Pump room safety monitoring device

By introducing ozone gas pest control and automated monitoring systems into the pump room safety monitoring device, the problem of increased workload due to manual pest control has been solved, and automated monitoring and fault alarms of the equipment have been achieved, ensuring the safe and stable operation of the pump room.

CN223660944UActive Publication Date: 2025-12-12XINYU YUQUAN WATER CO LTD
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Patent Information

Application Number
CN202422119649.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-30
Publication Date
2025-12-12
Estimated Expiration
2034-08-30

AI Technical Summary

Technical Problem

The existing pump room monitoring system requires manual intervention to kill insects such as mosquitoes and flies when they are detected, which increases the workload of personnel and affects the healthy operation of the equipment.

Method used

A pump room safety monitoring device was designed. By setting up a platform, a return spring, an air pump, a hose, and a nozzle, ozone gas is used to kill insects such as mosquitoes and flies. Combined with an infrared module, a temperature sensor, and an alarm, it realizes automated monitoring and fault alarm to ensure the safe operation of the equipment.

Benefits of technology

It has achieved automated pest control and fault alarm, reduced manual intervention, and improved the safety and operational stability of pump room equipment.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223660944U_ABST
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Abstract

The utility model relates to a monitoring device, in particular to a pump room safety monitoring device. The pump room safety monitoring device comprises a water pipe, a first installation plate, a motor, a camera and a controller, the front side of the water pipe is fixedly connected with the first installation plate, the motor is installed on the left front side of the first installation plate, the rotary camera is installed on an output shaft of the motor, the controller is installed on the left front side of the first installation plate, and the controller is connected with the first installation plate. And the controller is positioned below the camera. By arranging the placing tables, the return springs, the air pump, the hose and the spray head, the two placing tables and the return springs are matched to stably fix the odorous oxygen bottle, and the camera is matched with the controller, so that the air pump operates to suck ozone gas in the odorous oxygen bottle into the hose and then convey the ozone gas into the spray head to be uniformly sprayed out, and then insects such as mosquitoes and flies in the pump room are killed; the device has an insect killing function, and the problem that manual intervention is needed in existing insect killing, and the workload of workers is greatly increased is effectively solved.
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Description

Technical Field

[0001] This utility model relates to a monitoring device, and more particularly to a pump room safety monitoring device. Background Technology

[0002] A pump house is a water supply system. Large enterprises, waterworks, mines, power plants, residential areas, and other living and production sites all require pump houses to install appropriate types of air pumps to meet production and living needs. Pump houses typically contain high-voltage circuits and a large number of water pipes and equipment. Leaks, equipment failures, or short circuits can easily lead to accidents such as fires. Therefore, pump houses need to be equipped with monitoring systems to detect and address any abnormalities immediately, thus preventing accidents.

[0003] Patent CN213145932U discloses an adjustable pump room monitoring device, including a base plate. A camera is mounted on the bottom of the base plate, and rotating shafts are fixedly connected to both outer walls of the camera. Two side seats are fixedly connected to the lower outer wall of the base plate, each with a circular hole. The outer wall of the rotating shaft is movably connected to the inner wall of the circular hole. Two triangular fixing platforms are fixedly connected to the upper outer wall of the camera, and a first connecting shaft is fixedly connected between the two triangular fixing platforms. A first bushing is rotatably connected to the outer wall of the first connecting shaft, and a telescopic rod is fixedly connected to one outer wall of the first bushing. This invention allows for adjustment of the camera angle by extending and retracting the telescopic rod, facilitating monitoring of various areas of the pump room. Adjusting the camera angle increases the monitoring range, solves the problem of blind spots, and improves the overall safety of the pump room. While the aforementioned patents are effective, they still have shortcomings in practical use. For example, a large number of mosquitoes and flies often gather in pump rooms, which can greatly affect the healthy operation of pump room equipment. Therefore, when cameras detect the presence of mosquitoes and flies in the pump room, manual intervention is required to kill the mosquitoes and flies in the pump room in order to ensure the healthy operation of the pump room equipment, which greatly increases the workload of personnel.

[0004] Therefore, there is a particular need for a pump room safety monitoring device to address the problems existing in the current technology. Utility Model Content

[0005] To overcome the shortcomings of existing patented cameras, which require manual intervention to kill mosquitoes, flies, and other insects in the pump room to ensure the healthy operation of the pump room equipment, greatly increasing the workload of personnel, this utility model provides a pump room safety monitoring device.

[0006] This utility model is achieved through the following technical means: a pump room safety monitoring device, including a water pipe, a first mounting plate, a motor, a camera, and a controller. The first mounting plate is fixedly connected to the front side of the water pipe. A motor is installed on the left front side of the first mounting plate. A rotating camera is installed on the output shaft of the motor. A controller is installed on the left front side of the first mounting plate. The controller is located below the camera and is electrically connected to the motor and the camera. The device also includes a placement platform, a return spring, an air pump, a hose, and a nozzle. A placement platform is provided on the right front side of the first mounting plate, with the upper placement platform fixedly connected to the first mounting plate and the lower placement platform slidably connected to the first mounting plate. A return spring is sleeved on the guide rod of the lower placement platform. The two ends of the return spring are connected to the first mounting plate and the placement platform, respectively. An air pump is installed on the top front side of the upper placement platform. The controller is electrically connected to the air pump. A hose and a nozzle are connected to the left and right sides of the air pump, respectively.

[0007] In one embodiment, the device further includes a second mounting plate, a support rod, a rotating plate, a torsion spring, and an infrared module. The second mounting plate is fixedly connected to the rear side of the left end of the water pipe, and the support rod is fixedly connected to the right side of the second mounting plate. The rotating plate is rotatably connected to the outside of the support rod, and torsion springs are sleeved on both the upper and lower ends of the support rod. The two ends of the torsion springs are respectively connected to the rotating plate and the support rod. Infrared modules are installed on the left side of the rotating plate and the front side of the second mounting plate. The controller is electrically connected to the infrared modules. The rotating plate rotates 90 degrees to the left by the impact of the fluid inside the water pipe, thereby making the infrared module on the front side contact the infrared module on the rear side.

[0008] In one embodiment, a first alarm is also included, which is mounted on the front side of the center of the first mounting plate, and the controller is electrically connected to the first alarm.

[0009] In one embodiment, a temperature sensor is also included, which is mounted on the right side of the turntable, and the controller is electrically connected to the temperature sensor.

[0010] In one embodiment, a second alarm is also included, which is mounted on the front side of the center of the first mounting plate and is located below the first alarm. The controller is electrically connected to the second alarm.

[0011] In one embodiment, the inner walls at both ends of the water pipe are provided with anti-seepage sleeves.

[0012] As can be seen from the above description of the structure of this utility model, the design starting point, concept and advantages of this utility model are: 1. By setting up a placement platform, a return spring, an air pump, a hose and a nozzle, the two placement platforms and the return spring work together to stably fix the ozone cylinder. The camera and the controller work together to make the air pump run to draw the ozone gas in the ozone cylinder into the hose, and then deliver it to the nozzle to spray it evenly, thereby killing mosquitoes, flies and other insects in the pump room. This makes the device have an insecticidal function, effectively solving the problem that existing insecticidal methods require manual intervention, which greatly increases the workload of personnel.

[0013] 2. By setting up a second mounting plate, support rod, rotating plate, torsion spring, and infrared module, when the flow rate in the pipeline and water pipe decreases, the impact force on the rotating plate decreases accordingly. The torsion spring then slightly restores its original shape, causing the rotating plate to rotate to the right. This causes the infrared module on the front side to disengage from the infrared module on the rear side. After disengagement, both infrared modules simultaneously transmit signals to the controller, which then transmits the signals to the central monitoring room. This allows management personnel to quickly arrive for maintenance or troubleshooting, ensuring the safe operation of the pump room.

[0014] 3. By setting a temperature sensor, when the temperature sensor detects that the temperature of the fluid in the water pipe exceeds its threshold, it immediately transmits the signal to the controller, which then transmits it to the central monitoring room. This allows the management personnel to turn on the air conditioning in the pump room through the operating system, thereby cooling the pump room in a timely manner and preventing the water pump from being damaged by excessively high fluid temperature in the pipe. Attached Figure Description

[0015] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0016] Figure 2 This is a three-dimensional structural diagram of the first part of this utility model.

[0017] Figure 3 This is a three-dimensional structural diagram of the second part of this utility model.

[0018] Figure 4 This is a first partial sectional view of the present invention.

[0019] Figure 5 This is a second partial sectional view of the present invention.

[0020] The following items are labeled in the diagram: 1. Water pipe, 2. First mounting plate, 3. Motor, 4. Camera, 5. Controller, 6. First alarm, 7. Placement platform, 8. Air pump, 9. Hose, 10. Nozzle, 11. Second alarm, 12. Second mounting plate, 13. Support rod, 14. Rotating plate, 15. Torsion spring, 16. Temperature sensor, 17. Infrared module, 18. Return spring. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] Example: A safety monitoring device for a pump room, see reference. Figures 1-4 As shown, the system includes a water pipe 1, a first mounting plate 2, a motor 3, a camera 4, a first alarm 6, a temperature sensor 16, and a controller 5. Both ends of the water pipe 1 have anti-seepage sleeves on their inner walls. The front of the water pipe 1 is welded to the first mounting plate 2. The left front side of the first mounting plate 2 is bolted to the motor 3 via a mounting post. A rotating camera 4 is bolted to the output shaft of the motor 3. The first alarm 6 is bolted to the front center of the first mounting plate 2. The temperature sensor 16 is bolted to the middle right side of the rotating plate 14. The controller 5 is bolted to the left front side of the first mounting plate 2. The controller 5 is located below the camera 4 and is electrically connected to the motor 3, camera 4, first alarm 6, and temperature sensor 16. The connection also includes a placement platform 7, a return spring 18, an air pump 8, a hose 9, and a nozzle 10. The right front side of the first mounting plate 2 is provided with a placement platform 7 distributed vertically. The upper placement platform 7 is fixedly connected to the first mounting plate 2, and the lower placement platform 7 is slidably connected to the first mounting plate 2. A circular groove is formed between the front sides of the two placement platforms 7 to accommodate the ozone cylinder's protruding mouth. A return spring 18 is sleeved on the guide rod of the lower placement platform 7. The two ends of the return spring 18 are respectively connected to the first mounting plate 2 and the placement platform 7. The top front side of the upper placement platform 7 is connected to the air pump 8 by bolts. The controller 5 is electrically connected to the air pump 8. The left and right sides of the air pump 8 are respectively connected to the hose 9 and the nozzle 10. The hose 9 is a PVC telescopic water pipe with advantages such as flexibility, corrosion resistance, and resistance to aging.

[0023] See Figure 4 and Figure 5As shown, it also includes a second mounting plate 12, a support rod 13, a rotating plate 14, a torsion spring 15, an infrared module 17, and a second alarm 11. The second mounting plate 12 is welded to the rear side of the left end of the water pipe 1. The support rod 13 is welded to the right side of the second mounting plate 12. The rotating plate 14 is rotatably connected to the outside of the support rod 13, and torsion springs 15 are sleeved on both the upper and lower ends. The two ends of the torsion springs 15 are connected to the rotating plate 14 and the support rod 13, respectively. The infrared module 17 is bolted to the middle left side of the rotating plate 14 and the middle front side of the second mounting plate 12. The second alarm 11 is bolted to the front side of the middle part of the first mounting plate 2. The second alarm 11 is located below the first alarm 6. The controller 5 is electrically connected to the infrared module 17 and the second alarm 11. The rotating plate 14 is rotated 90 degrees to the left by the fluid inside the water pipe 1, thereby making the front infrared module 17 contact the rear infrared module 17.

[0024] When this device is needed, first establish communication between the controller 5 and the main monitoring room. Carry the water pipe 1 to the pump room, shut off the relevant water pumps and valves in the pump room, and empty the pipes to ensure no fluid flow. Next, select a suitable installation location and install the water pipe 1 into the piping system. After installation, pull down the lower placement platform 7, compressing the return spring 18. Then place the ozone cylinder between the two placement platforms 7. Next, release the lower placement platform 7, and the return spring 18 returns to its original position, causing the lower placement platform 7 to move upward and engage with the upper placement platform 7 to clamp the ozone cylinder. Then open the ozone cylinder, insert one end of the hose 9 into the mouth of the ozone cylinder, and rotate the camera 4 upward to a suitable angle, ensuring that the camera 4 covers the key areas of the pump room. Then, the controller 5 activates the camera 4, motor 3, and temperature sensor 16, sets the threshold of the temperature sensor 16, and then starts the relevant water pumps and valves in the pump room, allowing the fluid to flow back into the pipeline for transportation. During transportation, the fluid flowing into the water pipe 1 impacts the rotating plate 14, causing it to rotate 90 degrees to the left, thus ensuring continuous contact between the front infrared module 17 and the rear infrared module 17. At this time, the output shaft of the motor 3 drives the camera 4 to rotate 360 ​​degrees circumferentially, increasing the monitoring range of the camera 4. While the camera 4 rotates, it monitors whether there is a pipe rupture in the pump room. When a pipe rupture is detected, the camera 4 transmits a signal to the controller 5, which then transmits the signal to the main monitoring room. Simultaneously, the controller 5 controls the first alarm 6 to light up and sound an alarm. To attract the attention of the management personnel in the main monitoring room, the controller 5 transmits a signal. Upon receiving the signal, the management personnel promptly shut down the pump room equipment via the operating system to prevent a large fluid leak from damaging other equipment within the pump room. Simultaneously, camera 4 scans the pump room for insects such as mosquitoes and flies. When insects are detected, camera 4 transmits a signal to controller 5, which then activates air pump 8. Air pump 8 draws ozone gas from the ozone cylinder into hose 9, which then delivers it to nozzle 10 for even spraying, killing insects such as mosquitoes and flies in the pump room and effectively ensuring the healthy operation of the equipment. Once the insects are killed and camera 4 can no longer detect them, camera 4 transmits a signal to the controller 5. Device 5 and controller 5 control the air pump 8 to shut down. When the pump room temperature is too high, the fluid temperature in the pipes and water pipe 1 will rise. When the temperature sensor 16 senses that the fluid temperature in water pipe 1 exceeds its threshold, it immediately transmits the signal to controller 5, which then transmits it to the central monitoring room. This allows management personnel to turn on the air conditioning in the pump room through the operating system, thereby cooling the pump room in a timely manner and preventing the water pump from being damaged by excessively high fluid temperature in the pipes. During the fluid transportation process, when the flow rate in the pipes and water pipe 1 decreases, the impact force on the rotating plate 14 decreases accordingly. The torsion spring 15 then slightly returns to its original shape, causing the rotating plate 14 to rotate to the right. This causes the front infrared module 17 to disengage from the rear infrared module 17. After disengagement, both infrared modules 17 simultaneously transmit signals to controller 5.Controller 5 immediately transmits the signal to the main monitoring room, simultaneously activating the second alarm 11 to sound an alarm, thereby attracting the attention of the management personnel in the main monitoring room. Upon receiving the signal, the management personnel in the main monitoring room can quickly locate the problematic pipeline and promptly carry out repairs or troubleshooting, ensuring the safe and stable operation of the pump room system.

[0025] The above embodiments are only for illustrating the technical concept and features of this utility model, and are intended to enable those skilled in the art to understand the content of this utility model and implement it accordingly. They should not be construed as limiting the scope of protection of this utility model. All equivalent changes or modifications made in accordance with the spirit and essence of this utility model should be included within the scope of protection of this utility model.

Claims

1. A pump room safety monitoring device, comprising a water pipe (1), a first mounting plate (2), a motor (3), a camera (4), and a controller (5), wherein the first mounting plate (2) is fixedly connected to the front side of the water pipe (1), the motor (3) is mounted on the left front side of the first mounting plate (2), a rotating camera (4) is mounted on the output shaft of the motor (3), and the controller (5) is mounted on the left front side of the first mounting plate (2), the controller (5) is located below the camera (4), and is electrically connected to the motor (3) and the camera (4), characterized in that, It also includes a placement platform (7), a return spring (18), an air pump (8), a hose (9), and a nozzle (10). The first mounting plate (2) has a placement platform (7) distributed vertically on the right front side. The upper placement platform (7) is fixedly connected to the first mounting plate (2), and the lower placement platform (7) is slidably connected to the first mounting plate (2). A return spring (18) is sleeved on the guide rod of the lower placement platform (7). The two ends of the return spring (18) are connected to the first mounting plate (2) and the placement platform (7) respectively. An air pump (8) is installed on the top front side of the upper placement platform (7). The controller (5) is electrically connected to the air pump (8). The air pump (8) is connected to the hose (9) and the nozzle (10) on the left and right sides respectively.

2. The pump room safety monitoring device according to claim 1, characterized in that, It also includes a second mounting plate (12), a support rod (13), a rotating plate (14), a torsion spring (15), and an infrared module (17). The second mounting plate (12) is fixedly connected to the rear side of the left end of the water pipe (1). The support rod (13) is fixedly connected to the right side of the second mounting plate (12). The rotating plate (14) is rotatably connected to the outside of the support rod (13), and torsion springs (15) are sleeved on both the upper and lower ends. The two ends of the torsion spring (15) are connected to the rotating plate (14) and the support rod (13) respectively. The infrared module (17) is installed on the left side of the rotating plate (14) and the front side of the second mounting plate (12). The controller (5) is electrically connected to the infrared module (17).

3. The pump room safety monitoring device according to claim 2, characterized in that, It also includes a first alarm (6), which is mounted on the front side of the middle of the first mounting plate (2), and the controller (5) is electrically connected to the first alarm (6).

4. The pump room safety monitoring device according to claim 3, characterized in that, It also includes a temperature sensor (16), which is installed in the middle of the right side of the turntable (14), and the controller (5) is electrically connected to the temperature sensor (16).

5. A pump room safety monitoring device according to claim 4, characterized in that, It also includes a second alarm (11), which is installed on the front side of the middle of the first mounting plate (2). The second alarm (11) is located below the first alarm (6), and the controller (5) is electrically connected to the second alarm (11).

6. A pump room safety monitoring device according to claim 5, characterized in that, Both ends of the water pipe (1) are fitted with anti-seepage sleeves.

Citation Information

Patent Citations

  • Adjustable pump house monitoring equipment

    CN213145932U