Modularly-assembled power machine room
Through the modularly assembled power room design, the use of detachable vertical pillars and folded shading mechanisms, the problem of heavy structure and long construction period of traditional power room is solved, and convenient installation and transportation and efficient space utilization are achieved.
Patent Information
- Application Number
- CN202422256944.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The concrete structure of traditional power computer rooms has problems such as large weight, low tensile strength, poor soil earthquake resistance and long construction period. The cover of the existing prefabricated computer rooms cannot be folded, resulting in inconvenient installation and transportation.
The power room design adopts a modular assembly, including two sets of horizontal splicing plate components, multiple removable vertical pillars and a shading mechanism. The shielding mechanism consists of a plurality of upper baffles and a tarp cloth. The adjacent upper baffles are flexiblely connected by a tarp cloth, which can be folded for easy transportation and installation.
The folding of the shading mechanism is achieved for easy transportation and installation, reducing space occupation, and improving the installation efficiency and space utilization of the computer room.
Smart Images

Figure CN223034198U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of assembly machine rooms, in particular to a modularly assembled power machine room. Background Technique
[0002] In the industry, traditional power machine rooms generally adopt brick-concrete structures or reinforced concrete frame structures. The concrete structure has the following problems: large weight because it is a combination of steel bars and concrete; low tensile strength of concrete, easy to crack, and poor earthquake resistance; long construction period of concrete, labor-consuming, and easy to cause nuisance to residents.
[0003] The patent with the publication number CN216893688U discloses an assembled machine room, belonging to the technical field of machine rooms. It includes a plurality of assembly horizontal plates, a plurality of assembly vertical plates and a support frame. One end of the assembly horizontal plate is provided with an insertion block, and the other end is provided with a slot. The insertion blocks and slots between adjacent assembly horizontal plates are adapted to each other. A plurality of the assembly horizontal plates are movably connected to the upper end of the support frame, and a plurality of the assembly vertical plates are movably connected to the side surface of the support frame.
[0004] The above-mentioned disclosed patent still has the following technical defects: the shielding cover is an integral structure and cannot be folded and stored, resulting in inconvenient installation and transportation. Content of the Utility Model
[0005] The purpose of the utility model is to propose a modularly assembled power machine room aiming at the problems existing in the background technique.
[0006] The technical solution of the utility model, a modularly assembled power machine room, includes:
[0007] Two groups of horizontal splicing plate assemblies, which are arranged side by side up and down;
[0008] A plurality of vertical columns, which are detachably installed on the periphery between the two groups of horizontal splicing plate assemblies. A plurality of vertical grooves are opened along the vertical direction of the vertical columns; a whole plate is detachably arranged between any two adjacent vertical columns. A door panel is rotatably installed on the whole plate. A plurality of second heat preservation plates can be detachably installed on other exposed areas of the plurality of side surfaces between the two groups of horizontal splicing plate assemblies except the whole plate;
[0009] A shielding mechanism, which includes a plurality of upper baffle plates and a plurality of waterproof cloths. The adjacent two upper baffle plates are connected by the waterproof cloth, and rotating components are connected to both ends between the adjacent two upper baffle plates;
[0010] A plurality of groups of adjustable support mechanisms, which are detachably installed on the horizontal splicing plate assembly at the upper end, and the adjustable support mechanisms are detachably connected to the shielding mechanism.
[0011] Preferably, the horizontal splicing plate assembly includes two cross bars, a plurality of longitudinal bars, and a plurality of first heat preservation plates. The plurality of longitudinal bars are detachably connected between the two cross bars. A limiting plate is connected to the side of the longitudinal bar. The plurality of first heat preservation plates are arranged in a plurality of areas divided by the two cross bars and the plurality of longitudinal bars.
[0012] Preferably, a sealing mechanism is arranged on the horizontal splicing plate assembly at the upper end. The sealing mechanism includes a plurality of longitudinal sealing baffles and a plurality of transverse sealing baffles. The plurality of longitudinal sealing baffles are respectively arranged on a plurality of longitudinal gaps of the splicing plate assembly. The plurality of transverse sealing baffles are respectively arranged on a plurality of transverse gaps of the splicing plate assembly. The transverse sealing baffle is clamped between two corresponding longitudinal sealing baffles. A plurality of positioning grooves for the end part of the transverse sealing baffle to be inserted are formed on the longitudinal sealing baffle. First inserting columns are connected to both ends of the longitudinal sealing baffle. A plurality of first inserting holes are formed on the periphery of the horizontal splicing plate assembly at the upper end.
[0013] Preferably, a second sealing rubber strip is connected to the lower end of the second heat preservation plate, and a slot matching with the second sealing rubber strip is formed at the upper end of the second heat preservation plate; a plurality of first sealing rubber strips are connected to the periphery of the horizontal splicing plate assembly at the upper end, and a plurality of sealing grooves are formed on the periphery of the horizontal splicing plate assembly at the lower end; sealing gaskets are installed at both the upper and lower ends of the vertical support column.
[0014] Preferably, the adjustable support mechanism includes a sleeve, a movable rod, a connecting support, a wing nut bolt, a rotating rod, and a fixing plate. The bottom end of the movable rod is slidably installed inside the sleeve. The wing nut bolt is threadedly connected to the sleeve. A plurality of limiting grooves are formed on the movable rod. The connecting support is connected to the bottom end of the sleeve. The connecting support is detachably connected to the horizontal splicing plate assembly at the upper end. The rotating rod is rotatably installed at the upper end of the movable rod. The fixing plate is connected to the rotating rod. The fixing plate is detachably connected to the upper baffle.
[0015] Preferably, the rotating assembly includes a rotating connecting rod and two rotating shafts. The corresponding two upper baffles are rotatably installed at both ends of the rotating connecting rod through the rotating shafts.
[0016] Compared with the prior art, the utility model has the following beneficial technical effects: In this technical solution, the shielding mechanism is composed of a plurality of upper baffles and a plurality of waterproof cloths connected. And adjacent two upper baffles are flexibly connected by the waterproof cloth, so that the plurality of upper baffles can be folded, which is convenient for transportation and installation and occupies little space. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a structural schematic diagram of the utility model.
[0018] Figure 2 is an exploded view of the utility model.
[0019] Figure 3Schematic diagram of the horizontal splicing plate assembly, vertical support column and multiple second insulation boards of the present utility model.
[0020] Figure 4 Schematic diagram of the horizontal splicing plate assembly and sealing mechanism of the present utility model.
[0021] Figure 5 Schematic diagram of the adjustable support mechanism of the present utility model.
[0022] Figure 6 Schematic diagram of the unfolded shielding mechanism of the present utility model.
[0023] Figure 7 Schematic diagram of the retracted shielding mechanism of the present utility model.
[0024] Reference numerals: 1, cross bar; 101, first jack; 102, second jack; 2, longitudinal bar; 201, third jack; 3, first insulation board; 4, limiting plate; 51, first screw; 52, first wing nut; 6, longitudinal sealing baffle; 61, first plug post; 601, positioning groove; 7, transverse sealing baffle; 8, first sealing strip; 91, sleeve; 92, movable rod; 921, limiting groove; 93, connecting support; 931, positioning hole; 94, wing bolt; 95, rotating rod; 96, fixing plate; 10, second screw; 11, second wing nut; 12, upper baffle; 121, fixing hole; 13, waterproof cloth; 14, rotating connecting rod; 15, rotating shaft; 16, third screw; 17, integral plate; 18, door panel; 19, vertical support column; 20, second plug post; 21, second insulation board; 211, second sealing strip; 2101, slot; 22, fourth screw; 23, sealing groove; 24, sealing gasket; 25, fifth screw; 26, third wing nut. Detailed implementation manners
[0025] Embodiment 1
[0026] As Figures 1 - 7 shown, a modularly assembled power machine room proposed in this embodiment includes a shielding mechanism, two groups of horizontal splicing plate assemblies, multiple vertical support columns 19 and multiple groups of adjustable support mechanisms.
[0027] Two sets of horizontally spliced panel assemblies are arranged side by side vertically. The horizontally spliced panel assembly includes two cross bars 1, a plurality of longitudinal bars 2, and a plurality of first insulation panels 3. The plurality of longitudinal bars 2 are all detachably connected between the two cross bars 1. A limiting plate 4 is connected to the side of the longitudinal bar 2. The plurality of first insulation panels 3 are arranged in a plurality of areas divided by the two cross bars 1 and the plurality of longitudinal bars 2. At both ends of the longitudinal bar 2, a first screw 51 is connected. A plurality of second jacks 102 for the first screw 51 to penetrate are opened on the cross bar 1. During installation, the first screw 51 is passed out from the inner side of the second jack 102, and a first wing nut 52 is threadedly connected to the first screw 51 to achieve the fixed connection between the cross bar 1 and the longitudinal bar 2. Moreover, a plurality of fourth screws 22 are also connected to the periphery of the horizontally spliced panel assembly at the bottom. A threaded hole adapted to the fourth screw 22 is opened at the bottom end of the vertical support column 19; a plurality of third jacks 201 are opened on the periphery of the horizontally spliced panel assembly at the top. Among them, a fifth screw 25 is connected to each of the plurality of vertical support columns 19 below the plurality of third jacks 201. The fifth screw 25 is passed through the third jack 201 on the horizontally spliced panel assembly, and then threadedly connected to the fifth screw 25 through a fourth wing nut (not shown) to achieve the fixation of the upper horizontally spliced panel assembly. A plurality of second insertion posts 20 are connected to the bottom end of the periphery of the horizontally spliced panel assembly at the top. Deep holes for the second insertion posts 20 to be inserted are opened on each of the plurality of vertical support columns 19 below the plurality of second insertion posts 20.
[0028] A plurality of vertical support columns 19 are detachably installed on the periphery between the two sets of horizontally spliced panel assemblies. A plurality of vertical grooves are opened on the vertical support column 19 along its vertical direction; a whole plate 17 is detachably arranged between any two adjacent vertical support columns 19. A door panel 18 is rotatably installed on the whole plate 17. A plurality of second insulation panels 21 can be detachably installed on other exposed areas of the plurality of side surfaces between the two sets of horizontally spliced panel assemblies except the whole plate 17.
[0029] The shielding mechanism includes a plurality of upper baffle plates 12 and a plurality of waterproof cloths 13. The adjacent two upper baffle plates 12 are all connected by the waterproof cloth 13. Rotating components are connected to both ends between the adjacent two upper baffle plates 12. The rotating component includes a rotating connecting rod 14 and two rotating shafts 15. The corresponding two upper baffle plates 12 are rotatably installed at both ends of the rotating connecting rod 14 through the rotating shafts 15.
[0030] Multiple groups of adjustable support mechanisms can be detachably installed on the horizontal splicing plate assembly located at the upper end, and the adjustable support mechanism is also detachably connected to the shielding mechanism. The adjustable support mechanism includes a sleeve 91, a movable rod 92, a connecting support 93, a wing bolt 94, a rotating rod 95, and a fixing plate 96. The bottom end of the movable rod 92 is slidably installed inside the sleeve 91. The wing bolt 94 is threadedly connected to the sleeve 91. A plurality of limiting grooves 921 are provided on the movable rod 92. The connecting support 93 is connected to the bottom end of the sleeve 91. The connecting support 93 is detachably connected to the horizontal splicing plate assembly at the upper end. The rotating rod 95 is rotatably installed at the upper end of the movable rod 92. The fixing plate 96 is connected to the rotating rod 95. The fixing plate 96 is detachably connected to the upper baffle 12. When installing the adjustable support mechanism, a plurality of third screws 16 are arranged on the periphery of the horizontal splicing plate assembly at the upper end. The positioning holes 931 on the connecting support 93 are aligned with the corresponding third screws 16 on the corresponding side, so that the third screws 16 are inserted into the inside of the positioning holes 931. Subsequently, a third wing nut 26 is threadedly connected to the third screw 16 to complete the fixing work of the connecting support 93. Then, the height of the movable rod 92 is adjusted so that the fixing plate 96 contacts the upper baffle 12 at its upper end and the second screw 10 connected to the fixing plate 96 passes through the fixing hole 121 on the upper baffle 12. Then, the second wing nut 11 is used to fix the second screw 10.
[0031] In this embodiment, the shielding mechanism is composed of a plurality of upper baffles 12 and a plurality of waterproof cloths 13 connected together. The adjacent two upper baffles 12 are flexibly connected by the waterproof cloth 13, so that the plurality of upper baffles 12 can be folded, which is convenient for transportation and installation, occupies less space. When installing, the two sides of the shielding mechanism are inclined to facilitate drainage.
[0032] Embodiment Two
[0033] As Figure 2 、 Figure 3 and Figure 4As shown, a modularly assembled power machine room proposed in this embodiment, compared with the first embodiment, in this embodiment, a sealing mechanism is provided on the horizontal splicing plate assembly located at the upper end. The sealing mechanism includes a plurality of longitudinal sealing baffles 6 and a plurality of transverse sealing baffles 7. The plurality of longitudinal sealing baffles 6 are respectively arranged on a plurality of longitudinal gaps of the splicing plate assembly, and the plurality of transverse sealing baffles 7 are respectively arranged on a plurality of transverse gaps of the splicing plate assembly. The transverse sealing baffle 7 is clamped between two corresponding longitudinal sealing baffles 6. A plurality of positioning grooves 601 for the ends of the transverse sealing baffle 7 to be inserted are formed on the longitudinal sealing baffle 6. Both ends of the longitudinal sealing baffle 6 are connected with first insertion posts 61. A plurality of first insertion holes 101 are formed on the periphery of the horizontal splicing plate assembly located at the upper end. When installing the sealing mechanism, press the plurality of longitudinal sealing baffles 6 on the upper ends of the plurality of longitudinal gaps respectively, align the first insertion posts 61 with the first insertion holes 101 and insert them. Then place the plurality of transverse sealing baffles 7 on the upper ends of the plurality of transverse gaps respectively, so that both ends of the transverse sealing baffle 7 are inserted into the corresponding positioning grooves 601 on both sides; through the setting of the above structure, it can prevent the outside cold air from flowing into the inner side of the machine room through the gaps of the horizontal splicing plate assembly, playing a good heat preservation role.
[0034] A second sealing rubber strip 211 is connected to the lower end of the second heat preservation board 21, and a slot 2101 that fits the second sealing rubber strip 211 is formed on the upper end of the second heat preservation board 21; a plurality of first sealing rubber strips 8 are connected to the periphery of the horizontal splicing plate assembly located at the upper end, and a plurality of sealing grooves 23 are formed on the periphery of the horizontal splicing plate assembly located at the lower end; sealing gaskets 24 are installed at both the upper and lower ends of the vertical support 19. When installing the second heat preservation board 21, insert both ends of the second heat preservation board 21 into the corresponding two vertical grooves respectively, and insert the second sealing rubber strip 211 at the bottom end of the upper-layer second heat preservation board 21 into the slot 2101 at the upper end of the lower-layer second heat preservation board 21, so as to prevent a large gap from appearing between two adjacent second heat preservation boards 21, thereby further improving the heat preservation effect of the machine room.
[0035] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings, but the present invention is not limited thereto. Various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those skilled in the art to which the present invention pertains.
Claims
1. A modularly assembled power room, characterized in that: include: Two sets of horizontal splicing plate assemblies, the two sets of horizontal splicing plate assemblies are arranged side by side up and down; A plurality of vertical pillars (19) are detachably mounted on the peripheral sides between two groups of horizontal splicing plate assemblies, and a plurality of vertical grooves are provided on the vertical pillars (19) along their vertical squares; a whole plate (17) is detachably mounted between any two adjacent vertical pillars (19), and a door plate (18) is rotatably mounted on the whole plate (17); and a plurality of second thermal insulation plates (21) are detachably mounted on the other exposed side areas between the two groups of horizontal splicing plate assemblies except for the whole plate (17); A shielding mechanism, the shielding mechanism comprising a plurality of upper baffles (12) and a plurality of waterproof cloths (13), two adjacent upper baffles (12) are connected via the waterproof cloths (13), and both ends of the two adjacent upper baffles (12) are connected with a rotating assembly; A plurality of groups of adjustable support mechanisms are provided, and the plurality of groups of adjustable support mechanisms can be detachably mounted on the horizontal splicing plate assembly located at the upper end, and the adjustable support mechanisms are detachably connected to the shielding mechanisms.
2. A modularly assembled power room according to claim 1, characterized in that: The horizontal splicing plate assembly comprises two cross bars (1), a plurality of longitudinal bars (2) and a plurality of first insulation plates (3); the plurality of longitudinal bars (2) are detachably connected between the two cross bars (1); the sides of the longitudinal bars (2) are connected to a limiting plate (4); and the plurality of first insulation plates (3) are arranged in a plurality of areas divided by the two cross bars (1) and the plurality of longitudinal bars (2).
3. A modularly assembled power room according to claim 2, characterized in that: A sealing mechanism is provided on the horizontal splicing plate assembly at the upper end, and the sealing mechanism comprises a plurality of longitudinal sealing baffles (6) and a plurality of transverse sealing baffles (7). The plurality of longitudinal sealing baffles (6) are respectively provided on a plurality of longitudinal gaps of the splicing plate assembly, and the plurality of transverse sealing baffles (7) are respectively provided on a plurality of transverse gaps of the splicing plate assembly. The transverse sealing baffles (7) are clamped between two corresponding longitudinal sealing baffles (6). The longitudinal sealing baffles (6) are provided with a plurality of positioning grooves (601) for the ends of the transverse sealing baffles (7) to be clamped. Both ends of the longitudinal sealing baffles (6) are connected with first plug posts (61), and a plurality of first plug holes (101) are provided on the peripheral side of the horizontal splicing plate assembly at the upper end.
4. A modularly assembled power room according to claim 3, characterized in that: The lower end of the second thermal insulation board (21) is connected to a second sealing strip (211), and the upper end of the second thermal insulation board (21) is provided with a slot (2101) that fits with the second sealing strip (211); a plurality of first sealing strips (8) are connected to the peripheral side of the horizontal splicing board assembly at the upper end, and a plurality of sealing grooves (23) are provided to the peripheral side of the horizontal splicing board assembly at the lower end; and sealing pads (24) are installed at the upper and lower ends of the vertical pillar (19).
5. A modularly assembled power room according to claim 1, characterized in that: The adjustable support mechanism comprises a sleeve (91), a movable rod (92), a connecting support (93), a butterfly bolt (94), a rotating rod (95) and a fixed plate (96); the bottom end of the movable rod (92) is slidably mounted on the inner side of the sleeve (91); the butterfly bolt (94) is threadedly connected to the sleeve (91); a plurality of limit grooves (921) are provided on the movable rod (92); the connecting support (93) is connected to the bottom end of the sleeve (91); the connecting support (93) is detachably connected to the horizontal splicing plate assembly at the upper end; the rotating rod (95) is rotatably mounted on the upper end of the movable rod (92); the fixed plate (96) is connected to the rotating rod (95); and the fixed plate (96) is detachably connected to the upper baffle (12).
6. A modularly assembled power room according to claim 1, characterized in that: The rotating assembly comprises a rotating connecting rod (14) and two rotating shafts (15), and the corresponding two upper baffles (12) are both rotatably mounted on the two ends of the rotating connecting rod (14) through the rotating shafts (15).
Citation Information
Patent Citations
Fabricated machine room
CN216893688U