Intelligent machine room safety real-time monitoring device
The fast-installation and cooling system for smart monitoring systems in data centers addresses complexity and overheating issues, enabling rapid maintenance and temperature control for enhanced durability and efficiency.
Patent Information
- Application Number
- CN202422094050.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-28
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-28
AI Technical Summary
The existing intelligent computer room monitoring device is designed in complex ways, requiring multiple tools to be disassembled and installed, repairs are cumbersome and time-consuming, and there is a lack of effective heat dissipation channels, which leads to an increase in the temperature of the equipment that affects performance and life.
The design of quick-installation components and heat dissipation components is adopted. The quick-installation components are deployed or stored through a motor drive transfer plate, simplifying the disassembly and replacement process; the heat dissipation components use fans to introduce airflow, increase the airflow speed through conical pipes and breathable tanks, reduce the gas temperature, and keep the equipment temperature within a safe range.
It realizes rapid disassembly and repair of monitoring devices, reduces operating complexity and labor costs, keeps the equipment temperature within the safe range, and improves equipment performance and service life.
Smart Images

Figure CN223105758U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical fields of information technology and communication technology, and particularly relates to an intelligent computer room safety real-time monitoring device. Background Art
[0002] An intelligent computer room safety real-time monitoring device is a comprehensive system for monitoring and managing the computer room environment and equipment status. It integrates environmental sensors such as temperature, humidity, and air quality, as well as cameras, power monitoring modules, and security protection systems. By collecting and analyzing various data in the computer room in real time, the device can provide monitoring of equipment operation status, alarm for abnormal situations, and remote control functions. Its design goal is to ensure the suitability of the computer room environment and the stable operation of equipment, prevent equipment failures and safety hazards, and improve the operation and maintenance efficiency and management level of the computer room.
[0003] The existing monitoring devices are complex in design and require the use of multiple tools for disassembly and installation. This makes the operation process cumbersome and time-consuming when maintenance or component replacement is needed. Moreover, the existing monitoring devices lack effective heat dissipation channels, and staying in a computer room with high temperature for a long time will cause the internal temperature of the monitoring equipment to rise, affecting its performance and service life.
[0004] Therefore, in view of the complex design of the existing monitoring devices, which require the use of multiple tools for disassembly and installation, making the operation process cumbersome and time-consuming when maintenance or component replacement is needed, and the existing monitoring devices lack effective heat dissipation channels, staying in a computer room with high temperature for a long time will cause the internal temperature of the monitoring equipment to rise, affecting its performance and service life, a quick installation structure can be introduced to enable the monitoring device to be easily removed for maintenance or replacement without disassembling the entire bracket, effectively reducing the maintenance time and labor costs. Through the heat dissipation component, the operating temperature of the equipment can be maintained within a safe range, improving the equipment performance and service life. Summary of the Utility Model
[0005] In order to overcome the problems that the existing monitoring devices are complex in design and require the use of multiple tools for disassembly and installation, making the operation process cumbersome and time-consuming when maintenance or component replacement is needed.
[0006] The technical solution of the utility model is: an intelligent computer room safety real-time monitoring device, including a mounting plate; further including a quick installation component. The left and right sides at the front end of the mounting plate are threadedly connected with mounting screws at equal intervals. There are four mounting screws. A quick installation component is arranged at the upper end of the mounting plate. The quick installation component includes a back plate, slide bars, gripping blocks, a motor, a rotating plate, and a limiting plate. A back plate is arranged at the upper end of the mounting plate. The left and right sides of the back plate are connected with slide bars. There are two slide bars, and the two slide bars are movably connected with the mounting plate. The left and right sides of the back plate are connected with gripping blocks. There are two gripping blocks. A heat dissipation component is arranged at the front end of the back plate.
[0007] Preferably, by setting up a quick-installation component, the monitoring device can be quickly disassembled and replaced without using complex tools, simplifying the maintenance operation. In cooperation with the heat dissipation component, the monitoring device is cooled to keep the operating temperature of the device within a safe range, improving the device performance and service life.
[0008] Preferably, a motor is connected to the front side of the upper end of the backplane. The output end of the motor is connected to a rotating plate. One end of the rotating plate away from the motor is rotatably connected to a limiting plate. The motor drives the rotating plate to rotate, and the rotating plate rotates on the limiting plate, thereby storing the heat dissipation component in the backplane.
[0009] Preferably, the limiting plate is connected to the backplane, and the rotating plate is movably connected to the backplane. When the rotating plate is unfolded, the backplane is used to resist the rotating plate, thereby limiting the unfolding angle of the rotating plate.
[0010] Preferably, the heat dissipation component includes a support plate and an air flow pipe; the left and right sides of the upper end of the rotating plate are connected with support plates at equal intervals. There are two support plates. The front ends of the two support plates are connected with an air flow pipe, and the air flow pipe is used to introduce air flow to help the device dissipate heat.
[0011] Preferably, the heat dissipation component includes a ventilation slot and a conical tube; a number of ventilation slots are arranged at equal intervals on the outer ends of the two air flow pipes. The front ends of the two air flow pipes are connected with a conical tube. The conical tube and the ventilation slots can accelerate air circulation. When the gas enters the air flow pipe from the conical tube and sprays out the air flow through the ventilation slots, the gas velocity increases. This phenomenon is called the velocity increase effect in fluid mechanics. According to the continuity equation and Bernoulli's equation, in a small-diameter air flow pipe, the increase in gas velocity will lead to a decrease in pressure. Due to the decrease in pressure, the temperature of the gas will drop, thereby dissipating heat from the device.
[0012] Preferably, the heat dissipation component includes a blower, a monitoring body, and a protection plate; the front ends of the two conical tubes are connected with a blower, the upper end of the rotating plate is connected with a monitoring body, and the upper end of the monitoring body is connected with a protection plate. The blower is used to introduce air flow into the conical tube.
[0013] Preferably, the blower is connected to an external power supply and the rotating plate. The two blowers can greatly improve the heat dissipation effect. The protection plate on the monitoring body prevents the monitoring body from colliding with the backplane when the rotating plate is retracted.
[0014] The beneficial effects of the present utility model:
[0015] 1. By setting up a quick - installation component, grasp the two grasping blocks on both sides and slide the sliding bars on both sides of the back plate into the mounting plate, which facilitates the quick installation of the monitoring body. Start the motor, and the motor drives the rotating plate to rotate on the limiting plate, thereby unfolding the rotating plate together with the heat - dissipation component. The monitoring body conducts real - time monitoring of the computer room. This design makes it convenient to disassemble the monitoring device for maintenance. Moreover, with the unique design of the heat - dissipation component, it can maintain the temperature of the monitoring device and avoid the situation where the monitoring device is damaged due to the influence of the computer - room temperature;
[0016] 2. By setting up a heat - dissipation component, start the fan. The fan introduces air flow into the conical tube, and the conical tube introduces the air flow into the air - flow tube. The conical tube and the ventilation slots can accelerate air circulation. When the gas enters the air - flow tube from the conical tube and sprays out air flow through the ventilation slots, the gas velocity increases. This phenomenon is called the velocity - increase effect in fluid mechanics. According to the continuity equation and Bernoulli's equation, in a small - diameter air - flow tube, the increase in gas velocity will lead to a decrease in pressure. Due to the decrease in pressure, the temperature of the gas will drop, thereby dissipating heat from the monitoring body. Description of the Drawings
[0017] Figure 1 Shown is a three - dimensional structure schematic diagram of an intelligent computer - room safety real - time monitoring device of the present utility model;
[0018] Figure 2 Shown is a three - dimensional rear - view structure schematic diagram of an intelligent computer - room safety real - time monitoring device of the present utility model;
[0019] Figure 3 Shown is a three - dimensional sectional structure schematic diagram of an intelligent computer - room safety real - time monitoring device of the present utility model;
[0020] Figure 4 Shown is a three - dimensional structure schematic diagram of the heat - dissipation component of an intelligent computer - room safety real - time monitoring device of the present utility model.
[0021] Description of the Reference Numerals: 1. Mounting plate; 2. Mounting screw; 31. Back plate; 32. Sliding bar; 33. Grasping block; 34. Motor; 35. Rotating plate; 36. Limiting plate; 41. Support plate; 42. Air - flow tube; 43. Ventilation slot; 44. Conical tube; 45. Fan; 46. Monitoring body; 47. Protective plate. Detailed Embodiment
[0022] The present utility model will be further described below with reference to the drawings and embodiments.
[0023] Please refer to Figures 1-4, the present utility model provides an embodiment: an intelligent computer room safety real-time monitoring device, including a mounting plate 1; further including a quick-installation component. On the left and right sides of the front end of the mounting plate 1, mounting screws 2 are threadedly connected at equal intervals. There are four mounting screws 2. A quick-installation component is arranged at the upper end of the mounting plate 1. The quick-installation component includes a back plate 31, slide bars 32, gripping blocks 33, a motor 34, a rotating plate 35, and a limiting plate 36; a back plate 31 is arranged at the upper end of the mounting plate 1. Slide bars 32 are connected to the left and right sides of the back plate 31. There are two slide bars 32. The two slide bars 32 are movably connected to the mounting plate 1. Gripping blocks 33 are connected to the left and right sides of the back plate 31. There are two gripping blocks 33. A heat dissipation component is arranged at the front end of the back plate 31.
[0024] Please refer to Figures 1-4 , in this embodiment, by setting the quick-installation component, the monitoring device can be quickly disassembled and replaced without using complex tools, simplifying the maintenance operation. Cooperating with the heat dissipation component, the monitoring device is cooled to keep the operating temperature of the device within a safe range, improving the performance and service life of the device. A motor 34 is connected to the front side of the upper end of the back plate 31. The output end of the motor 34 is connected to a rotating plate 35. One end of the rotating plate 35 away from the motor 34 is rotatably connected to a limiting plate 36. The motor 34 drives the rotating plate 35 to rotate. The rotating plate 35 rotates on the limiting plate 36, thereby storing the heat dissipation component in the back plate 31. The limiting plate 36 is connected to the back plate 31. The rotating plate 35 is movably connected to the back plate 31. When the rotating plate 35 is unfolded, the back plate 31 is used to resist the rotating plate 35, thereby restricting the unfolding angle of the rotating plate 35. The heat dissipation component includes a support plate 41 and an air flow pipe 42; on the left and right sides of the upper end of the rotating plate 35, support plates 41 are connected at equal intervals. There are two support plates 41. An air flow pipe 42 is connected to the front ends of the two support plates 41. The air flow pipe 42 is used to introduce air flow to help the device dissipate heat.
[0025] Please refer to Figures 2-4, in this embodiment, the heat dissipation component includes a ventilation groove 43 and a conical tube 44; a plurality of ventilation grooves 43 are equidistantly arranged at the outer ends of the two air flow tubes 42, and a conical tube 44 is connected to the front ends of the two air flow tubes 42. The conical tube 44 and the ventilation slots can accelerate air circulation. When the gas enters the air flow tube 42 from the conical tube 44 and ejects air through the ventilation grooves 43, the gas velocity increases. This phenomenon is called the velocity increase effect in fluid mechanics. According to the continuity equation and Bernoulli's equation, in the small-diameter air flow tube 42, the increase in gas velocity will cause the pressure to drop. Due to the pressure drop, the temperature of the gas will drop, thereby dissipating heat from the device. The heat dissipation component further includes a fan 45, a monitoring body 46, and a protection plate 47; the fans 45 are connected to the front ends of the two conical tubes 44, the upper end of the rotating plate 35 is connected to the monitoring body 46, and the upper end of the monitoring body 46 is connected to the protection plate 47. The fans 45 are used to introduce air flow into the conical tube 44. The fans 45 are connected to an external power supply and are connected to the rotating plate 35. The two fans 45 can greatly improve the heat dissipation effect. The protection plate 47 on the monitoring body 46 prevents the monitoring body 46 from colliding with the back plate 31 when the rotating plate 35 is retracted.
[0026] When working, first install the mounting screws 2 through the mounting plate 1 on the wall, thus completing the installation of the mounting plate 1. Grasp the two gripping blocks 33 and slide the sliding strips 32 on both sides of the back plate 31 into the mounting plate 1. Start the motor 34, and the motor 34 drives the rotating plate 35 to rotate on the limiting plate 36, thereby unfolding the rotating plate 35 together with the heat dissipation component. The monitoring body 46 monitors the computer room in real time. Start the fan 45, and the fan 45 introduces air flow into the conical tube 44. The conical tube 44 introduces the air flow into the air flow tube 42. The conical tube 44 and the ventilation slots can accelerate air circulation. When the gas enters the air flow tube 42 from the conical tube 44 and ejects air through the ventilation grooves 43, the gas velocity increases. This phenomenon is called the velocity increase effect in fluid mechanics. According to the continuity equation and Bernoulli's equation, in the small-diameter air flow tube 42, the increase in gas velocity will cause the pressure to drop. Due to the pressure drop, the temperature of the gas will drop, thereby dissipating heat from the monitoring body 46. When maintenance is required, start the motor 34, and the motor 34 drives the rotating plate 35 to rotate, thereby retracting the monitoring body 46 for convenient disassembly and maintenance.
[0027] Through the above steps, by setting the quick-installation component, grasping the two gripping blocks 33 and sliding the sliding strips 32 on both sides of the back plate 31 into the mounting plate 1, it is convenient for the quick installation of the monitoring body 46. Start the motor 34, and the motor 34 drives the rotating plate 35 to rotate on the limiting plate 36, thereby unfolding the rotating plate 35 together with the heat dissipation component. The monitoring body 46 monitors the computer room in real time. This design facilitates the disassembly of the monitoring device for maintenance, and with the unique design of the heat dissipation component, it can maintain the temperature of the monitoring and avoid the situation of monitoring damage caused by the influence of the computer room temperature.
Claims
1. An intelligent real-time monitoring device for computer room security, comprising a mounting plate (1); characterized in that: It also includes a quick-installation component. Installation screws (2) are threadedly connected at equal intervals on the left and right sides of the front end of the mounting plate (1). There are four installation screws (2). A quick-installation component is provided at the upper end of the mounting plate (1). The quick-installation component includes a back plate (31), slide bars (32), gripping blocks (33), a motor (34), a rotating plate (35), and a limiting plate (36). A back plate (31) is provided at the upper end of the mounting plate (1). Slide bars (32) are connected to the left and right sides of the back plate (31). There are two slide bars (32). The two slide bars (32) are movably connected to the mounting plate (1). Gripping blocks (33) are connected to the left and right sides of the back plate (31). There are two gripping blocks (33). A heat dissipation component is provided at the front end of the back plate (31).
2. The intelligent computer room safety real-time monitoring device according to claim 1, wherein: A motor (34) is connected to the front side of the upper end of the back plate (31). The output end of the motor (34) is connected to a rotating plate (35). One end of the rotating plate (35) away from the motor (34) is rotatably connected to a limiting plate (36).
3. The intelligent real-time monitoring device for computer room security according to claim 2, wherein: The limiting plate (36) is connected to the back plate (31), and the rotating plate (35) is movably connected to the back plate (31).
4. An intelligent computer room safety real-time monitoring device according to claim 1, characterized in that: The heat dissipation component includes a support plate (41) and an air flow pipe (42). Support plates (41) are connected at equal intervals on the left and right sides of the upper end of the rotating plate (35). There are two support plates (41). An air flow pipe (42) is connected to the front ends of the two support plates (41).
5. An intelligent computer room safety real-time monitoring device according to claim 4, characterized in that: The heat dissipation component includes a ventilation slot (43) and a conical pipe (44). A number of ventilation slots (43) are provided at equal intervals on the outer ends of the two air flow pipes (42). A conical pipe (44) is connected to the front ends of the two air flow pipes (42).
6. An intelligent computer room security real-time monitoring device according to claim 5, characterized in that: The heat dissipation component includes a fan (45), a monitoring body (46), and a protection plate (47). A fan (45) is connected to the front ends of the two conical pipes (44). A monitoring body (46) is connected to the upper end of the rotating plate (35). A protection plate (47) is connected to the upper end of the monitoring body (46).
7. An intelligent computer room safety real-time monitoring device according to claim 6, characterized in that: The fan (45) is connected to an external power supply, and the fan (45) is connected to the rotating plate (35).