Movable intelligent life maintenance cabin

By designing an intelligent life support cabin including base plate, accessories cabin and personnel cabin cover, combined with a variety of sensors and disinfection equipment, the problem of inability to effectively isolate patients from the outside world in the existing technology is solved, and safe treatment in harsh environments and transportation needs in multiple scenarios are achieved.

CN120324813APending Publication Date: 2025-07-18SIMA (QINGDAO) INTELLIGENT EQUIP TECH CO LTD
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Patent Information

Application Number
CN202510490201.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

When used in harsh environments, the existing mobile smart life support cabin cannot effectively isolate patients from the outside world, resulting in worsening of patient injuries and a single function, which cannot meet the various outdoor protection needs.

Method used

A movable intelligent life support cabin is designed, including a base plate, an accessory cabin and a personnel cabin cover, equipped with a variety of detection and control equipment, including oxygen concentration, temperature, humidity and air pressure sensors, and a disinfection tank and a fan. Through the coordinated operation of multiple equipment, the control and detection of the cabin environment is achieved and patient protection is enhanced.

Benefits of technology

It has achieved effective treatment and transportation of wounded people in harsh environments, improved the safety and treatment effect of patients, enhanced the stability and detection accuracy of the cabin environment, and extended the service life of parts.

✦ Generated by Eureka AI based on patent content.

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    Figure CN120324813A_ABST
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Abstract

The invention discloses a movable intelligent life maintenance cabin. Comprising a bottom plate, an accessory cabin is movably installed at the top of one end of the bottom plate, a man-machine interaction display screen is arranged on the accessory cabin, a personnel cabin cover is rotatably installed at the top of the end, away from the accessory cabin, of the bottom plate, a plurality of observation windows are formed in the personnel cabin cover, and a first opening and a second opening are formed in the top of the personnel cabin cover; a positioning mechanism is arranged at the position, inside the personnel hatch cover, of the bottom plate. By arranging the bottom plate, the personnel hatch cover and the accessory cabin, when the wounded needs to be transferred, the wounded only needs to be fixed in the personnel hatch cover, control over factors such as pressure, temperature and oxygen concentration in the personnel hatch cover can be achieved through common operation of various devices in the accessory cabin, and the device is convenient to use and high in practicability. The wounded person can be well protected, the wounded person can be conveniently treated and transferred in a severe environment, and the transferring requirement for the wounded person in multiple scenes can be met.
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Description

Technical Field

[0001] The present invention relates to the technical field of life support cabins, and particularly relates to a movable intelligent life support cabin. Background Art

[0002] A mobile intelligent life support cabin is an innovative device integrating advanced medical technology and information technology, and is used for transporting critically ill and injured patients in disaster accidents. Its purpose is to provide a suitable treatment environment for the transportation and evacuation of injured patients in harsh environments, which helps to improve the treatment effect of injured patients.

[0003] Currently, mobile intelligent life support cabins can be divided into rigid cabins and soft cabins in terms of materials. Rigid cabins are mostly made of metal materials. When treating patients in areas with poor environments, it is not convenient for staff to carry them. While soft cabins have incomplete internal functions during use and cannot provide a stable support effect for patients. Moreover, the currently used life support cabins have a single function when used outdoors and cannot meet the various protection needs of patients in outdoor situations. When the patient cannot be isolated from the outside inside the support cabin, the patient's injury will be aggravated under the influence of harsh environments, affecting the treatment of the patient. Summary of the Invention

[0004] In view of the defects in the prior art, the present invention provides a movable intelligent life support cabin, including a bottom plate. At the top of one end of the bottom plate, a fitting cabin is movably installed. An intelligent human-machine interaction display screen is provided on the fitting cabin. At the top of the other end of the bottom plate away from the fitting cabin, a personnel cabin cover is rotatably installed. A plurality of observation windows are opened on the personnel cabin cover. A first opening and a second opening are opened at the top of the personnel cabin cover. A positioning mechanism is provided at the position of the bottom plate inside the personnel cabin cover. Handling handles are installed on both side walls of the bottom plate. An air inlet pipe and a first gas pipeline interface are provided on the fitting cabin. A second gas pipeline interface is installed at the position of the bottom plate away from the fitting cabin. An auxiliary mechanism is provided inside the personnel cabin cover.

[0005] Preferably, a trapezoidal groove is opened at the top of the bottom plate near the fitting cabin. A trapezoidal block is inserted and installed inside the trapezoidal groove. The top of the trapezoidal block is connected to the bottom of the fitting cabin.

[0006] Preferably, stoppers are movably installed at both ends of the trapezoidal groove of the fitting cabin. A lifting sliding groove is opened at the position of the fitting cabin near the stopper. A lifting electric slider is slidably installed inside the lifting sliding groove. The side of the lifting electric slider close to the stopper is connected to the stopper.

[0007] Preferably, the positioning mechanism includes a first movable plate and a second movable plate. The first movable plate and the second movable plate are movably installed at the top of the bottom plate. A clamping mechanism is provided on the first movable plate. Straps can be installed on the second movable plate.

[0008] Preferably, a moving chute is formed at the top of the bottom plate. A first moving electric slider is installed at the bottom of the first movable plate, and the first moving electric slider is slidably installed inside the moving chute. A second moving electric slider is installed at the bottom of the second movable plate, and the second moving electric slider is slidably installed inside the moving chute.

[0009] Preferably, the clamping mechanism includes clamping plates. A displacement chute is formed at the top of the first movable plate. Two clamping plates are arranged above the first movable plate. A displacement electric slider is installed at the bottom of the clamping plate, and the displacement electric slider is slidably installed inside the displacement chute.

[0010] Preferably, the auxiliary mechanism includes a connecting member and a disinfection water tank. The connecting member is movably installed inside the personnel hatch. Two disinfection water tanks are installed at the top of the connecting member. A booster pump is built inside the disinfection water tank, and atomizing nozzles are arranged on the disinfection water tank.

[0011] Preferably, an annular chute is formed at the top end of the inner wall of the personnel hatch. An annular electric slider is slidably installed inside the annular chute. The bottom of the annular electric slider is movably connected to a connecting rod. A rotary motor is embedded at the top of the connecting rod. The installation end of the rotary motor faces upward, and the installation end of the rotary motor is connected to the annular electric slider. The bottom of the connecting rod is movably connected to the top of the connecting member.

[0012] Preferably, a first chute is formed at the top of the connecting member. A first electric slider is slidably installed inside the first chute. An electric telescopic rod is embedded at the bottom of the connecting rod. The telescopic end of the electric telescopic rod faces downward, and the telescopic end of the electric telescopic rod is connected to the top of the first electric slider.

[0013] Preferably, a rotating member is rotatably installed inside the connecting member. A rotating motor is embedded on one side wall of the connecting member. The output end of the rotating motor is connected to the rotating member. A blower and a pressure sensor are installed inside the rotating member. A third opening is formed through the outer wall of the rotating member. A temperature sensor, a humidity sensor, an oxygen sensor and a carbon dioxide sensor are installed on the outer wall of the rotating member.

[0014] The beneficial effects of the present invention are embodied in:

[0015] In the present invention, by providing a bottom plate, a personnel hatch and a fitting compartment, when it is necessary to transfer the wounded, the wounded only need to be fixed inside the personnel hatch. Through the joint operation of various devices in the fitting compartment, the control of factors such as pressure, temperature, and oxygen concentration inside the personnel hatch can be realized. The device is easy to use and can provide good protection for the wounded, facilitating the treatment and transfer of the wounded in harsh environments and meeting the transfer requirements of the wounded in multiple scenarios.

[0016] In the present invention, by providing a baffle plate, when the device is in use, the trapezoidal block on the accessory compartment can be slidably installed into the trapezoidal groove, thus completing the assembly between the accessory compartment and the bottom plate. By this operation method, the use of the accessory compartment is made more convenient, facilitating the disassembly of the accessory compartment when it is damaged. After the accessory compartment is installed, by the sliding of the lifting electric slider in the lifting chute, the baffle plate is clamped outside the trapezoidal block. By this operation method, the installation stability of the accessory compartment on the bottom plate can be increased;

[0017] When the staff is carrying and transferring the device, if it is necessary to place the device on the ground during the process and the ground is on a slope, at this time, after the staff places the device on the ground, by the sliding of the lifting electric slider in the lifting chute, the stopper continuously moves downward until the stopper inserts into the ground. By this operation method, the stopper can act as a positioning pin, increasing the stability of the device when placed on the ground.

[0018] In the present invention, by providing a connecting piece, a disinfection water tank and a rotating piece, during the process of treating and transferring the wounded, the connecting piece can move inside the personnel hatch cover. By the way that the connecting piece moves inside the personnel hatch cover, the rotating piece can detect and compare the oxygen concentration, temperature, humidity, carbon dioxide concentration and the pressure inside the personnel hatch cover at multiple positions inside the personnel hatch cover. And this detection method can increase the accuracy of the detection results, preventing the weakening of the treatment effect on the wounded caused by the abnormal local function of the device;

[0019] When it is detected that the oxygen concentration inside the personnel hatch cover is unevenly distributed in different regions, at this time, the fan is started. Combining with the movement of the connecting piece in the personnel hatch cover, the wind blown by the fan can accelerate the flow rate of oxygen inside the personnel hatch cover. By this operation method, the protection and treatment effect of the device on the wounded can be improved;

[0020] When it is necessary to clean and disinfect the active parts of the patients inside the personnel hatch cover, by the movement of the connecting piece inside the personnel hatch cover, the booster pump inside the disinfection water tank is started, so that the disinfection water inside the disinfection water tank is sprayed out through the atomizing nozzle, thus completing the disinfection work on the active parts of the patients inside the personnel hatch cover. During the process of spraying the disinfection water, by the rotation of the rotating piece combined with the blowing of the fan, the diffusion of the disinfection water can be accelerated, thus achieving the effect of increasing the spraying effect of the disinfection water;

[0021] When it is necessary to detect the airtightness at the joint between the personnel hatch and the bottom plate, the electric telescopic rod drives the connecting piece to extend downward until the bottom of the rotating piece abuts against the top of the bottom plate. Then, through the sliding of the first electric slider in the first chute, the rotating piece can abut against the inner wall of the personnel hatch while abutting against the top of the bottom plate. The rotating piece divides the joint between the bottom plate and the personnel hatch into an independent airtight space. By blowing air with a blower, the airtight space is pressurized. Subsequently, within a preset time, the air pressure sensor detects the change in the air pressure value in the airtight space and compares it with the standard air pressure leakage value detected during equipment debugging. If the air pressure leakage value exceeds the standard air pressure leakage value, it indicates that the airtightness at this place is unqualified;

[0022] When the device is not in use, the humidity sensor detects the humidity of each part inside the personnel hatch. When it detects that the humidity at some parts is too high, at this time, the blower can be used to blow air at this place to increase the air fluidity at this place, thereby drying the parts and extending the service life of the parts at this place. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the specific embodiments or the prior art. In all the drawings, similar elements or parts are generally denoted by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to scale.

[0024] Figure 1 Schematic diagram of the overall structure of the present invention;

[0025] Figure 2 Schematic diagram of the bottom plate structure of the present invention;

[0026] Figure 3 Schematic diagram of the stopper installation structure of the present invention;

[0027] Figure 4 Schematic diagram of the installation structure of the first movable plate and the second movable plate of the present invention;

[0028] Figure 5 Schematic diagram of the splint installation structure of the present invention;

[0029] Figure 6 Schematic diagram of the installation structure of the second moving electric slider and the second movable plate of the present invention;

[0030] Figure 7 Schematic diagram of the internal structure of the personnel hatch of the present invention;

[0031] Figure 8 For the present invention Figure 7 Enlarged structure schematic diagram at position A

[0032] Figure 9 Schematic diagram of the installation structure of the connecting piece, disinfection water tank and rotating piece of the present invention;

[0033] Figure 10 Schematic diagram of the installation structure of the connecting rod and the connecting piece of the present invention;

[0034] Figure 11 Schematic diagram of the installation structure of the electric telescopic rod of the present invention;

[0035] Figure 12 Schematic diagram of the installation structure of the rotating motor of the present invention.

[0036] In the drawings, 1, bottom plate; 2, carrying handle; 3, personnel hatch; 4, accessory compartment; 5, man-machine interaction display screen; 6, intake pipe; 7, first gas pipeline interface; 8, second gas pipeline interface; 9, observation window; 10, first opening; 11, second opening; 12, lifting chute; 13, lifting electric slider; 14, stop block; 15, trapezoidal groove; 16, moving chute; 17, first moving electric slider; 18, second moving electric slider; 19, trapezoidal block; 20, first movable plate; 21, second movable plate; 22, displacement chute; 23, displacement electric slider; 24, clamping plate; 25, annular chute; 26, annular electric slider; 27, connecting rod; 28, connecting piece; 29, disinfection water tank; 30, rotating piece; 31, rotating motor; 32, fan; 33, air pressure sensor; 34, first chute; 35, first electric slider; 36, third opening; 37, temperature sensor; 38, humidity sensor; 39, oxygen sensor; 40, carbon dioxide sensor; 41, electric telescopic rod; 42, rotating motor. Detailed implementation manners

[0037] The embodiments of the technical solutions of the present invention will be described in detail below with reference to the drawings. The following embodiments are only used to illustrate the technical solutions of the present invention more clearly, so they are only examples and cannot be used to limit the protection scope of the present invention.

[0038] It should be noted that unless otherwise specified, the technical terms or scientific terms used in this application should have the ordinary meanings understood by those skilled in the art to which the present invention belongs.

[0039] Such as Figures 1-12As shown in the figure, a movable intelligent life support cabin includes a bottom plate 1. At the top of one end of the bottom plate 1, a fitting cabin 4 is movably installed. An interactive display screen 5 for human-machine interaction is provided on the fitting cabin 4. At the top of the end of the bottom plate 1 away from the fitting cabin 4, a personnel cabin cover 3 is rotatably installed. A plurality of observation windows 9 are opened on the personnel cabin cover 3. A first opening 10 and a second opening 11 are opened at the top of the personnel cabin cover 3. A positioning mechanism is provided at the position of the bottom plate 1 inside the personnel cabin cover 3. Handling handles 2 are installed on both side walls of the bottom plate 1. An air inlet pipe 6 and a first gas pipeline interface 7 are provided on the fitting cabin 4. A second gas pipeline interface 8 is installed at the position of the bottom plate 1 away from the fitting cabin 4. An auxiliary mechanism is provided inside the personnel cabin cover 3. The interactive display screen 5 for human-machine interaction facilitates the operation of the device by the staff. The interactive display screen 5 is the utilization of existing technology and will not be elaborated here. The setting of the personnel cabin cover 3 enables the wounded to be nursed in a closed space, increasing the safety of transporting the wounded. The auxiliary mechanism can perform functional detection on various situations inside the personnel cabin cover 3.

[0040] As a technical optimization scheme of the present invention, a trapezoidal groove 15 is opened at the top of the bottom plate 1 near the fitting cabin 4. A trapezoidal block 19 is inserted and installed inside the trapezoidal groove 15. The top of the trapezoidal block 19 is connected to the bottom of the fitting cabin 4. The installation between the fitting cabin 4 and the bottom plate 1 is completed by inserting the trapezoidal block 19 into the trapezoidal groove 15.

[0041] As a technical optimization scheme of the present invention, stoppers 14 are movably installed at both ends of the trapezoidal groove 15 of the fitting cabin 4. A lifting sliding groove 12 is opened at the position of the fitting cabin 4 near the stopper 14. A lifting electric slider 13 is slidably installed inside the lifting sliding groove 12. The side of the lifting electric slider 13 close to the stopper 14 is connected to the stopper 14. By sliding the lifting electric slider 13 in the lifting sliding groove 12, the stopper 14 can move up and down. When the stopper 14 is outside the trapezoidal block 19, it can act as a clamping block, increasing the installation stability of the fitting cabin 4. When the stopper 14 is inserted into the ground, it can act as a positioning pin, increasing the placement stability of the device on the ground.

[0042] As a technical optimization scheme of the present invention, the positioning mechanism includes a first movable plate 20 and a second movable plate 21. The first movable plate 20 and the second movable plate 21 are movably installed at the top of the bottom plate 1. A clamping mechanism is provided on the first movable plate 20. Straps can be installed on the second movable plate 21. The clamping mechanism on the first movable plate 20 fixes the medical monitoring equipment. The wounded are fixed on the second movable plate 21 through the straps. Combining the movement of the first movable plate 20 and the second movable plate 21 facilitates the treatment work of the staff on the wounded.

[0043] As a technical optimization solution of the present invention, a moving chute 16 is provided at the top of the bottom plate 1. A first moving electric slider 17 is installed at the bottom of the first movable plate 20. The first moving electric slider 17 is slidably installed inside the moving chute 16. A second moving electric slider 18 is installed at the bottom of the second movable plate 21. The second moving electric slider 18 is slidably installed inside the moving chute 16. By the sliding of the first moving electric slider 17 and the second moving electric slider 18 in the moving chute 16, the first movable plate 20 and the second movable plate 21 can be driven to move.

[0044] As a technical optimization solution of the present invention, the clamping mechanism includes a clamping plate 24. A displacement chute 22 is provided at the top of the first movable plate 20. Two clamping plates 24 are provided above the first movable plate 20. A displacement electric slider 23 is installed at the bottom of the clamping plate 24. The displacement electric slider 23 is slidably installed inside the displacement chute 22. By the sliding of the displacement electric slider 23 in the displacement chute 22, the clamping plate 24 can be driven to move, so as to complete the fixation of the medical monitoring device placed on the first movable plate 20, and it can also be automatically adjusted according to the size of the medical monitoring device.

[0045] As a technical optimization solution of the present invention, the auxiliary mechanism includes a connecting member 28 and a disinfection water tank 29. The connecting member 28 is movably installed inside the personnel hatch 3. Two disinfection water tanks 29 are installed at the top of the connecting member 28. A booster pump is built in the disinfection water tank 29, and an atomizing nozzle is provided on the disinfection water tank 29. When the booster pump inside the disinfection water tank 29 is started, the disinfection water inside the disinfection water tank 29 can be sprayed outwards through the atomizing nozzle to realize the spraying and disinfection of the device.

[0046] As a technical optimization solution of the present invention, an annular chute 25 is provided at the top end of the inner wall of the personnel hatch 3. An annular electric slider 26 is slidably installed inside the annular chute 25. The bottom of the annular electric slider 26 is movably connected to a connecting rod 27. The top of the connecting rod 27 is embedded with a rotating motor 42. The installation end of the rotating motor 42 faces upwards, and the installation end of the rotating motor 42 is connected to the annular electric slider 26. The bottom of the connecting rod 27 is movably connected to the top of the connecting member 28. By the sliding of the annular electric slider 26 in the annular chute 25, the connecting member 28 can be driven to move inside the personnel hatch 3, and the rotating motor 42 can drive the connecting member 28 to rotate, which is convenient for the connecting member 28 to be used at multiple angles.

[0047] As a technical optimization solution of the present invention, a first sliding groove 34 is formed at the top of the connecting member 28. A first electric slider 35 is slidably installed inside the first sliding groove 34. The bottom of the connecting rod 27 is embedded with an electric telescopic rod 41. The telescopic end of the electric telescopic rod 41 faces downward, and the telescopic end of the electric telescopic rod 41 is connected to the top of the first electric slider 35. By the sliding of the first electric slider 35 in the first sliding groove 34, the connecting member 28 can be driven to move, so that the connecting member 28 can move closer to the inner wall of the personnel hatch 3. The electric telescopic rod 41 can drive the connecting member 28 to perform a downward extending movement according to different usage requirements.

[0048] As a technical optimization solution of the present invention, a rotating member 30 is rotatably installed inside the connecting member 28. A rotating motor 31 is embedded on one side wall of the connecting member 28. The output end of the rotating motor 31 is connected to the rotating member 30. A blower 32 and a pressure sensor 33 are installed inside the rotating member 30. A third opening 36 is formed through the outer wall of the rotating member 30. A temperature sensor 37, a humidity sensor 38, an oxygen sensor 39 and a carbon dioxide sensor 40 are installed on the outer wall of the rotating member 30. By the way that the connecting member 28 moves inside the personnel hatch 3, the rotating member 30 can detect and compare the oxygen concentration, temperature, humidity, carbon dioxide concentration and the internal pressure of the personnel hatch 3 at multiple positions inside the personnel hatch 3. And this detection method can increase the accuracy of the detection results and prevent the weakening of the treatment effect of the device on the wounded due to local functional abnormalities of the device;

[0049] When it is detected that the oxygen concentration inside the personnel hatch 3 is unevenly distributed in different regions, at this time, the blower 32 is started. Combining with the way that the connecting member 28 moves in the personnel hatch 3, the air blown by the blower 32 can accelerate the flow rate of the oxygen inside the personnel hatch 3. By this operation method, the protection and treatment effect of the device on the wounded can be improved;

[0050] When it is necessary to clean and disinfect the movable parts of the patients inside the personnel hatch 3, by the movement of the connecting member 28 inside the personnel hatch 3, the booster pump inside the disinfection water tank 29 is started, so that the disinfection water inside the disinfection water tank 29 is sprayed out through the atomizing nozzle, thereby completing the disinfection work on the movable parts of the patients inside the personnel hatch 3. During the spraying of the disinfection water, by rotating the rotating member 30 and combining with the blowing of the blower 32, the diffusion of the disinfection water can be accelerated, so as to achieve the effect of increasing the spraying effect of the disinfection water.

[0051] When the present invention is in use, a power source is provided inside the accessory compartment 4. An airtight and watertight zipper is provided at the opening and closing part of the personnel hatch 3 and the bottom plate 1, and a sealing strip is provided at the airtight and watertight zipper. The airtight and watertight zipper is a mature existing technology, so no further elaboration will be made on it. The components inside the personnel hatch 3 are made of flexible wire-drawing airtight material, and airbags that can be independently inflated are provided in each part of the mechanism inside the personnel hatch 3. A mechanical safety relief valve is installed at the first opening 10, and an electromagnetic valve is installed at the second opening 11. The mechanical safety relief valve and the electromagnetic valve are both mature existing technologies, so no further elaboration will be made on them. A small refrigeration air conditioner and a small warm air conditioner are provided inside the accessory compartment 4, and the temperature and gas pressure inside the personnel hatch 3 are controlled by means of pipeline connection through the first gas pipeline interface 7 and the second gas pipeline interface 8. The air inlet of the fan 32 is connected to the third opening 36, and a sealing strip is provided at the outer edge of the rotating part 30;

[0052] An existing medical monitoring device is placed on the top of the first movable plate 20 and clamped and fixed by the clamping plate 24. The medical device monitors key physiological parameter information such as the heart rate, blood pressure, body temperature, blood oxygen saturation, and respiratory rate of the injured. The medical monitoring device is a mature existing device technology, so no further elaboration will be made on it. Multiple communication methods such as satellite communication, 5G self-organizing network, and short-wave radio are provided inside the device to provide real-time high-precision positioning information to ensure that the rescue team can quickly and accurately locate. The Beidou high-precision positioning system receiver can provide accurate geographical location information, and the inertial navigation system (INS) provides position and direction information when the GPS signal is unavailable. These usage methods are all mature existing technologies, so no further elaboration will be made on them. The battery pack in the accessory compartment 4 provides power support for the electrical mechanisms on the device. When there is an external power source, the battery pack in the accessory compartment 4 can be charged by connecting to the external power source.

[0053] When the device is in use, the accessory compartment 4 can be assembled with the bottom plate 1 by sliding the trapezoidal block 19 on the accessory compartment 4 into the trapezoidal groove 15. By this operation method, the use of the accessory compartment 4 is more convenient and it is convenient to disassemble the accessory compartment 4 when it is damaged. After the accessory compartment 4 is installed, by sliding the lifting electric slider 13 in the lifting chute 12, the stop block 14 is stuck at the Figure 1 shown usage position. By this operation method, the installation stability of the accessory compartment 4 on the bottom plate 1 can be increased;

[0054] When the staff are carrying and transferring the device, if it is necessary to place the device on the ground midway and the ground is on a slope, after the staff place the device on the ground, by sliding the lifting electric slider 13 in the lifting chute 12, the stop block 14 continuously moves downward until the stop block 14 is inserted into the ground. By this operation method, the stop block 14 can act as a positioning pin, increasing the stability of the device when placed on the ground.

[0055] When treating the injured, the staff open the airtight and watertight zipper at the personnel hatch 3 and the bottom plate 1, then turn the personnel hatch 3 upward, move the injured to be treated above the second movable plate 21, and then the staff use straps to fix the injured above the second movable plate 21. When the position of the injured needs to be transferred after being fixed and lying properly, only by sliding the second moving electric slider 18 in the moving chute 16 can the position of the injured be moved, without the injured moving by themselves, reducing the possibility of secondary injury to the injured during movement. Then, connect the medical monitoring equipment placed on the first movable plate 20 to the injured for monitoring. Then, the staff close the personnel hatch 3 and pull up the airtight and watertight zipper, which is convenient for the staff to treat the injured.

[0056] During the process of treating and transferring the injured, by sliding the annular electric slider 26 in the annular chute 25, the connecting piece 28 can move inside the personnel hatch 3. By the way that the connecting piece 28 moves inside the personnel hatch 3, the rotating piece 30 can detect and compare the oxygen concentration, temperature, humidity, carbon dioxide concentration at multiple positions inside the personnel hatch 3 and the pressure inside the personnel hatch 3. And this detection method can increase the accuracy of the detection results and prevent the weakening of the treatment effect of the device on the injured due to local functional abnormalities of the device.

[0057] When it is detected that the oxygen concentration inside the personnel hatch 3 is unevenly distributed in different areas, at this time, start the fan 32. Combining the movement of the connecting piece 28 in the personnel hatch 3, the wind blown by the fan 32 can accelerate the flow rate of oxygen inside the personnel hatch 3. By this operation method, the protection and treatment effect of the device on the injured can be improved.

[0058] When it is necessary to clean and disinfect the activity parts of the patients inside the personnel hatch 3, by the movement of the connecting piece 28 inside the personnel hatch 3, start the booster pump inside the disinfection water tank 29, so that the disinfection water inside the disinfection water tank 29 is sprayed out through the atomizing nozzle, thus completing the disinfection work on the activity parts of the patients inside the personnel hatch 3. During the process of spraying the disinfection water, by rotating the rotating piece 30 and blowing the wind by the fan 32, the diffusion of the disinfection water can be accelerated, so as to achieve the effect of increasing the spraying effect of the disinfection water.

[0059] When it is necessary to detect the airtightness at the joint between the personnel hatch 3 and the bottom plate 1, the electric telescopic rod 41 drives the connecting piece 28 to extend downward until the bottom of the rotating piece 30 abuts against the top of the bottom plate 1. Then, through the sliding of the first electric slider 35 in the first chute 34, the rotating piece 30 can abut against the inner wall of the personnel hatch 3 while abutting against the top of the bottom plate 1. The rotating piece 30 divides the joint between the bottom plate 1 and the personnel hatch 3 into an independent sealed space. By blowing air through the blower 32, the sealed space is pressurized. Subsequently, within a preset time, the change in the air pressure value in the sealed space is detected by the air pressure sensor 33 and compared with the standard air pressure leakage value detected during equipment debugging. If the air pressure leakage value exceeds the standard air pressure leakage value, it indicates that the airtightness at this place is unqualified.

[0060] When the device is not in use, the humidity sensor 38 detects the humidity of each part inside the personnel hatch 3. When it is detected that the humidity at some parts is too high, at this time, the blower 32 can be used to blow air at this place to increase the air fluidity at this place, thereby completing the drying of this part and extending the service life of the parts at this place.

[0061] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present invention, and they should all be covered by the scope of the claims and the description of the present invention.

Claims

1. A movable intelligent life support cabin, including a bottom plate (1), characterized in that, One end of the top of the base plate (1) is movably installed with a fitting cabin (4). An interactive display screen (5) for human-machine interaction is provided on the fitting cabin (4). The top of the end of the base plate (1) away from the fitting cabin (4) is rotatably installed with a personnel cabin cover (3). A plurality of observation windows (9) are opened on the personnel cabin cover (3). A first opening (10) and a second opening (11) are opened on the top of the personnel cabin cover (3). A positioning mechanism is provided at the position of the base plate (1) inside the personnel cabin cover (3). Handling handles (2) are installed on both side walls of the base plate (1). An air inlet pipe (6) and a first gas pipeline interface (7) are provided on the fitting cabin (4). A second gas pipeline interface (8) is installed at the position of the base plate (1) away from the fitting cabin (4). An auxiliary mechanism is provided inside the personnel cabin cover (3).

2. The mobile intelligent life support cabin according to claim 1, characterized in that, A trapezoidal groove (15) is opened at the top of the base plate (1) near the fitting cabin (4). A trapezoidal block (19) is inserted and installed inside the trapezoidal groove (15). The top of the trapezoidal block (19) is connected to the bottom of the fitting cabin (4).

3. The mobile intelligent life support cabin according to claim 2, characterized in that, Stoppers (14) are movably installed at both ends of the trapezoidal groove (15) of the fitting cabin (4). A lifting sliding groove (12) is opened at the position of the fitting cabin (4) near the stopper (14). A lifting electric slider (13) is slidably installed inside the lifting sliding groove (12). One side of the lifting electric slider (13) close to the stopper (14) is connected to the stopper (14).

4. The movable intelligent life support cabin according to claim 1, characterized in that, The positioning mechanism includes a first movable plate (20) and a second movable plate (21). The first movable plate (20) and the second movable plate (21) are movably installed on the top of the base plate (1). A clamping mechanism is provided on the first movable plate (20). Straps can be installed on the second movable plate (21).

5. The mobile intelligent life support cabin according to claim 4, characterized in that, A moving sliding groove (16) is opened at the top of the base plate (1). A first moving electric slider (17) is installed at the bottom of the first movable plate (20). The first moving electric slider (17) is slidably installed inside the moving sliding groove (16). A second moving electric slider (18) is installed at the bottom of the second movable plate (21). The second moving electric slider (18) is slidably installed inside the moving sliding groove (16).

6. The mobile intelligent life support cabin according to claim 4, characterized in that, The clamping mechanism includes clamping plates (24). A displacement sliding groove (22) is opened at the top of the first movable plate (20). Two clamping plates (24) are provided above the first movable plate (20). A displacement electric slider (23) is installed at the bottom of the clamping plate (24). The displacement electric slider (23) is slidably installed inside the displacement sliding groove (22).

7. The mobile intelligent life support cabin according to claim 1, characterized in that, The auxiliary mechanism includes a connecting member (28) and a disinfection water tank (29). The connecting member (28) is movably installed inside the personnel cabin cover (3). Two disinfection water tanks (29) are installed at the top of the connecting member (28). A booster pump is built in the disinfection water tank (29), and atomizing nozzles are provided on the disinfection water tank (29).

8. The mobile intelligent life support cabin according to claim 7, characterized in that, The inner wall top of the personnel hatch (3) is provided with an annular sliding groove (25). An annular electric slider (26) is slidably installed inside the annular sliding groove (25). The bottom of the annular electric slider (26) is movably connected to a connecting rod (27). A rotary motor (42) is embedded at the top of the connecting rod (27). The installation end of the rotary motor (42) faces upward, and the installation end of the rotary motor (42) is connected to the annular electric slider (26). The bottom of the connecting rod (27) is movably connected to the top of a connecting member (28).

9. The mobile intelligent life support cabin according to claim 8, characterized in that, The top of the connecting member (28) is provided with a first sliding groove (34). A first electric slider (35) is slidably installed inside the first sliding groove (34). An electric telescopic rod (41) is embedded at the bottom of the connecting rod (27). The telescopic end of the electric telescopic rod (41) faces downward, and the telescopic end of the electric telescopic rod (41) is connected to the top of the first electric slider (35).

10. A movable intelligent life support cabin according to claim 7, characterized in that, A rotating member (30) is rotatably installed inside the connecting member (28). A rotating motor (31) is embedded on one side wall of the connecting member (28). The output end of the rotating motor (31) is connected to the rotating member (30). A blower (32) and a pressure sensor (33) are installed inside the rotating member (30). A third opening (36) is penetrated through the outer wall of the rotating member (30). A temperature sensor (37), a humidity sensor (38), an oxygen sensor (39), and a carbon dioxide sensor (40) are installed on the outer wall of the rotating member (30).