Heat preservation type machine room
By using a combination of a steel structure frame and a lightweight foam particle concrete layer in the computer room, combined with a glass fiber insulation layer, the problems of poor insulation effect and complex construction in the computer room are solved, achieving low energy consumption and safe insulation effect and simplifying construction and maintenance.
Patent Information
- Application Number
- CN202422381453.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-09-27
AI Technical Summary
The insulation effect of the existing machine room is not obvious, resulting in high energy consumption of the air conditioning system, complex construction and difficult maintenance, and poses safety hazards.
The insulation layer composed of a steel structure frame and a lightweight foam particle concrete layer is combined with a glass fiber insulation layer. Through the combination of steel plate, foam particle concrete layer and mesh fiber layer, the adhesion and thermal insulation effect are ensured and heat transfer is reduced.
It achieves a lightweight and low-cost insulation effect, reduces energy consumption of the air conditioning system, simplifies construction and maintenance, prevents the insulation layer from falling off, and maintains the internal temperature of the machine room.
Smart Images

Figure CN223075247U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of computer rooms, and particularly relates to a heat-insulating computer room. Background Technique
[0002] With the rapid development of information technology, the construction demand for various computer rooms is increasing day by day. A large number of electronic devices are usually placed in a computer room. These devices will generate a large amount of heat during operation and also need to operate stably within a certain temperature range. If the temperature of the computer room is too high, it will affect the normal operation of the devices and even cause device damage. Therefore, the heat-insulating performance of the computer room is crucial for the normal operation of the devices and energy conservation and consumption reduction.
[0003] At present, the temperature control of computer rooms mainly uses air-conditioning systems for cooling. Since traditional heat-insulating computer rooms often adopt a composite wall formed by overlapping reinforced concrete + heat-insulating material + reinforced concrete to form a heat-insulating computer room, this method not only has an insignificant heat-insulating effect, but also increases the energy consumption of the air-conditioning system. Even in cold seasons such as winter, the air-conditioning system still needs to be heated, further increasing the energy consumption.
[0004] Moreover, the method of using a composite wall formed by overlapping reinforced concrete + heat-insulating material + reinforced concrete to form a heat-insulating computer room not only has complex construction and difficult later maintenance, etc., but also has a certain impact on its manufacturing cost, quality, handling, etc. when using this heavy reinforced concrete to form a heat-insulating computer room, and even the wall falls off, causing potential safety hazards, etc. Content of the Utility Model
[0005] The purpose of the utility model is to provide a heat-insulating computer room to solve the technical problems existing in the background technique.
[0006] To achieve the above purpose, the technical solution adopted by the utility model is:
[0007] A heat-insulating computer room includes a computer room body, a heat-insulating layer and a heat-insulating layer. The computer room body includes a steel structure frame, a cabinet door, a foundation base and a foundation top plate; the cabinet door is hinged to the steel structure frame, the foundation base is arranged at the bottom of the steel structure frame, and the foundation top plate is arranged at the top of the steel structure frame;
[0008] The number of the heat-insulating layers is several, and they are fixedly arranged on the steel structure frame, the foundation base and the foundation top plate for the outer wall, bottom plate and top plate of the computer room body;
[0009] The heat-insulating layer includes a steel plate, a first foam particle concrete layer and a second foam particle concrete layer; the first foam particle concrete layer is arranged on the outer surface of the steel plate, and the second foam particle concrete layer is arranged on the inner surface of the steel plate;
[0010] A grid fiber layer is laid on the outer surfaces of both the first foamed particle concrete layer and the second foamed particle concrete layer, and a heat insulation layer is provided on the outer surface of the grid fiber layer.
[0011] Beneficial effects of the above technical solution: Compared with the prior art, a heat-insulated computer room effectively improves the overall structure and assembly method of the computer room body, the heat-insulation layer and the heat-insulation layer. By assembling the computer room body only with a steel structure frame, a foundation base and a foundation top plate, its construction is ensured to be simple and its later maintenance is simple, etc.; by using a steel plate, a first foamed particle concrete layer and a second foamed particle concrete layer for the heat-insulation layer, the steel plate ensures the strength of the heat-insulation layer to prevent deformation of the heat-insulation layer, etc. The optimized heat-insulation layer has the advantages of light weight, easy handling, simple production, low production cost, and good heat-insulation effect, etc., to ensure good heat-insulation effect of the computer room and reduce the energy consumption of the air-conditioning system, etc.; by laying grid fiber layers on the outer surfaces of both the first foamed particle concrete layer and the second foamed particle concrete layer, it further ensures to increase the adhesion between the outer surface of the steel plate and the first foamed particle concrete layer and the adhesion between the inner surface of the steel plate and the second foamed particle concrete layer, preventing potential safety hazards caused by the shedding of the heat-insulation layer, etc.; by providing a heat-insulation layer on the outer surface of the grid fiber layer, the main function of the heat-insulation layer is to reduce heat transfer, thereby protecting the computer room body from the influence of high temperature or low temperature and keeping the temperature inside the computer room body stable; further ensuring good heat-insulation and heat-insulation effects of the computer room.
[0012] Preferably, a groove extending along the length direction is provided on the inner surface of the steel plate, and the opening of the groove faces the inner surface of the steel plate, and the groove is used to improve the adhesion between the inner surface of the steel plate and the second foamed particle concrete layer.
[0013] Beneficial effects of the above technical solution: By providing a groove extending along the length direction on the inner surface of the steel plate, it ensures to increase the adhesion between the inner surface of the steel plate and the second foamed particle concrete layer, preventing the second foamed particle concrete layer from falling off the inner surface of the steel plate and causing potential safety hazards, etc.
[0014] Preferably, a plurality of mesh holes are provided on the steel plate, the mesh holes are evenly arranged along the steel plate, and U-shaped grooves extending along the length direction are provided on both sides of the steel plate, and the openings of the U-shaped grooves face the outer surface of the steel plate.
[0015] Beneficial effects of the above technical solution: By providing a plurality of mesh holes on the steel plate, it ensures to reduce the weight of the steel plate; by providing U-shaped grooves extending along the length direction on both sides of the steel plate, it ensures the filling of subsequent heat-insulation and heat-preservation strips, etc.
[0016] Preferably, a heat-insulation and heat-preservation strip is provided in the U-shaped groove.
[0017] Advantages of the above technical solution: By filling the U-shaped groove with heat insulation strips, the heat insulation and heat preservation capacity of the computer room body is further enhanced.
[0018] In a preferred solution, bumps are provided at corresponding positions of the mesh holes; first barbs are provided on the outer surface of the bumps, and the first barbs are used to improve the adhesion between the outer surface of the steel plate and the first foamed particle concrete layer.
[0019] Advantages of the above technical solution: By providing bumps at corresponding positions of the mesh holes, the adhesion between the outer surface of the steel plate and the first foamed particle concrete layer is ensured, and the first foamed particle concrete layer is prevented from falling off the steel plate; by providing first barbs on the outer surface of the bumps, the adhesion between the outer surface of the steel plate and the first foamed particle concrete layer is further ensured, and the first foamed particle concrete layer is further prevented from falling off the steel plate to cause potential safety hazards, and the heat insulation and heat preservation effect of the computer room body is further ensured.
[0020] In a preferred solution, second barbs are provided in the U-shaped groove, and the number of the second barbs is several and they are uniformly arranged on the side walls of the U-shaped groove, and are used to improve the adhesion between the steel plate and the heat insulation strip.
[0021] Advantages of the above technical solution: By providing second barbs on the side walls of the U-shaped groove, the falling off of the heat insulation strips on both sides is prevented, and the heat insulation and heat preservation effect of the computer room body is further ensured.
[0022] In a preferred solution, the steel plate is fixed to the steel structure frame, the foundation base and the foundation top plate by self-tapping screws.
[0023] Advantages of the above technical solution: By fixing the steel plate to the steel structure frame, the foundation base and the foundation top plate by self-tapping screws respectively, the installation and splicing of the prefabricated cement foam board with the steel structure frame, the foundation base and the foundation top plate are ensured, and the heat insulation and heat preservation effect of the computer room body is further ensured.
[0024] In a preferred solution, the heat insulation layer is made of glass fiber, and the thickness of the heat insulation layer is 30-50 mm.
[0025] Advantages of the above technical solution: By making the heat insulation layer of glass fiber, the advantages of fiber heat insulation are high temperature resistance, good heat insulation, good ductility, etc., so as to achieve the best heat insulation effect of the computer room body.
[0026] In a preferred solution, a temperature sensor is further provided in the computer room body.
[0027] Beneficial effects of the above technical solution: By providing a temperature sensor inside the computer room body, it is ensured that the temperature of the computer room is monitored in real time, preventing the temperature of the computer room from being too high and affecting the normal operation of its equipment, or even causing equipment damage, etc. Description of the Drawings
[0028] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0029] Figure 1 Schematic diagram of the overall structure of the heat-insulating computer room provided in Embodiment 1 of the present invention;
[0030] Figure 2 Schematic cross-sectional view of the assembly of the heat-insulating layer and the heat-insulating layer provided in Embodiment 1 of the present invention;
[0031] Figure 3 Schematic diagram of the overall structure of the steel plate provided in Embodiment 1 of the present invention;
[0032] Figure 4 Schematic cross-sectional view of the steel plate provided in Embodiment 1 of the present invention;
[0033] Figure 5 Enlarged schematic view of the assembly of the steel plate, the first barbs, the second barbs and the groove provided in Embodiment 1 of the present invention;
[0034] Description of the reference numerals;
[0035] 1 - Computer room body; 11 - Steel structure frame; 12 - Computer room door; 13 - Foundation base; 14 - Foundation top plate; 2 - Heat-insulating layer; 21 - Steel plate; 22 - First foamed particle concrete layer; 23 - Second foamed particle concrete layer; 24 - Mesh holes; 3 - Heat-insulating layer; 4 - Heat-insulating and heat-preserving strip; 5 - Mesh fiber layer; 6 - Groove; 7 - U-shaped groove; 71 - Second barbs; 8 - Protrusion; 81 - First barbs. Specific Embodiments
[0036] Embodiment 1
[0037] In order to make the purpose, technical solution and advantages of the present invention clearer, the following further details the present invention in combination with embodiments.
[0038] As Figures 1 to 5As shown in the figure, a heat-insulating computer room includes a computer room body 1, a heat-insulating layer 2, and a heat-insulating layer 3. The computer room body 1 includes a steel structure frame 11, a computer room door 12, a foundation base 13, and a foundation top plate 14; the computer room door 12 is hinged to the steel structure frame 11, the foundation base 13 is arranged at the bottom of the steel structure frame 11, and the foundation top plate 14 is arranged at the top of the steel structure frame 11;
[0039] The number of the heat-insulating layers 2 is several, and they are fixedly arranged on the steel structure frame 11, the foundation base 13, and the foundation top plate 14 for the outer wall, the bottom plate, and the top plate of the computer room body 1;
[0040] The heat-insulating layer 2 includes a steel plate 21, a first foamed particle concrete layer 22, and a second foamed particle concrete layer 23; the first foamed particle concrete layer 22 is arranged on the outer surface of the steel plate 21, and the second foamed particle concrete layer 23 is arranged on the inner surface of the steel plate 21;
[0041] Grid fiber layers 5 are laid on the outer surfaces of the first foamed particle concrete layer 22 and the second foamed particle concrete layer 23, and a heat-insulating layer 3 is arranged on the outer surface of the grid fiber layer 5; through effective improvement of the overall structure and assembly method of the computer room body 1, the heat-insulating layer 2, and the heat-insulating layer 3, by assembling the computer room body 1 only with the steel structure frame 11, the foundation base 13, and the foundation top plate 14, to ensure its simple construction and simple later maintenance, etc.; by using the steel plate 21, the first foamed particle concrete layer 22, and the second foamed particle concrete layer 23 for the heat-insulating layer 2, the steel plate 21 ensures the strength of the heat-insulating layer 2 to prevent deformation of the heat-insulating layer 2, etc. The optimized heat-insulating layer 2 has the advantages of light weight, easy handling, simple production, low production cost, and good heat-insulating effect, etc., to ensure good heat-insulating effect of the computer room and reduce the energy consumption of the air-conditioning system, etc.; by laying grid fiber layers 5 on the outer surfaces of the first foamed particle concrete layer 22 and the second foamed particle concrete layer 23, it further ensures to increase the adhesion between the outer surface of the steel plate 21 and the first foamed particle concrete layer 22, and the adhesion between the inner surface of the steel plate 21 and the second foamed particle concrete layer 23, and prevent potential safety hazards caused by the shedding of the heat-insulating layer 2, etc.; by arranging the heat-insulating layer 3 on the outer surface of the grid fiber layer 5, the main function of the heat-insulating layer 3 is to reduce heat transfer, thereby protecting the computer room body 1 from the influence of high temperature or low temperature and keeping the temperature inside the computer room body 1 stable; it further ensures the heat-insulating effect and heat-insulating effect of the computer room.
[0042] In this embodiment, a groove 6 extending along the length direction is provided on the inner surface of the steel plate 21. The opening of the groove 6 faces the inner surface of the steel plate 21. The groove 6 is used to improve the adhesion between the inner surface of the steel plate 21 and the second foamed particle concrete layer 23. By providing a groove 6 extending along the length direction on the inner surface of the steel plate 21, it is ensured to increase the adhesion between the inner surface of the steel plate 21 and the second foamed particle concrete layer 23, preventing the second foamed particle concrete layer 23 from falling off the inner surface of the steel plate 21 and causing potential safety hazards, etc.
[0043] In this embodiment, a plurality of mesh holes 24 are provided on the steel plate 21. The mesh holes 24 are evenly arranged along the steel plate 21. U-shaped grooves 7 extending along the length direction are provided on both sides of the steel plate 21. The opening of the U-shaped groove 7 faces the outer surface of the steel plate 21. By providing a plurality of mesh holes 24 on the steel plate 21, it is ensured to reduce the weight of the steel plate 21. By providing U-shaped grooves 7 extending along the length direction on both sides of the steel plate 21, it is ensured for subsequent filling of the heat insulation and heat preservation strips 4, etc.
[0044] In this embodiment, a heat insulation and heat preservation strip 4 is provided in the U-shaped groove 7. By filling the heat insulation and heat preservation strip 4 in the U-shaped groove 7, it is further ensured to enhance the heat insulation and heat preservation ability of the machine room body 1.
[0045] In this embodiment, a convex block 8 is provided at the position corresponding to the mesh hole 24. First barbs 81 are provided on the outer surface of the convex block 8. The first barbs 81 are used to improve the adhesion between the outer surface of the steel plate 21 and the first foamed particle concrete layer 22. By providing a convex block 8 at the position corresponding to the mesh hole 24, it is ensured to increase the adhesion between the outer surface of the steel plate 21 and the first foamed particle concrete layer 22, preventing the first foamed particle concrete layer 22 from falling off the steel plate 21. By providing the first barbs 81 on the outer surface of the convex block 8, it is further ensured to increase the adhesion between the outer surface of the steel plate 21 and the first foamed particle concrete layer 22 and further prevent the first foamed particle concrete layer 22 from falling off the steel plate 21 and causing potential safety hazards, and further ensure the heat insulation and heat preservation effect of the machine room body 1.
[0046] In this embodiment, second barbs 71 are provided in the U-shaped groove 7. The number of the second barbs 71 is several and they are evenly arranged on the side wall of the U-shaped groove 7. They are used to improve the adhesion between the steel plate 21 and the heat insulation and heat preservation strip 4. By providing the second barbs 71 on the side wall of the U-shaped groove 7, it is ensured to prevent the heat insulation and heat preservation strips 4 on both sides from falling off, and further ensure the heat insulation and heat preservation effect of the machine room body 1.
[0047] In this embodiment, the steel plate 21 is fixed to the steel structure frame 11, the foundation base 13 and the foundation top plate 14 by self-tapping screws; by fixing the steel plate 21 to the steel structure frame 11, the foundation base 13 and the foundation top plate 14 respectively by self-tapping screws, it is ensured that the installation and splicing of the prefabricated cement foam board with the steel structure frame 11, the foundation base 13 and the foundation top plate 14 are convenient, and further ensure the heat insulation and heat preservation effect of the machine room body 1.
[0048] In this embodiment, the heat insulation layer 3 is made of glass fiber, and the thickness of the heat insulation layer 3 is 30-50 mm; by making the heat insulation layer 3 of glass fiber, the advantages of fiber heat insulation are strong high-temperature resistance, good heat insulation, good ductility, etc., so as to achieve the best heat insulation effect of the machine room body 1.
[0049] In this embodiment, a temperature sensor is also provided in the machine room body 1; by providing a temperature sensor in the machine room body 1, it is ensured that the machine room temperature is monitored in real time, so as to prevent the machine room temperature from being too high and affecting the normal operation of its equipment, and even causing equipment damage, etc.
[0050] In this embodiment, the steel plate 21 is made of aluminized zinc steel core plate material; by making the steel plate 21 of aluminized zinc steel core plate material, it is ensured the strength of its heat preservation layer 2, prevent deformation, etc., and prevent oxidation, corrosion and rust of the steel plate 21, which will not only increase its manufacturing cost, but also pose certain safety hazards and other technical problems.
[0051] In this embodiment, the second barbs 71 are adapted to the heat insulation and heat preservation strip 4, so that the second barbs 71 fix the heat insulation and heat preservation strip 4 firmly in the U-shaped groove 7.
[0052] Specific usage method of the present utility model:
[0053] Step 1: According to the actual usage requirements, carry out construction drawing design for the steel structure frame 11, the foundation base 13 and the foundation top plate 14, and complete the installation and splicing of the steel structure frame 11 according to the design drawings.
[0054] Step 2: Carry out construction drawing design for the steel plate 21, cut it to a fixed length according to the design drawings on the factory assembly line, and stamp and form the steel core plate mold;
[0055] Step 3: Then pour the mixed foam particle concrete on the inner surface and the outer surface of the steel plate 21, lay the grid fiber layer 5, and fill the heat insulation and heat preservation strip 4 into the U-shaped groove 7 of the steel plate 21 to complete the processing of the heat preservation layer 2.
[0056] Step 4: Install the processed basic base 13 at the bottom of the steel structure frame 11 by bolts, install the basic top plate 14 at the top of the steel structure frame 11 by bolts, and fix the thermal insulation layer 2 to the steel structure frame 11, the basic base 13 and the basic top plate 14 respectively by self-tapping screws;
[0057] Step 5: Apply the heat insulation layer 3 to the outer surface of the grid fiber layer 5 with a thickness of 30 - 50 mm to complete the processing of the heat insulation layer 3.
[0058] It should be noted that in this text, the term "including", "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0059] In this article, specific examples are used to elaborate on the principle and implementation mode of the present utility model. The description of the above examples is only used to help understand the method and its core idea of the present utility model.
[0060] The above is only the preferred implementation mode of the present utility model. It should be pointed out that due to the limited nature of written expression and the objectively infinite specific structures, for those of ordinary skill in the art in this technical field, without departing from the principle of the present utility model, several improvements, retouches or changes can be made, or the above technical features can be combined in an appropriate way; these improvements, retouches, changes or combinations, or directly applying the concept and technical solution of the utility model to other occasions without improvement, should all be regarded as the protection scope of the present utility model.
Claims
1. A heat-insulating computer room, comprising a computer room body (1), a heat-insulating layer (2) and a heat-insulating layer (3), characterized in that: The computer room body (1) includes a steel structure frame (11), a computer room door (12), a foundation base (13) and a foundation top plate (14); the computer room door (12) is hinged to the steel structure frame (11), the foundation base (13) is arranged at the bottom of the steel structure frame (11), and the foundation top plate (14) is arranged at the top of the steel structure frame (11); The number of the heat-insulating layers (2) is several, and they are fixedly arranged on the steel structure frame (11), the foundation base (13) and the foundation top plate (14) for the outer wall, bottom plate and top plate of the computer room body (1); The heat-insulating layer (2) includes a steel plate (21), a first foamed particle concrete layer (22) and a second foamed particle concrete layer (23); the first foamed particle concrete layer (22) is arranged on the outer surface of the steel plate (21), and the second foamed particle concrete layer (23) is arranged on the inner surface of the steel plate (21); Grid fiber layers (5) are laid on the outer surfaces of the first foamed particle concrete layer (22) and the second foamed particle concrete layer (23), and a heat-insulating layer (3) is arranged on the outer surface of the grid fiber layer (5).
2. The thermal insulation computer room according to claim 1, characterized in that, A groove (6) extending along the length direction is arranged on the inner surface of the steel plate (21), and the opening of the groove (6) faces the inner surface of the steel plate (21), and the groove (6) is used to improve the adhesion between the inner surface of the steel plate (21) and the second foamed particle concrete layer (23).
3. The thermal insulation computer room according to claim 2, characterized in that, A number of mesh holes (24) are arranged on the steel plate (21), the mesh holes (24) are evenly arranged along the steel plate (21), and U-shaped grooves (7) extending along the length direction are arranged on both sides of the steel plate (21), and the openings of the U-shaped grooves (7) face the outer surface of the steel plate (21).
4. A heat-insulating computer room according to claim 3, characterized in that, A heat-insulating and heat-preserving strip (4) is arranged in the U-shaped groove (7).
5. A heat-insulating computer room according to claim 3, characterized in that, Protrusions (8) are arranged at the corresponding positions of the mesh holes (24); first barbs (81) are arranged on the outer surface of the protrusions (8), and the first barbs (81) are used to improve the adhesion between the outer surface of the steel plate (21) and the first foamed particle concrete layer (22).
6. The heat-insulating computer room according to claim 3, characterized in that, Second barbs (71) are arranged in the U-shaped groove (7), the number of the second barbs (71) is several, and they are evenly arranged on the side walls of the U-shaped groove (7) and are used to improve the adhesion between the steel plate (21) and the heat-insulating and heat-preserving strip (4).
7. The insulation type computer room according to claim 1, characterized in that, The steel plate (21) is fixedly arranged on the steel structure frame (11), the foundation base (13) and the foundation top plate (14) by self-tapping screws.
8. A heat-insulated computer room according to claim 1, characterized in that, The heat-insulating layer (3) is made of glass fiber, and the thickness of the heat-insulating layer (3) is 30-50 mm.
9. The thermal insulation type computer room according to claim 1, wherein A temperature sensor is further arranged in the computer room body (1).