A ship-based rapid concealment and deployment device for marine equipment

CN224829520UActive Publication Date: 2026-10-09崂山国家实验室 +1
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Patent Information

Application Number
CN202522618133.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-12-10
Publication Date
2026-10-09
Estimated Expiration
2035-12-10

AI Technical Summary

Technical Problem

因此,现有布放海洋设备存在不够隐蔽,步骤麻烦,完全依赖吊车且吊起后极易随船大幅摇摆的缺点,从而容易造成海洋设备受到碰撞,造成海洋设备的损坏

Benefits of technology

[0011]本实用新型一种基于船舶的海洋设备快速隐蔽布放装置的有益效果是:使用本装置进行海洋设备的布放,布放步骤简单,快速,布放过程不依赖吊车等吊装设备,避免吊装过程中设备随船体晃动。通过在装置的外侧加装壳体,对装置整体机型遮蔽,保证布放过程隐蔽。

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Abstract

The utility model relates to the field of ocean equipment deployment, specifically to a kind of ocean equipment quick concealment deployment device based on ship, including horizontal sliding structure, vertical sliding structure, turnover structure, controller, horizontal sliding structure is parallel with the deck of ship, is paved on ship body, vertical sliding structure is perpendicular to deck, is fixed in ship body outside, the top end of vertical sliding structure is abutted in the far end of horizontal sliding structure, turnover structure includes flap, turnover telescopic link, turnover slide, turnover slide is slidably connected on vertical sliding structure, one end of turnover telescopic link is rotatably connected in the bottom of turnover slide, the other end of turnover telescopic link is rotatably connected in the far end of flap, the proximal end of flap is provided with pivot, the top end side of turnover slide is provided with rotating hole, pivot is sleeved in rotating hole. The device is deployed for ocean equipment, and the deployment steps are simple, fast, and do not rely on cranes and other lifting equipment during the deployment process, avoiding the equipment from shaking with the ship body during lifting.
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Description

Technical Field

[0001] This utility model relates to the field of marine equipment deployment, specifically to a rapid and concealed deployment device for marine equipment based on a ship. Background Technology

[0002] In current marine surveys, the deployment of small marine instruments and equipment, such as hydrological and acoustic instruments, is frequently required. This deployment mainly includes moorings and buoys, and the process requires specialized equipment and teamwork. During deployment, a crane is typically used to lift the buoy to the vicinity of the transport vessel, and anti-sway lines are used to adjust its attitude to prevent collisions. The buoy is then secured to the ship's side with cables to ensure it does not detach during towing. Therefore, current methods of deploying marine equipment suffer from drawbacks such as insufficient concealment, cumbersome procedures, complete reliance on cranes, and a high risk of significant swaying with the ship after being lifted, making the equipment susceptible to collisions and damage. Summary of the Invention

[0003] In view of the problems existing in the prior art, the purpose of this utility model is to provide a ship-based rapid concealed deployment device for marine equipment that can reduce the difficulty of deploying equipment and increase the success rate of deployment.

[0004] To achieve the above objectives, the technical solution adopted by this utility model is: a rapid concealed deployment device for marine equipment based on a ship, comprising a horizontal sliding structure, a vertical sliding structure, a flipping structure, and a controller. The horizontal sliding structure is parallel to the ship's deck and laid on the ship's hull. The vertical sliding structure is perpendicular to the ship's deck and fixed to the outside of the ship's hull. The top end of the vertical sliding structure abuts against the far end of the horizontal sliding structure. The flipping structure includes a flip plate, a flipping telescopic rod, and a flipping sliding plate. The flipping sliding plate is slidably connected to the vertical sliding structure, and one end of the flipping telescopic rod is rotatably connected to the flipping plate. At the bottom of the rotating slide, the other end of the flip telescopic rod is rotatably connected to the far end of the flip plate. A rotating shaft is provided at the near end of the flip plate, and a rotating hole is provided on the top side of the rotating slide. The rotating shaft is sleeved in the rotating hole. When marine equipment needs to be deployed, the marine equipment is placed on the horizontal sliding structure. The controller controls the horizontal sliding structure to transport the marine equipment above the flip structure. The controller controls the vertical sliding structure to drive the flip structure to slide downward. When the deployment position is reached, the controller controls the rotating slide to slide while simultaneously controlling the flip telescopic rod to retract. The flip plate tilts downward, and the marine equipment slides into the water.

[0005] The aforementioned ship-based rapid concealment deployment device for marine equipment includes a flap comprising a frame, a slide rail, a baffle, and mounting lugs. The slide rail is disposed within the frame, and the mounting lugs are fixed below the frame. A rotating hole is provided on the mounting lugs, and the front end of the flip telescopic rod is rotatably fixed within the rotating hole using a pin. The rotating shaft is fixed at the near end of the frame, and the baffle is rotatably disposed at the far end of the frame.

[0006] The aforementioned ship-based rapid concealment deployment device for marine equipment includes a slide rail comprising several identical rotating rods, each rotating rod having a mounting shaft at both ends. The frame has several mounting holes, with the mounting shafts rotatably fitted into the mounting holes. The rotating rods are evenly distributed within the frame.

[0007] The aforementioned ship-based rapid concealed deployment device for marine equipment includes a baffle shaft located on the outer far end of the frame, a baffle sleeve located at one end of the baffle, the baffle sleeve being fitted onto the baffle shaft, and a torsion spring located between the baffle and the frame, the torsion spring being fitted onto the baffle shaft.

[0008] The aforementioned ship-based rapid concealed deployment device for marine equipment includes a horizontal sliding structure comprising a horizontal guide rail, a servo motor, and a conveyor belt. The conveyor belt is laid flat on the horizontal guide rail, and the servo motor provides power to the conveyor belt, driving it to move the marine equipment.

[0009] The aforementioned ship-based rapid concealment deployment device for marine equipment includes a vertical sliding structure comprising a vertical guide rail and a vertical telescopic rod. The vertical guide rail is fixed below the distal end of the horizontal sliding structure. One end of the vertical telescopic rod is fixed to the vertical guide rail, and the other end is fixedly connected to the flip-over sliding plate. The flip-over sliding plate is slidably connected to the vertical guide rail. When the marine equipment moves downward, the controller controls the vertical telescopic rod to extend downward, driving the flip-over sliding plate to move downward along the vertical guide rail.

[0010] The aforementioned ship-based rapid concealed deployment device for marine equipment has an external shell covering the horizontal sliding structure, vertical sliding structure, and flipping structure. The vertical sliding structure extends downwards along the hull into the water.

[0011] The advantages of this utility model, a rapid and concealed deployment device for marine equipment based on a ship, are as follows: The deployment of marine equipment using this device is simple and rapid, and the deployment process does not rely on cranes or other lifting equipment, thus avoiding equipment swaying with the ship during lifting. By adding a shell to the outside of the device, the overall shape of the device is concealed, ensuring concealment during the deployment process. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the overall installation of the device in the embodiment of this utility model; Figure 2 This is a schematic diagram of the horizontal operation of marine equipment in an embodiment of this utility model; Figure 3 This is a schematic diagram of the descent of marine equipment in an embodiment of this utility model; Figure 4 This is a schematic diagram of the operation of the flipping structure in an embodiment of this utility model; Figure 5 This is a schematic diagram of the marine equipment being launched in an embodiment of this utility model.

[0013] Explanation of reference numerals in the attached drawings: Horizontal sliding structure 10, horizontal guide rail 11, conveyor belt 12, vertical sliding structure 20, vertical guide rail 21, vertical telescopic rod 22, flipping structure 30, flip plate 31, flipping telescopic rod 32, flipping slide plate 33, controller 40, hull 50, marine equipment 60. Detailed Implementation

[0014] To enable those skilled in the art to better understand the technical solution of this utility model, the technical solution of this utility model will be described below in conjunction with specific embodiments and accompanying drawings.

[0015] Example 1 like Figures 1-5 As shown, a ship-based rapid concealed deployment device for marine equipment includes a horizontal sliding structure 10, a vertical sliding structure 20, a flipping structure 30, and a controller 40.

[0016] The controller controls the movement of the horizontal sliding structure, the vertical sliding structure, and the flipping structure through signals.

[0017] The horizontal sliding structure is parallel to the ship's deck and is installed on the ship's hull 50. It includes a horizontal guide rail 11, a servo motor, and a conveyor belt 12. The conveyor belt is laid flat on the horizontal guide rail, and the servo motor provides power to the conveyor belt, driving it to move the marine equipment. The specific structure can be the same as the existing transmission belt structure. Similarly, the horizontal sliding structure can also use a roller drive to move the marine equipment 60.

[0018] The flipping structure includes a flip plate 31, a flip telescopic rod 32, and a flip slide plate 33. The flip slide plate is slidably connected to the vertical sliding structure. One end of the flip telescopic rod is rotatably connected to the bottom of the flip slide plate, and the other end of the flip telescopic rod is rotatably connected to the far end of the flip plate. A pivot is provided at the near end of the flip plate, and a pivot hole is provided on the top side of the flip slide plate. The pivot is fitted into the pivot hole.

[0019] The flip panel includes a frame, a slide rail, a baffle, and a mounting ear plate. The slide rail is set inside the frame, and the mounting ear plate is fixed at the bottom of the frame. The mounting ear plate is provided with a rotating hole. The front end of the flip telescopic rod is rotated and fixed in the rotating hole by a pin. The rotating pin is fixed at the near end of the frame, and the baffle is rotatably set at the far end of the frame.

[0020] The slide rail comprises several identical rotating rods, each with a mounting shaft at both ends. A frame has several mounting holes, and the mounting shafts rotatably engage with these holes. The rotating rods are evenly distributed within the frame. A roller structure can also be used here for moving marine equipment.

[0021] The baffle is installed to prevent marine equipment from being thrown off the flap due to bumps during horizontal movement. In order to facilitate the smooth sliding of marine equipment off the flap when it is tilted, a torsion spring is used to limit the baffle. The torsion of the torsion spring is set according to the weight of the marine equipment to ensure that the marine equipment can smoothly slide into the seawater when the flap is tilted to a certain angle.

[0022] When setting a torsion spring, a baffle shaft is set on the outer side of the far end of the frame, a baffle sleeve is set on one end of the baffle, the baffle sleeve is sleeved on the baffle shaft, and a torsion spring is set between the baffle and the frame, the torsion spring is sleeved on the baffle shaft.

[0023] The vertical sliding structure is perpendicular to the ship's deck and fixed to the outside of the ship's hull. The top of the vertical sliding structure abuts against the far end of the horizontal sliding structure. It includes a vertical guide rail 21 and a vertical telescopic rod 22. The vertical guide rail is fixed below the far end of the horizontal sliding structure. One end of the vertical telescopic rod is fixed to the vertical guide rail, and the other end is fixedly connected to the flip slide plate. The flip slide plate is slidably connected to the vertical guide rail. When the marine equipment moves downward, the controller controls the vertical telescopic rod to extend downward, driving the flip slide plate to move downward along the vertical guide rail.

[0024] Furthermore, to enhance the concealment of the deployment, the deployment device is equipped with a shell covering a horizontal sliding structure, a vertical sliding structure, and a flipping structure. The vertical sliding structure extends downwards along the hull to the underwater surface.

[0025] When marine equipment needs to be deployed, the equipment is placed on a horizontal sliding structure. The controller controls the horizontal sliding structure to transport the equipment to the top of the tilting structure. The controller then controls the vertical sliding structure to drive the tilting structure downwards. When the equipment reaches the deployment position, the controller controls the tilting slide to slide while simultaneously controlling the tilting telescopic rod to retract. The tilting slides downwards, and the equipment slides into the water.

[0026] Example 2 A rapid, concealed deployment device for marine equipment based on a ship includes a horizontal slider, horizontal guide rails, vertical guide rails, a flip-up slide plate, a flap, a vertical telescopic rod, a flip-up telescopic rod, and an action control unit. The horizontal slider uses a conveyor belt or roller structure.

[0027] The entire device is fixed to the stern of the ship.

[0028] Marine equipment is hoisted and fixed onto a horizontal slider on a ship using a crane. The horizontal slider is placed in a horizontal guide rail, allowing the marine equipment and the horizontal slider to slide freely within the guide rail.

[0029] The vertical guide rail and the horizontal guide rail are fixed.

[0030] The flip-board is placed in the vertical guide rail and slides up and down.

[0031] The vertical telescopic rod is fixed on the vertical guide rail. The vertical telescopic rod can be electric or pneumatic, depending on the usage requirements.

[0032] One end of the flip telescopic rod is rotatably connected to the flip slide, and the other end is rotatably connected to the bottom of the flip slide.

[0033] One end of the flap is connected to the upper end of the vertical slide rail and can rotate around the fixed end.

[0034] The marine equipment and the horizontal slider are in a horizontal guide rail. The horizontal slider pushes the marine equipment to slide onto the flap. The motion control unit sends a command to control the vertical telescopic rod to move, which drives the flap to slide down. The flap, the marine equipment, and the flip telescopic rod slide down together. After sliding to the water surface, the motion control unit sends a command to control the flip telescopic rod to move. The flap rotates around a fixed point. After rotating a certain angle, the marine equipment slides along the flap and enters the water, completing the deployment.

[0035] The motion control unit sends a command to activate the telescopic boom, which flips the flap back to a horizontal position. The motion control unit then sends a command to activate the vertical telescopic boom, which flips the slide plate upwards, and the flap returns to alignment with the horizontal guide rail, allowing for the next deployment of marine equipment.

[0036] The above embodiments are merely illustrative of the structural concept and features of this utility model, intended to enable those skilled in the art to understand the content of this utility model and implement it accordingly, and should not be construed as limiting the scope of protection of this utility model. All equivalent changes or modifications made based on the substance of the content of this utility model should be included within the scope of protection of this utility model.

Claims

1. A rapid and covert deployment device for marine equipment based on a ship, characterized in that: The system includes a horizontal sliding structure, a vertical sliding structure, a tilting structure, and a controller. The horizontal sliding structure is parallel to the ship's deck and installed on the ship's hull. The vertical sliding structure is perpendicular to the ship's deck and fixed to the outside of the ship's hull. The top of the vertical sliding structure abuts against the far end of the horizontal sliding structure. The tilting structure includes a flap, a tilting telescopic rod, and a tilting slide plate. The tilting slide plate is slidably connected to the vertical sliding structure. One end of the tilting telescopic rod is rotatably connected to the bottom of the tilting slide plate, and the other end is rotatably connected to the far end of the flap. A pivot is provided at the near end of the flap, and a pivot hole is provided on the top side of the tilting slide plate. The pivot is fitted into the pivot hole. When marine equipment needs to be deployed, the marine equipment is placed on the horizontal sliding structure. The controller controls the horizontal sliding structure to transport the marine equipment above the tilting structure. The controller controls the vertical sliding structure to drive the tilting structure downward. When the deployment position is reached, the controller controls the tilting slide plate to slide while simultaneously controlling the tilting telescopic rod to retract. The flap tilts downward, and the marine equipment slides into the water.

2. The rapid and covert deployment device for marine equipment based on a ship as described in claim 1, characterized in that: The flip plate includes a frame, a slide rail, a baffle, and a mounting ear plate. The slide rail is disposed within the frame, and the mounting ear plate is fixed below the frame. The mounting ear plate is provided with a rotating hole. The front end of the flip telescopic rod is rotatably fixed within the rotating hole using a pin. The rotating pin is fixed at the near end of the frame, and the baffle is rotatably disposed at the far end of the frame.

3. The rapid and covert deployment device for marine equipment based on a ship as described in claim 2, characterized in that: The slide rail includes several identical rotating rods, each with a mounting shaft at both ends. The frame has several mounting holes, and the mounting shafts are rotatably fitted into the mounting holes. The rotating rods are evenly distributed within the frame.

4. The rapid and covert deployment device for marine equipment based on a ship as described in claim 2, characterized in that: A baffle shaft is provided on the outer side of the far end of the frame. A baffle sleeve is provided at one end of the baffle and the baffle sleeve is sleeved on the baffle shaft. A torsion spring is provided between the baffle and the frame and the torsion spring is sleeved on the baffle shaft.

5. The rapid concealed deployment device for marine equipment based on a ship as described in claim 1, characterized in that: The horizontal sliding structure includes a horizontal guide rail, a servo motor, and a conveyor belt. The conveyor belt is laid flat on the horizontal guide rail, and the servo motor provides power to the conveyor belt, driving the conveyor belt to move the marine equipment.

6. The rapid and covert deployment device for marine equipment based on a ship as described in claim 1, characterized in that: The vertical sliding structure includes a vertical guide rail and a vertical telescopic rod. The vertical guide rail is fixed below the far end of the horizontal sliding structure. One end of the vertical telescopic rod is fixed to the vertical guide rail, and the other end is fixedly connected to the flip-up slide plate. The flip-up slide plate is slidably connected to the vertical guide rail. When the marine equipment moves downward, the controller controls the vertical telescopic rod to extend downward, driving the flip-up slide plate to move downward along the vertical guide rail.

7. The rapid and covert deployment device for marine equipment based on a ship as described in claim 1, characterized in that: The deployment device is equipped with a shell that covers the horizontal sliding structure, the vertical sliding structure, and the flipping structure. The vertical sliding structure extends downward along the hull to the underwater surface.