A corrosion-proof machine room
By using a "+" shaped air supply duct and multi-layer anti-corrosion panels, combined with top and bottom air conditioning components, the problem of incomplete air supply in the computer room is solved, achieving all-round airflow circulation and anti-corrosion effect in the computer room, ensuring stable operation and long service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUNAN DIGITAL TECH CO LTD
- Filing Date
- 2025-05-29
- Publication Date
- 2026-07-21
AI Technical Summary
Existing air supply ducts in computer rooms suffer from one-way air supply and incomplete air supply, resulting in poor air circulation within the computer room. Some areas become ventilation dead zones, and humid air and corrosive gases accumulate, making it difficult to effectively improve the corrosive environment inside the computer room and failing to meet the requirements of modern computer rooms for high reliability and long lifespan.
The system employs a "+" shaped air supply duct with five air outlets at specific locations, combined with air conditioning components on the top and bottom sides, to achieve multi-directional air supply without dead angles. By adding multiple layers of anti-corrosion panels to the outer surface of the computer room, including steel plates, foam particle concrete layers, and mesh fiber layers, a double protection is formed. Combined with a precision air conditioning system and deflectors, this ensures uniform airflow distribution and temperature and humidity regulation.
It achieves all-round airflow circulation in the computer room, eliminates ventilation dead spots, prevents the accumulation of humid air and corrosive gases, improves the corrosion resistance of the computer room, ensures stable operation of equipment, meets the requirements of high reliability and long service life, and reduces maintenance costs.
Smart Images

Figure CN224538558U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of computer room technology, and specifically relates to a corrosion-resistant computer room. Background Technology
[0002] In this era of rapid digitalization and informatization, data centers, as the core locations for data storage, computation, and network transmission, play a crucial role in ensuring the reliability and security of various information systems. The sophisticated electronic equipment within data centers is highly sensitive to environmental conditions; humidity and corrosive gases can easily cause equipment malfunctions and structural damage. Therefore, effective corrosion prevention measures are essential to guaranteeing the long-term stable operation of data centers.
[0003] In existing anti-corrosion technologies for computer rooms, air supply ducts, as a crucial component for regulating the internal environment, have significant shortcomings. Currently, most computer rooms use air supply ducts that only supply air to the top or bottom of the room. While supplying air only to the top can improve the air quality in the upper space to some extent, the bottom area lacks effective airflow circulation, making it easy for humid air and corrosive gases to accumulate. These accumulated gases not only accelerate the corrosion of the metal structure at the bottom of the room but also accelerate the aging of the cable insulation, increasing the risk of short circuits. Furthermore, air supply ducts that only supply air to the bottom cannot effectively regulate the environment in the top area. The high temperature and humidity environment at the top can cause moisture damage to precision equipment placed high up, leading to oxidation and poor contact of printed circuit boards and electronic components due to moisture corrosion, affecting equipment performance and lifespan.
[0004] Furthermore, existing air supply ducts cannot achieve uniform coverage of the entire computer room space, making it difficult for airflow to reach every corner and resulting in some areas becoming ventilation dead zones. In these dead zones, the concentration of corrosive substances is higher, making equipment and building structures more susceptible to corrosion. This one-sided and incomplete air supply method prevents the air supply ducts from fully exerting their anti-corrosion function, failing to fundamentally improve the corrosive environment inside the computer room, significantly reducing the anti-corrosion effect, increasing equipment maintenance costs and the probability of failure, and failing to meet the high reliability and long lifespan requirements of modern computer rooms. Therefore, there is an urgent need to develop a computer room air supply duct with more comprehensive air supply and better anti-corrosion performance, along with related anti-corrosion technologies.
[0005] Therefore, there is an urgent need to develop a corrosion-resistant computer room that can effectively resist moisture damage and ensure the stable operation of the computer room. Utility Model Content
[0006] The purpose of this utility model is to provide a corrosion-resistant computer room to solve the technical problems of "existing computer room air supply ducts having problems such as one-way air supply and incomplete air supply, resulting in poor air circulation in the computer room, some areas becoming ventilation dead corners, accumulation of humid air and corrosive gases, making it difficult to effectively improve the corrosive environment inside the computer room, and failing to meet the requirements of modern computer rooms for high reliability and long service life, etc."
[0007] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0008] A corrosion-resistant computer room includes a computer room body, and a ceiling panel is provided inside the computer room body; the ceiling panel is installed near the top of the computer room body; a first space is formed between the ceiling panel and the top of the computer room body, and a first corrosion-resistant mechanism is provided in the first space;
[0009] The first anti-corrosion mechanism includes a first air conditioning component and an air supply duct;
[0010] The air conditioning unit is located on the top of the computer room body, the air supply duct is located in the first space, the air inlet of the air supply duct is connected to the air conditioning unit, and the air outlet of the air supply duct is connected to the interior of the computer room body.
[0011] The air supply duct is shaped like a "+", and has five air outlets. The five air outlets include the air outlet located at the center of the "+" shaped air supply duct, and the air outlets located at the four ends of the "+" shaped air supply duct.
[0012] The computer room body is provided with a second anti-corrosion mechanism, which is located on both sides of the bottom of the computer room body. The second anti-corrosion mechanism includes a second air conditioning component; the air outlet of the second air conditioning component is connected to the interior of the computer room body.
[0013] The above technical solution offers the following benefits: Addressing the issues caused by the one-way and incomplete airflow of existing computer room ventilation ducts, this corrosion-resistant computer room achieves significant technical improvements through innovative structural design. By using a "+" shaped ventilation duct in conjunction with five specific air outlet locations, the traditional single-flow mode is changed to ensure multi-directional, dead-angle-free airflow, effectively enhancing airflow circulation within the computer room. The first anti-corrosion mechanism at the top and the second anti-corrosion mechanisms on both sides of the bottom work together to provide bidirectional airflow, regulating temperature and humidity within the computer room, eliminating ventilation dead zones, preventing the accumulation of humid air and corrosive gases, and greatly improving the corrosive environment inside the computer room. This design comprehensively ensures the stable operation of computer room equipment, meeting the stringent requirements of modern computer rooms for high reliability and long lifespan, and providing a durable and stable working environment for the equipment.
[0014] As a further improvement to the above technical solution, the outer surface of the computer room body is provided with anti-corrosion plates, and the number of anti-corrosion plates is several. The anti-corrosion plates are used for the outer walls, bottom plate and top plate of the computer room body.
[0015] The above technical solution offers the following benefits: By adding several anti-corrosion plates to the outer surface of the computer room structure, including the exterior walls, floor, and roof, a double-layer protection system is formed in conjunction with the internal anti-corrosion mechanism. Internally, multi-directional airflow and bidirectional temperature and humidity regulation eliminate the risk of poor air circulation and corrosive gas accumulation. The external anti-corrosion plates directly block external corrosive substances from eroding the computer room structure. This combined internal and external approach significantly improves the overall anti-corrosion performance of the computer room, effectively preventing structural damage due to corrosion, ensuring the stable operation of equipment within the room, further meeting the high reliability and long lifespan requirements of modern computer rooms, while also reducing maintenance costs and improving the durability and safety of the computer room.
[0016] As a further improvement to the above technical solution, the anti-corrosion plate includes a steel plate, a first foamed particle concrete layer, and a second foamed particle concrete layer; the first foamed particle concrete layer is disposed on the outer surface of the steel plate, and the second foamed particle concrete layer is disposed on the inner surface of the steel plate.
[0017] The above technical solution offers the following benefits: The anti-corrosion panel's structural design, from the outside in, provides multi-layered anti-corrosion protection for the computer room. The outer first layer of foamed concrete acts as the first line of defense; its porous structure effectively adsorbs and filters corrosive gases and liquids from the outside, preventing them from directly contacting the steel plate. The middle steel plate, as a robust supporting structure, possesses strong corrosion resistance and can prevent further penetration of corrosive substances. The inner second layer of foamed concrete prevents moisture and corrosive gases generated inside the computer room from eroding the steel plate.
[0018] As a further improvement to the above technical solution, a mesh fiber layer is laid on the outer surface of both the first foam particle concrete layer and the second foam particle concrete layer, and an anti-corrosion layer is provided on the outer surface of the mesh fiber layer.
[0019] The above technical solution offers the following benefits: By adding a mesh fiber layer to the original anti-corrosion panel structure, the protective performance of the anti-corrosion computer room is further enhanced. The mesh fiber layer, laid on the outer surface of the first and second foam particle concrete layers, effectively enhances the crack resistance of the foam particle concrete layer due to its high strength and good toughness, preventing cracking caused by external stress or temperature changes. This prevents corrosive substances from penetrating through cracks, improving the overall structural stability of the anti-corrosion panel. The outer anti-corrosion layer forms a dense protective barrier, effectively isolating external corrosive gases, liquids, and moisture, further blocking corrosion paths and reducing the risk of environmental factors eroding the computer room itself.
[0020] As a further improvement to the above technical solution, a guide vane is provided at the air outlet.
[0021] The above technical solution has the following benefits: by installing a deflector at the air outlet, the airflow direction can be accurately guided and adjusted, avoiding direct airflow impact on the equipment in the computer room or the formation of turbulence, so that the air can be more evenly and orderly diffused to all areas of the computer room, effectively reducing blind spots and dead zones in air supply.
[0022] As a further improvement to the above technical solution, the bottom of the computer room body is also provided with support feet.
[0023] The above technical solution has the following advantages: By installing support feet at the bottom of the computer room, the support feet isolate the bottom of the computer room from the ground, thereby effectively reducing the direct erosion of the computer room floor and internal equipment by ground moisture and corrosive substances, and avoiding equipment dampness and corrosion problems caused by ground dampness. Attached Figure Description
[0024] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0025] Figure 1 A three-dimensional schematic diagram of the corrosion-resistant computer room provided by this utility model;
[0026] Figure 2 A schematic diagram of the first anti-corrosion mechanism and the computer room body provided by this utility model;
[0027] Figure 3 A schematic diagram of the overall structure of the first anti-corrosion mechanism provided by this utility model;
[0028] Figure 4 A bottom view of the air supply duct provided by this utility model;
[0029] Figure 5 This is a cross-sectional view of the anti-corrosion plate provided by this utility model;
[0030] Explanation of reference numerals in the attached figures;
[0031] 1-Computer room body; 11-Ceiling panel; 2-First space; 3-First anti-corrosion mechanism; 31-First air conditioning component; 32-Air supply duct; 321-Air outlet; 4-Second anti-corrosion mechanism; 41-Second air conditioning component; 5-Anti-corrosion plate; 51-Steel plate; 52-First foamed particle concrete layer; 53-Second foamed particle concrete layer; 6-Mesh fiber layer; 61-Anti-corrosion layer; 7-Baffle plate; 8-Supporting feet. Detailed Implementation
[0032] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0033] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model 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 this utility model.
[0034] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0035] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0036] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0037] Example 1
[0038] like Figures 1 to 4 As shown, a corrosion-resistant computer room includes a computer room body 1, and a ceiling panel 11 is provided inside the computer room body 1; the ceiling panel 11 is installed near the top of the computer room body 1; a first space 2 is formed between the ceiling panel 11 and the top of the computer room body 1, and a first corrosion-resistant mechanism 3 is provided in the first space 2.
[0039] The first anti-corrosion mechanism 3 includes a first air conditioning component 31 and an air supply duct 32;
[0040] The air conditioning unit 31 is located on the top of the computer room body 1, and the air supply duct 32 is located in the first space 2. The air inlet end of the air supply duct 32 is connected to the air conditioning unit 31, and the air outlet end of the air supply duct 32 is connected to the interior of the computer room body 1.
[0041] The air supply duct 32 is shaped like a "+", and the air supply duct 32 is provided with an air outlet 321. There are five air outlets 321, including the air outlet located at the center of the "+" shaped air supply duct 32, and the air outlets located at the four ends of the "+" shaped air supply duct 32.
[0042] The main body 1 of the computer room is equipped with a second anti-corrosion mechanism 4, which is located on both sides of the bottom of the main body 1. The second anti-corrosion mechanism 4 includes a second air conditioning component 41. The air outlet of the second air conditioning component 41 is connected to the interior of the main body 1. Through the "+" shaped air supply pipe 32 and the five air outlets 321 at specific locations, the traditional single air supply mode is changed to ensure multi-directional and dead-angle air supply, effectively enhancing the airflow circulation in the computer room. The first anti-corrosion mechanism 3 at the top and the second anti-corrosion mechanisms 4 on both sides of the bottom work together to supply air in both directions to regulate the temperature and humidity in the computer room, eliminate ventilation dead corners, prevent the accumulation of humid air and corrosive gas, and greatly improve the corrosive environment inside the computer room.
[0043] In this embodiment, the outer surface of the computer room body 1 is provided with anti-corrosion plates 5. Several anti-corrosion plates 5 are installed, serving as the outer walls, floor, and roof of the computer room body 1. By adding several anti-corrosion plates 5 to the outer surface of the computer room body 1, and using them for the outer walls, floor, and roof, double protection is ensured in conjunction with the internal anti-corrosion mechanism. Internally, multi-directional air supply and bi-directional temperature and humidity regulation eliminate the risk of poor airflow circulation and corrosive gas accumulation. Externally, the anti-corrosion plates 5 directly block external corrosive substances from eroding the computer room body 1. This combined effect from both inside and outside significantly improves the overall anti-corrosion performance of the computer room, effectively preventing structural damage due to corrosion, ensuring the stable operation of equipment within the computer room, further meeting the high reliability and long lifespan requirements of modern computer rooms, while also reducing maintenance costs and improving the durability and safety of the computer room.
[0044] like Figure 5 As shown, the anti-corrosion plate 5 further includes a steel plate 51, a first foamed concrete layer 52, and a second foamed concrete layer 53. The first foamed concrete layer 52 is located on the outer surface of the steel plate 51, and the second foamed concrete layer 53 is located on the inner surface of the steel plate 51. The structural design of this anti-corrosion plate 5 from the outside to the inside provides multi-layer anti-corrosion protection for the computer room. The outer first foamed concrete layer 53 acts as the first line of defense, and its porous structure can effectively adsorb and filter external corrosive gases and liquids, preventing them from directly contacting the steel plate 51. The middle steel plate 51 serves as a sturdy supporting structure with strong corrosion resistance, which can block further penetration of corrosive substances. The inner second foamed concrete layer 53 prevents moisture and corrosive gases generated inside the computer room from corroding the steel plate 51.
[0045] Furthermore, a mesh fiber layer 6 is laid on the outer surface of both the first foam particle concrete layer 52 and the second foam particle concrete layer 53, and an anti-corrosion layer 61 is provided on the outer surface of the mesh fiber layer 6. By adding a mesh fiber layer 6 to the original anti-corrosion panel 5 structure, the protective performance of the anti-corrosion computer room is further enhanced. The mesh fiber layer 6 is laid on the outer surface of the first and second foam particle concrete layers. With its high strength and good toughness, it effectively enhances the crack resistance of the foam particle concrete layer, prevents the concrete layer from cracking due to external stress or temperature changes, thereby preventing corrosive substances from penetrating through cracks and improving the overall structural stability of the anti-corrosion panel 5. The anti-corrosion layer 61 on the outer surface forms a dense protective barrier, effectively isolating external corrosive gases, liquids and moisture, further blocking corrosion paths and reducing the risk of environmental factors corroding the computer room body 1.
[0046] In this embodiment, a guide plate 7 is provided at the air outlet 321. By providing a guide plate 7 at the air outlet 321, the direction of airflow can be accurately guided and adjusted, avoiding direct impact of airflow on the equipment in the computer room or the formation of turbulence, so that the air can be more evenly and orderly diffused to all areas of the computer room, effectively reducing blind spots and dead zones in air supply.
[0047] In this embodiment, the bottom of the computer room body 1 is also provided with support feet 8. By providing support feet 8 at the bottom of the computer room body 1, the support feet 8 isolate the bottom of the computer room body 1 from the ground, so as to effectively reduce the direct erosion of the computer room floor and internal equipment by ground moisture and corrosive substances, and avoid equipment dampness and corrosion problems caused by ground dampness.
[0048] In this embodiment, the air supply duct 32 is made of corrosion-resistant materials, such as stainless steel, aluminum, or aluminum alloys.
[0049] In this embodiment, the first air conditioning unit 31 and the second air conditioning unit 41 are precision air conditioning units with precise temperature and humidity control functions. These precision air conditioning units are equipped with an intelligent control system that can monitor the temperature and humidity data in the computer room in real time and automatically adjust the cooling capacity, air volume, and humidification or dehumidification functions according to preset thresholds. The first air conditioning unit 31 delivers treated dry and clean air to various parts of the computer room through the top air duct 32, while the second air conditioning unit 41 delivers air from both sides of the bottom of the computer room, forming an upward and downward convection airflow circulation pattern. Simultaneously, the air filtration system built into the precision air conditioning unit uses a multi-stage filtration system of primary, medium, and high efficiency filters, effectively filtering dust, corrosive particles, and other impurities in the air, further reducing the impact of corrosive substances on the computer room equipment. Furthermore, the outer shell of the air conditioning unit is treated with an anti-corrosion coating, and key internal components such as the evaporator and condenser are made of corrosion-resistant materials, ensuring that the air conditioning unit itself has good corrosion resistance and long-term stable operation capability in the computer room environment. The specific circuits and control algorithms of the first air conditioning unit 31 and the second air conditioning unit 41 are not described in detail here, as these are existing conventional technologies in the field.
[0050] In this embodiment, the steel plate 51 is made of aluminum-zinc coated steel core plate material.
[0051] In this embodiment, the steel plate 51 is fixed to the computer room body 1 by self-tapping screws.
[0052] In this embodiment, the anti-corrosion layer 61 is an epoxy coal tar coating, which is made by mixing epoxy resin and coal tar in a specific ratio. It combines the high strength and chemical resistance of epoxy resin with the excellent water resistance and antimicrobial erosion properties of coal tar. Through multi-layer brushing, a dense and continuous protective film is formed on the surface of the mesh fiber layer 6, which has excellent barrier ability against corrosive media such as acids, alkalis, and salts. Alternatively, it can be a polyurethane anti-corrosion coating. This coating has high hardness and strong wear resistance after curing, and has good weather resistance and temperature resistance. It can maintain stable protective performance under different ambient temperatures and effectively isolate external moisture and corrosive gases from contact with the foam particle concrete layer.
[0053] Working principle of this utility model:
[0054] S1. Humidity and airflow control:
[0055] The first anti-corrosion mechanism: After dehumidifying and filtering the air, the first air conditioning component 31 delivers the treated air to the "+" shaped air supply duct 32. Due to the unique "+" shape of the air supply duct 32 and the design of five air outlets 321 at specific locations, air can be blown out from the top of the computer room to all directions and the center, without dead angles. The air outlets 321 located at the center and ends work together to change the traditional single air supply mode, enhance airflow circulation within the computer room, and allow air to fully diffuse in the top area of the computer room.
[0056] Second anti-corrosion mechanism: The second air conditioning component 41 supplies air into the computer room from both sides of the bottom of the computer room body 1, forming a bidirectional airflow with the air supply from the first anti-corrosion mechanism 3 at the top. This coordinated air supply method can effectively eliminate ventilation dead zones, quickly regulate the humidity in various parts of the computer room, prevent the accumulation of humid air from causing equipment corrosion, and also help to disperse any corrosive gases that may be present.
[0057] S2. Corrosion-resistant structural protection:
[0058] Corrosion Protection Panels: The corrosion protection panel 5 on the outer surface of the computer room body 1 consists of a steel plate 51, a first foamed concrete layer 52, and a second foamed concrete layer 53. The outer first foamed concrete layer 52 utilizes its porous structure to adsorb and filter external corrosive gases and liquids, providing initial protection. The middle steel plate 51 serves as a robust support structure, using its strong corrosion resistance to prevent further penetration of corrosive substances. The inner second foamed concrete layer 53 prevents moisture and corrosive gases generated inside the computer room from eroding the steel plate 51. Furthermore, the mesh fiber layer 6 on the outer surface of the first and second foamed concrete layers enhances the crack resistance of the concrete layer, preventing cracking due to external stress or temperature changes and avoiding the penetration of corrosive substances through cracks. The outermost corrosion protection layer 61 forms a dense barrier, isolating external corrosive factors, thus forming a multi-layered protection system from the outside in, effectively protecting the computer room body 1.
[0059] S3. Other structural auxiliary corrosion protection: The air guide plate 7 at the air outlet 321 precisely guides and adjusts the airflow direction, preventing direct airflow impact on equipment or the formation of turbulence, ensuring uniform air diffusion, reducing blind spots and dead zones in airflow, and further optimizing the airflow environment in the computer room. The support feet 8 at the bottom of the computer room body 1 isolate the computer room from the ground, reducing the erosion of the computer room floor and internal equipment by ground moisture and corrosive substances, and preventing the equipment from getting damp and corroded.
[0060] S4. Comprehensive Synergistic Effect: The temperature and humidity control system works in conjunction with the anti-corrosion structure. Internally, multi-directional and bi-directional humidity control eliminates the risk of poor airflow circulation and the accumulation of corrosive gases. Externally, the anti-corrosion plate 5 directly blocks external corrosive substances. Together, they enhance the overall anti-corrosion performance of the computer room from both inside and outside, ensuring the stable operation of the equipment in the computer room, reducing maintenance costs, and improving the durability and safety of the computer room.
Claims
1. A corrosion-resistant computer room, comprising a computer room body (1), wherein a ceiling panel (11) is provided inside the computer room body (1); the ceiling panel (11) is disposed near the top of the computer room body (1); characterized in that, The ceiling panel (11) and the top of the computer room body (1) form a first space (2), and a first anti-corrosion mechanism (3) is provided in the first space (2); The first anti-corrosion mechanism (3) includes a first air conditioning component (31) and an air supply duct (32); The air conditioning unit (31) is located on the top of the computer room body (1), and the air supply pipe (32) is located in the first space (2). The air inlet of the air supply pipe (32) is connected to the air conditioning unit (31), and the air outlet of the air supply pipe (32) is connected to the interior of the computer room body (1). The air supply pipe (32) is shaped like a "+", and the air supply pipe (32) is provided with an air outlet (321). The number of air outlets (321) is five. The five air outlets include the air outlet located at the center of the "+" shaped air supply pipe (32) and the air outlets located at the four ends of the "+" shaped air supply pipe (32). The computer room body (1) is provided with a second anti-corrosion mechanism (4). The second anti-corrosion mechanism (4) is located on both sides of the bottom of the computer room body (1). The second anti-corrosion mechanism (4) includes a second air conditioning component (41). The air outlet of the second air conditioning component (41) is connected to the interior of the computer room body (1).
2. The corrosion-resistant computer room according to claim 1, characterized in that, The outer surface of the computer room body (1) is provided with anti-corrosion plates (5), and the number of anti-corrosion plates (5) is several. The anti-corrosion plates (5) are used for the outer wall, bottom plate and top plate of the computer room body (1).
3. The corrosion-resistant computer room according to claim 2, characterized in that, The anti-corrosion plate (5) includes a steel plate (51), a first foamed particle concrete layer (52) and a second foamed particle concrete layer (53); the first foamed particle concrete layer (52) is disposed on the outer surface of the steel plate (51) and the second foamed particle concrete layer (53) is disposed on the inner surface of the steel plate (51).
4. A corrosion-resistant computer room according to claim 3, characterized in that, The outer surfaces of the first foamed particle concrete layer (52) and the second foamed particle concrete layer (53) are both covered with a mesh fiber layer (6), and the outer surface of the mesh fiber layer (6) is provided with an anti-corrosion layer (61).
5. A corrosion-resistant computer room according to claim 1, characterized in that, A baffle plate (7) is provided at the air outlet (321).
6. A corrosion-resistant computer room according to claim 1, characterized in that, The bottom of the main body (1) of the computer room is also provided with support feet (8).