Integrated cabinet
By integrating fire protection modules, temperature control modules, and basic equipment groups, and optimizing the cold air aisle design, the problem of low heat dissipation efficiency of integrated cabinets is solved, achieving high-efficiency and energy-saving heat dissipation, which is suitable for data centers of various sizes.
Patent Information
- Application Number
- CN202423147061.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2034-12-19
AI Technical Summary
Existing integrated cabinets have low air circulation efficiency for heat dissipation, resulting in excessive energy consumption and affecting the stability and lifespan of the equipment.
An integrated cabinet was designed, which integrates fire protection module, temperature control module and basic equipment group. The air flow is optimized through cold air duct to achieve efficient heat exchange, reduce the mixing of hot and cold air and improve heat dissipation efficiency.
It improves system synergy, reduces energy consumption, ensures stable operation of equipment in a suitable temperature environment, extends equipment life, and is suitable for data centers of all sizes.
Smart Images

Figure CN223928564U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of machine room equipment, in particular to an integrated cabinet. BACKGROUND
[0002] In today's digital age, the construction and development of data centers are crucial for various enterprises and institutions. As a key infrastructure of data centers, the performance and energy consumption of integrated cabinets directly affect the overall operation efficiency and cost of data centers. However, existing integrated cabinets face a series of severe challenges in terms of energy consumption for cooling.
[0003] In traditional data center machine rooms, power supply and distribution, temperature control, fire fighting and other systems are independent or missing in small-scale enterprises and institutions or large group branch institutions, resulting in chaotic layout and poor system coordination, which seriously affects the overall operation efficiency of the machine room. This decentralized architecture not only increases management difficulty, but also hinders the effective implementation of energy saving and consumption reduction measures.
[0004] Although existing integrated cabinets on the market have some integration, they still have many shortcomings. In terms of cooling, most integrated cabinets do not deeply study green energy-saving and emission-reducing technologies. They only blow air or exhaust air to dissipate heat inside the integrated cabinet, which is not a reasonable design and has low air circulation efficiency. The heat generated by the equipment in the cabinet cannot be efficiently dissipated, causing the equipment to be in a high-temperature environment for a long time, which not only reduces the operation stability and service life of the equipment, but also significantly increases energy consumption. CONTENT OF THE INVENTION
[0005] The present application provides an integrated cabinet, which aims to solve the problem of high energy consumption caused by low air circulation efficiency of the existing integrated cabinet.
[0006] The present application provides an integrated cabinet, which comprises:
[0007] a cabinet body;
[0008] a fire-fighting module arranged at one end of the cabinet body in the upper direction in the height direction, used for extinguishing fire in the interior of the cabinet body;
[0009] a temperature control module arranged at one end of the cabinet body in the lower direction in the height direction, used for blowing cold air into the interior of the cabinet body to cool the equipment in the interior of the cabinet body;
[0010] a group of basic equipment arranged between the fire-fighting module and the temperature control module, used for realizing the functions of the data center;
[0011] The cabinet body is provided with a main cabinet door near the side where the temperature control module blows cold air, and the main cabinet door is in close connection with the cabinet body in the closed state of the cabinet body, and a gap is left between the main cabinet door and the fire-fighting module, the temperature control module and the basic equipment group, so as to form a cold air channel between the main cabinet door and the fire-fighting module, the temperature control module and the basic equipment group.
[0012] Optionally, the basic equipment group includes a high-power equipment group and a low-power equipment group.
[0013] The high-power equipment group is assembled in the area near the temperature control module inside the cabinet body, and the high-power equipment group is used to realize the server function.
[0014] The low-power equipment group is assembled in the area between the high-power equipment group and the fire-fighting module, and the low-power equipment group is used to realize the network connection function.
[0015] Optionally, the basic equipment group further includes a power supply module.
[0016] The power supply module is assembled between the fire-fighting module and the low-power equipment group, and is used to supply power for the fire-fighting module, the temperature control module, the high-power equipment group and the low-power equipment group.
[0017] Optionally, a first spacing gap is left between the power supply module and the low-power equipment group, and the first spacing gap is filled with a first blind plate.
[0018] Optionally, the high-power equipment group includes two hyper-converged devices, and a second spacing gap is left between the two hyper-converged devices, and the second spacing gap is filled with a second blind plate.
[0019] Optionally, a reserved space is provided inside the cabinet body between the high-power equipment group and the low-power equipment group.
[0020] Optionally, the reserved space is filled with a third blind plate.
[0021] Optionally, the width of the cold air channel between the main cabinet door and the fire-fighting module, the temperature control module and the basic equipment group is 250mm.
[0022] Optionally, the side of the cabinet body opposite to the main cabinet door is provided with a ventilation door.
[0023] Beneficial effects:
[0024] Integrating various systems into one solves the problem of poor coordination of various systems in traditional data center rooms, and the basic equipment group covers various functional equipment, and each module is reasonably arranged to improve the coordination of the system.
[0025] Through the temperature control module and the cold air channel design, cold air is blown into the lower part of the cabinet body, and then discharged from the other side after the equipment, realizing efficient heat exchange and improving heat dissipation efficiency. Reasonable cold air channel design reduces the mixing of cold and hot air, and 250mm width ensures air flow without being too wide and energy-consuming. The air door promotes air convection, reduces energy consumption, and improves energy utilization efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0026] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed to be used in the description of the embodiments of the present application will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0027] Figure 1 is a front view of an integrated cabinet according to an embodiment of the present application;
[0028] Figure 2 is an internal front view of an integrated cabinet according to an embodiment of the present application;
[0029] Figure 3 is a rear view of an integrated cabinet according to an embodiment of the present application
[0030] Figure 4 is an internal side view of the cabinet body of an integrated cabinet according to an embodiment of the present application;
[0031] Figure 5 is a simulation experiment diagram of the cold air channel of an integrated cabinet according to an embodiment of the present application, with the cold air channel being 250mm;
[0032] Figure 6 is a simulation experiment diagram of the cold air channel of an integrated cabinet according to an embodiment of the present application, with the cold air channel being 150mm;
[0033] BRIEF DESCRIPTION OF DRAWINGS: Cabinet body 1, main cabinet door 11, cold air channel 12, first blind plate 13, second blind plate 14, third blind plate 15, air door 16, fire-fighting module 2, temperature control module 3, high-power equipment group 4, hyper-converged equipment 41, low-power equipment group 5, switch 51, CPE equipment 52, cryptographic machine 53, power supply module 6, PDU unit 61, UPS equipment 62, battery pack 63. DETAILED DESCRIPTION
[0034] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only some of the embodiments of the present application, but not all of the embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts are within the scope of the present application.
[0035] As shown in Figure 1 , Figure 2 and Figure 4 , the embodiment of the present application provides an integrated cabinet, comprising: a cabinet body 1;
[0036] a fire-fighting module 2 arranged at an upper end in a height direction inside the cabinet body 1, used for extinguishing fire in the inside of the cabinet body 1;
[0037] a temperature control module 3 arranged at a lower end in the height direction inside the cabinet body 1, used for blowing cold air into the inside of the cabinet body 1 to cool the equipment in the inside of the cabinet body 1;
[0038] a basic equipment group arranged between the fire-fighting module 2 and the temperature control module 3, used for realizing the function of a data center;
[0039] The cabinet body 1 is provided with a main cabinet door 11 near a side where cold air is blown into by the temperature control module 3, the main cabinet door 11 is in airtight connection with the cabinet body 1 in a closed state of the cabinet body 1, and a gap is left between the main cabinet door 11 and the fire-fighting module 2, the temperature control module 3 and the basic equipment group, so that a cold air passage 12 is formed between the main cabinet door 11 and the fire-fighting module 2, the temperature control module 3 and the basic equipment group.
[0040] The cabinet body 1 serves as an outer shell and support structure of the entire integrated cabinet, and provides physical protection for the internal components, preventing external physical damage, dust, moisture and the like from affecting the internal equipment. Through internal space layout planning, the fire-fighting module 2, the temperature control module 3, the basic equipment group and the like are provided with reasonable installation positions, ensuring that the components are installed in an orderly manner and are convenient for maintenance and management. The structure design cooperates with the main cabinet door 11 to form the cold air passage 12, which is helpful to the optimization of air flow organization in the cabinet and improves the heat dissipation efficiency.
[0041] The fire-fighting module 2 is installed at an upper end in the height direction inside the cabinet body 1, and can start the fire extinguishing mechanism in time when a fire breaks out in the inside of the cabinet body 1, quickly extinguishing the fire, protecting the internal equipment of the cabinet from serious damage caused by the fire, reducing the loss caused by the fire, ensuring the safety of the data center and the integrity of the equipment, and preventing the fire from spreading to cause more serious consequences.
[0042] Specifically, in an optional embodiment, the fire-fighting module 2 can comprise:
[0043] Smoke detectors, such as smoke detectors, detect fires by monitoring the concentration of smoke particles in the air. When the smoke concentration exceeds the preset threshold, the detector will send an alarm signal to trigger subsequent fire extinguishing actions.
[0044] Temperature detectors, such as temperature detectors, monitor changes in ambient temperature based on thermal sensing principles. When the temperature rises above the set alarm temperature, the detector will issue an alarm to indicate a fire.
[0045] Gas fire extinguishing systems, such as carbon dioxide fire extinguishing systems, rely on suffocation and cooling to extinguish fires. Carbon dioxide gasizes rapidly after discharge, dilutes the oxygen concentration in the air, and makes the burning material extinguish due to lack of oxygen. At the same time, the carbon dioxide gasification process absorbs a large amount of heat, reducing the temperature of the burning material. Carbon dioxide fire extinguishing systems have the advantages of fast extinguishing speed, no pollution to protected objects, and good electrical insulation performance.
[0046] Dry powder fire extinguishing system, dry powder extinguishing agent mainly extinguishes fire through chemical inhibition and isolation. The inorganic salt component in the dry powder decomposes in the flame and reacts with the active groups in the combustion process, inhibiting the combustion chain reaction. At the same time, the dry powder covers the surface of the burning object, forming an isolation layer to prevent oxygen from contacting the burning object, thereby achieving the purpose of extinguishing the fire. Common dry powder extinguishing agents include sodium bicarbonate dry powder and ammonium phosphate salt dry powder.
[0047] Temperature control module 3 is located at the lower end of the internal height direction of cabinet 1. By blowing cold air into the cabinet, it can effectively reduce the temperature inside the cabinet 1, ensure the stable operation of the equipment in a suitable temperature environment, prevent the equipment from overheating and performance degradation, shorten the service life, and even damage the equipment, and ensure the normal operation of the data center, improve the reliability and stability of the equipment operation.
[0048] Specifically, in an alternative embodiment, the temperature control module 3 can include:
[0049] Precision air conditioner, precision air conditioner adopts compressor refrigeration cycle principle. The compressor compresses the gaseous refrigerant into a high-temperature and high-pressure state, and then cools it through the condenser to liquefy the refrigerant. The liquid refrigerant is throttled by the expansion valve and enters the evaporator, where it evaporates and absorbs heat, thereby reducing the temperature of the evaporator surface. The surrounding air flows through the evaporator and is cooled, forming cold air that is blown into the cabinet. At the same time, the precision air conditioner is equipped with humidity adjustment function, which controls the air humidity through condensation or humidification, etc. to meet the requirements of equipment on humidity environment.
[0050] Column air conditioner, column air conditioner is similar to precision air conditioner, is also based on compressor refrigeration principle. It is installed between the cabinet columns, directly to the cabinet refrigeration. Cold air from the air conditioner bottom, through the cabinet front side into the cabinet, take away the equipment heat from the cabinet rear side, form a local cold and hot channel isolation, improve the refrigeration efficiency. Column air conditioner control system can also automatically adjust the refrigeration capacity according to the ambient temperature, some high-end column air conditioner also has intelligent energy saving control function, can according to the actual load of the cabinet dynamic adjustment refrigeration power.
[0051] The basic equipment group is arranged between the fire-fighting module 2 and the temperature control module 3, and is a core part for realizing various functions of the data center. The basic equipment group includes server equipment, network connection equipment, power supply equipment, etc., and is used for data processing, storage, transmission, and power supply and management of the entire data center. The basic equipment group is a key infrastructure for normal operation of the data center, and directly determines important indexes such as data processing capacity, network connection performance, and power supply stability of the data center.
[0052] The cold air passage 12 is formed by the gap between the main cabinet door 11 on the side close to the cold air blowing-in side of the temperature control module 3 of the cabinet 1, the cabinet 1, the fire-fighting module 2, the temperature control module 3, and the basic equipment group. The cold air passage 12 ensures that cold air can flow in the cabinet according to a predetermined path, so that the cold air fully contacts the surface of the equipment and performs efficient heat exchange, improves the refrigeration effect of the temperature control module, takes away the heat generated by the equipment, maintains the temperature stability inside the cabinet, reduces the mixing of cold and hot air, reduces energy consumption, and optimizes the heat dissipation efficiency. Specifically, when the main cabinet door 11 is closed, the cold air passage 12 is formed in the cabinet 1. At this time, the temperature control module 3 blows cold air from the lowermost end of the cold air passage 12. The cold air rises along the cold air passage 12 and passes through one side of the basic equipment group. The equipment in the basic equipment group is installed on one side of the cold air passage 12. When the cold air passes through the equipment in the basic equipment group, the cold air can enter the positions where the equipment is installed or enter the equipment, and then is discharged from the side of the cabinet 1 relative to the main cabinet door 11, so as to take away the temperature generated by the equipment and achieve heat dissipation.
[0053] The cabinet 1, the fire-fighting module 2, the temperature control module 3, the basic equipment group, and the cold air passage 12 are combined together to form a complete, energy-efficient, and safe and reliable integrated cabinet system. The cold air passage 12 optimizes the heat dissipation process and improves the energy utilization efficiency. The overall combination enables the integrated cabinet to integrate multiple functions in a limited space, meets the requirements of the data center for equipment operating environment, safety, functionality, and energy saving, facilitates centralized management and maintenance, and is suitable for various scale data center scenes, especially for places with high requirements for space, safety, and energy saving, such as enterprise branch agencies and small data centers.
[0054] For example, Figure 2As shown, further, the base equipment group includes a high-power equipment group 4 and a low-power equipment group 5.
[0055] The high-power equipment group 4 is arranged inside the cabinet body 1 near the temperature control module 3, and is used to implement server functions.
[0056] The high-power equipment group 4 includes two hyper-converged devices 41, which are a new type of device integrating multiple data center functions such as computing, storage, and network. In this device, they are server unit devices, thereby constructing a data center. The hyper-converged devices 41 integrate multiple functions such as computing, storage, and network, and their powerful functions result in a large working power, thereby generating more heat during operation. Placing them near the temperature control module 3 enables the cold air blown out from the temperature control module to contact the hyper-converged devices first, thereby achieving efficient heat exchange. For example, the cold air blown out from the temperature control module has a low temperature, and when it contacts the surface of the hyper-converged devices, it can quickly absorb the heat emitted by the devices, thereby rapidly reducing the temperature of the devices, and thereby ensuring stable operation of the devices.
[0057] The low-power equipment group 5 is arranged in a region between the high-power equipment group 4 and the fire-fighting module 2, and is used to implement network connection functions.
[0058] The low-power equipment group 5 includes network devices such as switches 51 and CPE (Customer Premises Equipment) devices 52. Arranging the low-power equipment group 5, including network devices such as switches 51 and CPE devices 52, in the upper region of the cabinet body 1 between the high-power equipment group 4 and the fire-fighting module 2 is a reasonable layout design based on consideration of multiple factors. From the perspective of power and heat dissipation, these low-power devices have a significantly lower working power than the hyper-converged devices 41, and generate relatively less heat during operation. For example, switches are mainly responsible for data switching and forwarding, and have a relatively small power consumption compared to devices such as servers; CPE devices 52 are used for user end network connection, and have a relatively low operating power. Therefore, even if they are placed in the upper part of the cabinet, away from the direct cold air inlet, they will not be affected by heat accumulation and will not affect their normal work. The small amount of heat they generate can be effectively dissipated through natural convection and circulation of cold air in the cold air passage 12. When cold air is blown out from the temperature control module 3 in the lower part, an upward air current is formed in the cabinet, which naturally flows through the low-power equipment group and carries away the heat generated by the devices, thereby ensuring that the temperature of the devices is maintained within the normal working range, and thereby ensuring stable implementation of network connection functions.
[0059] Further, in an optional embodiment, the low-power equipment group 5 further includes a cryptographic machine 53 for security protection of the devices.
[0060] Further, the group of basic devices further comprises a power supply module 6;
[0061] The power supply module 6 is arranged between the fire-fighting module 2 and the group of low-power devices 5, and is used to supply power to the fire-fighting module 2, the temperature control module 3, the group of high-power devices 4, and the group of low-power devices 5.
[0062] The power supply module 6 comprises a PDU (Power Distribution Unit) unit 61, an UPS (Uninterruptible Power Supply) device 62, and a battery pack 63. The main function of the PDU unit 61 is to accurately distribute the input power to each device that needs to be powered. The UPS device 62 functions to provide continuous and stable power supply to the key devices in the cabinet when the mains power is interrupted or abnormal (such as voltage fluctuation, frequency anomaly, etc.), ensuring uninterrupted operation of the devices. The battery pack 63 is a key component of the UPS device 62 for uninterrupted power supply, and its main function is to store electrical energy to provide backup power for the devices when the mains power is interrupted.
[0063] The power supply module 6 involves power conversion and distribution, and has certain electrical fault risks, being one of the potential fire points in the cabinet. The power supply module 6 is arranged close to the fire-fighting module 2, which can detect a fire that may be caused by the power supply module in the shortest time. Fire detection devices (such as smoke detectors, temperature detectors) can quickly sense abnormal conditions in the power supply module area, and once a fire is detected, the fire-fighting mechanism of the fire-fighting module is triggered immediately. For example, when a certain electrical component in the power supply module produces an open flame or a large amount of smoke due to a short circuit or other reasons, the fire-fighting module close to it can start the fire-fighting action before the fire spreads, such as releasing fire extinguishing agents (such as gas fire extinguishing agents, dry powder, etc.), effectively preventing the occurrence and expansion of the fire, and protecting the safety of the power supply module and surrounding devices.
[0064] Further, a first spacing gap is left between the power supply module 6 and the group of low-power devices 5, and the first spacing gap is filled with a first blind plate 13.
[0065] The first spacing gap allows the power supply module 6 and the low-power device group 5 to be spaced apart, and the presence of the first spacing gap provides a certain space for heat dissipation, so that heat can spread in this gap area without directly accumulating around the power supply module. The first blind plate 13 fills the intersection between the first spacing gap and the cold air channel 12, which ensures the integrity of the cold air channel 12 and ensures that the cold air flows in the cabinet according to the predetermined path to form an effective cold air circulation. After the cold air is blown out of the temperature control module 3, it flows through the high-power device group 4, the low-power device group 5 and other devices in turn along the designed channel, taking away the heat generated by the devices. The presence of the first blind plate prevents the cold air from short-circuiting or turbulent flow when passing between the power supply module 6 and the low-power device group, so that the cold air can fully exchange heat with the device surface, improving the utilization efficiency of the cold air. For example, if there is no first blind plate, the cold air may directly pass through the gap without passing through the device surface, resulting in insufficient heat dissipation of the device.
[0066] Further, the high-power device group 4 includes two hyper-converged devices 41, and a second spacing gap is left between the two hyper-converged devices 41, and the second spacing gap is filled with a second blind plate 14.
[0067] The second spacing gap and the second blind plate 14 have similar functions to the first spacing gap and the first blind plate 13. The hyper-converged devices 41 generate a large amount of heat when running, and the second spacing gap provides a certain space for heat dissipation. Hot air can naturally rise and spread in the gap to avoid excessive accumulation of heat between the two hyper-converged devices. At the same time, the presence of the second blind plate 14 does not hinder heat dissipation, but to some extent helps to guide the flow direction of hot air, making it more orderly discharged upwards from the cabinet. When the cold air is blown out of the temperature control module 3 and flows through the high-power device group, the second spacing gap also provides a channel for cold air to enter between the devices, enhancing the heat dissipation effect and ensuring that the hyper-converged devices run in a suitable temperature environment, improving their stability and service life.
[0068] Further, a reserved space is provided between the high-power device group 4 and the low-power device group 5 inside the cabinet 1.
[0069] In scenarios such as data centers, as the business develops, the demand for computing, storage and network functions of the devices may increase. The reserved space provides physical space for the subsequent addition of new high-power devices such as additional hyper-converged devices 41 or low-power devices (such as more switches 51 or CPE devices 52). For example, the data volume of an enterprise grows rapidly, and new servers need to be added to the high-power device group (4) to process data, or the number of switch ports needs to be increased in the low-power device group 5 to expand network connection capabilities. The reserved space can conveniently install these devices without the need for large-scale adjustment of the layout of the entire cabinet 1.
[0070] Further, the reserved space is filled with a third blind plate 15.
[0071] The third blind plate 15 has similar functions as the first blind plate 13 and the second blind plate 14. When the third blind plate 15 is near the cold air passage 12 or the hot air exhaust passage of the cabinet, it can guide the direction of the air flow. It prevents the cold air from directly entering the reserved space from the cold air passage 12 and then being exhausted from the reserved space, ensuring that the cold air flows along the designed path, so that the cold air can fully contact the surface of the equipment and improve the heat dissipation efficiency. Or during the hot air exhaust process, it guides the hot air to be exhausted upwards or outward, preventing the hot air from flowing back and affecting the heat dissipation effect of the equipment.
[0072] Further, the width of the cold air passage 12 between the main cabinet door 11 and the fire-fighting module 2, the temperature control module 3 and the basic equipment group is 250mm.
[0073] As shown in Figure 5 , the cold air passage 12 with a width of 250mm can ensure sufficient cold air flow. When the temperature control module 3 generates cold air, the larger passage width allows the cold air to flow more smoothly into and between the equipment. For example, during the heat dissipation process of the high-power equipment group 4, sufficient cold air can timely take away the large amount of heat generated by the hyper-converged equipment 41. Compared with a narrower passage, the width of 250mm reduces the resistance of the cold air flow, so that the cold air can reach the surface of the equipment more quickly, improving the heat dissipation efficiency. At the same time, it will not cause backflow, nor will it be too wide to cause excessive energy consumption.
[0074] As shown in Figure 6 , compared with Figure 5 , the flow effect of the cold air, in the case of a cold air passage 12 with a width of 150mm, the cold air has a significant backflow phenomenon, which will also result in lower cold air flow efficiency compared with the width of 250mm. Under the same working power of the temperature control module 3, the cold air passage 12 with a width of 250mm has a better cooling effect on each equipment.
[0075] As shown in Figure 3 , further, the side of the cabinet 1 opposite to the main cabinet door 11 is provided with a ventilation door 16.
[0076] The air vent 16 is arranged opposite to the main cabinet door 11, so that the air in the cold air passage 12 can form an effective convection. When the cold air enters the cabinet 1 from the temperature control module 3 on one side of the main cabinet door 11, and becomes hot air after absorbing the heat generated by the equipment, the air vent 16 provides a smooth discharge path for the hot air. This convection method greatly improves the heat dissipation efficiency, ensures that the heat generated by the equipment can be dissipated in time, and maintains the equipment to run in a suitable temperature environment. For example, during the operation of the high-power equipment group 4, a large amount of hot air is generated, which is discharged from the cabinet through the air vent 16, and at the same time, new cold air is constantly supplemented from the temperature control module 3, which guarantees the heat dissipation requirement of the equipment.
[0077] Further, in an optional embodiment, the cabinet 1 is also provided with a monitoring module, which includes monitoring probe equipment and temperature sensor equipment that can monitor each device in the cabinet 1, to monitor the state in the cabinet 1. Of course, the monitoring module can be connected in parallel with the sensors of the fire extinguishing module 2, and the data of the sensors of the fire extinguishing module 2 can be provided to the monitoring module as part of the monitoring. At the same time, the monitoring module can also be connected in parallel with the operation monitoring system of each device, that is, the self-monitoring data of each device is transmitted to the monitoring module. In this way, the operation and maintenance personnel can remotely view the running state of the equipment and the actual situation in the cabinet 1 through the monitoring module, which is convenient for remote operation and maintenance of the operation and maintenance personnel.
[0078] It should be noted that each of the embodiments in the specification is described in a progressive manner, and each embodiment focuses on the difference from other embodiments. The same and similar parts between the embodiments can be mutually referred to.
[0079] It also needs to be explained that in this paper, the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, relational terms such as "first" and "second" are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between the entities or operations, nor can it be understood as indicating or implying relative importance. Moreover, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or terminal device including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or terminal device. Without more limitations, the element defined by the statement "including a" does not exclude the presence of another identical element in the process, method, article or terminal device including the element.
[0080] The above provides a detailed description of the technical solutions of the present application, and the principles and implementation modes of the present application are described by applying specific examples. The above example is only used to help understand the present application, and the content of the description should not be understood as limiting the present application. At the same time, for those skilled in the art, according to the present application, there will be different forms of changes in specific implementation modes and application ranges, which do not need and cannot be exhausted here, and the obvious changes or changes derived therefrom are still within the protection scope of the present application.
Claims
1. An integrated cabinet, characterized by, The utility model relates to a cabinet (1);Fire module (2) is set up in the cabinet (1) inside in height direction upper end, is used for extinguishing when the inside of the cabinet (1) is on fire; Temperature control module (3) is set up in the cabinet (1) inside in height direction lower end, is used for blowing into cold wind to the inside of the cabinet (1), to carry out cooling to the equipment in the inside of the cabinet (1); Base equipment group is set up between fire module (2) and the temperature control module (3), is used for realizing the function of data center; The cabinet (1) is close to the cold wind blowing in one side of temperature control module (3) and is equipped with main cabinet door (11), in the closed state of the cabinet (1), main cabinet door (11) is closed connection with the cabinet (1), and main cabinet door (11) and fire module (2), temperature control module (3) and base equipment group leave gap between, to make main cabinet door (11) and fire module (2), temperature control module (3) and base equipment group form cold wind channel (12). The base equipment group includes high-power equipment group (4) and low-power equipment group (5); The high-power equipment group (4) is assembled in the area of the cabinet (1) inside close to the temperature control module (3), and the high-power equipment group (4) is used for realizing server function; 2. The integrated cabinet of claim 1, wherein, The low-power equipment group (5) is assembled in the area between the high-power equipment group (4) and the fire module (2), and the low-power equipment group (5) is used for realizing network connection function. The base equipment group further includes power supply module (6); The power supply module (6) is assembled between the fire module (2) and the low-power equipment group (5), and is used for power supply for fire module (2), temperature control module (3), high-power equipment group (4) and low-power equipment group (5).
3. The integrated cabinet of claim 2, wherein, The first interval gap is left between the power supply module (6) and the low-power equipment group (5), and the first interval gap is filled with first blind plate (13) inside. The high-power equipment group (4) includes two super convergence equipment (41), and the second interval gap is left between the two super convergence equipment (41), and the second interval gap is filled with second blind plate (14) inside.
4. The integrated cabinet of claim 3, wherein, The cabinet (1) is equipped with reserved space inside between the high-power equipment group (4) and the low-power equipment group (5).
5. The integrated cabinet of claim 3, wherein, The third blind plate (15) is filled in the reserved space.
6. The integrated cabinet of claim 2, wherein, The width of cold wind channel (12) between main cabinet door (11) and fire module (2), temperature control module (3) and base equipment group is 250mm.
7. The integrated cabinet of claim 6, wherein, The cabinet (1) is equipped with breather door (16) opposite main cabinet door (11).
8. The integrated cabinet of claim 1, wherein, 9. The integrated cabinet of claim 1, wherein,