Marine medical equipment simulation cabin

By integrating medical equipment systems, environmental control, and audio-visual monitoring systems into a marine medical equipment simulation cabin, the shortcomings of existing simulation cabin equipment have been solved, achieving targeted and stable simulation training and adapting to medical rescue under complex sea conditions.

CN121305960APending Publication Date: 2026-01-09CHINA STATE SHIPBUILDING CORP LTD RESEARCH INSTITUTE 719 +1
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Patent Information

Application Number
CN202511862615.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-10
Publication Date
2026-01-09

AI Technical Summary

Technical Problem

The existing medical simulation cabin lacks adequate simulation equipment, resulting in a lack of targeted training, failure to adapt to the dynamic environment, and impact on the effectiveness of maritime medical rescue training.

Method used

A simulated cabin for marine medical equipment was designed, comprising a cabin body, a medical equipment system, an environmental control system, an audio-visual monitoring and communication system, and an electrical control system. The medical equipment is fixed by a mooring device, enabling the simulated cabin to move in a complex manner on a motion platform. Combined with the audio-visual monitoring and communication system and the environmental control system, it simulates a medical environment under real sea conditions.

Benefits of technology

It improved the relevance and stability of the simulation training, ensured the realism and comfort of the training process, adapted to the medical rescue needs under complex sea conditions, and enhanced the training effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a marine medical equipment simulation cabin. The marine medical equipment simulation cabin comprises a cabin body, a medical equipment system, an environment regulation and control system, an audio and video monitoring communication system and an electrical control system. Training personnel enter the simulation cabin, and the simulation cabin is driven by the motion platform to perform composite motion and is used for simulating ship motion under different sea conditions. The medical equipment system is reliably fixed through the mooring device, and the stability in the swinging process is improved. Training personnel realize information intercommunication and video monitoring with personnel outside the cabin through the audio and video monitoring communication system, so that the technical effects that the training process is traceable and multi-terminal cooperation is convenient and fast are realized. The environment regulation and control system is used for simulating the real environment condition in the ship medical cabin, and meanwhile the comfortable medical environment is improved. According to the medical simulation cabin, internal matching equipment is perfect, targeted training of simulation is high, internal medical equipment is adaptively transformed under the condition of platform movement, and it is ensured that the training process is real and stable.
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Description

Technical Field

[0001] This invention relates to the technical field of simulation chambers, and in particular to a marine medical equipment simulation chamber. Background Technology

[0002] In marine medical rescue operations, time and technique are crucial to patient survival rates. Therefore, to improve the proficiency of personnel involved in marine medical rescue, they typically undergo rigorous marine medical training.

[0003] However, in the process of marine medical rescue training, to effectively train personnel on relevant medical procedures under different sea conditions, a medical equipment simulation chamber can be used. This chamber can simulate movement under varying sea conditions, allowing personnel to simulate medical rescue work in different environments. Current medical simulation chambers are merely simple transplants of land-based medical equipment; the supporting equipment within these chambers is incomplete, resulting in insufficient targeted training and a lack of adaptation to different operating environments. Summary of the Invention

[0004] In view of the above problems, the present invention is proposed to provide a marine medical equipment simulation cabin that overcomes or at least partially solves the above problems. It can solve the problems of incomplete simulation equipment in the medical simulation cabin, which leads to weak simulation training and lack of adaptation to the motion environment. It can also bring about the effects of complete simulation equipment in the medical simulation cabin, strong simulation training and strong environmental adaptability.

[0005] Specifically, the present invention provides a marine medical equipment simulation cabin, including a cabin body, a medical equipment system, an environmental control system, an audio and video monitoring and communication system, and an electrical control system; The bottom of the outer body of the cabin is fixedly connected to the motion platform; multiple tethering devices are installed inside the cabin body for securing the medical equipment system. The medical equipment system is installed inside the cabin body and is used to simulate medical training inside the cabin body; The environmental control system is installed inside the cabin body and is used to regulate the temperature, humidity and ambient brightness inside the cabin body. The audio and video monitoring and communication system is installed inside the cabin body and is used to monitor the cabin body and to achieve human-machine interaction with the control system outside the cabin body. The electrical control system is used to realize the electrical connection between the medical equipment system, the environmental control system, and the audio and video monitoring and communication system.

[0006] Preferably, the cabin body is a rectangular box structure with six splicing frames, multiple frame connectors, multiple covering parts and bottom connectors; Each of the splicing frames is composed of several rectangular tubes arranged horizontally and vertically; six splicing frames are spliced ​​together to form a rectangular box structure; the area formed between adjacent rectangular tubes on each frame is filled with thermal insulation material; Each of the aforementioned covering components includes an inner skin and an outer skin, which are respectively disposed on the inner and outer sides of the splicing frame at the front, rear, left, right, and top. The plurality of said skeleton connectors are respectively used for connecting the spliced ​​skeletons at the front, rear, left, right and top; The bottom connector is used to connect the bottom splicing frame and the motion platform.

[0007] Preferably, the frame connector includes angle steel, inner angle aluminum, and outer angle aluminum; The angle steel is connected to the outside of the rectangular tubes of the two splicing frames and extends along the interface direction of the two splicing frames; The inner angle aluminum is disposed on the inner side of the inner skin at the splicing point of the two splicing frames, and is connected to the rectangular tube by bolt fasteners; The outer corner aluminum is located on the outer skin of the splicing point of the two splicing frames and is connected to the rectangular tube by bolt fasteners.

[0008] Preferably, the bottom connector is a rectangular frame structure made up of four rectangular tubes. The rectangular frame is located at the connection point between the bottom splicing skeleton and the front, back, left and right splicing skeletons, and is fixedly connected by bolts. The rectangular frame is fixedly connected to the motion platform by bolt fasteners.

[0009] Preferably, at the upper end of the bottom splicing frame, laminate and flooring are laid sequentially from bottom to top, and the laminate and flooring are installed on the upper side of the rectangular frame by bolts and fasteners evenly distributed along the rectangular array; The mooring device is an embedded pull ring structure, which includes an embedded groove and a rotating pull ring formed in the body of the cabin. The rotating pull ring is fixedly installed in the embedded groove by bolt fasteners.

[0010] Preferably, the medical equipment system includes an electric operating table, a surgical shadowless lamp, an anesthesia ventilator, a high-frequency electrosurgical unit, a multi-functional pendant system, an oxygen supply unit, an instrument table, an instrument cabinet, and a dressing cabinet; The electric operating table is installed at the bottom of the cabin body by bolt fasteners; The surgical shadowless lamp is mounted on the top of the cabin body via a conversion seat and is positioned above the electric operating table; The multi-functional tower crane is installed on the top of the cabin body via a conversion seat and is placed on the longitudinal side of the surgical shadowless lamp; Both the anesthesia ventilator and the high-frequency electrosurgical unit are installed on the lower side of the multi-functional tower. The oxygen supply unit includes an oxygen cylinder and an oxygen cart, the oxygen cylinder is mounted on the oxygen cart, and the oxygen cart is connected to the tethering device; The instrument table is connected to the tethering device; Both the instrument cabinet and the dressing cabinet are connected to the bottom and side walls of the main body of the cabin using bolt fasteners.

[0011] Preferably, the distance between the multifunctional pendant and the electric operating table is not less than 425mm; The distance between the anesthesia ventilator and the side wall of the nearest cabin body shall not be less than 710mm; The distance between the dressing cabinet and the multi-functional hanging tower shall not be less than 745mm; The distance between the electric operating table and the side wall of the nearest cabin body is not less than 890mm; The distance between the electric operating table and the instrument cabinet shall not be less than 1315mm.

[0012] Preferably, the environmental control system includes an air conditioning system and a cabin lighting system; The air conditioning system includes an air conditioner and a ventilation duct; the air conditioner is installed on the motion platform, the ventilation duct is installed on the side wall outside the cabin body, and the duct outlet is connected to a plurality of air conditioning outlets opened on the side wall of the cabin body, and the inlet is connected to the air outlet of the air conditioner. The cabin lighting system includes a lighting controller and multiple lights, used to control the brightness of the multiple lights via the lighting controller.

[0013] Preferably, the audio-visual control system includes a wireless intercom system, a visual intercom system, a video surveillance system, and a voice broadcasting system; The wireless intercom system includes a wireless intercom to enable two-way voice communication between the cabin body and the control system via the intercom. The visual intercom system includes a visual intercom to enable two-way voice communication and video conferencing between the cabin body and the control system via the visual intercom. The video surveillance system includes multiple cameras installed inside the cabin body and a monitor installed outside the cabin body, enabling monitoring of the cabin body. The voice broadcasting system includes a broadcasting microphone located outside the cabin and a broadcasting speaker located inside the cabin body, so that broadcasting information emitted from the broadcasting microphone is transmitted to the broadcasting speaker.

[0014] Preferably, it also includes: a fire cabinet, a ladder to the top, and an escape descent device; The fire cabinet is fastened to the bottom of the cabin body by bolts; The ladder to the top is installed on the side wall of the outer body of the cabin; The escape descent device is installed inside the cabin body.

[0015] In the marine medical equipment simulation cabin of this invention, trainees enter the cabin, which undergoes complex movements driven by a motion platform to simulate ship movement under different sea conditions. The medical equipment system is reliably secured by mooring devices, improving stability during the swaying process. Trainees communicate with personnel outside the cabin and monitor video through an audio-visual monitoring and communication system, achieving traceable training processes and convenient multi-terminal collaboration. An environmental control system simulates the real environmental conditions inside a ship's medical cabin, while simultaneously improving the comfort of the medical environment. The medical simulation cabin of this invention is equipped with comprehensive facilities, providing highly targeted training. The internal medical equipment is adapted to the platform's movement, ensuring a realistic and stable training process.

[0016] Furthermore, the marine medical equipment simulation cabin of the present invention employs a splicing method to construct the cabin body structure, facilitating assembly and manufacturing. This also solves the problem of insufficient strength in traditional cabin frames, which easily deforms under high-frequency, large-angle swaying motions. The cabin structure of the present invention exhibits strong resistance to swaying deformation and high stability.

[0017] The above and other objects, advantages and features of the present invention will become more apparent to those skilled in the art from the following detailed description of specific embodiments of the invention in conjunction with the accompanying drawings. Attached Figure Description

[0018] The following sections will describe some specific embodiments of the invention in detail by way of example and not limitation, with reference to the accompanying drawings. The same reference numerals in the drawings denote the same or similar parts or portions. Those skilled in the art should understand that these drawings are not necessarily drawn to scale. In the drawings: Figure 1 This is a three-dimensional structural schematic diagram of a marine medical equipment simulation cabin according to an embodiment of the present invention; Figure 2 This is a block diagram of the composition of a marine medical equipment simulation cabin according to an embodiment of the present invention; Figure 3 This is a right view of the exterior of a marine medical equipment simulation cabin according to an embodiment of the present invention; Figure 4 This is a left view of the exterior of a marine medical equipment simulation compartment according to an embodiment of the present invention; Figure 5 This is a rear view of the exterior of a marine medical equipment simulation compartment according to an embodiment of the present invention; Figure 6 This is a front view of the exterior of a marine medical equipment simulation compartment according to an embodiment of the present invention; Figure 7 This is a structural schematic diagram of the internal layout of a simulated cabin for a marine medical device according to an embodiment of the present invention. Figure 8 This is a left view of the internal structure of a simulated cabin for a marine medical device according to an embodiment of the present invention; Figure 9 This is a right view of the internal structure of a simulated cabin for a marine medical device according to an embodiment of the present invention. Figure 10 This is a bottom view of the interior structure of a simulated cabin for a marine medical device according to an embodiment of the present invention; Figure 11 This is a front view of the internal structure of a simulated cabin for a marine medical device according to an embodiment of the present invention. Figure 12 This is a rear view of the internal structure of a simulated cabin for a marine medical device according to an embodiment of the present invention. Figure 13 This is an exploded view of the main body structure of a marine medical equipment simulation cabin according to an embodiment of the present invention. Figure 14 This is a schematic diagram of the connection of the skeleton connectors in the body structure of a marine medical equipment simulation cabin according to an embodiment of the present invention. Figure 15 This is a cross-sectional schematic diagram of the spliced ​​skeleton in the main body structure of a marine medical equipment simulation cabin according to an embodiment of the present invention. Figure 16 This is a schematic diagram of the bottom connecting parts in the main body structure of a marine medical equipment simulation cabin according to an embodiment of the present invention. Figure 17 This is a schematic diagram of the structure of a mooring device in a simulated marine medical equipment compartment according to an embodiment of the present invention; Figure 18 This is a schematic diagram of the structure of a multi-functional gantry tower and its connection in a marine medical equipment simulation cabin according to an embodiment of the present invention. Figure 19 This is a schematic diagram of the fixed connection between the instrument table and the equipment in the simulated cabin of a marine medical device according to an embodiment of the present invention. Figure 20This is a three-dimensional structural schematic diagram of the connecting components of a respiratory anesthesia machine in a marine medical equipment simulation cabin according to an embodiment of the present invention.

[0019] 10. Motion platform; 200. Medical equipment simulation cabin; 201. Cabin body; 202. Medical equipment system; 203. Environmental control system; 204. Audio-visual monitoring system; 205. Electrical control system; 206. Tethering device; 207. Spliced ​​frame; 208. Frame connector; 209. Covering component; 210. Bottom connector; 211. Rectangular tube; 212. Inner skin; 213. Outer skin; 214. Angle steel; 215. Inner angle aluminum; 216. Outer angle aluminum; 217. Thermal insulation material; 218. Laminate; 219. Flooring; 220. Embedded groove; 221. Rotating pull ring; 222. Electric operating table; 223. Surgical shadowless lamp; 224. Anesthesia breathing lamp; 225. High-frequency electrosurgical unit; 226. Multifunctional hoist 227. Tower; 228. Oxygen supply unit; 229. Instrument table; 230. Instrument cabinet; 231. Dressing cabinet; 232. Converter; 233. Air conditioner; 234. Ventilation duct; 235. Air conditioner vent; 236. Fire cabinet; 237. Ladder to the top; 238. Video intercom; 239. Support rod; 240. Flange; 241. Mounting plate; 242. Hook; 243. Ratchet strap; 244. Slot; 245. Ratchet; 246. Ratchet; 247. Emergency window; 248. Fire box; 249. Door; 250. Electric ventilation window; 251. Safety handrail; 252. Cable tray; 253. Power outlet window; 254. Seat; 255. Power socket; 256. Camera; 257. Lighting. Detailed Implementation

[0020] The following reference Figures 1 to 20 This invention describes a marine medical equipment simulation chamber according to an embodiment of the present invention. In this description, it should be understood that the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature, that is, include one or more of that feature. In the description of the present invention, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified. When a feature "includes or contains" one or more of the features it encompasses, unless otherwise specifically described, this indicates that other features are not excluded and may be further included.

[0021] Unless otherwise expressly specified and limited, the terms "set up," "install," "connect," "link," "fix," and "couple" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art should be able to understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0022] Furthermore, in the description of this embodiment, "above" or "below" the second feature can include direct contact between the first and second features, or it can include contact between the first and second features through another feature between them. That is, in the description of this embodiment, "above," "over," and "on top" of the second feature includes the first feature being directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," or "below" of the second feature can mean the first feature is directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0023] In the description of this embodiment, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0024] Figure 1 This is a three-dimensional structural schematic diagram of a marine medical equipment simulation cabin 200 according to an embodiment of the present invention, as shown below. Figure 1 As shown, and with reference Figures 2 to 20 This invention provides a marine medical equipment simulation cabin 200, including a cabin body 201, a medical equipment system 202, an environmental control system 203, an audio and video monitoring and communication system, and an electrical control system 205.

[0025] The bottom of the main body 201 is fixedly connected to the motion platform 10. Multiple mooring devices 206 are installed inside the main body 201 to secure the medical equipment system 202. Specifically, the motion platform 10 can perform composite movements with six degrees of freedom, such as pitch, roll, bow, sway, heave, and pitch, in three-dimensional space, simulating various spatial motion postures. The composite motion posture of the motion platform 10 can accurately simulate the posture and motion of a ship under complex sea conditions. Based on given control commands, the motion platform 10 is driven to achieve ship simulation motion with predetermined positions and acceleration postures of any degree of freedom, including pitch, roll, bow, sway, heave, and pitch. The mooring devices 206 ensure that the medical equipment system 202 is reliably secured during the composite motion process in the simulation cabin.

[0026] The medical equipment system 202 is installed inside the cabin body 201 and is used to simulate medical training inside the cabin body 201.

[0027] An environmental control system 203 is installed inside the cabin body 201 and is used to regulate the temperature, humidity, and ambient light within the cabin body 201. The environmental control system 203 is used to simulate the real environmental conditions inside a ship's medical cabin.

[0028] The audio-visual monitoring and communication system is installed inside the main body of the simulator 201 to monitor the interior of the simulator and enable human-machine interaction with the outside. The system transmits video footage from inside the simulator to the outside, allowing for monitoring and the issuance of rescue commands to personnel inside. This facilitates information exchange between the inside and outside of the simulator.

[0029] The electrical control system 205 is used to realize the electrical connection between the medical equipment system 202, the environmental control system 203, and the audio-visual monitoring and communication system. The electrical control system 205 provides power to the medical equipment system 202, the environmental control system 203, and the audio-visual monitoring and communication system while simultaneously enabling signal transmission between these systems.

[0030] In this embodiment, the marine medical equipment simulation cabin 200 is used by trainees who enter the cabin. Driven by the motion platform 10, the cabin undergoes complex motions to simulate ship movement under different sea conditions. The medical equipment system 202 is reliably secured by a mooring device 206, improving stability during the swaying process. Trainees communicate with personnel outside the cabin and monitor video through an audio-visual monitoring and communication system, achieving traceable training and convenient multi-terminal collaboration. An environmental control system 203 simulates the real environmental conditions inside the ship's medical cabin, while also improving the comfort of the medical environment. The medical simulation cabin in this embodiment is equipped with comprehensive facilities, providing highly targeted training. The internal medical equipment is adapted to the platform's motion, ensuring a realistic and stable training process.

[0031] In some embodiments of the present invention, as shown in the appendix Figure 13-16 As shown, the cabin body 201 is a rectangular box structure. The cabin body 201 has six splicing frames 207, multiple frame connectors 208, multiple covering components 209, and a bottom connector 210. Specifically, the six splicing frames 207 respectively form the frame structure of the six sides of the rectangular box structure. The frame connectors 208 are used to connect the frames between each splicing frame 207, and the covering components 209 are used to form a covering structure around each splicing frame 207, thereby forming the sidewalls of the cabin. The bottom connector 210 is disposed on the bottom splicing frame 207 and is used to connect the bottom splicing frame 207 to the motion platform 10, enabling a reliable connection between the cabin body 201 and the motion platform 10.

[0032] Each splicing frame 207 is composed of several rectangular tubes 211 arranged horizontally and vertically. Furthermore, the rectangular tubes 211 are joined together by welding. Six splicing frames 207 are assembled to form a rectangular box structure. The area formed between adjacent rectangular tubes 211 on each frame is filled with insulation material 217, which serves a thermal insulation function.

[0033] Each covering component 209 includes an inner skin 212 and an outer skin 213, which are respectively disposed on the inner and outer sides of the splicing frame 207 at the front, rear, left, right, and top. Specifically, the inner skin 212 covers the inner side of the splicing frame 207, and the outer skin 213 covers the outer side of the splicing frame 207, wherein the thermal insulation material 217 is disposed in the filling area formed between the inner and outer skins 213 and the rectangular tube 211.

[0034] Multiple frame connectors 208 are used for connecting the front, rear, left, right, and top splicing frames 207, respectively. The frame connections facilitate assembly after each splicing frame 207 is welded. A bottom connector 210 is used to connect the bottom splicing frame 207 to the motion platform 10.

[0035] In this embodiment, the cabin body 201 is constructed using a splicing method, facilitating assembly and manufacturing. This also solves the problem of insufficient strength in traditional cabin frames, which easily deforms during high-frequency, large-angle swaying movements. The cabin structure of this embodiment exhibits strong resistance to swaying deformation and high stability.

[0036] In some preferred embodiments of the present invention, as shown in the appendix Figure 15 As shown, a laminate 218 is provided at the connection between the rectangular tube 211 and the inner skin 212 in each splicing frame 207. The thickness of the laminate 218 is preferably 15mm. This serves to provide heat insulation and heat preservation. At the same time, the laminate 218 can also prevent heat transfer between the inner and outer skins 213 through the rectangular tube 211.

[0037] In some preferred embodiments of the present invention, as shown in the appendix Figure 15 As shown, the inner and outer skins 213 are made of 1.5mm thick aluminum plates. After grinding, chemical cleaning to remove oil and dirt, and drying, the bottom of the skins 213, which connects to the rectangular tube 211, is sprayed with acrylic zinc yellow primer to improve the adhesion between the aluminum plate and the rectangular tube 211. The rectangular tube 211 on the single-piece splicing frame 207 is integrated with the inner and outer skins 213 into a whole by vacuum pressing or polysulfide adhesive, thereby reducing the molding difficulty.

[0038] In some preferred embodiments of the present invention, as shown in the appendix Figure 15 As shown, the insulation material 217 is a flame-retardant rigid polyurethane foam board, and the foam board must not have any voids.

[0039] In some preferred embodiments of the present invention, as shown in the appendix Figure 15 As shown, the outer skin 213 is coated with acrylic polyurethane paint to improve corrosion resistance and enhance appearance.

[0040] In some embodiments of the present invention, as shown in the appendix Figure 14 As shown, the frame connector 208 includes angle steel 214, inner angle aluminum 215 and outer angle aluminum 216.

[0041] Angle steel 214 is connected to the outside of the rectangular tubes 211 of the two splicing frames 207 and extends along the interface direction of the two splicing frames 207. Specifically, at the connection of the two splicing frames 207, angle steel 214 is used to weld the outside of the two rectangular tubes 211 together.

[0042] The inner angle aluminum 215 is located inside the inner skin 212 at the joint of the two splicing frames 207 and is connected to the rectangular tube 211 by bolts. The outer angle aluminum 216 is located outside the outer skin 213 at the joint of the two splicing frames 207 and is connected to the rectangular tube 211 by bolts. Specifically, the two ends of the outer angle aluminum 216 and the inner angle aluminum 215 overlap the outer skin of the rectangular tube 211 welded together by the splicing frames 207 on both sides, and are fixedly connected to the rectangular tube 211 by bolts, so that the inner and outer angle aluminum 216 are reliably connected to the inner and outer skin 213 and fixedly connected to the frame structure formed by the rectangular tube 211. The connection method in this embodiment has high strength, simple structure, and is easy to manufacture.

[0043] In some preferred embodiments of the present invention, as shown in the appendix Figure 14 As shown, a laminate 218 is provided between the inner skin 212 and the rectangular tube 211 at the connection point. The inner angle aluminum 215 overlaps the inner skin 212 outside the laminate 218. The inner skin 212 and the laminate 218 are fixedly installed on the outside of the rectangular tube 211 by bolts and fasteners.

[0044] In some embodiments of the present invention, as shown in the appendix Figure 16 As shown, the bottom connector 210 is a rectangular frame structure composed of four rectangular tubes 211. The rectangular frame is located at the connection points of the rectangular tubes 211 between the bottom splicing frame 207 and the front, rear, left, and right splicing frames 207, and is fixedly connected by bolts. The rectangular frame is fixedly connected to the motion platform 10 by bolts.

[0045] Specifically, a connecting plate 238 corresponding to the rectangular frame structure is provided on the bottom motion platform 10. The connecting plate 238 can be pre-installed on the upper end of the motion platform 10 or temporarily welded to the upper end of the motion platform 10. The rectangular frame and the connecting plate 238 are connected by bolts and fasteners. Multiple sets of bolts and fasteners are provided and evenly distributed on the four rectangular tubes 211 of the rectangular frame. The four outer sides of the rectangular tubes 211 of the rectangular frame are also fastened to the rectangular tubes 211 at the lower end of the four splicing frames 207 on the front, rear, left, and right sides by evenly distributed bolts and fasteners. The inner sides of the four rectangular tubes 211 of the rectangular frame are fixedly connected to the rectangular tubes 211 of the bottom splicing frame 207 by welding or bolts and fasteners. In this embodiment, the connection structure of the bottom connector 210 is used to increase the connection strength at the connection point. The connection structure of the rectangular frame facilitates the positioning and installation of the entire cabin structure.

[0046] In some preferred embodiments of the present invention, as shown in the appendix Figure 16 As shown, the rectangular frame structure can be a rectangular tube 211 surrounding the bottom splicing skeleton 207. This saves material while ensuring connection strength.

[0047] In some preferred embodiments of the present invention, as shown in the appendix Figure 16 As shown, to ensure the connection strength between the motion platform 10 and the bottom splicing frame 207, a connecting plate 238 can be provided at the connection between the rectangular tube 211 of the bottom splicing frame 207 and the motion platform 10. This allows the connecting plate 238 on the motion platform 10 to be fixedly connected to the rectangular tube 211 of the bottom splicing frame 207 via welding or bolt fasteners. This increases the connection strength between the bottom splicing frame 207 and the motion platform 10.

[0048] In some embodiments of the present invention, as shown in the appendix Figure 16 As shown, on the upper part of the bottom splicing frame 207, laminate 218 and floor covering 219 are laid sequentially from bottom to top. The laminate 218 and floor covering 219 are installed on the upper side of the rectangular frame using bolts evenly distributed along a rectangular array. Specifically, the laminate 218 and floor covering 219 are fixed by creating evenly distributed through holes at the upper ends of the rectangular tubes 211 around the rectangular frame structure, and then using bolts to fasten the laminate 218 and floor covering 219 to the bottom connector 210. This facilitates installation, eliminating the need for additional connecting parts; they can be directly connected to the rectangular frame structure of the bottom connector 210.

[0049] The tethering device 206 is an embedded pull ring structure, comprising an embedding groove 220 and a rotating pull ring 221 formed within the body 201. The rotating pull ring 221 is fixedly installed within the embedding groove 220 by bolts. Specifically, the tethering device 206 is disposed on six surfaces within the body 201. Furthermore, the rotating pull ring 221 is made of stainless steel. In use, the pull ring 221 can be rotated to remove it from the embedding groove 220. A pull cord is then used to secure the device by rotating the pull ring 221 and connecting it to the medical device.

[0050] In some embodiments of the present invention, as shown in the appendix Figure 7-12 As shown, the medical equipment system 202 includes an electric operating table 222, a surgical shadowless lamp 223, an anesthesia ventilator, a high-frequency electrosurgical unit 225, a multi-functional pendant 226, an oxygen supply unit 227, an instrument table 228, an instrument cabinet 229, and a dressing cabinet 230.

[0051] An electric operating table 222 is bolted to the bottom of the main body 201. A surgical shadowless lamp 223 is mounted on the top of the main body 201 via a conversion seat 231, positioned above the electric operating table 222. A multi-functional tower crane is mounted on the top of the main body 201 via a conversion seat 231, positioned longitudinally to one side of the surgical shadowless lamp 223. Anesthesia ventilator and high-frequency electrosurgical unit 225 are both mounted on the underside of the multi-functional tower crane 226. An oxygen supply unit 227 includes an oxygen cylinder and an oxygen cart; the oxygen cylinder is mounted on the oxygen cart, which is connected to the tethering device 206. An instrument table 228 is connected to the tethering device 206. Instrument cabinets 229 and dressing cabinets 230 are bolted to the bottom and side walls of the main body 201. In this embodiment, by installing various medical devices within the main body 201, the various tasks required for simulated training personnel in medical practice are fully met.

[0052] In some preferred embodiments of the present invention, as shown in the appendix Figure 7-12 As shown, the electric operating table 222 is located at the center of the main body 201. The oxygen supply unit 227, the instrument table 228, and the dressing cabinet 230 are located on the right side wall inside the main body 201, while the instrument cabinet 229 is located on the left side wall inside the main body 201.

[0053] The surgical shadowless lamp 223 is positioned slightly to the left of the top of the cabin, directly above the electric operating table 222. This allows for easy adjustment of the lamp's illumination angle, ensuring sufficient light range and intensity illuminating the electric operating table 222 and guaranteeing the light is directly directed at it. The multi-functional pendant tower 226 is mounted slightly to the right of the operating table on the top of the cabin. It should be positioned at a safe distance from the surgical shadowless lamp 223 to avoid interference with its adjustment range. The multi-functional pendant tower 226 is equipped with an anesthesia ventilator and a high-frequency electrosurgical unit 225. The tower features a rotating arm mechanism for positional adjustment. Multiple power outlets are installed on the tower for powering the anesthesia ventilator and the high-frequency electrosurgical unit 225. This example demonstrates how the placement of medical equipment is optimized to simulate a real medical rescue scenario while also improving user comfort through ergonomic principles.

[0054] In some preferred embodiments of the present invention, as shown in the appendix Figure 7As shown, the distance between the multi-functional pendant 226 and the electric operating table 222 is no less than 425mm. The distance between the anesthesia ventilator and the side wall of the nearest hull body 201 is no less than 710mm. The distance between the dressing cabinet 230 and the multi-functional pendant 226 is no less than 745mm. The distance between the electric operating table 222 and the side wall of the nearest hull body 201 is no less than 890mm. The distance between the electric operating table 222 and the instrument cabinet 229 is no less than 1315mm. Through more refined placement of medical equipment, the layout of medical equipment follows the ergonomic principles of maritime medical cabins, namely, a minimum walking width of 305mm, and the above dimensions also conform to normal human walking passage. There is ample and reasonable space for personnel activity, the operating procedures are highly similar to real shipboard medical treatment scenarios, and the training is highly targeted.

[0055] In some preferred embodiments of the present invention, the electric operating table 222 is fixedly connected to a mounting plate 241 at its bottom. The mounting plate 241 uses M10 bolt fasteners and is connected to the bottom embedded parts of the cabin body 201 via a bottom shock absorber connecting plate 238. Specifically, bolts can be pre-embedded at the bottom of the cabin body, and then fixed with nuts, spring washers, flat washers, and other accessories, and finally a rust-proof coating is applied. The shock absorber is a GWF-HJQT type vibration isolator without resonance peaks. In this embodiment, the electric operating table 222 can be moved by disassembling nuts and other accessories, facilitating regular cleaning and disinfection of the operating room. At the same time, it has a good shock absorption effect, making it adaptable to the complex swaying environment of the cabin body 201.

[0056] In some preferred embodiments of the present invention, the instrument cabinet 229 and dressing cabinet 230 are connected to the cabin body via M10 bolt fasteners through a bottom shock absorber connection and a back shock absorber (some non-bullet-mounted equipment does not have a back shock absorber). The shock absorber is a GWF-HJQT type vibration isolator without resonance peaks. It has a good shock absorption effect, making it adaptable to the complex swaying environment of the cabin body 201.

[0057] In some preferred embodiments of the present invention, as shown in the appendix Figure 8As shown, the surgical shadowless lamp 223 has a dual-lamp structure, with each lamp rotatably connected to the main structure of the surgical shadowless lamp 223. The maximum illuminance of the main lamp is not less than 150,000 lux, and the maximum illuminance of the secondary lamp is not less than 100,000 lux. The surgical shadowless lamp 223 is installed on the top of the cabin via a conversion seat 231. Further, the conversion seat 231 adopts a circular column structure with flanges 240 at both ends. The upper flange 240 is connected to the embedded part on the top of the cabin using bolts, and the lower flange 240 is fixedly connected to the upper base of the surgical shadowless lamp 223 using bolts. Multiple support rods 239 are evenly distributed around the column. One end of each support rod 239 is hinged to the outer wall of the column, and the other end is hinged to the embedded part on the top of the cabin. This embodiment facilitates the installation and replacement of the surgical shadowless lamp 223, as well as subsequent periodic maintenance.

[0058] In some preferred embodiments of the present invention, as shown in the appendix Figure 9 As shown, the multi-functional pendant tower 226 is also installed on the cabin roof via a conversion seat 231. Specifically, the conversion seat 231 adopts a circular column structure with flanges 240 at both ends. The upper flange 240 is connected to the embedded part on the top of the cabin roof via bolts, and the lower flange 240 is fixedly connected to the upper base of the surgical shadowless lamp 223 via bolts. Multiple support rods 239 are evenly distributed around the perimeter of the column. One end of each support rod 239 is hinged to the outer wall of the column, and the other end is hinged to the embedded part on the cabin roof. This embodiment facilitates the installation and replacement of the multi-functional pendant tower 226, as well as subsequent periodic maintenance.

[0059] In some preferred embodiments of the present invention, as shown in the appendix Figure 9 As shown, the high-frequency electric knife 225 is fixed to the multi-functional crane tower 226 by cable ties.

[0060] In some preferred embodiments of the present invention, as shown in the appendix Figure 9 , 18 As shown in Figure 20, the anesthesia ventilator is installed on the multi-functional pendant tower 226. The anesthesia ventilator is installed on the multi-functional pendant tower 226 through the mounting plate 241. The mounting plate 241 is connected to the anesthesia ventilator through 4 M6×35 bolts on one side and a total of 8 bolts on both sides, and is connected to the reserved interface at the bottom of the anesthesia ventilator. The mounting plate 241 is connected to the clamping plate through 4 M6×16 bolts on one side and a total of 8 bolts on both sides. The clamping plate is connected to the multi-functional pendant tower 226 through a rubber plate installed in the middle. The position of the left and right sides of the anesthesia ventilator is fixed through the above installation. The mounting plate 241 is equipped with hooks 242 at the front and back to position the anesthesia ventilator in the front and back direction. The anesthesia ventilator and the multi-functional pendant tower 226 are fastened together in the above manner.

[0061] In some preferred embodiments of the present invention, as shown in the appendix Figure 7-12As shown, the oxygen cylinder trolley is equipped with a ring-shaped support, and the oxygen cylinders are placed inside the ring-shaped support. A fastening strap connects the oxygen cylinder trolley to the rotating pull ring 221 in the cabin mooring device 206 to prevent movement during the movement of the cabin body 201.

[0062] In some preferred embodiments of the present invention, as shown in the appendix Figure 19 As shown, the instrument table 228 is fixed using a limiting device. After being limited, the trolley is connected and fixed to the pre-installed mooring device 206 inside the cabin via a ratchet 246 and a strap 243. Specifically, the limiting device is a limit groove 244 on the side wall of the cabin, with a ratchet 245 installed in the groove 244 and a ratchet 246 on the strap. By moving the ratchet 246 on the ratchet 245 in the groove 244, the ratchet 246 and strap 243 are fixed to the side wall, and the instrument table 228 is covered by the ratchet 246 and strap 243, thus limiting its movement. The ratchet 246 and strap 243 are connected to the mooring device 206 via a strap, and the strap and the ratchet 246 and strap 243 are connected by a buckle. The strap and the mooring device 206 are connected by a hook. This embodiment facilitates the limiting and fixing of the instrument table 228, and also facilitates the release of the limiting. The operation is simple and convenient.

[0063] In some preferred embodiments of the present invention, as shown in the appendix Figure 7-12 As shown, both instrument cabinet 229 and dressing cabinet 230 are connected to the bottom and side walls of the main body 201 using bolt fasteners. Specifically, instrument cabinet 229 and dressing cabinet 230 are mainly composed of a frame, shelves, tempered glass, adhesive strips, buckles, etc. The shelves are adjustable and removable, allowing for the free allocation of dedicated space for storing each item.

[0064] In some preferred embodiments of the present invention, the instrument table 228, instrument cabinet 229, and dressing cabinet 230 are lined with cushioning pads to prevent the stored items from being damaged by shaking or collision.

[0065] In some embodiments of the present invention, the environmental control system 203 includes an air conditioning system and a cabin lighting system. Both the air conditioning system and the cabin lighting system are designed to simulate a real cabin environment.

[0066] The air conditioning system includes an air conditioner 232 and a ventilation duct 233. The air conditioner 232 is mounted on the motion platform 10, and the ventilation duct 233 is located on the side wall outside the cabin body 201. The duct outlet is connected to multiple air conditioning outlets 234 located on the side wall of the cabin body 201, and the inlet is connected to the air outlet of the air conditioner 232. Specifically, the air conditioner 232 is located outside the cabin, or it can be located in a cabinet outside the cabin. Preferably, the height of the air conditioning outlets 234 is two meters to avoid direct airflow. Multiple air outlets are evenly distributed on the side wall inside the cabin. The air conditioner 232 has a temperature control function to keep the cabin temperature within the required range; the air conditioner 232 also has a fan speed control function to adjust the fan speed. The cabin lighting system includes a lighting controller and multiple lamps 257, used to control the brightness of the lamps 257 via the lighting controller. Specifically, when the lighting system is powered on, the control panel allows for switching on and off the cabin lighting and adjusting its brightness. Manual control of the lighting controller generates lighting control commands, adjusting the current ratio of the lighting circuit to achieve brightness and color temperature adjustment. The lighting system design embodies the principles of safety, efficiency, and comfort, reducing visual fatigue and providing optimal visual environment for staff. Operators spend extended periods performing tasks within the cabin; good lighting helps alleviate visual fatigue and increases physical comfort. Simultaneously, it ensures clear surgical visibility in swaying environments.

[0067] In some preferred embodiments of the present invention, since the lighting lamp 257 requires floodlighting, mechanical structures cannot be used to block or change the light emission angle. The glare effect of the light source's bright spot can only be eliminated by designing the light emission method and using diffusion materials. The lighting lamp 257 uses a point light source and has a lampshade made of polycarbonate, serving as a uniform surface light source.

[0068] In some preferred embodiments of the present invention, as shown in the appendix Figure 10 As shown, there are six lighting lamps 257, all located on the top of the cabin. One lamp is installed on each of the left and right sides along the length direction, and two lamps are installed on each of the front and rear sides along the width direction.

[0069] In some embodiments of the present invention, the audio and video control system includes a wireless intercom system, a visual intercom system, a video surveillance system, and a voice broadcasting system.

[0070] The wireless intercom system includes a wireless intercom to enable two-way voice communication between the inside and outside of the cabin body 201.

[0071] The visual intercom system includes a visual intercom 237, which enables two-way voice communication and video conferencing between the inside and outside of the cabin body 201.

[0072] The video surveillance system includes multiple cameras 256 and monitors to monitor the interior of the cabin body 201.

[0073] The voice broadcasting system includes a broadcasting microphone located outside the cabin body 201 and a broadcasting speaker located inside the cabin body 201, so that the broadcasting information emitted by the broadcasting microphone is transmitted to the broadcasting speaker.

[0074] This embodiment enables comprehensive monitoring and real-time communication of the training process, which is beneficial for evaluating and optimizing the training effect.

[0075] In some preferred embodiments of the present invention, the video surveillance system further includes a hard disk recorder (HDD). By transmitting video information from the HDD to the outside of the cabin and viewing the high-definition video surveillance information in real time on an external monitor, and by conducting video surveillance capacity analysis, a hard disk is installed on the HDD to achieve video storage, with a storage time of not less than 30 days. The HDD can be remotely accessed from any host machine to achieve real-time viewing and recording of the motion platform cabin 10 and its internal and external monitoring videos. This embodiment can realize the storage and playback of training data, which is beneficial for the evaluation and optimization of training effects.

[0076] In some embodiments of the present invention, the electrical control system 205 includes a high-voltage cable group and a low-voltage cable group.

[0077] The high-voltage cable group includes multiple high-voltage cables, which are electrically connected to the medical equipment system 202, the environmental control system 203, and the audio-visual monitoring and communication system, respectively. This enables power supply to the medical equipment system 202, the environmental control system 203, and the audio-visual monitoring and communication system. The low-voltage cable group includes multiple low-voltage cables, specifically network cables. These cables are electrically connected to the medical equipment system 202, the environmental control system 203, and the audio-visual monitoring and communication system, respectively. This enables signal transmission between the medical equipment system 202, the environmental control system 203, the audio-visual monitoring and communication system, and the central control system.

[0078] In this embodiment, high-voltage cables and low-voltage cables are laid separately to reduce mutual interference and ensure normal operation of the equipment.

[0079] In some preferred embodiments of the present invention, as shown in the appendix Figure 3-6 As shown, all the power cables inside the cabin are concealed and pre-embedded in the splicing frame 207 inside the cabin. The power cables inside the cabin pass through the power outlet window 253 inside the cabin and are concealed. The power cables run to the top of the cabin and then from inside the top of the cabin to the power supply equipment such as the multi-functional gantry tower 226 and the surgical shadowless lamp 223.

[0080] The low-voltage cables inside the cabin are concealed within the cabin walls in advance, in order to meet the communication requirements between equipment.

[0081] Both high-voltage and low-voltage cables outside the cabin are secured using metal cable trays 252. The metal cable trays 252 are installed in sections for easy maintenance and testing later on.

[0082] In some preferred embodiments of the present invention, the cabin wall has a wire passage hole, which is protected by a wire passage rubber ring. The strong and weak current cables are further protected by plastic sleeves at bends or passages to prevent leakage caused by wear of the strong and weak current cables.

[0083] Cable trays 252 are pre-embedded within the cabin walls. These trays are located on the left and right sides and lower part of the forward and partition walls. Cables within the trays 252 are bundled into bundles and secured with dedicated adhesive cable clips to prevent movement and damage within the trays. In some preferred embodiments of the present invention, as shown in the appendix Figure 3-6 As shown, all external power and data cables are protected by aluminum alloy cable trays 252. These cable trays 252 are bolted to the motion platform 10, using flat and spring washers for anti-loosening. The power and data cables are bundled and secured inside the aluminum alloy cable trays 252 with screws to prevent loosening. The power and data cables are connected to the center of the bottom of the motion platform 10 via a flexible connection, allowing it to swing with the platform. Specifically, the motion platform 10 and the bottom of the cabin are provided with through-hole structures for the power and data cables to pass through.

[0084] In some embodiments of the present invention, the simulation cabin further includes: a fire cabinet 235, a climbing ladder 236, and an escape descent device.

[0085] The fire cabinet 235 is fastened to the bottom of the compartment body 201 with bolts. Specifically, the fire cabinet 235 is fixed with 6 M10 screws, 4 of which are fixed to the floor and the other 2 are fixed to the compartment wall.

[0086] The ladder 236 is installed on the side wall outside the main body 201. The escape descent device is installed inside the main body 201. Preferably, an escape descent device of model HJQ-1 is used. In this embodiment, the fire-fighting facilities and escape equipment are fully configured to meet the safety requirements during training.

[0087] In some embodiments of the present invention, as shown in the appendix Figure 7 As shown, the cabin also contains multiple seats 254. Each seat 254 is securely connected to the chassis of the seat 254 and the pre-installed tethering device 206 at the bottom of the cabin by three ratchet straps 246. When in use, the seat can be removed by unfastening the latches.

[0088] In some embodiments of the present invention, a power socket 255 is provided inside the simulation cabin. The power socket 255 is connected to a high-voltage cable and is used to supply power to the equipment inside the cabin body 201.

[0089] In some embodiments of the present invention, as shown in the appendix Figure 1 As shown, an emergency window 247 is installed on the side wall of the main body 201. The emergency window 247 is fitted with a sealing strip, which has the effects of sealing and heat insulation. A blackout roller blind is installed on the inside of the window, and a mosquito screen is provided.

[0090] In some embodiments of the present invention, as shown in the appendix Figure 3-6 As shown, an electrically operated ventilation window 250 is installed on the side wall of the cabin body 201. The electrically operated ventilation bed consists of electrically operated louvers and an axial flow fan. The electrically operated ventilation window 250 can open the louvers on the outside of the cabin when the axial flow fan is started, and automatically close when the axial flow fan stops, thereby completing the air exchange between the inside and outside of the cabin.

[0091] In some embodiments of the present invention, as shown in the appendix Figure 1 As shown, cable windows are provided on the side wall of the main body 201 of the cabin for passing high-voltage cables and low-voltage cables.

[0092] In some embodiments of the present invention, a fire extinguisher box 248 is installed inside the cabin body 201 using bolt fasteners. The fire extinguisher box 248 contains fire extinguishers, smoke masks, and other fire-fighting equipment.

[0093] In some embodiments of the present invention, as shown in the appendix Figure 7-12 As shown, multiple safety handrails 251 are installed on the side walls of the cabin body 201. These are for users to hold onto during violent shaking.

[0094] In some embodiments of the present invention, as shown in the appendix Figure 1 As shown, a hatch 249 is provided on the side wall of the main body 201. The hatch 249 is made of aluminum profile. A sealing rubber strip is embedded in the stop of the hatch 249 profile; the hatch 249 door lock adopts a three-point locking mechanism; the hatch 249 is provided with a door handle on the outside, and a padlock is used to lock the door on the outside. The door has a self-unlocking mechanism on the inside, ensuring that the hatch 249 can be opened from the inside after being locked on the outside. A limit device is added to the upper part of the inner side of the hatch 249, and the opening angle of the hatch 249 is adjustable.

[0095] In some embodiments of the present invention, as shown in the appendix Figure 11 As shown, a wall-mounted thermometer and hygrometer with a clock function is installed on the side wall of the cabin body 201. It is used to measure the temperature and humidity inside the cabin.

[0096] Therefore, those skilled in the art should recognize that although numerous exemplary embodiments of the present invention have been shown and described in detail herein, many other variations or modifications conforming to the principles of the present invention can be directly determined or derived from the disclosure of the present invention without departing from the spirit and scope of the invention. Thus, the scope of the present invention should be understood and construed as covering all such other variations or modifications.

Claims

1. A marine medical equipment simulation cabin, characterized in that, This includes the cabin body, medical equipment system, environmental control system, audio and video monitoring and communication system, and electrical control system; The bottom of the outer body of the cabin is fixedly connected to the motion platform; multiple tethering devices are installed inside the cabin body for securing the medical equipment system. The medical equipment system is installed inside the cabin body and is used to simulate medical training inside the cabin body; The environmental control system is installed inside the cabin body and is used to regulate the temperature, humidity and ambient brightness inside the cabin body. The audio and video monitoring and communication system is installed inside the cabin body and is used to monitor the cabin body and to achieve human-machine interaction with the control system outside the cabin body. The electrical control system is used to realize the electrical connection between the medical equipment system, the environmental control system, and the audio and video monitoring and communication system.

2. The marine medical equipment simulation cabin according to claim 1, characterized in that, The main body of the cabin is a rectangular box structure with six splicing frames, multiple frame connectors, multiple covering parts and bottom connectors; Each of the splicing frames is composed of several rectangular tubes arranged horizontally and vertically; six splicing frames are spliced ​​together to form a rectangular box structure; the area formed between adjacent rectangular tubes on each frame is filled with thermal insulation material; Each of the aforementioned covering components includes an inner skin and an outer skin, which are respectively disposed on the inner and outer sides of the splicing frame at the front, rear, left, right, and top. The plurality of said skeleton connectors are respectively used for connecting the spliced ​​skeletons at the front, rear, left, right and top; The bottom connector is used to connect the bottom splicing frame and the motion platform.

3. The marine medical equipment simulation cabin according to claim 2, characterized in that, The frame connectors include angle steel, inner angle aluminum, and outer angle aluminum; The angle steel is connected to the outside of the rectangular tubes of the two splicing frames and extends along the interface direction of the two splicing frames; The inner angle aluminum is disposed on the inner side of the inner skin at the splicing point of the two splicing frames, and is connected to the rectangular tube by bolt fasteners; The outer corner aluminum is located on the outer skin of the splicing point of the two splicing frames and is connected to the rectangular tube by bolt fasteners.

4. The marine medical equipment simulation cabin according to claim 3, characterized in that, The bottom connector is a rectangular frame structure made up of four rectangular tubes. The rectangular frame is set at the connection point between the bottom splicing skeleton and the front, back, left and right splicing skeletons, and is fixedly connected by bolts. The rectangular frame is fixedly connected to the motion platform by bolt fasteners.

5. The marine medical equipment simulation cabin according to claim 4, characterized in that, At the top of the splicing frame at the bottom, laminate and flooring are laid sequentially from bottom to top. The laminate and flooring are installed on the upper side of the rectangular frame by bolts and fasteners evenly distributed along the rectangular array. The mooring device is an embedded pull ring structure, which includes an embedded groove and a rotating pull ring formed in the body of the cabin. The rotating pull ring is fixedly installed in the embedded groove by bolt fasteners.

6. The marine medical equipment simulation cabin according to claim 1, characterized in that, The medical equipment system includes an electric operating table, surgical shadowless lamp, anesthesia ventilator, high-frequency electrosurgical unit, multi-functional pendant, oxygen supply unit, instrument table, instrument cabinet, and dressing cabinet; The electric operating table is installed at the bottom of the cabin body by bolt fasteners; The surgical shadowless lamp is mounted on the top of the cabin body via a conversion seat and is positioned above the electric operating table; The multi-functional tower crane is installed on the top of the cabin body via a conversion seat and is placed on the longitudinal side of the surgical shadowless lamp; Both the anesthesia ventilator and the high-frequency electrosurgical unit are installed on the lower side of the multi-functional tower. The oxygen supply unit includes an oxygen cylinder and an oxygen cart, the oxygen cylinder is mounted on the oxygen cart, and the oxygen cart is connected to the tethering device; The instrument table is connected to the tethering device; Both the instrument cabinet and the dressing cabinet are connected to the bottom and side walls of the main body of the cabin using bolt fasteners.

7. The marine medical equipment simulation cabin according to claim 6, characterized in that, The distance between the multi-functional pendant and the electric operating table shall not be less than 425mm; The distance between the anesthesia ventilator and the side wall of the nearest cabin body shall not be less than 710mm; The distance between the dressing cabinet and the multi-functional hanging tower shall not be less than 745mm; The distance between the electric operating table and the side wall of the nearest cabin body is not less than 890mm; The distance between the electric operating table and the instrument cabinet shall not be less than 1315mm.

8. The marine medical equipment simulation cabin according to claim 1, characterized in that, The environmental control system includes an air conditioning system and a cabin lighting system; The air conditioning system includes an air conditioner and a ventilation duct; the air conditioner is installed on the motion platform, the ventilation duct is installed on the side wall outside the cabin body, and the duct outlet is connected to a plurality of air conditioning outlets opened on the side wall of the cabin body, and the inlet is connected to the air outlet of the air conditioner. The cabin lighting system includes a lighting controller and multiple lights, used to control the brightness of the multiple lights via the lighting controller.

9. The marine medical equipment simulation cabin according to claim 1, characterized in that, The audio and video control system includes a wireless intercom system, a visual intercom system, a video surveillance system, and a voice broadcasting system; The wireless intercom system includes a wireless intercom to enable two-way voice communication between the cabin body and the control system via the intercom. The visual intercom system includes a visual intercom to enable two-way voice communication and video conferencing between the cabin body and the control system via the visual intercom. The video surveillance system includes multiple cameras installed inside the cabin body and a monitor installed outside the cabin body, enabling monitoring of the cabin body. The voice broadcasting system includes a broadcasting microphone located outside the cabin and a broadcasting speaker located inside the cabin body, so that broadcasting information emitted from the broadcasting microphone is transmitted to the broadcasting speaker.

10. The marine medical equipment simulation cabin according to claim 1, characterized in that, Also includes: Fire cabinet, ladder to the top, escape descent device; The fire cabinet is fastened to the bottom of the cabin body by bolts; The ladder to the top is installed on the side wall of the outer body of the cabin; The escape descent device is installed inside the cabin body.