Fireproof monitoring tower for field area

By designing a site fire monitoring tower and utilizing a combination of detection rails and rotating seats, efficient fire detection and extinguishing of the building's exterior has been achieved. This solves the problem of difficult inspections at high altitudes, improves the detection coverage and efficiency, and provides emergency response capabilities.

CN223930584UActive Publication Date: 2026-02-24CHENGDE SHENYUAN SOLAR POWER GENERATION CO LTD
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Patent Information

Application Number
CN202520197510.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-08
Publication Date
2026-02-24
Estimated Expiration
2035-02-08

AI Technical Summary

Technical Problem

In existing technologies, it is difficult to inspect high places inside the site, especially the tops and exterior walls of buildings, which are difficult to inspect effectively. Moreover, relying on manual inspection is inefficient, and the detection coverage of electronic equipment is limited.

Method used

Design a site fire monitoring tower equipped with a detection slide rail, a temperature sensor, and a drive assembly. The drive assembly moves the temperature sensor along the detection slide rail, and together with a rotating base and a spray gun, it realizes fire detection and extinguishing on the outer layer of the building. It is equipped with a multi-angle temperature detection component and spray gun angle adjustment, has an alarm function, and provides an emergency kit to handle small fires.

Benefits of technology

It enables efficient fire detection and extinguishing of the building's exterior, reduces false triggering, provides multi-angle coverage and instant alarms, and allows operators to handle small fires, thus improving detection efficiency and coverage.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223930584U_ABST
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Abstract

The utility model relates to a field fireproof monitoring tower, and relates to the field of safety detection, the field fireproof monitoring tower comprises a tower body, a detection table is arranged above the tower body, a temperature detection assembly is arranged in the circumferential direction of the detection table, the temperature detection assembly comprises a detection sliding rail, a temperature measurement sensor and a driving assembly, the detection sliding rail is arranged in the circumferential direction of the detection table, and the detection sliding rail is provided with a sliding block; the temperature measuring sensor is fixedly connected to the sliding block, the driving assembly is used for driving the sliding block to move along the detection sliding rail, a spray gun is arranged on the upper side of the detection table, a rotating seat is arranged on the lower side of the spray gun, a gear ring is arranged in the circumferential direction of the rotating seat, the rotating seat is rotationally connected to the detection table, the detection table is provided with a first motor, and the first motor is provided with a first gear matched with the gear ring. The device has the effects of fire detection and fire extinguishment on the outer layer of the building.
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Description

Technical Field

[0001] This application relates to the field of safety testing, and in particular to a site fire monitoring tower. Background Technology

[0002] Currently, most sites and industrial parks require regular inspections of buildings, stored materials, and other locations within the site to prevent internal fires caused by spontaneous combustion, external ignition sources, or other factors.

[0003] To ensure timely inspections within the site, dedicated inspection personnel are currently assigned to conduct patrols and provide early warnings for various locations within the site. In addition to these personnel, temperature sensors, sprinkler systems, and other fire emergency devices are also installed inside various buildings within the park to enable timely detection and fire suppression in the event of a fire.

[0004] Regarding the aforementioned technologies, conducting inspections by personnel would consume a large amount of manpower, and inspections of high places, such as rooftops and exterior walls of buildings, would be difficult to access. The solution of installing temperature sensors and other electronic devices inside buildings already has the drawback of being unable to inspect the exterior walls and roof surfaces of buildings. Summary of the Invention

[0005] In order to monitor and detect fires on the rooftops and exterior walls of buildings within a large area of ​​the site, this application provides a site fire monitoring tower.

[0006] This application provides a site fire monitoring tower, which adopts the following technical solution:

[0007] A site fire monitoring tower includes a tower body, a detection platform at the top of the tower body, and a temperature detection component circumferentially arranged on the detection platform. The temperature detection component includes a detection slide rail, a temperature sensor, and a drive component. The detection slide rail is arranged circumferentially around the detection platform and has a slider. The temperature sensor is fixedly connected to the slider. The drive component is used to drive the slider to move along the detection slide rail. A spray gun is arranged on the upper side of the detection platform, and a rotating seat is arranged on the lower side of the spray gun. The rotating seat has a toothed ring circumferentially arranged and is rotatably connected to the detection platform. The detection platform has a first motor, and the first motor has a first gear adapted to the toothed ring.

[0008] By adopting the above technical solution, the temperature sensor is driven by the drive component to move along the detection slide rail, thereby realizing the detection of buildings around the tower. When a high temperature is detected for a long time, the first motor drives the rotating seat to rotate and point the spray gun at the fire to extinguish the fire, effectively realizing the detection and extinguishing of fire on the outer layer of the building.

[0009] Optionally, the drive assembly includes a second motor, a gear ring on the side of the detection slide rail away from the detection table, a clearance groove on the side of the slider close to the detection slide rail, a second motor on the slider, a second gear on the second motor, the second gear extending into the clearance groove, and the second gear meshing with the gear ring.

[0010] By adopting the above technical solution, the second motor drives the second gear to rotate, and the second motor meshes with the gear ring to drive the slider to move around the detection slide rail, thereby realizing the cyclic detection of the buildings around the tower.

[0011] Optionally, several temperature detection components are arranged sequentially from top to bottom, and the detection slide rails are all arranged in parallel. Under natural conditions, the temperature sensors on different detection slide rails point in different directions, and the pitch angles of the temperature sensors on different detection slide rails are all different.

[0012] By adopting the above technical solution, the temperature detection components on different tracks under natural conditions can detect buildings in different directions. When a temperature detection component in a certain direction detects a temperature rise, the temperature sensors on the other detection tracks all move to the same position as the temperature detection component. Since the pitch angles of the temperature detection components are different, the same building can be detected from different angles in the same vertical direction, thereby reducing the number of false triggers.

[0013] Optionally, a main support rod and an arc-shaped rod are provided above the rotating base. The upper end of the main support rod is hinged to the middle of the spray gun. The arc-shaped rod includes a sliding rod and a sleeve. The sliding rod is slidably connected inside the sleeve. The lower end of the sleeve is fixedly connected to the rotating base. The upper end of the sliding rod is hinged to the end of the spray gun near the nozzle. A third motor is fixedly connected to the upper side of the outer side of the sleeve. The third motor is equipped with a third gear. A rack is provided along the length of the sliding rod. The third gear and the rack are meshed.

[0014] By adopting the above technical solution, when it is necessary to adjust the angle of the spray gun, the third gear is driven by the third motor to rotate, and then the sliding rod is rotated out of the sleeve rod through the meshing of the third gear and the rack, so as to adjust the angle of the spray gun and effectively control the angle of the water flow sprayed from the spray gun.

[0015] Optionally, an alarm light is provided on the upper side of the nozzle of the spray gun. The alarm light is arrow-shaped, and the arrow points to the position of the nozzle of the spray gun.

[0016] By adopting the above technical solutions, the alarm lights can effectively detect and alert personnel inside the site to fire situations in a timely manner.

[0017] Optionally, a manhole is provided at the bottom of the platform, and a ladder for operators to climb is provided on the underside of the testing platform.

[0018] By adopting the above technical solution, when a fire is detected, operators can climb a ladder to enter the detection platform and observe the fire location through the platform.

[0019] Optionally, the tower body includes a bottom support for supporting the monitoring tower. The bottom support is equipped with several emergency packs, each consisting of an outer hard shell and an inner soft shell. The bottom support is equipped with a storage box for holding the emergency packs. The inner soft shell is filled with fire extinguishing material and is made of non-fire-resistant material. The outer hard shell is sealed with quick-release buckles.

[0020] By adopting the above technical solution, when a small-scale fire occurs, the operator can take out the emergency kit, throw the inner soft pouch inside the emergency kit at the fire source, and let the fire source destroy the inner soft pouch, thus spreading the fire extinguishing material into the fire source, effectively enabling the operator to handle small fires.

[0021] In summary, this application includes at least one of the following beneficial technical effects:

[0022] The temperature sensor is driven by the drive component to move along the detection slide rail, thereby enabling the detection of buildings around the tower. When a high temperature is detected for an extended period of time, the first motor drives the rotating seat to rotate, pointing the spray gun at the fire to extinguish it, effectively realizing fire detection and extinguishing on the outer layer of the building.

[0023] The second motor drives the second gear to rotate, and the second motor meshes with the gear ring to drive the slider to move around the detection rail, thereby realizing the cyclic detection of the buildings around the tower. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of a site fire monitoring tower.

[0025] Figure 2 yes Figure 1 An enlarged schematic diagram of part A in the middle.

[0026] Figure 3 This is a cross-sectional schematic diagram of the testing station.

[0027] Figure 4 This is a schematic diagram showing all temperature sensors detecting the same building.

[0028] Figure 5 yes Figure 4 Enlarged schematic diagram of part B.

[0029] Figure 6 This is an explosion diagram of the storage box and emergency kit.

[0030] Explanation of reference numerals in the attached drawings: 1. Tower body; 12. Ladder; 2. Detection platform; 21. Sliding block; 22. Second motor; 23. Second gear; 24. Detection slide rail; 241. Gear ring; 25. Temperature sensor; 31. First motor; 311. First gear; 41. Main support rod; 42. Arc rod; 421. Sleeve; 422. Slide rod; 44. Third motor; 45. Alarm light; 5. Storage box; 6. Emergency kit; 61. Outer hard shell; 62. Inner soft shell. Detailed Implementation

[0031] The present application will be further described in detail below with reference to all the accompanying drawings.

[0032] This application discloses a site fire monitoring tower.

[0033] Reference Figures 1 to 6 A site fire monitoring tower includes a tower body 1, a detection platform 2 on top of the tower body 1, and a temperature detection component circumferentially arranged on the detection platform 2. The temperature detection component includes a detection slide rail 24, a temperature sensor 25, and a drive component. The detection slide rail 24 is arranged circumferentially around the detection platform 2 and has a slider 21. The temperature sensor 25 is fixedly connected to the slider 21. The drive component drives the slider 21 to move along the detection slide rail 24. A spray gun is located on the upper side of the detection platform 2, and a rotating seat is located on the lower side of the spray gun. The rotating seat has a toothed ring circumferentially arranged and is rotatably connected to the detection platform 2. The detection platform 2 has a first motor 31, which has a first gear 311 adapted to the toothed ring. The drive component drives the temperature sensor 25 to move along the detection slide rail 24, thereby realizing the detection of buildings around the tower body 1. When a sustained high temperature is detected, the first motor 31 drives the rotating seat to rotate, pointing the spray gun at the fire to extinguish the fire, effectively realizing the detection and extinguishing of fires on the outer layer of buildings.

[0034] The temperature detection components involved in this article are infrared temperature sensors or infrared thermal imaging, which can detect temperature changes from a distance. This is a commonly used device and method in this technical field, so it will not be described in detail.

[0035] The drive assembly includes a second motor 22. A gear ring 241 is located on the side of the detection slide rail 24 away from the detection platform 2. A clearance groove is located on the side of the slider 21 near the detection slide rail 24. The slider 21 is equipped with the second motor 22, and the second motor 22 has a second gear 23 that extends into the clearance groove and meshes with the gear ring 241. The second motor 22 drives the second gear 23 to rotate, thereby enabling the slider 21 to move around the detection slide rail 24 through the meshing of the second motor 22 and the gear ring 241, thus achieving cyclic detection of the buildings surrounding the tower 1.

[0036] To enable multiple detections of a building at the same location and reduce false triggers due to localized temperature increases, several temperature detection components are arranged sequentially from top to bottom. The detection rails 24 are all parallel. In their natural state, the temperature sensors 25 on different detection rails 24 point in different directions, and their pitch angles are all different. In their natural state, the temperature detection components on different rails detect buildings in different directions. When a temperature detection component in a certain direction detects a temperature increase, the temperature sensors 25 on the other detection rails 24 all move to the same position as that temperature detection component. Because the pitch angles of the temperature detection components are all different, the same building can be detected from different angles in the same vertical direction, thereby reducing the number of false triggers.

[0037] A main support rod 41 and an arc-shaped rod 42 are provided above the rotating base. The upper end of the main support rod 41 is hinged to the middle of the spray gun. The arc-shaped rod 42 includes a sliding rod 422 and a sleeve 421. The sliding rod 422 is slidably connected inside the sleeve 421. The lower end of the sleeve 421 is fixedly connected to the rotating base. The upper end of the sliding rod 422 is hinged to the end of the spray gun near the nozzle. A third motor 44 is fixedly connected to the upper side of the outer side of the sleeve 421. The third motor 44 is equipped with a third gear. A rack is provided along the length of the sliding rod 422. The third gear and the rack are meshed. When it is necessary to adjust the angle of the spray gun, the third gear is driven by the third motor 44 and rotates. Then, through the meshing of the third gear and the rack, the sliding rod 422 rotates out of the sleeve, thus adjusting the angle of the spray gun and effectively controlling the angle of the water flow sprayed from the spray gun.

[0038] To ensure timely fire detection, an alarm light 45 is installed above the nozzle of the spray gun within the site. The alarm light 45 is arrow-shaped, pointing towards the nozzle. The alarm light 45 effectively alerts personnel within the site to the fire situation. A manhole is located at the bottom of the platform, and a ladder 12 is provided underneath for operators to climb. When a fire is detected, operators can use the ladder 12 to enter the detection platform and observe the fire location.

[0039] The tower body 1 includes a base support for the monitoring tower. The base support is equipped with several emergency packs 6, each consisting of an outer hard shell 61 and an inner soft shell 62. The base support has a storage box 5 for holding the emergency packs 6. The inner soft shell 62 is filled with fire extinguishing material and is made of a non-fire-resistant material. The outer hard shell 61 is sealed with quick-release clips. In the event of a small-scale fire, operators can remove the emergency pack 6 and throw the inner soft shell 62 towards the fire source. The fire will break the inner soft shell 62, dispersing the fire extinguishing material into the fire, effectively enabling operators to handle small fires.

[0040] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A site fire monitoring tower, comprising a tower body (1), characterized in that: A detection platform (2) is provided above the tower body (1). A temperature detection component is provided around the detection platform (2). The temperature detection component includes a detection slide rail (24), a temperature sensor (25), and a drive component. The detection slide rail (24) is arranged around the detection platform (2). A slider (21) is provided on the detection slide rail (24). The temperature sensor (25) is fixedly connected to the slider (21). The drive component is used to drive the slider (21) to move along the detection slide rail (24). A spray gun is provided on the upper side of the detection platform (2). A rotating seat is provided on the lower side of the spray gun. A toothed ring is provided around the rotating seat. The rotating seat is rotatably connected to the detection platform (2). A first motor (31) is provided on the detection platform (2). The first motor (31) is provided with a first gear (311) that is adapted to the toothed ring.

2. The site fire monitoring tower according to claim 1, characterized in that: The drive assembly includes a second motor (22), a gear ring (241) on the side of the detection slide rail (24) away from the detection table (2), a clearance groove on the side of the slider (21) close to the detection slide rail (24), the slider (21) is equipped with a second motor (22), the second motor (22) is equipped with a second gear (23), the second gear (23) extends into the clearance groove, and the second gear (23) meshes with the gear ring (241).

3. A site fire monitoring tower according to claim 2, characterized in that: The temperature detection components are arranged in a series from top to bottom. The detection slides (24) are all arranged in parallel. In the natural state, the temperature sensors (25) on different detection slides (24) point in different directions, and the pitch angles of the temperature sensors (25) on different detection slides (24) are all different.

4. A site fire monitoring tower according to claim 3, characterized in that: The rotating seat is provided with a main support rod (41) and an arc rod (42) above it. The upper end of the main support rod (41) is hinged to the middle of the spray gun. The arc rod (42) includes a slide rod (422) and a sleeve (421). The slide rod (422) is slidably connected to the inside of the sleeve (421). The lower end of the sleeve (421) is fixedly connected to the rotating seat. The upper end of the slide rod (422) is hinged to the end of the spray gun near the nozzle. A third motor (44) is fixedly connected to the upper side of the outer side of the sleeve (421). The third motor (44) is provided with a third gear. A rack is provided in the length direction of the slide rod (422). The third gear and the rack are meshed.

5. A site fire monitoring tower according to claim 1, characterized in that: An alarm light (45) is provided on the upper side of the nozzle of the spray gun. The alarm light (45) is arrow-shaped and the arrow points to the nozzle position of the spray gun.

6. A site fire monitoring tower according to claim 1, characterized in that: The tower body (1) includes a bottom support for supporting the monitoring tower. The bottom support is equipped with several emergency packs (6). Each emergency pack (6) includes an outer hard shell (61) and an inner soft pack (62). The bottom support is equipped with a storage box (5) for holding the emergency packs (6). The inner soft pack (62) is filled with fire extinguishing material and is made of non-fire-resistant material. The outer hard shell (61) is closed by quick-release buckles.