Temperature sensing type video monitoring device for data machine room
By using a temperature-sensing video surveillance device for data centers with multi-angle monitoring and light source obstruction, the problem of infrared thermal imagers misjudging the temperature of reflective objects has been solved. This has enabled accurate monitoring of heat sources in the data center and multi-angle compatibility of video surveillance, improving cleaning and monitoring effectiveness.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- NANJING HONGJINXIANG NETWORK ENGINEERING CO LTD
- Filing Date
- 2026-03-09
- Publication Date
- 2026-06-05
AI Technical Summary
In existing video surveillance devices, when infrared thermal imagers are used in computer rooms, infrared light is reflected back to the thermal imager when it encounters a smooth surface, leading to misjudgment of the temperature of the reflecting object, or even the appearance of false heat sources, which reduces the effectiveness of video surveillance in the data center.
The system employs a temperature-sensing video surveillance device for data centers, comprising a video surveillance component, a pressure monitoring component, a suspended temperature control component, and a top-mounted auxiliary component. Through multi-angle monitoring and light source obstruction, combined with an infrared thermal imager, a cooler, and a smoke sensor, it achieves accurate monitoring and cleaning of heat sources.
It improves the accuracy and multi-angle compatibility of heat source monitoring in the computer room, enhances the data accuracy and cleaning effect of video surveillance, and is suitable for heat source detection at different heights, especially in low light conditions at night, making it easier to capture heat sources.
Smart Images

Figure CN122160479A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of video surveillance technology, and specifically relates to a temperature-sensing video surveillance device for data centers. Background Technology
[0002] A computer room is a place specifically used to store and manage IT infrastructure such as servers and network equipment, providing them with a stable operating environment.
[0003] A search revealed that in the prior art, Chinese Patent Publication No. CN119342178A, published on January 21, 2025, discloses a video surveillance device and method for protecting a conference room. The device includes an installation component, a mobile monitoring component mounted on the top of the installation component, a compatible component mounted on the output end of the mobile monitoring component, and several sets of cleaning components evenly spaced on one side wall of the compatible component. In this embodiment, a cleaning plate cleans the glass surface, simultaneously driving a scraper to press against the glass surface. When the scraper senses pressure, it begins to compress a spring. Simultaneously, a pressure sensor transmits the pressure value. Then, as the cleaning plate moves up and down to clean, the scraper scrapes away residual liquid.
[0004] However, the device still has the following drawbacks: when infrared thermal imagers are used in computer rooms, infrared light will be reflected back to the thermal imager when it encounters a smooth surface, causing the instrument to misjudge the temperature of the reflected object, or even produce false heat sources, thereby reducing the video monitoring effect of the data center. Summary of the Invention
[0005] To address the aforementioned problems, this invention provides a temperature-sensing video surveillance device for data centers. It includes a video surveillance component, on which two sets of pressure monitoring components are symmetrically mounted. Each set of pressure monitoring components has several sets of suspended temperature control components installed at equal intervals. Each set of suspended temperature control components has a set of top-mounted auxiliary components installed. Two sets of electrical transmission boxes are symmetrically mounted on the bottom of the video surveillance component.
[0006] The video surveillance component includes an electric slide table, and a monitoring structure is connected to the output end of the electric slide table.
[0007] The top-mounted auxiliary components include a gas collection box. Each gas collection box has a set of cooling structures installed on its outer wall to cool the hot gas. Each gas collection box has a set of inlet / outlet pipes connected to one side wall. Each set of inlet / outlet pipes has a set of dual-light scattering smoke sensors installed on its outer wall. Each gas collection box has a set of monitoring structures installed at the bottom center. Each gas collection box has two sets of infrared thermal imagers symmetrically installed at its bottom edge to perform thermal imaging monitoring of the heat source and personnel entering and exiting.
[0008] Furthermore, the video surveillance component also includes a limiting horizontal plate, on which two sets of vacuum cylinders are symmetrically installed. Each set of vacuum cylinders is connected to a set of suction cups. Each set of vacuum cylinders has an air pump installed on its outer wall. Two sets of pressure sensors are symmetrically installed on the edge of the side wall of each limiting horizontal plate near the vacuum cylinder.
[0009] Furthermore, a vertical column is installed on the top of the limiting horizontal plate, a drive motor is installed on the top of the vertical column, a positioning block is connected to the output end of the drive motor, a distance measuring sensor is snapped onto the bottom of the positioning block, and one end of the electric slide is installed on one side wall of the positioning block.
[0010] Furthermore, the pressure monitoring component includes a flat plate, one end of each set of flat plates is mounted on the outer wall of a limiting horizontal plate, a set of pedals is provided directly above each set of flat plates, several sets of guide seats are equally spaced on the top of each set of flat plates, a set of air inlet pipes is mounted on the top of each set of guide seats, a set of insertion tubes is connected to the outer wall of each set of air inlet pipes, a set of sliding tubes is slidably connected to the inner wall of each set of insertion tubes, a set of push plates is mounted on the top of each set of sliding tubes, and each set of push plates is mounted on the bottom of the pedals.
[0011] Furthermore, each set of push plates has two sets of compression springs symmetrically installed at the bottom, and the other end of each set of compression springs is connected to the top of the insertion tube. Each set of air intake pipes has a pressure sensor installed on its outer wall. Each set of air intake pipes has two sets of working pipes symmetrically connected to its two side walls, and a set of snap-fit blocks is connected between adjacent sets of working pipes.
[0012] Furthermore, each set of working pipes has an inlet / outlet pipe connected to one side wall, each set of inlet / outlet pipes is equipped with an exhaust fan, each set of inlet / outlet pipes has a filter screen installed on its inner wall, each set of inlet / outlet pipes has a temperature sensor installed on its outer wall, and each set of working pipes has a vertical plate installed on its outer wall.
[0013] Furthermore, the suspended temperature control component includes a suspended tube, and several sets of suspended tubes are interconnected. The bottom of one set of suspended tubes is installed on the top of the upright plate, and the outer wall of one set of suspended tubes is slidably connected to the pedal. Each set of suspended tubes has a set of inlet and outlet pipes connected to its outer wall, and each set of inlet and outlet pipes is equipped with a set of exhaust fans.
[0014] Furthermore, an activated carbon filter plate is installed on the inner wall of each set of inlet and outlet pipes II, a temperature sensor II is connected to the outer wall of each set of inlet and outlet pipes II, and a flashing light block is installed on the outer wall of each set of suspended pipes.
[0015] Furthermore, the top-mounting auxiliary assembly also includes an electric telescopic rod 1. The bottom of each set of electric telescopic rod 1 is installed on the top of one set of suspended pipes. A set of drive motors 2 is installed on the output end of each set of electric telescopic rod 1. A set of mounting blocks is connected to the output end of each set of drive motors 2. A set of counterweights is installed inside each set of mounting blocks. A set of electric telescopic rods 2 is installed on the output end of each set of mounting blocks. One end of each set of air collection boxes is installed on the output end of the electric telescopic rods 2. An air purifier is installed inside each set of air collection boxes. A set of exhaust fans 3 is installed on one side wall of each set of inlet and outlet pipes 3. A set of waterproof membranes is installed on the inner wall of each set of inlet and outlet pipes 3.
[0016] Furthermore, each set of gas collecting boxes is equipped with a set of antistatic brushes on its top, and two sets of liquid storage tanks are symmetrically installed on the top of each set of gas collecting boxes. Several sets of syringe structures are connected at equal intervals on the side wall of each set of liquid storage tanks near the antistatic brushes. Two sets of elastic plates are symmetrically installed on the top of each set of gas collecting boxes. A set of sliding cavities is opened on the top of each set of elastic plates. One end of two sets of tension springs is symmetrically installed on the inner wall of each set of sliding cavities. A scraper is connected between the other ends of the two sets of tension springs. Each set of scrapers is slidably connected to the inner wall of the elastic plate. Two sets of recovery shells are symmetrically installed on the outer wall of each set of scrapers.
[0017] The beneficial effects of this invention are:
[0018] 1. When infrared thermal imagers are used in computer rooms, infrared light can be reflected back to the imager when it encounters a smooth surface, causing the instrument to misjudge the temperature of the reflected object or even generate false heat sources. In this case, abnormal data should be marked first, and then another set of infrared thermal imagers should be started to monitor the temperature from a different angle (backlight area). The heat source data of the two sets of infrared thermal imagers can be compared. Furthermore, the gas collection box can be used to block the light source on the top of the computer room before heat source monitoring can be carried out. Alternatively, an alarm can be triggered through the monitoring structure to notify staff to adjust the position of the equipment in the computer room, install light shields, or apply black films. This improves the accuracy of data monitoring for abnormal angles in the computer room structure.
[0019] 2. Hot air from the top of the computer room is drawn into the gas collection box through inlet / outlet pipe three. During the intake process, a dual-light scattering smoke sensor is used for smoke sensing and to monitor the location of the smoke inlet. After the hot air enters the gas collection box, the cooling system is activated to cool the hot air, which is then discharged through inlet / outlet pipe three. As the cold air descends vertically, it neutralizes and cools the rising hot air and provides constant temperature cooling for the computer room equipment at different locations during the continuous descent. An infrared thermal imager is used to monitor the heat source and personnel entering and exiting. The drive motor two rotates the monitoring structure two in conjunction with the monitoring structure one for monitoring, which improves the temperature sensing effect and enhances the multi-angle compatibility of video monitoring.
[0020] 3. The heat emitted by the equipment in the computer room during operation will accumulate at the top of the computer room. Activating the first electric telescopic rod will cause the output end of the anti-static brush on the top of the gas collection box to come into contact with the top of the computer room. Activating the second electric telescopic rod will drive the anti-static brush to clean the top of the computer room. At the same time, the syringe structure can be activated to spray the cleaning solution placed in the liquid storage tank, so that the cleaning solution is evenly applied to the anti-static brush and then to the top of the computer room, which improves the cleaning effect and can also clean the equidistant shells installed on the top of the computer room. During the cleaning process, the scraper will scrape the top of the computer room. The sliding of the tension spring in the sliding cavity will buffer the work and allow the scraped impurities to fall into the recovery shell for recycling, which improves the cleaning and impurity removal effect.
[0021] 4. Before operation, the video surveillance equipment should be installed. After determining the installation position and angle of the equipment room, the two sets of suction cups should be attached to the wall and continuously pushed. After determining the value of the pressure sensor, the air pump should be started to evacuate the air from the vacuum cylinder. Then, the suction cups should be attached to the wall of the equipment room, which improves the technical effect of easy installation and removal. Then, the drive motor should be started to rotate the positioning block. While the positioning block is rotating, the monitoring structure should be rotated at the same time. At the same time, the electric slide should be started to move the monitoring structure horizontally for monitoring, which improves the monitoring effect and the compatibility of angle adjustment assistance.
[0022] 5. When personnel enter the computer room, they step on the pedal. When the pedal feels pressure, it slides on the suspended pipe. Simultaneously, the sliding pipe moves several sets of sliding tubes inside the insertion tube, compressing two sets of compression springs. The sliding tubes compress the air inside the insertion tube. After the pressure sensor detects the pressure increase inside the insertion tube, it activates two sets of exhaust fans to release pressure and exhaust air, quickly clearing the exhaust gas from the two sets of working pipes. When the air enters the inlet and outlet pipes, it first passes through the temperature sensor for temperature monitoring. The ground temperature is then monitored through the inlet and outlet pipes placed at different distances. This, combined with the monitoring structure, enables precise temperature difference monitoring. Dust is isolated by a filter, and visible segmented temperature monitoring is achieved using external pressure, improving the technical effectiveness of ground equipment temperature control monitoring.
[0023] 6. When monitoring the temperature of equipment in a computer room at varying heights, the heat emitted will only be suspended in mid-air. The best monitoring method is to monitor the heat at different heights by adsorbing it. Several sets of exhaust fans are turned on to draw air from different heights into suspended pipes at different locations. When the hot air enters the inlet and outlet pipes, it is detected by temperature sensor 2 and filtered by activated carbon filter. When a temperature imbalance is detected, a flashing light will flash, and the location will be detected by monitoring structure 1. This method is more suitable for working in low light conditions at night, making the detection range in the computer room more three-dimensional and easier to capture heat sources, thus improving the auxiliary effect of three-dimensional heat source monitoring.
[0024] Other features and advantages of the invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures pointed out in the description, claims and drawings. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0026] Figure 1 A schematic diagram of the structure of a video surveillance device according to an embodiment of the present invention is shown;
[0027] Figure 2 A schematic diagram of the structure of a video surveillance component according to an embodiment of the present invention is shown;
[0028] Figure 3A schematic diagram of the pressure monitoring component structure according to an embodiment of the present invention is shown;
[0029] Figure 4 A schematic diagram of the intake pipe structure according to an embodiment of the present invention is shown;
[0030] Figure 5 A schematic diagram of the suspended temperature control component structure according to an embodiment of the present invention is shown;
[0031] Figure 6 A schematic diagram of the top-mounted auxiliary component structure according to an embodiment of the present invention is shown;
[0032] Figure 7 A schematic diagram of the gas collection box structure according to an embodiment of the present invention is shown;
[0033] Figure 8 A schematic diagram of an elastic plate structure according to an embodiment of the present invention is shown;
[0034] Figure 9 A schematic diagram of an infrared thermal imager according to an embodiment of the present invention is shown.
[0035] In the diagram: 1. Video monitoring component; 101. Limiting horizontal plate; 102. Vacuum cylinder; 103. Suction cup; 104. Air pump; 105. Pressure sensor; 106. Vertical column; 107. Drive motor one; 108. Positioning block; 109. Electric slide; 110. Monitoring structure one; 2. Press monitoring component; 201. Flat plate; 202. Pedal; 203. Guide seat; 204. Air inlet pipe; 205. Insertion tube; 206. Sliding tube; 207. Compression spring; 208. Pressure sensor; 209. Working tube; 210. Vertical plate; 211. Inlet / outlet pipe one; 212. Exhaust fan one; 213. Temperature sensor one; 3. Suspended temperature control component; 301. Suspended tube; 302. Inlet / outlet... Pipe 2; 303, Exhaust Fan 2; 304, Temperature Sensor 2; 305, Activated Carbon Filter Plate; 306, Flashing Light Block; 4. Top Auxiliary Components; 401, Electric Telescopic Rod 1; 402, Drive Motor 2; 403, Mounting Block; 404, Electric Telescopic Rod 2; 405, Gas Collection Box; 406, Infrared Thermal Imager; 407, Cooler Structure; 408, Inlet / Outlet Pipe 3; 409, Exhaust Fan 3; 410, Dual-Light Scattering Smoke Sensor; 411, Anti-static Brush; 412, Liquid Storage Tank; 413, Syringe Structure; 414, Elastic Plate; 415, Sliding Chamber; 416, Tension Spring; 417, Scraper; 418, Recovery Shell; 419, Monitoring Structure 2; 5. Electrical Transmission Box. Detailed Implementation
[0036] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0037] This invention provides a temperature-sensing video surveillance device for data centers. It includes a video surveillance component 1, exemplarily such as... Figure 1 As shown, two sets of pressure monitoring components 2 are symmetrically installed on the video monitoring component 1. Several sets of suspended temperature control components 3 are installed at equal intervals on each set of pressure monitoring components 2. Each set of suspended temperature control components 3 is equipped with a set of top-mounted auxiliary components 4.
[0038] The computer room is monitored from a high point by installing video monitoring component 1. Then, the pressure monitoring component 2 and the suspended temperature control component 3 are used for three-dimensional gas monitoring. The top auxiliary component 4 is used in conjunction with video monitoring component 1 for multi-angle auxiliary monitoring. With video monitoring component 1 as the main terminal, the pressure monitoring component and the suspended temperature control component are remotely driven to perform temperature sensing.
[0039] For example, such as Figure 2 As shown, the video monitoring component 1 includes a limiting horizontal plate 101. Each set of electrical transmission boxes 5 is installed on the bottom of the limiting horizontal plate 101. Two sets of vacuum cylinders 102 are symmetrically installed on one side wall of the limiting horizontal plate 101. Each set of vacuum cylinders 102 is connected to a set of suction cups 103. Each set of vacuum cylinders 102 is installed on the outer wall of the outer wall of the outer wall of the outer wall of the limiting horizontal plate 101 near the vacuum cylinders 102. Two sets of pressure sensors 105 are symmetrically installed on the edge of the side wall of the limiting horizontal plate 101 near the vacuum cylinders 102. A vertical column 106 is installed on the top of the limiting horizontal plate 101. A drive motor 107 is installed on the top of the vertical column 106. A positioning block 108 is drivenly connected to the output end of the drive motor 107. A distance sensor is snapped onto the bottom of the positioning block 108. An electric slide 109 is installed on one side wall of the positioning block 108. A monitoring structure 110 is drivenly connected to the output end of the electric slide 109.
[0040] Before operation, the video surveillance equipment is installed. After determining the installation position at the top of the equipment room, the two sets of suction cups 103 are attached to the wall and continuously pushed. After determining the value of the pressure sensor 105, the air pump 104 is started to evacuate the air in the vacuum cylinder 102, which then causes the suction cups 103 to adhere to the wall of the equipment room, improving the technical effect of easy disassembly and assembly. The vertical column and the limiting horizontal plate are disassembled, and then the vertical column is installed on the top of the equipment room. Then, the drive motor 107 is started to drive the positioning block 108 to rotate. While the positioning block 108 is rotating, the monitoring structure 110 is rotated at an angle. At the same time as the angle rotation, the electric slide 109 can be started to drive the monitoring structure 110 to move horizontally for monitoring, which improves the monitoring effect and the compatibility of angle adjustment assistance.
[0041] For example, such as Figure 3 and Figure 4 As shown, the pressure monitoring component 2 includes a flat plate 201. One end of each set of flat plates 201 is mounted on one side wall of the electric transmission box 5, and the other end of each set of flat plates 201 is mounted on the outer wall of the limiting horizontal plate 101. A set of pedals 202 is provided directly above each set of flat plates 201. Several sets of guide seats 203 are evenly spaced on the top of each set of flat plates 201. An air inlet pipe 204 is installed on the top of each set of guide seats 203. A set of insertion tubes 205 is connected to the outer wall of each set of air inlet pipes 204. A set of sliding tubes 206 is slidably connected to the inner wall of each set of insertion tubes 205. A set of push plates is installed on the top of each set of sliding tubes 206. Each set of push plates is installed on the bottom of the pedals 202. Two sets of compression springs are symmetrically installed on the bottom of each set of push plates. One end of each compression spring 207 is connected to the top of the insertion tube 205. A pressure sensor 208 is installed on the outer wall of each air intake pipe 204. Two working pipes 209 are symmetrically connected to the two side walls of each air intake pipe 204. A snap-fit block is connected between two adjacent working pipes 209. An inlet / outlet pipe 211 is connected to one side wall of each working pipe 209. A fan 212 is installed on each inlet / outlet pipe 211. A filter screen is installed on the inner wall of each inlet / outlet pipe 211. A temperature sensor 213 is installed on the outer wall of each inlet / outlet pipe 211. A vertical plate 210 is installed on the outer wall of each working pipe 209. Each vertical plate 210 is located directly below the pedal 202.
[0042] Several sets of flat plates are installed on the walls of the computer room, allowing personnel to step on pedals 202 while working. When pedals 202 feel pressure, they slide on suspended tubes 301, simultaneously driving several sets of sliding tubes 206 to slide inside the insertion tube and compressing two sets of compression springs 207. The sliding tubes 206 compress the air inside the insertion tube 205. After the pressure sensor 208 senses the increase in pressure inside the insertion tube 205, it activates two sets of exhaust fans 212 to release pressure and exhaust air, quickly clearing the exhaust gas from the two sets of working tubes 209. When air enters the inlet / outlet tube 211, it first passes through the temperature sensor 213 for temperature monitoring. The ground temperature is then monitored through the inlet / outlet tubes 211 placed at different distances. This, combined with the monitoring structure 110, enables precise temperature difference monitoring. Dust is isolated by a filter, and visible segmented temperature monitoring is achieved using external pressure, thus improving the technical effect of temperature control monitoring for ground equipment.
[0043] For example, such as Figure 5 As shown, the suspended temperature control component 3 includes a suspended tube 301, and several sets of suspended tubes 301 are interconnected. The bottom of one set of suspended tubes 301 is installed on the top of the upright plate 210. The outer wall of one set of suspended tubes 301 is slidably connected to the pedal 202. Each set of suspended tubes 301 has a set of inlet / outlet tubes 302 connected to its outer wall. Each set of inlet / outlet tubes 302 has a set of exhaust fans 303 installed on its outer wall. Each set of inlet / outlet tubes 302 has an activated carbon filter plate 305 installed on its inner wall. Each set of inlet / outlet tubes 302 has a set of temperature sensors 304 connected to its outer wall. Each set of suspended tubes 301 has a set of flashing light blocks 306 installed on its outer wall.
[0044] When monitoring the temperature of equipment in a computer room at varying heights, the heat emitted by the equipment remains suspended in mid-air. The best monitoring method is to monitor the heat at different heights by adsorbing the heat. Several sets of exhaust fans 303 are turned on to draw air from different heights into suspended pipes 301 at different locations. When the heat enters the inlet / outlet pipes 302, the temperature sensor 304 performs temperature control detection, and the activated carbon filter plate 305 filters impurities. When a temperature imbalance is detected, the flashing light block 306 flashes, and the monitoring structure 110 performs location detection. This method is more suitable for working in low-light conditions at night, making the detection range in the computer room more three-dimensional and easier to capture heat sources, thus improving the auxiliary effect of three-dimensional heat source monitoring.
[0045] For example, such as Figure 6 , Figure 7 , Figure 8 and Figure 9As shown, the top-mounting auxiliary component 4 includes an electric telescopic rod 401. The bottom of each set of electric telescopic rods 401 is mounted on the top of one set of suspended pipes 301. A second drive motor 402 is mounted on the output end of each set of electric telescopic rods 401. A set of mounting blocks 403 is connected to the output end of each set of driving motors 402. A set of counterweights is installed inside each set of mounting blocks 403. A second electric telescopic rod 404 is mounted on the output end of each set of mounting blocks 403. Each set of electric telescopic rods 404 has an air collection box 405 installed at its output end. Each air collection box 405 contains an air purifier. One end of each air collection box 405 is connected to a refrigeration structure 407. Each set of air collection boxes 405 has an inlet / outlet pipe 408 connected to one side wall. Each set of inlet / outlet pipe 408 has an exhaust fan 409 installed on one side wall. A water-resistant membrane is installed on the inner wall of each inlet / outlet pipe 408. The outer wall of each inlet / outlet pipe 408... Each gas collection box 405 is equipped with a set of dual-light scattering smoke sensors 410. Each set of gas collection boxes 405 has an anti-static brush 411 mounted on its top. Two sets of liquid storage tanks 412 are symmetrically mounted on the top of each set of gas collection boxes 405. Several sets of syringe structures 413 are connected at equal intervals on the side wall of each set of liquid storage tanks 412 closest to the anti-static brush 411. Two sets of elastic plates 414 are symmetrically mounted on the top of each set of gas collection boxes 405. A sliding cavity 415 is formed on the top of each set of elastic plates 414. Two sets of tension springs 416 are symmetrically installed on the inner wall of each set of sliding cavities 415. A scraper 417 is connected between the other ends of the two sets of tension springs 416. Each set of scrapers 417 is slidably connected to the inner wall of the elastic plate 414. Two sets of recovery shells 418 are symmetrically installed on the outer wall of each set of scrapers 417. A monitoring structure 419 is installed at the bottom center of each set of gas collection boxes 405. Two sets of infrared thermal imagers 406 are symmetrically installed at the bottom edge of each set of gas collection boxes 405.
[0046] The heat emitted by the equipment in the computer room during operation will accumulate at the top of the computer room. Activating the electric telescopic rod 401 causes the output end of the antistatic brush 411 on top of the gas collection box 405 to contact the top of the computer room. Activating the electric telescopic rod 404 then causes the antistatic brush 411 to clean the top of the computer room. Simultaneously, the syringe structure 413 can be activated to spray the cleaning solution placed in the liquid storage tank 412, ensuring the cleaning solution is evenly applied to the antistatic brush 411 and then to the top of the computer room. This improves the cleaning effect and also cleans the equidistant housings installed on the top of the computer room. During the cleaning process, the scraper 417 scrapes away debris from the top of the computer room. The sliding of the tension spring 416 within the sliding cavity provides cushioning, causing the scraped debris to fall into the recovery shell 418 for recycling, thus improving the cleaning and impurity removal efficiency. The fan 409 draws hot air from the top of the computer room into the gas collection box 405 through the inlet / outlet pipe 408. During the intake process, the dual-light scattering smoke sensor 410 first detects smoke and monitors the location of the smoke inlet. After the hot air enters the gas collection box, the cooler structure 407 is activated to cool the hot air, and then it is discharged through the inlet / outlet pipe 408. As the cold air descends vertically, it neutralizes and cools the rising hot air and provides constant temperature cooling for the computer room equipment at different locations during the continuous descent. The infrared thermal imager 406 then performs thermal imaging monitoring of the heat source and personnel entering and exiting. The drive motor 419 rotates the monitoring structure 419 and the monitoring structure 110 to work together, improving the temperature sensing effect and the multi-angle compatibility of video monitoring.
[0047] When infrared thermal imagers are used in computer rooms, infrared light can be reflected back to the imager when it encounters a smooth surface, causing the instrument to misjudge the temperature of the reflected object or even generate false heat sources. In such cases, abnormal data should be marked first, and then another set of infrared thermal imagers should be started to monitor the temperature from a different angle (backlit area). The heat source data of the two sets of infrared thermal imagers can be compared. Furthermore, the gas collection box can be used to block the light source on the top of the computer room before heat source monitoring can be carried out. Alternatively, an alarm can be triggered through the monitoring structure to notify staff to reposition or adjust the equipment in the computer room, or to install light shields or apply black films. This improves the accuracy of data monitoring for abnormal angles in the computer room structure.
[0048] When infrared thermal imagers are used in computer rooms, infrared light can be reflected back to the imager when it encounters a smooth surface, causing the instrument to misjudge the temperature of the reflected object or even generate false heat sources. In such cases, abnormal data should be marked first, and then another set of infrared thermal imagers should be started to monitor the temperature from a different angle (backlit area). The heat source data of the two sets of infrared thermal imagers can be compared. Furthermore, the gas collection box can be used to block the light source on the top of the computer room before heat source monitoring can be carried out. Alternatively, an alarm can be triggered through the monitoring structure to notify staff to reposition or adjust the equipment in the computer room, or to install light shields or apply black films. This improves the accuracy of data monitoring for abnormal angles in the computer room structure.
[0049] Hot air from the top of the computer room is drawn into the gas collection box 405 through inlet / outlet pipe 3 408. During the intake process, the smoke is first detected by the dual light scattering smoke sensor 410, which also monitors the location of the smoke inlet. After the hot air enters the gas collection box, the cooler structure 407 is activated to cool the hot air, and then it is discharged through inlet / outlet pipe 3 408. During the vertical descent of the cold air, it neutralizes and cools the rising hot air, and maintains a constant temperature for the computer room equipment at different locations during the continuous descent. Then, the infrared thermal imager 406 performs thermal imaging monitoring of the heat source and the personnel entering and leaving. The drive motor 2 drives the monitoring structure 2 419 to rotate and work in conjunction with the monitoring structure 110, which improves the temperature sensing effect and the multi-angle compatibility of video monitoring.
[0050] The heat emitted by the equipment in the computer room during operation will accumulate at the top of the computer room. Activating the electric telescopic rod 401 will cause the output end of the antistatic brush 411 on the top of the gas collection box 405 to come into contact with the top of the computer room. Activating the electric telescopic rod 404 will cause the antistatic brush 411 to clean the top of the computer room. At the same time, the syringe structure 413 can be activated to spray the cleaning solution placed in the liquid storage tank 412, so that the cleaning solution is evenly applied to the antistatic brush 411 and then to the top of the computer room, which improves the cleaning effect and can also clean the equidistant shells installed on the top of the computer room. During the cleaning process, the scraper 417 will scrape the top of the computer room. The sliding of the tension spring 416 in the sliding cavity will buffer the work and cause the scraped impurities to fall into the recovery shell 418 for recycling, which improves the cleaning and impurity removal effect.
[0051] Before the video surveillance equipment is put into operation, it is first installed. After determining the installation position at the angle of the equipment room, the two sets of suction cups 103 are attached to the wall and continuously pushed. After determining the value of the pressure sensor 105, the air pump 104 is started to evacuate the air in the vacuum cylinder 102. Then, the suction cups 103 are driven to adhere to the wall of the equipment room, which improves the technical effect of easy installation and removal. Then, the drive motor 107 is started to drive the positioning block 108 to rotate. While the positioning block 108 is rotating, the monitoring structure 110 is rotated at an angle. At the same time as the angle rotation, the electric slide 109 can be started to drive the monitoring structure 110 to move horizontally for monitoring, which improves the monitoring effect and the compatibility of angle adjustment assistance.
[0052] When personnel enter the computer room, they step on pedal 202. When pedal 202 senses pressure, it slides on the suspended tube 301. Simultaneously, it drives several sets of sliding tubes 206 to slide inside the insertion tube, and at the same time, it squeezes two sets of compression springs 207. As the sliding tubes 206 slide, they also squeeze the air inside the insertion tube 205. After the pressure sensor 208 senses the increase in pressure inside the insertion tube 205, it turns on two sets of exhaust fans 212 to release pressure and exhaust air, quickly clearing the exhaust gas in the two sets of working tubes 209. When the air enters the inlet and outlet tubes 211, it first passes through the temperature sensor 213 for temperature monitoring. The ground temperature is monitored through the inlet and outlet tubes 211 placed at different distances. It works in conjunction with the monitoring structure 110 to perform precise temperature difference positioning monitoring. Dust is isolated by a filter. With the help of external pressure, visible segmented temperature monitoring is performed, which improves the technical effect of temperature control monitoring of ground equipment.
[0053] When monitoring the temperature of equipment in a computer room at varying heights, the heat emitted by the equipment remains suspended in mid-air. The best monitoring method is to monitor the heat at different heights by absorbing the heat. Several sets of exhaust fans 303 are turned on to draw air from different heights into suspended pipes 301 at different locations. When the heat enters the inlet / outlet pipes 302, the temperature sensor 304 performs temperature control detection, and the activated carbon filter 305 filters impurities. When a temperature imbalance is detected, the flashing light block 306 flashes, and the monitoring structure 110 performs location detection. This method is more suitable for working in low-light conditions at night, making the detection range in the computer room more three-dimensional and easier to capture heat sources, thus improving the auxiliary effect of three-dimensional heat source monitoring.
[0054] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A temperature-sensing video surveillance device for a data center, comprising a video surveillance component, characterized in that: Two sets of pressure monitoring components are symmetrically installed on the video monitoring component. Several sets of suspended temperature control components are installed at equal intervals on each set of pressure monitoring components. A set of top-mounted auxiliary components is installed on each set of suspended temperature control components. Two sets of electric transmission boxes are symmetrically installed on the bottom of the video monitoring component. The video surveillance component includes an electric slide table, and a monitoring structure is connected to the output end of the electric slide table. The top-mounted auxiliary components include a gas collection box. Each gas collection box has a set of cooling structures installed on its outer wall to cool the hot gas. Each gas collection box has a set of inlet / outlet pipes connected to one side wall. Each set of inlet / outlet pipes has a set of dual-light scattering smoke sensors installed on its outer wall. Each gas collection box has a set of monitoring structures installed at the bottom center. Each gas collection box has two sets of infrared thermal imagers symmetrically installed at its bottom edge to perform thermal imaging monitoring of the heat source and personnel entering and exiting.
2. The temperature-sensing video surveillance device for a data center according to claim 1, characterized in that: The video monitoring component also includes a limiting horizontal plate. Two sets of vacuum cylinders are symmetrically installed on one side wall of the limiting horizontal plate. Each set of vacuum cylinders is connected to a set of suction cups. Each set of vacuum cylinders has an air pump installed on its outer wall. Two sets of pressure sensors are symmetrically installed on the edge of the side wall of each limiting horizontal plate near the vacuum cylinder.
3. The temperature-sensing video surveillance device for a data center according to claim 2, characterized in that: A vertical column is installed on the top of the limiting horizontal plate, and a drive motor is installed on the top of the vertical column. A positioning block is connected to the output end of the drive motor, and a distance measuring sensor is snapped onto the bottom of the positioning block. One end of the electric slide is installed on one side wall of the positioning block.
4. A temperature-sensing video surveillance device for a data center according to claim 2, characterized in that: The pressure monitoring component includes a flat plate. One end of each set of flat plates is mounted on the outer wall of a limiting horizontal plate. A set of pedals is provided directly above each set of flat plates. Several sets of guide seats are installed at equal intervals on the top of each set of flat plates. An air inlet pipe is installed on the top of each set of guide seats. A set of insertion tubes is connected to the outer wall of each set of air inlet pipes. A set of sliding tubes is slidably connected to the inner wall of each set of insertion tubes. A set of push plates is installed on the top of each set of sliding tubes. Each set of push plates is installed on the bottom of the pedals.
5. A temperature-sensing video surveillance device for a data center according to claim 4, characterized in that: Two sets of compression springs are symmetrically installed at the bottom of each set of push plates. The other end of each set of compression springs is connected to the top of the insertion tube. A pressure sensor is installed on the outer wall of each set of air intake pipes. Two sets of working pipes are symmetrically connected to the two side walls of each set of air intake pipes. A set of snap-fit blocks is connected between adjacent sets of working pipes.
6. A temperature-sensing video surveillance device for a data center according to claim 5, characterized in that: Each set of working pipes has a set of inlet / outlet pipes connected to one side wall. Each set of inlet / outlet pipes is equipped with a set of exhaust fans. Each set of inlet / outlet pipes has a set of filter screens installed on its inner wall. Each set of inlet / outlet pipes has a set of temperature sensors installed on its outer wall. Each set of working pipes also has a set of vertical plates installed on its outer wall.
7. A temperature-sensing video surveillance device for a data center according to claim 1, characterized in that: The suspended temperature control component includes a suspended tube, and several sets of suspended tubes are interconnected. The bottom of one set of suspended tubes is installed on the top of the upright plate. The outer wall of one set of suspended tubes is slidably connected to the pedal. Each set of suspended tubes has a set of inlet and outlet pipes connected to its outer wall. Each set of inlet and outlet pipes is equipped with a set of exhaust fans.
8. A temperature-sensing video surveillance device for a data center according to claim 7, characterized in that: Each set of inlet / outlet pipes has an activated carbon filter plate installed on its inner wall, a temperature sensor is connected to its outer wall, and a flashing light block is installed on the outer wall of each set of suspended pipes.
9. A temperature-sensing video surveillance device for a data center according to claim 1, characterized in that: The top-mounted auxiliary assembly also includes an electric telescopic rod 1. The bottom of each set of electric telescopic rod 1 is installed on the top of one set of suspended pipes. A set of drive motors 2 is installed on the output end of each set of electric telescopic rod 1. A set of mounting blocks is connected to the output end of each set of drive motors 2. A set of counterweights is installed inside each set of mounting blocks. A set of electric telescopic rods 2 is installed on the output end of each set of mounting blocks. One end of each set of air collection boxes is installed on the output end of the electric telescopic rods 2. An air purifier is installed inside each set of air collection boxes. A set of exhaust fans 3 is installed on one side wall of each set of inlet and outlet pipes 3. A set of waterproof membranes is installed on the inner wall of each set of inlet and outlet pipes 3.
10. A temperature-sensing video surveillance device for a data center according to claim 9, characterized in that: Each set of gas collecting boxes is equipped with a set of antistatic brushes on its top. Two sets of liquid storage tanks are symmetrically installed on the top of each set of gas collecting boxes. Several sets of syringe structures are connected at equal intervals on the side wall of each set of liquid storage tanks near the antistatic brushes. Two sets of elastic plates are symmetrically installed on the top of each set of gas collecting boxes. A sliding cavity is opened on the top of each set of elastic plates. One end of two sets of tension springs is symmetrically installed on the inner wall of each set of sliding cavity. A scraper is connected between the other ends of the two sets of tension springs. Each set of scrapers is slidably connected to the inner wall of the elastic plate. Two sets of recovery shells are symmetrically installed on the outer wall of each set of scrapers.
Citation Information
Patent Citations
Video monitoring device and method based on conference machine room protection
CN119342178A