Artificial intelligence monitoring device for offshore oil platform

By designing protective frames and dehumidification mechanisms in the monitoring device of the marine oil platform, combined with the use of fans, electric heating boxes and air outlet hoods, the monitoring device is susceptible to moisture and mechanical impact damage, and the equipment is realized for a long-term durable and efficient monitoring.

CN222928450UActive Publication Date: 2025-05-30SHENZHEN HIGHLEAD OILFIELD TECH DEVCO LTD
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Patent Information

Application Number
CN202421486006.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-27
Publication Date
2025-05-30
Estimated Expiration
2034-06-27

AI Technical Summary

Technical Problem

The existing offshore oil platform monitoring devices are susceptible to moisture damage and mechanical impact damage.

Method used

An artificial intelligence monitoring device for marine oil platform was designed, using a rotating chassis and electric telescopic rod to support the dehumidification mechanism and protective frame. A surveillance camera is installed inside the protective frame, and is equipped with a fan, an electric heating box and an air outlet hood to quickly dry water droplets on the surface of the transparent plate.

Benefits of technology

Through the physical protection of the protective frame and the drying effect of the dehumidification mechanism, the risk of external mechanical damage and moisture damage is reduced, the equipment's service life is extended and its performance is maintained, and the water droplets on the surface of the transparent board are quickly dried, avoiding the water droplets affecting the monitoring effect.

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Abstract

The utility model discloses an artificial intelligence monitoring device for an offshore oil platform, belongs to the technical field of monitoring devices, and aims to solve the problems that the monitoring device is directly exposed in an external environment and is easy to be damaged by damp and mechanical shock, the artificial intelligence monitoring device comprises a rotating chassis, and the top of the rotating chassis is fixedly connected with two electric telescopic rods; according to the utility model, the dehumidification mechanism is matched with the protection frame, the monitoring camera body is installed in the protection frame, and the protection frame can provide additional physical protection, so that the monitoring camera body can be protected from being damaged, and the monitoring camera body can be protected from being damaged. The monitoring camera body is arranged in the protective frame, so that the possibility that the monitoring camera body is damaged by external machinery can be reduced, the service life of the monitoring camera body is prolonged, the performance of the monitoring camera body is kept, meanwhile, the dehumidification mechanism can effectively absorb moisture in the protective frame, a dry working environment is provided for the monitoring camera body, and the working efficiency is improved. Damage of internal electronic components caused by damp is avoided.
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Description

Technical Field

[0001] The utility model belongs to the technical field of monitoring devices, and particularly relates to an artificial intelligence monitoring device for an offshore oil platform. Background Art

[0002] A monitoring device generally refers to a device used to monitor and record the state of a specific area, environment or system. These devices can collect various types of data, such as video, audio, temperature, humidity, pressure, movement, etc. An offshore oil production platform refers to a facility built on the ocean for extracting undersea oil and gas resources. These platforms are usually built on the ocean surface, which can be in shallow water areas or deep water areas. They are key infrastructure in the oil and gas industry and are designed and built to extract oil and gas resources from the seabed.

[0003] When an offshore oil platform is in use, a monitoring device is required. The offshore oil production platform is a high-risk working environment, and any accident may cause serious casualties and environmental pollution. The monitoring device can achieve remote monitoring and management, and can obtain the platform operation status and environmental information in real time through sensors, cameras, communication devices, etc., so that the operation personnel can make timely responses and decisions to ensure the safe and efficient operation of the platform; however, most of the existing monitoring devices are directly exposed to the external environment. Due to the high humidity of the marine environment, the monitoring device is prone to moisture, resulting in damage to its internal electronic components. At the same time, offshore oil platforms are often affected by waves, storms and other extreme weather conditions, which may cause mechanical impact and damage to the camera.

[0004] Therefore, an artificial intelligence monitoring device for an offshore oil platform is needed to solve the problems that the existing monitoring device is directly exposed to the external environment and is prone to moisture damage and mechanical impact damage. Summary of the Utility Model

[0005] The purpose of the utility model is to provide an artificial intelligence monitoring device for an offshore oil platform to solve the problems raised in the above background art.

[0006] To achieve the above object, the utility model provides the following technical solution: An artificial intelligence monitoring device for an offshore oil platform, comprising a rotating chassis, two electric telescopic rods are fixedly connected to the top of the rotating chassis, a dehumidification mechanism is arranged at the top of the two electric telescopic rods, a protective frame is installed at the top of the dehumidification mechanism, the front and rear ends of the protective frame are rotatably connected with first fixing bolts near the bottom, a monitoring camera body is installed inside the protective frame, mounting blocks are fixedly connected to both sides of the monitoring camera body, second fixing bolts corresponding to the mounting blocks are rotatably connected to both sides of the protective frame, a transparent plate is arranged at the front end of the protective frame, a top cover is fixedly connected to the top of the protective frame, a blower and an electric heating box are installed at the rear end of the protective frame, a first connecting pipe is fixedly connected between the blower and the electric heating box, a second connecting pipe is fixedly connected to the top of the electric heating box, and two air outlet covers are installed at the position near the front end of the bottom of the top cover.

[0007] It should be noted in the solution that the dehumidification mechanism includes a bottom plate fixedly connected to the top of the two electric telescopic rods, a limit chute is fixedly connected to the top of the bottom plate, an activated carbon adsorption plate is slidably connected to the inner wall of the limit chute, and a handle is fixedly connected to the rear end of the activated carbon adsorption plate.

[0008] It is further worth noting that threaded mounting holes corresponding to the first fixing bolts are opened at both the front and rear ends of the bottom plate.

[0009] It is even further necessary to note that a through groove is opened at the bottom of the protective frame, and the inner wall of the through groove is closely attached to the outer wall of the bottom plate.

[0010] As a preferred implementation manner, an aluminum alloy anti-corrosion coating is coated on the outer wall of the protective frame.

[0011] As a preferred implementation manner, threaded mounting holes corresponding to the second fixing bolts are opened on the outer sides of both mounting blocks.

[0012] As a preferred implementation manner, the top cover, the second connecting pipe and the air outlet cover are internally connected in a through manner.

[0013] Compared with the prior art, the artificial intelligence monitoring device for an offshore oil platform provided by the utility model has at least the following beneficial effects:

[0014] (1) By setting the dehumidification mechanism in cooperation with the protective frame, the monitoring camera body is installed inside the protective frame. The protective frame can provide additional physical protection. Placing the monitoring camera body inside the frame can reduce the possibility of it being damaged by external machinery, extend the service life of the monitoring camera body and maintain its performance. At the same time, the dehumidification mechanism can effectively absorb the moisture inside the protective frame, provide a dry working environment for the monitoring camera body, and prevent its internal electronic components from being damaged due to moisture.

[0015] (2) By setting up the cooperation of the fan, the electric heating box and the air outlet hood, when there are water droplets scattered on the surface of the transparent plate, the fan is turned on. The air blown by the fan is heated through the electric heating box, and then blown out from the air outlet hood through the top cover, acting on the surface of the transparent plate, so that the moisture on the surface of the transparent plate is quickly dried, avoiding the influence of the water droplets on the surface of the transparent plate on the monitoring effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic structural diagram of the first perspective of the present utility model;

[0017] Figure 2 It is a schematic structural diagram of the second perspective of the present utility model;

[0018] Figure 3 It is a structural breakdown diagram inside the protective frame of the present utility model;

[0019] Figure 4 It is a schematic structural diagram of the dehumidification mechanism of the present utility model.

[0020] In the figure: 1, rotating chassis; 2, electric telescopic rod; 3, dehumidification mechanism; 301, bottom plate; 302, limit sliding groove; 303, activated carbon adsorption plate; 304, handle; 4, protective frame; 5, first fixing bolt; 6, monitoring camera body; 7, mounting block; 8, second fixing bolt; 9, transparent plate; 10, top cover; 11, fan; 12, electric heating box; 13, first connecting pipe; 14, second connecting pipe; 15, air outlet hood. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0021] The following further describes the present utility model in conjunction with embodiments.

[0022] Please refer to Figures 1-4 , the present utility model provides an artificial intelligence monitoring device for an offshore oil platform, including a rotating chassis 1. Two electric telescopic rods 2 are fixedly connected to the top of the rotating chassis 1. A dehumidification mechanism 3 is arranged at the top of the two electric telescopic rods 2. A protective frame 4 is installed on the top of the dehumidification mechanism 3. The front and rear ends of the protective frame 4 are rotatably connected with first fixing bolts 5 near the bottom. A monitoring camera body 6 is installed inside the protective frame 4. Mounting blocks 7 are fixedly connected to both sides of the monitoring camera body 6. Second fixing bolts 8 corresponding to the mounting blocks 7 are rotatably connected to both sides of the protective frame 4. A transparent plate 9 is arranged at the front end of the protective frame 4. A top cover 10 is fixedly connected to the top of the protective frame 4. A fan 11 and an electric heating box 12 are installed at the rear end of the protective frame 4. A first connecting pipe 13 is fixedly connected between the fan 11 and the electric heating box 12. A second connecting pipe 14 is fixedly connected to the top of the electric heating box 12. Two air outlet hoods 15 are installed at the bottom of the top cover 10 near the front end.

[0023] Furthermore, as Figure 4As shown, it is worth specifically noting that the dehumidification mechanism 3 includes a bottom plate 301 fixedly connected to the tops of two electric telescopic rods 2. A limit sliding groove 302 is fixedly connected to the top of the bottom plate 301. An activated carbon adsorption plate 303 is slidably connected to the inner wall of the limit sliding groove 302. A handle 304 is fixedly connected to the rear end of the activated carbon adsorption plate 303. By providing the dehumidification mechanism 3, the moisture inside the protective frame 4 can be effectively absorbed, providing a dry working environment for the monitoring camera body 6 and preventing its internal electronic components from being damaged due to moisture absorption.

[0024] Further as Figure 3 and Figure 4 shown, it is worth specifically noting that threaded mounting holes corresponding to the first fixing bolts 5 are provided at both the front and rear ends of the bottom plate 301. By cooperating the threaded mounting holes with the first fixing bolts 5, the bottom plate 301 and the protective frame are detachably connected, facilitating the installation and replacement of the activated carbon adsorption plate 303.

[0025] Further as Figure 3 and Figure 4 shown, it is worth specifically noting that a through groove is provided at the bottom of the protective frame 4, and the inner wall of the through groove is in close fit with the outer wall of the bottom plate 301, ensuring the sealing effect between the protective frame 4 and the bottom plate 301 and preventing water vapor from entering the interior of the protective frame 4 from the connection between the protective frame 4 and the bottom plate 301.

[0026] According to the above working process, it can be seen that by cooperating the dehumidification mechanism 3 with the protective frame 4, the monitoring camera body 6 is installed inside the protective frame 4. The protective frame 4 can provide additional physical protection. Placing the monitoring camera body 6 inside the frame can reduce the possibility of it being damaged by external machinery, extend the service life of the monitoring camera body 6 and maintain its performance. At the same time, the dehumidification mechanism 3 can effectively absorb the moisture inside the protective frame 4, providing a dry working environment for the monitoring camera body 6 and preventing its internal electronic components from being damaged due to moisture absorption.

[0027] Further as Figure 1 、 Figure 2 and Figure 3 shown, it is worth specifically noting that an aluminum alloy anti-corrosion coating is applied to the outer wall of the protective frame 4. Aluminum alloy has a certain corrosion resistance, especially good resistance to salt water corrosion. In a marine environment, the protective frame 4 is exposed to seawater, salt spray and humid air. Therefore, it is necessary to have good corrosion resistance to protect the internal equipment from erosion. At the same time, aluminum alloy is a recyclable material. Its manufacturing process consumes relatively less energy, and it can be recycled after the end of its service life, meeting the concept of sustainable development and also meeting the requirements of marine environmental protection.

[0028] Further as Figure 1 、 Figure 2 andFigure 3 As shown, it is worth mentioning that threaded mounting holes corresponding to the second fixing bolts 8 are provided on the outer sides of the two mounting blocks 7. The threaded mounting holes and the second fixing bolts 8 cooperate with each other to facilitate the installation and disassembly of the monitoring camera body 6 inside the protective frame 4.

[0029] Further as Figure 1 , Figure 2 and Figure 3 As shown, it is worth explaining in detail that the top cover 10, the second connecting pipe 14 and the air outlet hood 15 are internally connected. When water droplets are scattered on the surface of the transparent plate 9, the fan 11 is turned on, and the wind blown by the fan 11 passes through the electric heating box 12 to become hot, and then passes through the top cover 10 and is blown out from the air outlet hood 15 to act on the surface of the transparent plate 9, so that the moisture on the surface of the transparent plate 9 is quickly dried.

[0030] This solution has the following working process: in actual use, the monitoring camera body 6 is installed inside the protective frame 4 by cooperating with the mounting block 7 and the second fixing bolt 8, and then the through groove at the bottom of the protective frame 4 is aligned with the outer wall of the bottom plate 301, and the first fixing bolt 5 is rotated to complete the installation of the protective frame 4 and the bottom plate 301. The activated carbon adsorption plate 303 can absorb moisture inside the protective frame 4 and provide a dry working environment for the monitoring camera body 6. When water droplets are scattered on the surface of the transparent plate 9, the fan 11 is turned on, and the wind blown out by the fan 11 passes through the electric heating box 12 to become hot, and then passes through the top cover 10 and is blown out from the air outlet hood 15, acting on the surface of the transparent plate 9, so that the moisture on the surface of the transparent plate 9 is quickly dried.

[0031] In summary: by setting up the dehumidification mechanism 3 and the protective frame 4 in coordination, the monitoring camera body 6 is installed inside the protective frame 4, the protective frame 4 can provide additional physical protection, and placing the monitoring camera body 6 in the frame can reduce the possibility of it being damaged by external mechanical damage, extend the service life of the monitoring camera body 6 and maintain its performance, and at the same time the dehumidification mechanism 3 can effectively absorb the moisture inside the protective frame 4, provide a dry working environment for the monitoring camera body 6, and prevent it from getting damp and causing damage to the internal electronic components; by setting up the fan 11, the electric heating box 12 and the air outlet hood 15 in coordination, when there are water droplets scattered on the surface of the transparent plate 9, turn on the fan 11, the wind blown by the fan 11 passes through the electric heating box 12 to become hot, and then passes through the top cover 10 and is blown out from the air outlet hood 15, acting on the surface of the transparent plate 9, so that the moisture on the surface of the transparent plate 9 is quickly dried, and the water droplets on the surface of the transparent plate 9 are prevented from affecting the monitoring effect.

Claims

1. An artificial intelligence monitoring device for an offshore oil platform, comprising a rotating chassis (1), characterized in that: Two electric telescopic rods (2) are fixedly connected to the top of the rotating chassis (1), and dehumidification mechanisms (3) are arranged on the top of the two electric telescopic rods (2). A protective frame (4) is installed on the top of the dehumidification mechanism (3). The front and rear ends of the protective frame (4) are rotatably connected to first fixing bolts (5) near the bottom. A monitoring camera body (6) is installed inside the protective frame (4), and both sides of the monitoring camera body (6) are fixedly connected to mounting blocks (7). Both sides of the protective frame (4) are rotatably connected to mounting blocks (8). The protective frame (4) is provided with a transparent plate (9) at the front end, the top of the protective frame (4) is fixedly connected with a top cover (10), the rear end of the protective frame (4) is provided with a fan (11) and an electric heating box (12), a first connecting pipe (13) is fixedly connected between the fan (11) and the electric heating box (12), the top of the electric heating box (12) is fixedly connected with a second connecting pipe (14), and two air outlet covers (15) are installed at the bottom of the top cover (10) near the front end.

2. The artificial intelligence monitoring device for an offshore oil platform according to claim 1, characterized in that: The dehumidification mechanism (3) comprises a bottom plate (301) fixedly connected to the tops of the two electric telescopic rods (2); the top of the bottom plate (301) is fixedly connected to a limiting slide groove (302); the inner wall of the limiting slide groove (302) is slidably connected to an activated carbon adsorption plate (303); and the rear end of the activated carbon adsorption plate (303) is fixedly connected to a handle (304).

3. The artificial intelligence monitoring device for an offshore oil platform according to claim 2, characterized in that: The front and rear ends of the bottom plate (301) are both provided with threaded mounting holes corresponding to the first fixing bolts (5).

4. The artificial intelligence monitoring device for an offshore oil platform according to claim 2, characterized in that: A through slot is provided at the bottom of the protection frame (4), and the inner wall of the through slot is tightly fitted with the outer wall of the bottom plate (301).

5. The artificial intelligence monitoring device for an offshore oil platform according to claim 1, characterized in that: The outer wall of the protection frame (4) is coated with an aluminum alloy anti-corrosion coating.

6. The artificial intelligence monitoring device for an offshore oil platform according to claim 1, characterized in that: The outer sides of the two mounting blocks (7) are each provided with a threaded mounting hole corresponding to the second fixing bolt (8).

7. The artificial intelligence monitoring device for an offshore oil platform according to claim 1, characterized in that: The top cover (10), the second connecting pipe (14) and the air outlet cover (15) are internally connected and connected.