A marine floating body assembly simulator
By designing a marine floating assembly simulator that integrates hardware such as a teaching control console, command console, navigation console, and visual imaging system, the problems of marine floating assembly being greatly affected by wind and waves and high operating costs have been solved, achieving efficient and safe simulation operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- RES INST OF MILITARY TRANSPORTATION ARMY MILITARY TRANSPORTATION COLLEGE CHINESE PEOPLES LIBERATION ARMY
- Filing Date
- 2025-06-20
- Publication Date
- 2026-05-29
AI Technical Summary
The assembly of floating bodies at sea is greatly affected by the wind and waves at sea, resulting in high operating costs and safety risks. The lack of hardware support also leads to low efficiency in simulation operations.
A marine floating assembly simulator was designed, which includes a simulation practice room, teaching and control console, command console, navigation console, visual imaging system and multiple work platforms. It adopts an arc-shaped column screen and high-definition projection equipment, and integrates VR and motion capture equipment to provide hardware support for marine floating assembly simulation.
It improves the efficiency and safety of floating assembly simulation operations, reduces costs, makes simulation operations unaffected by weather and environment, and enhances the controllability and safety of operations.
Smart Images

Figure CN224304262U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of simulation equipment technology, specifically a marine floating assembly simulator. Background Technology
[0002] Modular floating structures are a type of aquatic structure that can be easily assembled and disassembled through a modular design. They are typically composed of multiple small units, each of which can be combined together using specific connection methods to form a larger structure. This design gives modular floating structures significant advantages in transportation, installation, and maintenance, and they are widely used in fields such as floating pipelines, debris-blocking buoys, and monitoring buoys.
[0003] Currently, the assembly of floating bodies at sea is greatly affected by the wind and waves at sea, requiring high levels of technical skills and proficiency from operators. Actual operation at sea is costly and carries certain safety risks. Therefore, preliminary experiments on the assembly of floating bodies are usually conducted using indoor simulations to avoid increased costs due to excessive actual operation. However, there is currently a lack of hardware systems to support the simulation of the assembly of floating bodies at sea, resulting in low efficiency and high cost in the simulation operation. To address this, we propose a simulator for the assembly of floating bodies at sea. Utility Model Content
[0004] To address the shortcomings of existing technologies, this invention provides a marine floating assembly simulator, which solves the problems mentioned in the background section.
[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a marine floating assembly simulator, including a simulation training room, and further including a teaching control console, a command console, a navigation control console, a visual imaging system and multiple work platforms installed inside the simulation training room;
[0006] The work platform includes a deck work platform, an electromechanical equipment platform, a winch platform, and a splicing operator's platform;
[0007] The visual imaging system includes a cylindrical screen, projection devices, a blending unit, and a visual computer structure. Multiple projection devices are positioned directly in front of the cylindrical screen. The projection devices are connected to the blending unit via high-definition video cables. The blending unit is connected to the multiple visual computer structures via high-definition video cables.
[0008] Preferably, the visual imaging system is equipped with audio-visual equipment, and the angle of the column screen is 120°.
[0009] Preferably, the deck operation platform is equipped with VR and motion capture equipment.
[0010] Preferably, the simulation training room is equipped with a power distribution cabinet, which is electrically connected to the teaching control console, command console, driving control console, visual imaging system and multiple workbenches.
[0011] Preferably, the driver's console is located directly in front of the pillar curtain, and the command console and electromechanical equipment control console are located on both sides of the driver's console.
[0012] Preferably, the multiple deck operation consoles, multiple winch operation consoles, and multiple splicing hand operation consoles are distributed behind the control console.
[0013] This utility model provides a marine floating assembly simulator, which has the following beneficial effects:
[0014] This offshore floating hull assembly simulator integrates a training console, command console, navigation console, deck operation console, electromechanical equipment operation console, winch operation console, and assembly operator's work console into a single unit. Utilizing a curved columnar screen, it provides hardware support for various operations involved in the offshore floating hull assembly process, including training and control, command and control, navigation, deck operations, electromechanical equipment operation, winch operation, and assembly operator work. This facilitates off-site simulation of floating hull assembly, improving the efficiency and effectiveness of the simulation. Furthermore, the simulator allows for indoor operation, unaffected by weather, time, or environmental conditions, enhancing safety and reducing costs. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the layout of this utility model;
[0016] Figure 2 This is a layout plan of this utility model;
[0017] Figure 3 This is a schematic diagram of the layout of the visual imaging system of this utility model.
[0018] In the diagram: 1. Teaching and control console; 2. Command console; 3. Deck operation console; 4. Mechanical and electrical equipment console; 5. Winch console; 6. Assembly operator console; 7. Driver's console; 8. Visual imaging system; 9. Power distribution cabinet; 801. Column screen; 802. Projection equipment; 803. Visual computer structure; 804. Fusion machine; 805. Switch. Detailed Implementation
[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0020] Please see Figures 1 to 3This utility model provides a technical solution: a marine floating assembly simulator, including a simulation training room, and further including a teaching control console 1, a command console 2, a driving control console 7, a visual imaging system 8 and multiple work platforms installed inside the simulation training room;
[0021] The teaching control console 1 includes a cabinet, a visual computer, a control computer, a power distribution control box, a control panel, a monitor, and a wired intercom. The visual computer and control computer are installed inside the cabinet, while the monitor, wired intercom, and control panel are installed on the cabinet's platform. The inclined platform of the teaching control console 1 is equipped with three LCD displays, two wired intercom handsets, and an indoor dynamic environment display panel. One LCD display is used to display the 3D operating scene, one is used to set the operating scene, and the other is used to display indoor video monitoring. The platform of the teaching control console 1 is equipped with a keyboard and mouse, an operating scene control panel and joystick, and a KVM switching panel.
[0022] Command console 2 includes a cabinet, a visual computer, a monitor, and a wired intercom. The visual computer is installed inside the cabinet, and the monitor and the wired intercom are installed on the cabinet's platform. Two monitors can be set up, one for displaying the 3D operation screen and the other for displaying the monitoring video screen.
[0023] The control console 7 includes a housing, control components, monitoring instruments, a visual computer, a display, a wired intercom, a driving control panel, and a joystick. The visual computer is installed inside the housing, while the display, wired intercom, control components, monitoring instruments, etc., are installed on the platform of the housing. The driving control panel and joystick are used for driving control operations.
[0024] The work platform includes a deck work platform 3, an electromechanical equipment work platform 4, a winch work platform 5, and a splicing operator work platform 6;
[0025] The deck operation console 3 includes a housing, a visual computer, a monitor, a wired intercom, a winch control panel, and a joystick. The visual computer is installed inside the housing, while the monitor, wired intercom, etc., are mounted on the platform of the housing. The deck operation panel and joystick are used for deck operations. In addition, VR and motion capture equipment are installed on the deck operation console 3.
[0026] The electromechanical equipment control panel 4 includes a housing, a visual computer, a monitor, a wired intercom, and an electromechanical equipment operation panel. The visual computer is installed inside the housing, and the monitor, wired intercom, etc. are installed on the housing surface. The electromechanical equipment operation panel is used to operate the electromechanical equipment.
[0027] The winch control panel 5 includes a housing, a visual computer, a monitor, a wired intercom, a winch control panel, and a joystick;
[0028] The visual computer is installed inside the enclosure, while the monitor, wired intercom, and other equipment are mounted on the enclosure's platform. The winch control panel and joystick are used for winch operation.
[0029] The assembly workbench 6 includes a cabinet, a visual computer, a monitor, a wired intercom, an assembly operation panel, and a joystick. The visual computer is installed inside the cabinet, while the monitor, wired intercom, etc., are installed on the cabinet's platform. The assembly operation panel and joystick are used for assembly operations.
[0030] The visual imaging system 8 includes a cylindrical screen 801, projection devices 802, a fusion processor 804, and a visual computer structure 803. Multiple projection devices 802 are positioned directly in front of the cylindrical screen 801. The projection devices 802 are connected to the fusion processor 804 via high-definition video cables. The fusion processor 804 is connected to the multiple visual computer structures 803 via high-definition video cables. The visual computer structures 803 are connected to a switch 805. The cylindrical screen 801 has an arc-shaped structure with an angle of 120°, and projects onto the screen through three projection devices 802. The projection devices 802 have a resolution of 1920*1200, an aspect ratio of 16:10, use a laser light source, achieve a brightness of 7700 lumens, and a transmittance of 0.55:1. The visual imaging system 8 includes internal audio-visual equipment for playing audio of the projected content.
[0031] Preferably, the simulation training room is equipped with a power distribution cabinet 9, which is electrically connected to the teaching control console 1, the command console 2, the driving control console 7, the visual imaging system 8, and multiple workbenches, respectively, and the power distribution cabinet 9 provides power to the above-mentioned equipment.
[0032] Preferably, the bridge 7 is located directly in front of the pillar curtain 801, the command console 2 and the electromechanical equipment control console 4 are located on either side of the bridge 7, multiple deck operation control consoles 3, multiple winch control consoles 5, and multiple splicing operator control consoles 6 are distributed behind the bridge 7, and the training console 1 is arranged at the very back. Specifically, multiple deck operation control consoles 3, winch control consoles 5, and splicing operator control consoles 6 can be provided, for example... Figure 1 The four deck operation control panels 3, two winch operation control panels 5, and two splicing hand operation control panels 6 shown can be increased or decreased in number and their positions adjusted according to usage requirements.
[0033] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A marine floating assembly simulator, comprising a simulation training room, characterized in that: It also includes a teaching control console (1), a command console (2), a driving control console (7), a visual imaging system (8), and multiple workstations, all located inside the simulation training room; The work platform includes a deck work platform (3), an electromechanical equipment work platform (4), a winch work platform (5), and a splicing hand work platform (6). The visual imaging system (8) includes a column screen (801), projection devices (802), a fusion machine (804), and a visual computer structure (803). Multiple projection devices (802) are arranged in front of the column screen (801). The projection devices (802) are connected to the fusion machine (804) via high-definition video cables. The fusion machine (804) is connected to multiple visual computer structures (803) via high-definition video cables.
2. The marine floating assembly simulator according to claim 1, characterized in that: The visual imaging system (8) is equipped with audio-visual equipment, and the angle of the column screen (801) is 120°.
3. The marine floating assembly simulator according to claim 1, characterized in that: The deck operation console (3) is equipped with VR and motion capture equipment.
4. A marine floating assembly simulator according to claim 1, characterized in that: The simulation training room is equipped with a power distribution cabinet (9), which is electrically connected to the teaching control console (1), the command console (2), the driving control console (7), the visual imaging system (8), and multiple workbenches.
5. A marine floating assembly simulator according to claim 1, characterized in that: The driver's console (7) is located directly in front of the pillar curtain (801), and the command console (2) and the electromechanical equipment operating console (4) are located on both sides of the driver's console (7).
6. A marine floating assembly simulator according to claim 1, characterized in that: The multiple deck operation consoles (3), multiple winch operation consoles (5) and multiple splicing hand operation consoles (6) are located behind the control console (7).