Adjustable AI offshore intelligent inspection platform
By introducing a wireless intelligent controller and an adjustable optical camera into the AI-powered marine intelligent inspection platform, combined with solar and wind power generation, the problems of poor platform flexibility and insufficient energy have been solved, enabling efficient marine inspection operations.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGXI GUANGTOU BEIBU GULF OFFSHORE WIND POWER CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-04-28
AI Technical Summary
Existing AI-powered maritime intelligent inspection platforms are unable to flexibly adjust inspection height according to actual needs, have limited inspection field of view, and suffer from insufficient energy supply, resulting in a limited number of monitoring devices and making it difficult to carry out comprehensive inspection operations.
Design an adjustable AI-powered intelligent marine inspection platform. The platform's main operating status is controlled by a wireless intelligent controller, the height of the support frame is adjusted using an electric telescopic rod, an optical camera is rotatably connected, and it is powered by a combination of solar panels and a wind power generation mechanism, enabling flexible adjustment of the monitoring field of view and efficient use of energy.
It enables flexible adjustment of the monitoring field of view according to actual needs, saves energy consumption, ensures the simultaneous operation of multiple monitoring devices, and guarantees the comprehensive and effective implementation of inspection operations.
Smart Images

Figure CN224171136U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of marine intelligent inspection technology, and in particular to an adjustable AI marine intelligent inspection platform. Background Technology
[0002] Maritime safety inspection is a key link in ensuring the stable operation of maritime facilities. However, traditional inspection methods face problems such as high risk, high cost, and low efficiency. The AI-powered intelligent maritime inspection platform significantly improves the safety, accuracy, and automation of maritime inspection through intelligent technology.
[0003] Most of the equipment on current AI-powered marine intelligent inspection platforms is directly fixed to the platform, making it difficult to adjust the inspection height according to actual needs. The inspection field of view is relatively limited, and the flexibility of use is poor. In addition, the platform can only provide a limited amount of energy to the monitoring equipment, which limits the number of monitoring devices and makes it difficult to carry out comprehensive inspection operations, thus affecting the effective implementation of inspection operations.
[0004] Therefore, given the limitations of existing inspection platforms in flexibly adjusting the monitoring field of view and the relatively limited monitoring data, an adjustable AI-powered intelligent marine inspection platform can be designed. This platform can flexibly adjust the monitoring field of view according to actual environmental needs through free lifting and lowering and green energy supply, saving energy consumption and ensuring that multiple monitoring devices can operate together. This guarantees the comprehensive and effective implementation of inspection operations, thereby significantly enhancing the practical value of the intelligent marine inspection platform. Utility Model Content
[0005] To overcome the problems that most AI-powered marine intelligent inspection platforms often have difficulty flexibly adjusting the inspection height according to actual needs, have a limited inspection field of view, and can only provide limited energy to the monitoring equipment, resulting in a limited number of monitoring devices and difficulty in carrying out comprehensive inspection operations, this utility model is proposed.
[0006] The technical solution of this utility model is as follows: an adjustable AI marine intelligent inspection platform, including a platform body, a wireless intelligent controller, an optical camera, a solar panel, a wind power generation mechanism, an electric telescopic rod, a support frame, and a fixed seat. The wireless intelligent controller is installed at the top of the platform body, two sets of solar panels are symmetrically arranged at the top of the platform body, multiple sets of wind power generation mechanisms are arranged at the four corners of the top of the platform body, an electric telescopic rod is installed at the top of the platform body, a support frame is installed at the outer telescopic end of the electric telescopic rod, a fixed seat is installed at the top of the support frame, the fixed seat is rotatably connected to the support frame, and an optical camera is installed at the top of the fixed seat.
[0007] Preferably, the platform body floats on the sea surface, and the operation status of the platform body is intelligently controlled by a wireless intelligent controller. The height of the support frame is adjusted by telescopic electric telescopic rods, and the support frame is rotatably connected to a fixed base. The fixed base is used to fix an optical camera, and the placement height and orientation of the optical camera can be flexibly adjusted according to actual needs. The optical camera uses visible light and infrared light to monitor relevant sea surface information such as passing ships. In addition, solar energy is converted into electrical energy and stored by solar panels, and wind energy is converted into electrical energy and stored by wind power generation. This allows for flexible adjustment of the monitoring field of view according to actual environmental needs, saves energy consumption of the platform, ensures that multiple monitoring devices can operate together, and guarantees the comprehensive and effective implementation of inspection operations.
[0008] Preferably, two sets of propulsion mechanisms are symmetrically arranged at the rear bottom of the platform body, and hydrological sensors are installed at the bottom of the platform body. The hydrological sensors include, but are not limited to, wave sensors, water temperature sensors or salinity sensors. The hydrological sensors are electrically connected to the propulsion mechanisms and the wireless intelligent controller.
[0009] As a preferred option, an energy storage mechanism is installed on the inner side of the platform body, and the energy storage mechanism is electrically connected to the solar panels and wind power generation mechanism.
[0010] Preferably, two sets of sliding telescopic rods are symmetrically arranged on both sides of the support frame. The sliding telescopic rods are inclined at a certain angle. A first connecting block is provided at the outer fixed end of the sliding telescopic rod. Two sets of first fixing plates are symmetrically arranged at the top of the platform body. A first connecting shaft is provided between the first fixing plates. The first connecting block is rotatably connected to the first connecting shaft.
[0011] Preferably, a second connecting block is provided at the outer telescopic end of the sliding telescopic rod, and two sets of second fixing plates are symmetrically arranged on the outer side of the support frame. A second connecting shaft is provided between the second fixing plates, and the second connecting block is rotatably connected to the second connecting shaft.
[0012] Preferably, a servo motor is installed on the inner side of the support frame, and the servo motor is electrically connected to the wireless intelligent controller. A rotating shaft is installed at the top of the support frame, and the rotating shaft is rotatably connected to the support frame. The rotating shaft is fixedly connected to the bottom of the fixed base, and the output end of the servo motor is connected to the rotating shaft.
[0013] Preferably, a GPS locator is installed at the top of the platform body, a wind direction sensor is installed at the front of the top of the platform body, and a temperature and humidity sensor is installed at the top of the platform body. The GPS locator, wind direction sensor, and temperature and humidity sensor are electrically connected to the wireless intelligent controller.
[0014] The beneficial effects of this utility model are:
[0015] During inspection operations, the platform floats on the sea surface, converting solar energy into electricity via solar panels and wind power into electricity. A wireless intelligent controller intelligently manages the platform's operation, adjusting the support frame height with a telescopic electric boom, flexibly adjusting the optical camera's placement height, and rotating the fixed base around the support frame to adjust the camera's orientation. This allows the optical camera to monitor passing ships and other relevant sea surface information using visible and infrared light. This addresses the common problems of most AI-powered maritime intelligent inspection platforms, such as difficulty in adjusting inspection height according to actual needs, limited field of view, poor flexibility, and limited energy supply, which restricts the number of monitoring devices and hinders comprehensive inspection operations. This system ensures effective inspection operations. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of an adjustable AI-powered intelligent marine inspection platform according to this utility model.
[0017] Figure 2 The diagram shown is a three-dimensional structural diagram of the bottom of the main body of an adjustable AI marine intelligent inspection platform according to this utility model.
[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the first part of the main body of an adjustable AI marine intelligent inspection platform according to this utility model.
[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the second part of the main body of an adjustable AI marine intelligent inspection platform according to this utility model.
[0020] Explanation of reference numerals in the attached drawings: 1. Platform body; 101. Propulsion mechanism; 102. Hydrological sensor; 2. Wireless intelligent controller; 3. Solar panel; 4. Wind power generation mechanism; 401. Energy storage mechanism; 5. Electric telescopic rod; 6. Support frame; 601. Sliding telescopic rod; 602. First connecting block; 603. First fixing plate; 604. First connecting shaft; 605. Second connecting block; 606. Second fixing plate; 607. Second connecting shaft; 7. Fixing seat; 701. Servo motor; 702. Rotating shaft; 8. Optical camera; 801. GPS locator; 802. Wind direction sensor; 803. Temperature and humidity sensor. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Please see Figure 1This utility model provides an embodiment: an adjustable AI marine intelligent inspection platform, including a platform body 1, a wireless intelligent controller 2, an optical camera 8, a solar panel 3, a wind power generation mechanism 4, an electric telescopic rod 5, a support frame 6, and a fixed seat 7. The wireless intelligent controller 2 is installed at the top of the platform body 1. Two sets of solar panels 3 are symmetrically arranged at the top of the platform body 1. Multiple sets of wind power generation mechanisms 4 are arranged at the four corners of the top of the platform body 1. The electric telescopic rod 5 is installed at the top of the platform body 1. The support frame 6 is installed at the outer telescopic end of the electric telescopic rod 5. The fixed seat 7 is installed at the top of the support frame 6. The fixed seat 7 is rotatably connected to the support frame 6. The optical camera 8 is installed at the top of the fixed seat 7.
[0023] Please see Figure 2 In this embodiment, two sets of propulsion mechanisms 101 are symmetrically arranged at the rear bottom of the platform body 1. A hydrological sensor 102 is arranged at the bottom of the platform body 1. The hydrological sensor 102 includes, but is not limited to, wave sensors, water temperature sensors, or salinity sensors. The hydrological sensor 102 is electrically connected to the propulsion mechanism 101 and the wireless intelligent controller 2. The wireless intelligent controller 2 controls the operation of the propulsion mechanism 101. The propulsion mechanism 101 drives the platform body 1 to move on the sea surface according to the designated inspection route. The hydrological sensor 102 monitors relevant data information such as seawater and water flow.
[0024] Please see Figure 3 and Figure 4In this embodiment, an energy storage mechanism 401 is provided on the inner side of the platform body 1. The energy storage mechanism 401 is electrically connected to the solar panel 3 and the wind power generation mechanism 4. The energy storage mechanism 401 stores the electrical energy converted by the solar panel 3 and the wind power generation mechanism 4 to power the various electric drive mechanisms of the platform body 1. Two sets of sliding telescopic rods 601 are symmetrically arranged on both sides of the support frame 6. The sliding telescopic rods 601 are inclined at a certain angle. A first connecting block 602 is provided on the outer fixed end of the sliding telescopic rod 601. Two sets of first fixing plates 603 are symmetrically arranged on the top of the platform body 1. A first connecting shaft 604 is provided between the first fixing plates 603. The first connecting block 602 is rotatably connected to the first connecting shaft 604. A second connecting block 605 is provided on the outer telescopic end of the support frame 6. Two sets of second fixing plates 606 are symmetrically arranged on the outer side of the support frame 6. A second connecting shaft 607 is provided between the second fixing plates 606. The second connecting block 605 is rotatably connected to the second connecting shaft 607. When the electric telescopic rod 5 extends and retracts, it drives the support frame 6 to rise and fall. When the support frame 6 rises and falls, it drives the sliding telescopic rod 601 to extend and retract synchronously. The first connecting shaft 604 is fixedly connected through the first fixing plate 603, so that one end of the sliding telescopic rod 601 rotates around the first connecting shaft 604. The second connecting shaft 607 is fixedly connected through the second fixing plate 606, so that the other end of the sliding telescopic rod 601 rotates around the second connecting shaft 607, ensuring the stable rise and fall of the electric telescopic rod 5 and ensuring the stable position of the support frame 6.
[0025] Please see Figure 3 and Figure 4 In this embodiment, a servo motor 701 is provided on the inner side of the support frame 6. The servo motor 701 is electrically connected to the wireless intelligent controller 2. A rotating shaft 702 is provided at the top of the support frame 6. The rotating shaft 702 is rotatably connected to the support frame 6 and is fixedly connected to the bottom of the fixed base 7. The output end of the servo motor 701 is connected to the rotating shaft 702. The wireless intelligent controller 2 sends running commands to the servo motor 701, and the servo motor 701 controls the rotation angle of the rotating shaft 702. Rotating the rotating shaft 702 drives the fixed base 7 to rotate synchronously, thereby flexibly adjusting the orientation of the optical camera 8 according to the actual inspection requirements; the platform body 1 A GPS locator 801 is installed at the top, a wind direction sensor 802 is installed at the front of the top of the platform body 1, and a temperature and humidity sensor 803 is installed at the top of the platform body 1. The GPS locator 801, the wind direction sensor 802, and the temperature and humidity sensor 803 are electrically connected to the wireless intelligent controller 2. The GPS locator 801 transmits the location of the platform body 1 in real time, the wind direction sensor 802 monitors the wind speed and direction on the sea surface in real time, the wireless intelligent controller 2 assesses the sea surface meteorological conditions and sends early warning signals to the main control room, and the temperature and humidity sensor 803 measures the air temperature and humidity to help judge potential risks such as sea fog and icing.
[0026] During the inspection, the main body of the platform 1 is floated on the sea surface. The propulsion mechanism 101 is controlled by the wireless intelligent controller 2. The propulsion mechanism 101 drives the main body of the platform 1 to move on the sea surface according to the designated inspection route. At the same time, the solar panel 3 converts solar energy into electrical energy, the wind power generation mechanism 4 converts wind energy into electrical energy, and the converted electrical energy is stored through the energy storage mechanism 401.
[0027] Simultaneously, the GPS locator 801 sends the positioning of the main platform 1 in real time, the wind direction sensor 802 monitors the wind speed and direction on the sea surface in real time, and the temperature and humidity sensor 803 measures the air temperature and humidity to help judge potential risks such as sea fog and icing. Then, the wireless intelligent controller 2 assesses the sea surface meteorological conditions and sends early warning signals to the main control room.
[0028] In addition, the hydrological sensor 102 monitors seawater, water flow and other related data information, the wireless intelligent controller 2 is used to assess seawater conditions, so that the staff in the main control room can provide reference data for related research, and the optical camera 8 uses visible light and infrared light to monitor relevant sea surface information such as passing ships.
[0029] When adjusting the monitoring height, a telescopic command is sent to the electric telescopic rod 5. The telescopic electric telescopic rod 5 adjusts the height of the support frame 6, causing the sliding telescopic rod 601 to extend and retract synchronously. This drives the first connecting block 602 to rotate around the first connecting shaft 604 between the first fixed plates 603. At the same time, the second connecting block 605 rotates around the second connecting shaft 607 between the second fixed plates 606, thereby flexibly adjusting the placement height of the optical camera 8.
[0030] When adjusting the monitoring position, the rotation angle of the rotating shaft 702 is controlled by the servo motor 701. The rotation of the rotating shaft 702 drives the fixed base 7 to rotate synchronously, thereby flexibly adjusting the orientation of the optical camera 8 according to the actual inspection needs.
[0031] Through the above steps, the platform body 1 is set to float on the sea surface. The operation status of the platform body 1 is intelligently controlled by the wireless intelligent controller 2. The height of the support frame 6 is adjusted by the telescopic electric telescopic rod 5. The support frame 6 is rotated and connected to the fixed base 7. The optical camera 8 is fixed by the fixed base 7. The placement height and orientation of the optical camera 8 can be flexibly adjusted according to actual needs. The optical camera 8 uses visible light and infrared light to monitor relevant sea surface information such as passing ships. In addition, solar energy is converted into electrical energy and stored by the solar panel 3, and wind energy is converted into electrical energy and stored by the wind power generation mechanism 4. This allows for flexible adjustment of the monitoring field of view according to actual environmental needs, saves energy consumption of the platform, and ensures that multiple monitoring devices can operate together.
[0032] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. An adjustable AI-powered intelligent maritime inspection platform, comprising a platform body (1), a wireless intelligent controller (2), and an optical camera (8), characterized in that: It also includes solar panels (3), wind power generation mechanism (4), electric telescopic pole (5), support frame (6) and fixed seat (7). A wireless intelligent controller (2) is installed at the top of the platform body (1). Two sets of solar panels (3) are symmetrically installed at the top of the platform body (1). Multiple sets of wind power generation mechanisms (4) are installed at the four corners of the top of the platform body (1). An electric telescopic pole (5) is installed at the top of the platform body (1). A support frame (6) is installed at the outer telescopic end of the electric telescopic pole (5). A fixed seat (7) is installed at the top of the support frame (6). The fixed seat (7) is rotatably connected to the support frame (6). An optical camera (8) is installed at the top of the fixed seat (7).
2. The adjustable AI-powered intelligent maritime inspection platform according to claim 1, characterized in that: Two sets of propulsion mechanisms (101) are symmetrically arranged at the rear bottom of the platform body (1). A hydrological sensor (102) is arranged at the bottom of the platform body (1). The hydrological sensor (102) includes, but is not limited to, wave sensor, water temperature sensor or salinity sensor. The hydrological sensor (102) is electrically connected to the propulsion mechanism (101) and the wireless intelligent controller (2).
3. The adjustable AI-powered intelligent maritime inspection platform according to claim 1, characterized in that: An energy storage mechanism (401) is provided on the inner side of the platform body (1), and the energy storage mechanism (401) is electrically connected to the solar panel (3) and the wind power generation mechanism (4).
4. The adjustable AI-powered intelligent maritime inspection platform according to claim 1, characterized in that: Two sets of sliding telescopic rods (601) are symmetrically arranged on both sides of the support frame (6). The sliding telescopic rods (601) are inclined at a certain angle. A first connecting block (602) is provided at the outer fixed end of the sliding telescopic rod (601). Two sets of first fixing plates (603) are symmetrically arranged at the top of the platform body (1). A first connecting shaft (604) is provided between the first fixing plates (603). The first connecting block (602) is rotatably connected to the first connecting shaft (604).
5. The adjustable AI-powered intelligent maritime inspection platform according to claim 4, characterized in that: The outer telescopic end of the sliding telescopic rod (601) is provided with a second connecting block (605), and two sets of second fixing plates (606) are symmetrically arranged on the outer side of the support frame (6). A second connecting shaft (607) is provided between the second fixing plates (606), and the second connecting block (605) is rotatably connected to the second connecting shaft (607).
6. The adjustable AI-powered intelligent maritime inspection platform according to claim 1, characterized in that: A servo motor (701) is provided on the inner side of the support frame (6). The servo motor (701) is electrically connected to the wireless intelligent controller (2). A rotating shaft (702) is provided on the top of the support frame (6). The rotating shaft (702) is rotatably connected to the support frame (6). The rotating shaft (702) is fixedly connected to the bottom of the fixed base (7). The output end of the servo motor (701) is connected to the rotating shaft (702).
7. The adjustable AI-powered intelligent maritime inspection platform according to claim 1, characterized in that: A GPS locator (801) is installed at the top of the platform body (1), a wind direction sensor (802) is installed at the front of the top of the platform body (1), and a temperature and humidity sensor (803) is installed at the top of the platform body (1). The GPS locator (801), the wind direction sensor (802) and the temperature and humidity sensor (803) are electrically connected to the wireless intelligent controller (2).