can adjust the height of the electrostatic floor through the top plate. Finally, the locking piece is tightened. The locking piece prompts the conical collet to clamp the second adjusting rod. The second adjusting rod and the electrostatic floor are fixed in the current position, which is conducive to improving the adjustability of the overhead electrostatic floor.
[0014] Optionally, the locking member is a rotating block, the bottom surface of the rotating block is integrally provided with a stud, the stud is threadedly connected to the fixed sleeve, and the bottom inner wall of the stud is provided with a first wedge surface, which cooperates with the top end of the conical chuck.
[0015] By adopting the above technical solution, when it is necessary to lock the second adjusting rod, the rotating block is first threadedly rotated, and the rotating block drives the stud to rotate. The stud moves downward under the action of the fixed sleeve thread. At this time, the stud clamps the conical collet through the first wedge surface, and the conical collet thereby clamps the second adjusting rod, which is beneficial to improve the stability of the conical collet clamping the second adjusting rod.
[0016] Optionally, a sliding groove is provided in the node plate, the sliding groove is connected to the long groove, a limit rod is slidingly arranged in the sliding groove, one end of the limit rod extends into the long groove, a positioning fork is provided at one end of the limit rod, the first adjusting rod is plugged into the positioning fork, the side wall of the limit rod is sleeved with a first spring, one end of the first spring is fixedly connected to the side wall of the limit rod, the other end of the first spring is fixedly connected to the groove wall of the long groove, and the node plate is provided with a fixing component for locking the limit rod.
[0017] By adopting the above technical solution, when the first adjusting rod is slidably inserted into the long slot, the first adjusting rod is inserted into the positioning fork, and the first adjusting rod pushes the limit rod to move inward through the positioning fork. At this time, the limit rod squeezes the first spring, and then the limit rod is locked in the current position through the fixing assembly. The limit rod is restricted by the positioning fork, which reduces the loosening of the node plate caused by the virtual position between the first adjusting rod and the long slot, thereby helping to improve the installation accuracy of the node plate.
[0018] Optionally, the fixing assembly includes a locking rod, a movable groove is provided in the node plate, the locking rod is slidably arranged in the movable groove, one end of the locking rod extends in the sliding groove, and the side wall of the limit rod is provided with multiple locking grooves, one end of the locking rod is respectively plugged into the multiple locking grooves, and the other end of the locking rod extends above the node plate, and the other end of the locking rod is provided with a second wedge surface, and a third wedge surface is provided on the circumferential side of the bottom surface of the rotating block, the second wedge surface and the third wedge surface cooperate with each other, and the node plate is provided with an elastic member for cooperating to drive the locking rod to move.
[0019] By adopting the above technical solution, when the rotating block is tightened and rotated downward, the rotating block drives the locking rod to move toward the direction close to the limit rod through the cooperation of the third wedge surface and the second wedge surface. Under the cooperation of the elastic part, the locking rod is inserted into one of the lock grooves on the side wall of the limit rod. At this time, the limit rod is fixed in the current position, which is conducive to reducing the displacement of the positioning fork.
[0020] Optionally, the elastic member is a second spring, which is sleeved on the locking rod, one end of the second spring is fixedly connected to the side wall of the locking rod, and the other end of the second spring is fixedly connected to the slot wall of the movable slot.
[0021] By adopting the above technical solution, when the rotating block drives the locking rod to move toward the limit rod through the cooperation between the third wedge surface and the second wedge surface, the locking rod squeezes the second spring. When the rotating block is released, the second spring releases the elastic force and drives the locking rod to move away from the limit rod. At this time, the locking rod is disengaged from the lock slot, which is beneficial to improve the stability of the limit rod sliding in the slide slot.
[0022] In a second aspect, a method for automatically leveling a floor of a box-type data center comprises the following steps: S1: Assemble cabinet frames symmetrically on both inner sides of the box-type data center, and adjust the height of the support frame using the first adjustment rod according to actual needs; S2: Slide the gusset plate onto the first adjusting rod and fix it to the top of the frame rod with bolts. At the same time, use stiffening square tubes to enhance the support strength of the gusset plate. S3: Under the action of the adjustment component, the height of the electrostatic floor is finally adjusted according to actual needs through the second adjustment rod.
[0023] By adopting the above technical solution, the electrostatic floor is finally suspended by installing node plates on the racks, reducing the use of legs, thereby freeing up ground space and reducing the ground space occupancy rate; the electrostatic floor is finally adjusted according to actual needs by adjusting the components, which is conducive to improving the adjustability of the overhead electrostatic floor.
[0024] In summary, this application has the following beneficial technical effects: When it is necessary to suspend the electrostatic floor in a box-type data center, first put the node plate on the first adjusting rod, and then fix it to the top of the rack rod with bolts. The supporting strength of the node plate is improved by adding stiffening square tubes. Then, the electrostatic floor is installed on the top surface of the top plate. Then, the height of the second adjusting rod is adjusted by the adjustment component according to actual needs. The second adjusting rod adjusts the height of the electrostatic floor through the top plate. By installing the node plate on the rack rod, the electrostatic floor is finally suspended, which reduces the use of legs, thereby freeing up ground space and reducing the ground space occupancy rate. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a schematic diagram of the overall structure of the box-type data center in this application; Figure 2 This is a front cross-sectional view of the cabinet frame and the electrostatic floor of the first embodiment of the present application; Figure 3 yes Figure 2 An enlarged view of part A; Figure 4 This is a schematic structural diagram of the adjustment component of Example 2 of the present application; Figure 5 is a side cross-sectional view of the adjustment assembly of the second embodiment of the present application; Figure 6 This is a schematic structural diagram of a locking member according to a second embodiment of the present application; Figure 7 yes Figure 5 An enlarged view of part B; Figure 8 It is a structural schematic diagram of the limit rod and positioning fork of this application.
[0026] Explanation of the accompanying reference numerals: 1. Cabinet frame; 2. Frame rod; 3. First adjusting rod; 4. Support frame plate; 5. Node plate; 6. Stiffening square tube; 7. Second adjusting rod; 8. Top plate; 9. Electrostatic floor; 10. Upper fastener; 11. Lower fastener; 12. Long groove; 13. Through hole; 14. Fixed sleeve; 15. Conical collet; 16. Rotating block; 17. Stud; 18. First wedge surface; 19. Slide groove; 20. Limit rod; 21. Positioning fork; 22. Lock rod; 23. Moving groove; 24. Locking groove; 25. Second wedge surface; 26. Third wedge surface; 27. Second spring; 28. First spring. DETAILED DESCRIPTION
[0027] The following is combined with Figure 1-8 This application is described in further detail.
[0028] Example 1: First, see Figure 1 and Figure 2A floor leveling device for a box-type data center includes a cabinet frame 1, which is used to suspend and support IT cabinets. Two cabinet frames 1 are provided, and the two cabinet frames 1 are fixedly installed on the symmetrical inner sides of the box-type data center. The cabinet frame 1 includes a rack rod 2, which mainly serves as an suspending function. The rack rod 2 is arranged vertically, and a first adjustment rod 3 is symmetrically adjusted and installed on the top of the rack rod 2. A support frame plate 4 is fixedly installed on the top of the first adjustment rod 3, and the support frame plate 4 is used to support and place the IT cabinet. A node plate 5 is installed on the top of the rack rod 2 adjacent to the cabinet frames 1 on the two symmetrical inner sides. A stiffening square tube 6 is welded to the bottom surface of the node plate 5. A second adjustment rod 7 is adjustably installed on the top surface of the node plate 5. The top surface of the second adjustment rod 7 is fixedly connected to a top plate 8. The top surface of the top plate 8 is installed with an electrostatic floor 9. The electrostatic floor 9 is arranged adjacent to the support frame plate 4. The top plate 8 is installed with an adjustment component, and the adjustment component is used to adjust the horizontality of the electrostatic floor 9 through the second adjustment rod 7.
[0029] When it is necessary to suspend and level the static floor 9 in a box-type data center, first install and level the cabinet frame 1 using the first adjustment rod 3. Then, place the gusset plate 5 on the first adjustment rod 3. Then, bolt the gusset plate 5 to the top of the rack rod 2. The supporting strength of the gusset plate 5 is increased using the stiffening square tube 6. Next, the static floor 9 is installed on the top surface of the top plate 8. The height of the second adjustment rod 7 is then adjusted using the adjustment assembly according to actual needs. The second adjustment rod 7 then adjusts the height of the static floor 9 through the top plate 8, completing the suspending and leveling of the static floor 9.
[0030] For details, see Figure 2 and Figure 3 The leveling assembly includes an upper fastener 10 and a lower fastener 11. Each of the upper fastener 10 and the lower fastener 11 is a combination of a nut and a washer. The upper fastener 10 is located above the gusset plate 5, while the lower fastener 11 is located below the gusset plate 5. The upper fastener 10 and the lower fastener 11 are respectively threadedly connected to the second adjustment rod 7.
[0031] Working principle of a floor leveling device for a box-type data center: To adjust the height of the electrostatic floor 9, first loosen the upper fasteners 10 and the lower fasteners 11, then move the second adjustment rod 7 up or down. The second adjustment rod 7 adjusts the height of the electrostatic floor 9. Once the electrostatic floor 9 is leveled, tighten the upper fasteners 10 and the lower fasteners 11 simultaneously to complete the leveling of the electrostatic floor 9.
[0032] Embodiment 2: The difference from Embodiment 1 lies in the installation of the gusset plate 5 and the structure of the leveling assembly.
[0033] See also Figure 4To facilitate installation of the gusset plate 5 on the top of the frame rod 2 and to accommodate various sizes of first adjustment rods 3, the sidewalls of the adjustment plate are symmetrically formed with long slots 12, which are slidably connected to the first adjustment rod 3. The top surface of the gusset plate 5 is penetrated by multiple through-holes 13. In this embodiment, there are three through-holes 13. Bolts are used to secure the gusset plate 5 to the frame rod 2 through one of the through-holes 13.
[0034] When the node plate 5 needs to be installed, first align the long slot 12 and move it in the direction close to the first adjusting rod 3 until the stiffening square tube 6 abuts against the side wall of the frame rod 2, then use a bolt to fix the node plate 5 to the top of the frame rod 2 through one of the through holes 13, and put the node plate 5 on the first adjusting rod 3 through the long slot 12, so that the node plate 5 is suitable for first adjusting rods 3 of different specifications, thereby improving the installation and use adaptability range of the node plate 5 and improving the convenience of installing the node plate 5.
[0035] For details, see Figure 5 and Figure 6 The adjustment assembly includes a fixed sleeve 14, which is fixed and extends through the top surface of the gusset plate 5. A tapered collet 15 is fixedly mounted within the fixed sleeve 14. The collet 15 is composed of multiple plastic sheets that enclose a clamping space. The second adjustment rod 7 slides through the fixed sleeve 14 and the tapered collet 15.
[0036] Furthermore, to facilitate driving the tapered collet 15 to tighten or loosen the second adjusting rod 7, the fixed sleeve 14 is also equipped with a locking member, which is a rotating block 16. A stud 17 is integrally formed and fixedly connected to the bottom surface of the rotating block 16, and the stud 17 is threadedly connected to the top of the fixed sleeve 14. The stud 17 is hollow, and the inner wall of the bottom end of the stud 17 is provided with a first wedge surface 18. The stud 17 engages with the top end of the tapered collet 15 through the first wedge surface 18.
[0037] To adjust the level of the electrostatic floor 9, first loosen the rotating block 16, which drives the stud 17 until the first wedge surface 18 disengages from the tapered clamp 15. The clamp 15 then releases the second adjustment rod 7, allowing the operator to adjust the height of the electrostatic floor 9 by adjusting the second adjustment rod 7. After the level of the electrostatic floor 9 is adjusted, tighten the rotating block 16 in the opposite direction, driving the stud 17 in the opposite direction until the first wedge surface 18 fully engages the tapered clamp 15. The tapered clamp 15 then clamps the second adjustment rod 7, securing the electrostatic floor 9 at the current leveling height.
[0038] See also Figure 5-Figure 8In this embodiment, the diameter of the long slot 12 is larger than the diameter of the first adjustment rod 3. In order to reduce the rotational looseness of the node plate 5 at the top of the frame rod 2 due to the virtual position, a sliding groove 19 is opened in the node plate 5, and the sliding groove 19 is connected to the long slot 12. A limit rod 20 is slidably installed in the sliding groove 19, and one end of the limit rod 20 extends into the long slot 12. One end of the limit rod 20 is fixedly connected to a positioning fork 21, and the projection of the positioning fork 21 is Y-shaped, and the first adjustment rod 3 is plugged into the positioning fork 21. The side wall of the limit rod 20 is sleeved with a first spring 28, one end of the first spring 28 is fixedly connected to the side wall of the limit rod 20, and the other end of the first spring 28 is fixedly connected to the slot wall of the long slot 12.
[0039] In addition, to further lock the positioning fork 21, the node plate 5 is also equipped with a fixing assembly, which includes a locking rod 22, and the vertical cross-section of the locking rod 22 is Z-shaped. A movable groove 23 is provided in the node plate 5, and the locking rod 22 is slidably installed in the movable groove 23, and one end of the locking rod 22 extends into the locking groove 24. The side wall of the limiting rod 20 is provided with a locking groove 24, and there are also multiple locking grooves 24. One end of the locking rod 22 is respectively plugged into the locking groove 24. The other end of the locking rod 22 extends above the node plate 5. The other end of the locking rod 22 is provided with a second wedge surface 25, and the bottom surface of the rotating block 16 is provided with a third wedge surface 26. The second wedge surface 25 and the third wedge surface 26 cooperate with each other.
[0040] Among them, in order to improve the reset performance of the locking rod 22, the node plate 5 is also installed with an elastic part, which is a second spring 27. The second spring 27 is sleeved on the locking rod 22, and one end of the second spring 27 is fixedly connected to the side wall of the locking rod 22, and the other end of the second spring 27 is fixedly connected to the groove wall of the movable groove 23.
[0041] After the gusset plate 5 is initially fixed to the top of the frame rod 2 by bolts, the first adjustment rod 3 squeezes the limit rod 20 via the positioning fork 21. When the level adjustment of the electrostatic floor 9 is completed, the rotating block 16 is rotated and tightened. The rotating block 16 drives the locking rod 22 toward the limit rod 20 through the cooperation of the second wedge surface 25 and the third wedge surface 26. At this time, the locking rod 22 is inserted into one of the locking grooves 24 on the side wall of the limit rod 20, and the positioning fork 21 is fixed in the current position.
[0042] Working principle of a floor leveling device for a box-type data center: When the node plate 5 needs to be installed, first align the long slot 12 and move it in the direction close to the first adjusting rod 3 until the stiffening square tube 6 abuts against the side wall of the frame rod 2, then use a bolt to fix the node plate 5 to the top of the frame rod 2 through one of the through holes 13, and put the node plate 5 on the first adjusting rod 3 through the long slot 12, so that the node plate 5 is suitable for first adjusting rods 3 of different specifications.
[0043] When the first adjustment rod 3 is inserted into the long slot 12, the first adjustment rod 3 squeezes the limit rod 20 via the positioning fork 21. When the height of the electrostatic floor 9 needs to be adjusted, the rotating block 16 is first rotated and loosened. The rotating block 16 drives the stud 17 to rotate until the first wedge surface 18 and the conical clamp 15 are disengaged. At this time, the conical clamp 15 releases the second adjustment rod 7, and the staff adjusts the height of the electrostatic floor 9 by adjusting the height of the second adjustment rod 7. After the level adjustment of the electrostatic floor 9 is completed, the rotating block 16 is rotated in the opposite direction and tightened. The rotating block 16 drives the stud 17 to rotate in the opposite direction until the first wedge surface 18 fully engages with the conical clamp 15. At this time, the conical clamp 15 clamps the second adjustment rod 7, and the electrostatic floor 9 is fixed at the current leveling height.
[0044] It should be noted that while rotating block 16 is being tightened, the second wedge surface 25 and the third wedge surface 26 of the rotating block 16 engage with each other to move the locking rod 22 toward the limiting rod 20. At this point, the locking rod 22 engages with one of the locking slots 24 on the sidewall of the limiting rod 20, securing the positioning fork 21 in its current position. The positioning fork 21 limits the position of the first adjusting rod 3, reducing the possibility of rotational loosening of the gusset plate 5 at the top of the frame rod 2 due to the virtual position.
[0045] In a second aspect, the present application provides a method for automatically leveling a floor of a box-type data center, comprising the following steps: S1: The cabinet frame 1 is pre-debugged before leaving the factory, and then the pre-debugged cabinet frame 1 is assembled symmetrically on both inner sides of the box-type data center. At the construction site, the height of the support frame 4 is adjusted again by the first adjustment rod 3 according to actual needs, wherein the adjustment method of the first adjustment rod 3 is mainly a nut and a gasket; S2: After the gusset plate 5 is sleeved on the first adjusting rod 3, the gusset plate 5 is fixed to the top of the frame rod 2 by bolts, and the supporting strength of the gusset plate 5 is enhanced by reinforcing square tubes 6; S3: Under the action of the adjustment component, the second adjustment rod 7 is used to finally adjust the levelness of the electrostatic floor 9 according to actual on-site needs.
[0046] To sum up, by installing the node plate 5 on the rack 2, the electrostatic floor 9 is finally suspended, which reduces the use of legs, thereby freeing up ground space and reducing the ground space occupancy rate; by adjusting the components, the electrostatic floor 9 is finally adjusted according to actual needs, which is conducive to improving the adjustability of the suspended electrostatic floor 9.
[0047] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A floor leveling device for a box-type data center, comprising a cabinet frame (1) arranged on two symmetrical inner sides of the box-type data center, wherein the cabinet frame (1) comprises a rack rod (2), a first adjustment rod (3) is provided on the top surface of the rack rod (2), and a support frame plate (4) for supporting and placing the cabinet is provided at the top end of the first adjustment rod (3), characterized in that: The top ends of the rack rods (2) adjacent to the two symmetrical inner sides of the cabinet frames (1) are provided with node plates (5), the bottom surfaces of the node plates (5) are provided with stiffening square tubes (6), the top surfaces of the node plates (5) are adjustable and provided with a second adjusting rod (7), the top surfaces of the second adjusting rod (7) are provided with a top plate (8), the top surfaces of the top plates (8) are provided with an electrostatic floor (9), the electrostatic floor (9) is provided adjacent to the support frame plate (4), and the top plates (8) are provided with an adjusting component for adjusting the height of the second adjusting rod (7).
2. The floor leveling device for a box-type data center according to claim 1, characterized in that: The adjustment assembly comprises an upper fastener (10) and a lower fastener (11), wherein the upper fastener (10) is arranged above the node plate (5), and the lower fastener (11) is arranged below the node plate (5), and the upper fastener (10) and the lower fastener (11) are respectively threadedly connected to the second adjustment rod (7).
3. The floor leveling device for a box-type data center according to claim 1, characterized in that: The side wall of the node plate (5) is provided with a long groove (12), and the long groove (12) is slidably connected to the first adjustment rod (3). The top surface of the node plate (5) is provided with a plurality of through holes (13), and the node plate (5) is fixedly connected to the frame rod (2) through the plurality of through holes (13).
4. The floor leveling device for a box-type data center according to claim 3, characterized in that: The adjustment assembly includes a fixed sleeve (14), which passes through and is fixedly arranged on the top surface of the node plate (5), and a conical chuck (15) is arranged in the fixed sleeve (14). The second adjustment rod (7) slides through the fixed sleeve (14) and the conical chuck (15), and the fixed sleeve (14) is provided with a locking piece for clamping the conical chuck (15).
5. The floor leveling device for a box-type data center according to claim 4, characterized in that: The locking member is a rotating block (16), the bottom surface of the rotating block (16) is integrally provided with a stud (17), the stud (17) is threadedly connected to the fixed sleeve (14), and the bottom inner wall of the stud (17) is provided with a first wedge surface (18), and the first wedge surface (18) is matched with the top end of the tapered chuck (15).
6. The floor leveling device for a box-type data center according to claim 5, characterized in that: A sliding groove (19) is provided in the node plate (5), and the sliding groove (19) is connected to the long groove (12). A limiting rod (20) is slidably provided in the sliding groove (19), and one end of the limiting rod (20) extends into the long groove (12). A positioning fork (21) is provided at one end of the limiting rod (20). The first adjusting rod (3) is plugged into the positioning fork (21). A first spring (28) is sleeved on the side wall of the limiting rod (20), and one end of the first spring (28) is fixedly connected to the side wall of the limiting rod (20). The other end of the first spring (28) is fixedly connected to the groove wall of the long groove (12). The node plate (5) is provided with a fixing component for locking the limiting rod (20).
7. The floor leveling device for a box-type data center according to claim 6, characterized in that: The fixing assembly includes a locking rod (22), a movable groove (23) is provided in the node plate (5), the locking rod (22) is slidably arranged in the movable groove (23), one end of the locking rod (22) extends in the slide groove (19), a side wall of the limiting rod (20) is provided with a plurality of locking grooves (24), one end of the locking rod (22) is respectively plugged into the plurality of locking grooves (24), the other end of the locking rod (22) extends above the node plate (5), the other end of the locking rod (22) is provided with a second wedge surface (25), a third wedge surface (26) is provided on the peripheral side of the bottom surface of the rotating block (16), the second wedge surface (25) and the third wedge surface (26) cooperate with each other, and the node plate (5) is provided with an elastic member for cooperating to drive the locking rod (22) to move.
8. The floor leveling device for a box-type data center according to claim 7, characterized in that: The elastic member is a second spring (27), which is sleeved on the locking rod (22), one end of the second spring (27) is fixedly connected to the side wall of the locking rod (22), and the other end of the second spring (27) is fixedly connected to the groove wall of the movable groove (23).
9. A method for automatically leveling the floor of a box-type data center, based on the floor leveling device for a box-type data center according to any one of claims 1 to 8, characterized in that: The steps include: S1: Assembling cabinet frames (1) symmetrically on two inner sides of a box-type data center, and adjusting the height of the support frame plate (4) through a first adjustment rod (3) according to actual needs; S2: The node plate (5) is sleeved on the first adjusting rod (3) and fixed to the top of the frame rod (2) by means of bolts, and the supporting strength of the node plate (5) is enhanced by means of a stiffening square tube (6); S3: Under the action of the adjustment component, the height of the electrostatic floor (9) is finally adjusted according to actual needs through the second adjustment rod (7).