Cabin kingston well workbench
By designing an in-cabin sea-access well workbench, the problems of time-consuming, labor-intensive, and safety hazards caused by placing sea-access wells outside the cabin were solved. This enabled convenient use of the sea-access well and efficient utilization of the cabin space, thereby improving experimental efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-03-17
AI Technical Summary
The existing sea passage wells are located outside the cabin, which makes it time-consuming and laborious for staff to conduct environmental monitoring or sample collection, and also poses safety hazards, especially since the opening and closing of the sea passage well cover inside the cabin is inconvenient.
Design an in-cabin sea passage well work platform, including a sea passage well that runs through the cabin deck, a fixed enclosure platform and a movable platform. Combined with a support mechanism, the platform can be raised and lowered. The platform can be used as a work platform and is sealed to the sea passage well opening, which enhances safety and space utilization.
It improved the safety and convenience of using the sea well, increased the utilization rate of the cabin space, reduced the labor intensity of the staff, and ensured the efficient conduct of the experiment.
Smart Images

Figure CN223999710U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of marine environmental monitoring equipment, and specifically relates to an in-cabin sea-penetrating well workbench. Background Technology
[0002] Sea-penetrating wells are commonly installed on research vessels, extending into the sea from the bottom of the hull. They are used to acquire marine data during scientific expeditions. Currently, some marine ecological environment monitoring vessels are also equipped with sea-penetrating wells to facilitate the acquisition of relevant monitoring data and the collection of experimental samples during marine ecological environment monitoring. However, some existing sea-penetrating wells are located on the deck outside the hull. During environmental monitoring or sample collection, staff need to move and connect the detection equipment, which is time-consuming and labor-intensive, seriously affecting the efficiency of detection and experiments. In addition, the well opening is in an open state, posing a safety hazard. Especially when the sea-penetrating well is installed inside the hull, although some wells have a top cover installed at the top opening, opening and closing the cover is troublesome and laborious, sometimes even requiring lifting and suspension equipment to lift the cover, resulting in poor usability and low safety.
[0003] Therefore, it is necessary to design an in-cabin sea passage well workbench that can at least solve some of the above problems and defects. Summary of the Invention
[0004] To solve the above-mentioned technical problems, this utility model proposes an in-cabin sea passage well workbench, which improves the safety and convenience of using the in-cabin sea passage well, while also increasing the utilization rate of the cabin space and facilitating the efficient and orderly conduct of in-cabin experiments and tests.
[0005] The technical solution of this utility model is:
[0006] This utility model proposes a sea passage well work platform inside the cabin, including a sea passage well that penetrates through the cabin deck and extends partially upward, a baffle platform that is fixedly installed on the cabin deck, and a platform that is movably covered above the baffle platform.
[0007] The sea passage well is located inside the cavity of the enclosure platform, and the top height of the sea passage well is not greater than the top height of the enclosure platform. The enclosure platform has an opening at the top, and the platform plate is movably installed at the top opening.
[0008] Preferably, the in-cabin sea passage well work platform provided by this utility model further includes at least one supporting mechanism fixedly installed in the cavity of the enclosure platform. The supporting mechanism is connected to the platform to realize the opening and closing of the top opening of the enclosure platform. The platform is movably hinged to the enclosure platform.
[0009] Preferably, the supporting mechanism includes a telescopic cylinder that is movably hinged to the inner wall of the enclosure platform, and the piston rod end of the telescopic cylinder is movably hinged to the platform.
[0010] Preferably, an isolation platform is provided near the top opening of the enclosure platform, the isolation platform is fixedly sleeved on the outer periphery of the sea passage well, and the isolation platform is provided with an isolation cavity with the opening facing upward;
[0011] The platform is provided with a convex pad that is adapted to the isolation platform to seal the isolation cavity.
[0012] Preferably, the lower convex pad abuts against the sea passage well and is provided with an annular groove adapted to the wellhead of the sea passage well. The outer diameter of the annular groove is adapted to the outer diameter of the wellhead of the sea passage well, and the inner diameter of the annular groove is adapted to the inner diameter of the wellhead of the sea passage well.
[0013] Preferably, the front side of the enclosure platform is provided with a cabinet door that communicates with its cavity, and the inner wall of the enclosure platform is provided with a socket arranged near its top opening.
[0014] This utility model has the following advantages and effects compared with the prior art:
[0015] (1) The sea passage well is set in the cavity of the enclosure platform, so that the sea passage well is enclosed and covered by the enclosure platform, which improves the safety of the use of the sea passage well in the cabin and avoids the occurrence of accidental safety accidents;
[0016] (2) A movable platform is used at the top opening of the enclosure platform. The lifting and lowering of the platform can open and close the top opening of the enclosure platform and the wellhead. When the wellhead is not in use, the platform can be used as a normal work platform, thereby improving the utilization rate of the cabin space.
[0017] (3) The support mechanism connected to the platform is adopted. The platform can be raised and lowered through the support mechanism to open and close the opening at the top of the enclosure platform. It is convenient to use, reduces the labor intensity of the staff, and improves the safety of use. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of the sea passage well workbench inside the cabin in Embodiment 1 of this utility model;
[0019] Figure 2 This is a schematic diagram of the structure of the sea passage well workbench inside the cabin in Embodiment 2 of this utility model.
[0020] Reference numerals: 1. Cabin deck; 2. Sea passage well; 3. Containment platform; 31. Cabinet door; 32. Socket; 33. Opening / closing button; 4. Platform; 5. Telescopic cylinder; 6. Piston rod; 7. Isolation platform; 71. Isolation chamber; 8. Lower convex pad; 81. Annular groove. Detailed Implementation
[0021] To enable those skilled in the art to better understand this utility model, it will now be further described in conjunction with specific embodiments. It should be understood that the specific embodiments described herein are for illustrative and explanatory purposes only and are not intended to limit the scope of this utility model.
[0022] Example 1:
[0023] like Figure 1 As shown, this utility model provides a sea passage well work platform, including a sea passage well 2 that penetrates through the inner deck 1 and extends upward, a baffle platform 3 fixedly installed on the inner deck 1, and a platform 4 that is movably covered above the baffle platform 3; specifically, in this embodiment, the sea passage well 2 extends upward about 1 meter relative to the inner deck 1.
[0024] Furthermore, the sea passage well 2 is located within the cavity of the enclosure platform 3, and the top height of the sea passage well 2 is no greater than the top height of the enclosure platform 3. That is, the sea passage well 2 is completely located within the enclosure area of the enclosure platform 3, thereby ensuring the safety of the use of the sea passage well 2 inside the cabin and avoiding the occurrence of accidental safety accidents. The top of the enclosure platform 3 is open, and the platform plate 4 is movably set at the top opening. Normally, when the sea passage well 2 is not used for detection and sampling, the platform plate 4 is closed and covered at the top opening of the enclosure platform 3 to cover the open wellhead of the sea passage well 2. At the same time, the platform plate 4 can be used as a workbench to improve the utilization rate of the cabin space. When it is necessary to use the sea passage well 2 for detection and sampling, the sea passage well 2 can be exposed simply by opening the platform plate 4, so that the corresponding detection instruments or sampling equipment can be placed through the sea passage well 2.
[0025] Optionally, in some embodiments, the bottom of the enclosure platform 3 is fixedly and sealed to the inner deck 1, and the platform 4 is preferably sealed to the top opening of the enclosure platform 3, so that the enclosure platform 3, the inner deck 1, and the platform 4 form a sealed closed space, thereby isolating the sea passage well 2 from the inner space.
[0026] Furthermore, the in-cabin sea passage well workbench provided in this embodiment also includes at least one supporting mechanism fixedly installed in the cavity of the enclosure platform 3. The supporting mechanism is connected to the platform 4 to realize the opening and closing of the top opening of the enclosure platform 3. The platform 4 and the enclosure platform 3 are movably hinged through a hinge shaft arranged horizontally on the rear side. It should be noted that the supporting mechanism can be fixedly installed on the inner wall of the enclosure platform 3 or fixedly installed on the in-cabin deck 1. Its specific installation position can be set according to the actual situation and is not limited here. At the same time, the supporting mechanism is symmetrically arranged on both sides of the sea passage well 2 to ensure that it does not obstruct the normal use of the sea passage well 2.
[0027] Specifically, the supporting mechanism includes a telescopic cylinder 5 that is movably hinged to the inner wall of the enclosure platform 3. The end of the piston rod 6 of the telescopic cylinder 5 is movably hinged to the platform 4. The platform 4 is raised and lowered by extending and shortening the piston rod 6 of the telescopic cylinder 5. The telescopic cylinder 5 can be selected as a multi-stage telescopic cylinder 5 according to actual needs. An opening and closing button 33 is fixedly embedded in the outer wall of the enclosure platform 3. The opening and closing button 33 is electrically connected to the telescopic cylinder 5 through a circuit, so that the staff can control the working state of the telescopic cylinder 5 by touching the opening and closing button 33, thereby realizing the raising and lowering of the platform 4.
[0028] Furthermore, the front of the enclosure platform 3 is provided with a cabinet door 31 that communicates with its cavity, allowing some instruments used for detection and sampling to be placed inside the cavity of the enclosure platform 3, thus facilitating the retrieval of the corresponding instruments and equipment during detection and sampling work. In addition, the inner wall of the enclosure platform 3 is provided with a socket 32 located near its top opening. Since most detection instruments and sampling equipment require an external power supply, by providing a connection socket 32 inside the enclosure platform 3, no additional wiring or connection is required from the staff, allowing for direct detection and sampling work at the location of the sea well 2, ensuring the safety of the experiment inside the chamber while improving the convenience and efficiency of the staff.
[0029] Example 2:
[0030] In embodiment 2 of this utility model, using Figure 2 The following description will be provided. Furthermore, descriptions of parts that are no different from those in Embodiment 1 will be omitted, and the same reference numerals will be used instead.
[0031] like Figure 2 As shown, the work platform for the sea passage well in this utility model includes an isolation platform 7 near the top opening of the enclosure platform 3. The isolation platform 7 is fixedly fitted around the outer perimeter of the sea passage well 2, and has an upward-facing isolation cavity 71. The platform 4 is equipped with a lower protruding pad 8 that matches the isolation platform 7 to seal the isolation cavity 71. That is, when the platform 4 is closed at the top opening of the enclosure platform 3, the lower protruding pad 8 extends into the isolation cavity 71 of the isolation platform 7, thereby completely isolating the isolation cavity 71, which is connected to the sea passage well 2, from the interior space. It should be noted that the lower protruding pad 8 is preferably made of a high-molecular polymer material, such as polyamide or tetrafluoroethylene, which is corrosion-resistant, to improve service life while ensuring a good sealing effect.
[0032] Furthermore, the lower convex pad 8 abuts against the sea passage well 2 and is provided with an annular groove 81 that matches the wellhead of the sea passage well 2. The outer diameter of the annular groove 81 matches the outer diameter of the wellhead of the sea passage well 2, and the inner diameter of the annular groove 81 matches the inner diameter of the wellhead of the sea passage well 2, so that when the platform 4 is closed, the top wellhead of the sea passage well 2 is embedded in the annular groove 81 of the lower convex pad 8, further improving the sealing effect.
[0033] In summary, the in-cabin sea passage well workbench provided by this utility model improves the safety and convenience of using the in-cabin sea passage well, while also increasing the utilization rate of the cabin space, facilitating efficient and orderly in-cabin experiments and tests.
[0034] The above are merely preferred embodiments of this utility model and do not limit the patent scope of this utility model. All equivalent changes and modifications made within the scope of this utility model should still fall within the scope of this utility model.
Claims
1. An in-hold well workbench, characterized by: The invention relates to a ship's hatchway, comprising a hatchway penetrating through the deck and partially extending upward, a surrounding platform (3) fixedly arranged on the deck, and a platform (4) movably arranged above the surrounding platform (3). The hatchway is arranged in the cavity of the surrounding platform (3) and the top of the hatchway is not higher than the top of the surrounding platform (3), the top of the surrounding platform (3) is open, and the platform (4) is movably arranged at the top opening.
2. The in-hold well landing of claim 1, wherein: Further comprising at least one lifting mechanism fixedly arranged in the cavity of the surrounding platform (3), the lifting mechanism is connected with the platform (4) to open and close the top opening of the surrounding platform (3), and the platform (4) is movably hinged with the surrounding platform (3).
3. A moonpool workstation according to claim 2, characterised in that: The lifting mechanism comprises a telescopic cylinder (5) movably hinged with the inner wall of the surrounding platform (3), and the piston rod (6) of the telescopic cylinder (5) is movably hinged with the platform (4).
4. The in-hold well landing of claim 1, wherein: The surrounding platform (3) is provided with an isolation platform (7) near the top opening, the isolation platform (7) is fixedly sleeved on the outer periphery of the hatchway, and the isolation platform (7) is provided with an isolation cavity (71) with an upward opening. The platform (4) is provided with a lower convex pad (8) matched with the isolation platform (7) to seal and close the isolation cavity (71).
5. A moonpool workstation according to claim 4, characterised in that: The lower convex pad (8) abuts against the hatchway and is provided with a ring groove (81) matched with the hatchway opening. The outer diameter of the ring groove (81) is matched with the outer diameter of the hatchway opening, and the inner diameter of the ring groove (81) is matched with the inner diameter of the hatchway opening.
6. The in-hold well landing of claim 1, wherein: The front side of the surrounding platform (3) is provided with a cabinet door (31) communicating with the cavity, and the inner wall of the surrounding platform (3) is provided with a socket (32) arranged near the top opening.