Integrated newborn ward batch escape and transfer device based on air cushion guide and constant-temperature protection
By designing an integrated batch escape transport device for neonatal wards, the problem of safe transport in neonatal wards in the event of sudden fires is solved, and rapid and safe transport of multiple neonatals and temperature maintenance is achieved, ensuring real-time monitoring of physiological data.
Patent Information
- Application Number
- CN202510800351.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-16
- Publication Date
- 2025-07-22
AI Technical Summary
The existing neonatal wards lack effective batch escape methods in extreme situations such as sudden fires. Traditional bed pushing or manual transport methods are inefficient and have high risks, making it difficult to ensure the safety of newborns and constant body temperature.
An integrated batch escape and transport device in the neonatal ward is designed, using base parts, bearing plates, constant temperature protection cabins, flexible air cushions, locking mechanisms and medical monitoring components. Through the cooperation of universal wheels, locking mechanisms and positioning chutes, it can achieve rapid combination and transport. It is equipped with a flexible flame retardant insulation layer and a constant temperature gel layer to maintain constant temperature, and is equipped with medical monitoring components to monitor real-time.
It realizes the rapid and safe transportation of multiple newborns in the event of fire, maintains constant body temperature, ensures real-time monitoring of physiological data, and reduces the risk of transportation. The device can still maintain function for 30 minutes in a power-loss environment.
Smart Images

Figure CN120346064A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of neonatal wards, and particularly relates to an integrated neonatal ward batch escape and transfer device based on air cushion guiding and constant temperature protection. Background Art
[0002] NICU is the abbreviation of Neonatal Intensive Care Unit. A neonatal intensive care unit is a ward for centralized treatment of critically ill newborns, which requires high medical and nursing technical forces, a large number of nursing staff and modern medical equipment. Its purpose is to reduce the mortality rate of newborns, reduce complications and improve the quality of medical care. Currently, in the neonatal department ward, there is a lack of effective batch escape means in extreme situations such as sudden fire and thick smoke. Since newborns cannot move on their own and need to maintain a constant body temperature and life support, the traditional push bed or manual holding and transfer methods are inefficient and risky. Especially when the on-duty staff is limited, it is difficult to ensure the safety of all newborns. Summary of the Invention
[0003] Aiming at the above-mentioned shortcomings of the existing technology, the invention provides an integrated neonatal ward batch escape and transfer device based on air cushion guiding and constant temperature protection, which can effectively solve the problems of the existing technology.
[0004] To solve the above technical problems, the invention is realized through the following technical solutions: The invention is an integrated neonatal ward batch escape and transfer device based on air cushion guiding and constant temperature protection, including a base member and a bottom plate member arranged on the lower end face of the base member, and further includes: A first bearing plate, fixed on one side of the upper end face of the base member, and a constant temperature protection type cabin is fixed on the upper end face of the first bearing plate. A flexible air cushion is arranged inside the constant temperature protection type cabin; A positioning mechanism, arranged at the lower end of the constant temperature protection type cabin, for connecting the main constant temperature protection type cabin with the first bearing plate; A second bearing plate, arranged on one side of the first bearing plate. Locking mechanisms are symmetrically arranged on the left and right sides inside the first bearing plate for connecting and limiting the first bearing plate and the second bearing plate; A protective panel, arranged on the upper end of the constant temperature protection type cabin, for protecting the connection part between two groups of constant temperature protection type cabins; A reinforcement mechanism, arranged on the upper end face of the base member, for limiting multiple groups of second bearing plates; A protection component, arranged inside the constant temperature protection type cabin; A medical monitoring component, arranged at the upper end inside the constant temperature protection type cabin. An emergency support interface is arranged on one side of the constant temperature protection type cabin Furthermore, universal wheels are evenly arranged on the lower end face of the bottom plate member. An adjusting rod is arranged on the outside of the first bearing plate, and the adjusting rod is rotatably connected to one end of the first bearing plate.
[0005] Further, the positioning mechanism includes a connecting chute and a positioning plate. The connecting chute is opened on the upper end surface of the first bearing plate, and the cross-section of the connecting chute is a "T" - shaped structure. The positioning plate is fixed on the lower end surface of the thermostatic protection cabin body, and the positioning plate is slidably clamped inside the thermostatic protection cabin body.
[0006] Further, one side of the second bearing plate is fixed with an extension plate, and the extension plate is slidably clamped and embedded inside the first bearing plate. The outer side of the extension plate is evenly provided with positioning chutes.
[0007] Further, the locking mechanism includes a pressing plate, a pushing spring, a connecting rod, a positioning rotating shaft, a pushing plate and a pushing groove. The pressing plate is slidably clamped on one side of the first bearing plate. The pushing springs are symmetrically arranged on the left and right sides of the pressing plate. The connecting rod is fixed on the inner side of the pressing plate. The positioning rotating shaft is rotatably connected to the inner side of the first bearing plate. The pushing plate is rotatably connected to the outer side of the positioning rotating shaft. The pushing groove is opened on one side of the pushing plate, and one end of the connecting rod can be slidably embedded into the pushing groove.
[0008] Further, a locking clamping plate is fixed on the side of the pushing plate away from the pushing groove, and the locking clamping plate is gear - shaped and slidably embedded into the positioning chute.
[0009] Further, limiting sliding plates are symmetrically fixed on the inner wall of the protective panel. Limiting chutes are symmetrically opened on the left and right sides of the thermostatic protection cabin body. The protective panel slides along the inside of the protective panel. A magnet ring is fixed on the outer surface of the second bearing plate, and one end of the protective panel is in contact with the magnet ring.
[0010] Further, limiting block members are symmetrically fixed on the lower end surface of the second bearing plate. Limiting grooves are opened on the lower end surfaces of the limiting block members. Reinforcing chutes are opened on the upper end surface of the base member, and the limiting block members slide along the inside of the reinforcing chutes.
[0011] Further, the reinforcing mechanism includes a reinforcing groove, a return spring, a connecting plate, a reinforcing plate and a magnet disk. The reinforcing groove is opened on the upper end surface of the base member. The return spring is arranged inside the reinforcing groove. The connecting plate is slidably clamped inside the reinforcing groove. The reinforcing plate is fixed on the upper end surface of the return spring. The magnet disk is fixed inside the reinforcing groove, and the upper end of the reinforcing plate is slidably embedded into the limiting groove.
[0012] Further, the protection component includes a medical TPU outer shell, a flexible flame - retardant heat - insulating layer, a pneumatic heat - insulating layer, a thermostatic gel layer and an antibacterial inner liner. The medical TPU outer shell is arranged inside the thermostatic protection cabin body. The flexible flame - retardant heat - insulating layer is arranged inside the medical TPU outer shell. The pneumatic heat - insulating layer is arranged inside the flexible flame - retardant heat - insulating layer. The thermostatic gel layer is arranged inside the pneumatic heat - insulating layer. The antibacterial inner liner is arranged inside the thermostatic gel layer, and the antibacterial inner liner is located on the inner wall of the thermostatic protection cabin body.
[0013] The present invention has the following beneficial effects: By providing universal wheels, the present invention can quickly adjust the position of the base member. The provided locking mechanism, extension plate and positioning chute cooperate to complete the series combination of up to 4 to 6 second bearing plates (5) within 10 seconds. It can be towed or remotely controlled by one medical staff to transport multiple children. Usually, the base member can be hung on the wall or under the bed, without occupying space. During a fire, it does not need to be installed, without tools, and can be deployed by one person. Subsequently, the five-layer composite structure medical TPU shell, flexible flame-retardant insulation layer, air pressure heat insulation layer, constant temperature gel layer and antibacterial inner liner automatically maintain a constant temperature (35 - 37.5 °C) for more than 30 minutes in a high-temperature fire environment, ensuring that the body temperature of newborns does not get out of balance. Using PCM microcapsule materials, heat is still continuously released in a power-off environment. The flame-retardant material has a high temperature resistance of ≥200 °C and a smoke barrier rate of ≥98%.
[0014] The medical monitoring component provided in the present invention is equipped with a pulse oximetry sensor, a temperature monitor, a tilt / vibration alarm, and an RFID identification tag, which can automatically upload location information and danger alarms to the nurse station for easy tracking by medical staff. At the same time, wireless communication supports local area network and Bluetooth modes. When powered off, it can maintain its function for 30 minutes by relying on the built-in battery. Moreover, the emergency support interface cabin is preset with quick interfaces (such as oxygen inhalation interfaces, electrocardiogram patch slots, temperature monitoring points), and portable life monitoring devices can be externally connected to ensure that the physiological data of newborns is not separated from monitoring during transportation. The device is compatible with the existing hospital monitoring system and can be seamlessly connected after transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0016] Figure 1 It is a top view schematic diagram of the escape and transportation device of the present invention; Figure 2 It is a left view schematic diagram of the escape and transportation device of the present invention; Figure 3 It is a bottom view schematic diagram of the escape and transportation device of the present invention; Figure 4 It is a cross-sectional schematic diagram of the escape and transportation device of the present invention; Figure 5 It is a top view schematic diagram of the constant temperature protection cabin of the present invention; Figure 6 It is a connection schematic diagram of the positioning plate and the second bearing plate of the present invention; Figure 7 Top view schematic diagram of the positioning plate and the second bearing plate of the present invention; Figure 8 Cross-sectional schematic diagram of the positioning plate and the second bearing plate of the present invention; Figure 9 Top view schematic diagram of the locking mechanism of the present invention; Figure 10 Bottom view schematic diagram of the protective panel of the present invention; Figure 11 For the present invention Figure 4 Partial enlarged schematic diagram at position A in; Figure 12 For the present invention Figure 4 Partial enlarged schematic diagram at position B in.
[0017] In the drawings, the list of components represented by each reference numeral is as follows: 1. Base member; 101. Reinforcement chute; 2. Bottom plate member; 201. Universal wheel; 3. First bearing plate; 301. Adjusting rod; 302. Connecting chute; 4. Constant temperature protection cabin; 401. Positioning plate; 402. Flexible air cushion; 403. Installation chute; 5. Second bearing plate; 501. Extension plate; 502. Positioning chute; 6. Locking mechanism; 601. Pressing plate; 602. Push spring; 603. Connecting rod; 604. Positioning rotating shaft; 605. Push plate; 606. Push groove; 607. Locking card plate; 7. Protective panel; 701. Limiting slide plate; 702. Limiting chute; 703. Magnet ring; 8. Limiting block member; 801. Limiting groove; 9. Reinforcement mechanism; 901. Reinforcement groove; 902. Return spring; 903. Connecting plate; 904. Reinforcement plate; 905. Magnet disk; 10. Medical monitoring component; 11. Protection component; 1101. Medical TPU shell; 1102. Flexible flame-retardant heat-insulating layer; 1103. Air pressure heat-insulating layer; 1104. Constant temperature gel layer; 1105. Antibacterial inner liner; 12. First aid support interface Detailed implementation manners Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention.
[0018] Please refer to Figure 1-12 As shown, the present invention is an integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection, including a base member 1 and a bottom plate member 2 provided on the lower end surface of the base member 1, and further including: The first bearing plate 3 is fixed on one side of the upper end face of the base member 1. A thermostatic protection cabin 4 is fixed on the upper end face of the first bearing plate 3. A flexible air cushion 402 is arranged inside the thermostatic protection cabin 4. An adjusting component is arranged at the lower end of the flexible air cushion 402, which can adjust the angle so that the flexible air cushion 402 can be adjusted from a flat position of 0° to 45°, thus facilitating the newborn to lie flat. Universal wheels 201 are evenly arranged on the lower end face of the bottom plate member 2. An adjusting rod 301 is arranged outside the first bearing plate 3, and the adjusting rod 301 is rotatably connected to one end of the first bearing plate 3. By means of the universal wheels 201 arranged at the lower end of the bottom plate member 2, the placement position of the device can be flexibly changed, thus facilitating the subsequent transfer by medical staff. The arranged adjusting rod 301 can be flipped, which not only facilitates the subsequent retraction and deployment of the base member 1, but also facilitates the medical staff to push. Moreover, the base member 1 can be usually hung on the wall or under the bed, taking up no space. In case of a fire, it does not need to be installed, no tools are required, and it can be deployed by a single person; The positioning mechanism is arranged at the lower end of the thermostatic protection cabin 4 and is used to connect the main thermostatic protection cabin 4 with the first bearing plate 3. The positioning mechanism includes a connecting chute 302 and a positioning plate 401. The connecting chute 302 is opened on the upper end face of the first bearing plate 3, and the cross-section of the connecting chute 302 is a "T" - shaped structure. The positioning plate 401 is fixed on the lower end face of the thermostatic protection cabin 4, and the positioning plate 401 is slidably clamped inside the thermostatic protection cabin 4. By means of the arranged connecting chute 302, it can be connected with the positioning plate 401, so as to limit the position of the thermostatic protection cabin 4, avoid the deviation and shaking of the thermostatic protection cabin 4, and the flexible air cushion 402 arranged inside the thermostatic protection cabin 4 can make the infant more comfortable. An extension plate 501 is fixed on one side of the second bearing plate 5, and the extension plate 501 is slidably clamped and embedded inside the first bearing plate 3. Positioning chutes 502 are evenly arranged on the outside of the extension plate 501. By means of the arranged extension plate 501, it can be slidably clamped inside the first bearing plate 3, so as to connect the first bearing plate 3 and the second bearing plate 5, avoid the deviation and shaking of the second bearing plate 5. When the positioning plate 401 is connected with the connecting chute 302, the extension plate 501 can be slidably clamped in the installation chute 403 inside the positioning plate 401, so as to limit the thermostatic protection cabin 4, avoid the deviation and shaking of the thermostatic protection cabin 4, and further improve the stability of the thermostatic protection cabin 4; The second bearing plate 5 is arranged on one side of the first bearing plate 3. On the left and right sides inside the first bearing plate 3, locking mechanisms 6 are symmetrically arranged for connecting and limiting the first bearing plate 3 and the second bearing plate 5. The locking mechanism 6 includes a pressing plate 601, a pushing spring 602, a connecting rod 603, a positioning rotating shaft 604, a pushing plate 605 and a pushing groove 606. The pressing plate 601 is slidably clamped on one side of the first bearing plate 3. The pushing springs 602 are symmetrically arranged on the left and right sides of the pressing plate 601. The connecting rod 603 is fixed to the inner side of the pressing plate 601. The positioning rotating shaft 604 is rotatably connected to the inner side of the first bearing plate 3. The pushing plate 605 is rotatably connected to the outer side of the positioning rotating shaft 604. The pushing groove 606 is opened on one side of the pushing plate 605, and one end of the connecting rod 603 can be slidably inserted into the pushing groove 606. When the extension plate 501 on the inner side of the second bearing plate 5 is slidably clamped inside the first bearing plate 3, due to the inclined angle of the locking card plate 607, the extension plate 501 can be smoothly inserted into the first bearing plate 3. At the same time, the torsion springs arranged at both ends of the outer surface of the positioning rotating shaft 604 can reset the pushing plate 605, so that the locking card plate 607 can be tightly clamped inside the positioning chute 502, thereby locking the extension plate 501 and further limiting the position of the second bearing plate 5. When the second bearing plate 5 is slidably clamped inside the first bearing plate 3, the first bearing plate 3 can be locked. If disassembly is required, the pressing plate 601 can be pressed to one side, and the connecting rod 603 can be slidably inserted into the pushing groove 606, so that the locking card plate 607 can be opened, and the locking card plate 607 can be opened, which is convenient for pulling out the second bearing plate 5 later, and the loading and unloading of the second bearing plate 5 can be completed. A locking card plate 607 is fixed to the side of the pushing plate 605 away from the pushing groove 606; The protective panel 7 is arranged at the upper end of the constant-temperature protection cabin body 4 and is used for protecting the connection part between two groups of constant-temperature protection cabin bodies 4; the reinforcement mechanism 9 is arranged on the upper end surface of the base member 1 and is used for limiting multiple groups of second bearing plates 5; the inner walls of the protective panel 7 are symmetrically and fixedly provided with limiting sliding plates 701, the left and right sides of the constant-temperature protection cabin body 4 are symmetrically provided with limiting sliding grooves 702, and the protective panel 7 slides along the inside of the protective panel 7. A magnet ring 703 is fixedly arranged on the outer surface of the second bearing plate 5, and one end of the protective panel 7 is in contact with the magnet ring 703. By arranging the protective panel 7, it can cover the outside of the constant-temperature protection cabin body 4. In case of a fire, the protective panel 7 can be quickly clamped at the connection part between two groups of constant-temperature protection cabin bodies 4, which can protect children and avoid foreign objects touching children during the transfer process, causing discomfort to themselves. Moreover, the arranged limiting sliding plates 701 and the limiting sliding grooves 702 cooperate to limit the protective panel 7, which can prevent the protective panel 7 from shifting and shaking, and ensure the stability of its subsequent connection. In addition, the arranged magnet ring 703 can be connected to the side of the protective panel 7; limiting block members 8 are symmetrically and fixedly arranged on the lower end surface of the second bearing plate 5, limiting grooves 801 are opened on the lower end surfaces of the limiting block members 8, reinforcement sliding grooves 101 are opened on the upper end surface of the base member 1, and the limiting block members 8 slide along the inside of the reinforcement sliding grooves 101. By arranging the limiting block members 8 at the lower end of the second bearing plate 5, they can be slidably clamped on the upper end surface of the base member 1, which can prevent the second bearing plate 5 from shifting and shaking;The reinforcement mechanism 9 includes a reinforcement groove 901, a return spring 902, a connecting plate 903, a reinforcement plate 904, and a magnet disk 905. The reinforcement groove 901 is opened on the upper end surface of the base member 1. The return spring 902 is arranged inside the reinforcement groove 901. The connecting plate 903 is slidably clamped inside the reinforcement groove 901. The reinforcement plate 904 is fixed on the upper end surface of the return spring 902. The magnet disk 905 is fixed inside the reinforcement groove 901, and the upper end of the reinforcement plate 904 is slidably embedded inside the limiting groove 801. When the second bearing plate 5 is pushed and slid along the upper end of the base member 1 to one side of the first bearing plate 3, the extension plate 501 inside the second bearing plate 5 can be slidably clamped inside the first bearing plate 3. Due to the inclined angle of the locking clamping plate 607, the extension plate 501 can be smoothly inserted into the first bearing plate 3. At the same time, the torsion springs arranged at both ends of the outer surface of the positioning rotating shaft 604 can reset the pushing plate 605, so that the locking clamping plate 607 can be tightly clamped inside the positioning sliding groove 502, thereby locking the extension plate 501. At the same time, the magnet disk 905 can be energized. When the magnet disk 905 is energized, it can generate magnetic force, and the connecting plate 903 can be pulled upward, so that the upper end of the reinforcement plate 904 can be slidably clamped inside the limiting groove 801, thereby limiting the second bearing plate 5 and further ensuring the connection effect of the second bearing plate 5. Since multiple groups of the second bearing plates 5 can be lifted upward at the same time, if only three groups of the second bearing plates 5 are installed, the reinforcement plate 904 of the fourth group can block the slideway, avoiding the second bearing plate 5 from falling during the transfer process; The protection component 11 is arranged inside the thermostatic protection cabin body 4; the medical monitoring component 10 is arranged at the upper end inside the thermostatic protection cabin body 4, and an emergency support interface 12 is arranged on one side of the thermostatic protection cabin body 4; the protection component 11 includes a medical TPU outer shell 1101, a flexible flame-retardant heat-insulating layer 1102, a pneumatic heat-insulating layer 1103, a thermostatic gel layer 1104 and an antibacterial inner liner 1105. The medical TPU outer shell 1101 is arranged inside the thermostatic protection cabin body 4, the flexible flame-retardant heat-insulating layer 1102 is arranged on the inner side of the medical TPU outer shell 1101, the pneumatic heat-insulating layer 1103 is arranged on the inner side of the flexible flame-retardant heat-insulating layer 1102, the thermostatic gel layer 1104 is arranged on the inner side of the pneumatic heat-insulating layer 1103, and the antibacterial inner liner 1105 is arranged on the inner side of the thermostatic gel layer 1104, and the antibacterial inner liner 1105 is located on the inner wall of the thermostatic protection cabin body 4. By providing a pulse oximetry sensor, a temperature monitor, a tilt / vibration alarm, and an RFID identification tag in the medical monitoring component 10, the location information and danger alarm can be automatically uploaded to the nurse station, facilitating tracking by medical staff. At the same time, wireless communication supports local area network and Bluetooth modes, and the function can be maintained by an internal battery for 30 minutes when powered off. And the emergency support interface 12 is provided with preset quick interfaces in the cabin body, such as an oxygen inhalation interface, an electrocardiogram patch slot, and a body temperature monitoring point, and portable life monitoring equipment can be externally connected to ensure that the physiological data of the newborn is not separated from monitoring during the transfer process, and the equipment is compatible with the existing hospital monitoring system and can be seamlessly connected after the transfer.
[0019] Working principle: First, it should be noted that thermostatic protection cabin bodies 4 are arranged at the upper ends of both the carrier plate 1 3 and the carrier plate 2 5, which is convenient for subsequent connection. The base member 1 can usually be hung on the wall or under the bed, occupying no space. During a fire, no installation is required, no tools are needed, and it can be deployed by a single person. Subsequently, the five-layer composite structure of the medical TPU outer shell, flexible flame-retardant heat-insulating layer, pneumatic heat-insulating layer, thermostatic gel layer and antibacterial inner liner automatically maintains a constant temperature of 35 - 37.5 °C for more than 30 minutes in a high-temperature fire environment to ensure that the body temperature of the newborn does not get out of balance. Using PCM microcapsule materials, heat is still continuously released in a power-off environment. The flame-retardant material has a high temperature resistance of ≥200 °C and a smoke barrier rate of ≥98%. The provided universal wheels 201 can quickly adjust the position of the base member 1, and the provided locking mechanism 6, together with the extension plate 501 and the positioning chute 502, can complete the series combination of up to 4 - 6 carrier plates 2 5 within 10 seconds, and multiple children can be transported by being towed or remotely controlled by 1 medical staff; When installation is required, the positioning plate 401 at the lower end of the constant temperature protection cabin body 4 can be slidably clamped inside the connecting chute 302, so as to limit the position of the constant temperature protection cabin body 4. And the second bearing plate 5 can be slidably clamped at the upper end of the base member 1. The arranged extension plate 501 can be slidably clamped inside the first bearing plate 3, so that the first bearing plate 3 and the second bearing plate 5 can be connected, which can prevent the second bearing plate 5 from shifting and shaking. When the positioning plate 401 is connected to the connecting chute 302, the extension plate 501 can be slidably clamped in the installation chute 403 inside the positioning plate 401, so as to limit the constant temperature protection cabin body 4 and prevent the constant temperature protection cabin body 4 from shifting and shaking, thus further improving the stability of the constant temperature protection cabin body 4; Meanwhile, when the extension plate 501 inside the second bearing plate 5 is slidably clamped inside the first bearing plate 3, due to the inclined angle of the locking card plate 607, the extension plate 501 can be smoothly inserted into the first bearing plate 3. At the same time, the torsion springs arranged at both ends of the outer surface of the positioning rotating shaft 604 can reset the push plate 605, so that the locking card plate 607 can be tightly clamped inside the positioning chute 502, thus locking the extension plate 501 and further limiting the position of the second bearing plate 5. When the second bearing plate 5 is slidably clamped inside the first bearing plate 3, the first bearing plate 3 can be locked. When disassembly is required, the pressing plate 601 can be pressed to one side, and then the connecting rod 603 can be slidably embedded into the pushing groove 606, so as to open the locking card plate 607, which is convenient for pulling out the second bearing plate 5 subsequently, and the loading and unloading of the second bearing plate 5 can be completed. Then the magnet disk 905 can be energized. When the magnet disk 905 is energized, it can generate magnetic force, and the connecting plate 903 can be pulled up, so that the upper end of the reinforcing plate 904 can be slidably clamped in the limiting groove 801, thus limiting the second bearing plate 5 and further ensuring the connection effect of the second bearing plate 5. Since multiple groups of the second bearing plates 5 can move upward simultaneously, if only three groups of the second bearing plates 5 are installed, the reinforcing plate 904 of the fourth group can block the slideway, preventing the second bearing plate 5 from falling during the transfer process; Finally, in case of a fire, the protection panel 7 can be quickly snapped onto the connection between the two thermostatic protection cabins 4 to protect the infants, preventing foreign objects from touching the infants during the transfer process and causing discomfort to them. The provided limiting slide plate 701 and limiting slide groove 702 cooperate to limit the protection panel 7, avoiding deviation and shaking of the protection panel 7 and ensuring the stability of its subsequent connection. Moreover, the provided magnet ring 703 can be connected to the side of the protection panel 7. The medical monitoring component 10 is equipped with a pulse oximetry sensor, a temperature monitor, a tilt / vibration alarm, and an RFID identification tag, which can automatically upload the location information and danger alarm to the nurse station for easy tracking by medical staff. At the same time, the wireless communication supports local area network and Bluetooth modes, and the function can be maintained by an internal battery for 30 minutes when powered off. The first aid support interface 12 is preset with quick interfaces such as an oxygen inhalation interface, an electrocardiogram patch slot, and a body temperature monitoring point in the cabin, and can be externally connected to a portable life monitoring device to ensure that the physiological data of the neonate is not separated from monitoring during the transfer process. The device is compatible with the existing hospital monitoring system and can be seamlessly connected after the transfer.
[0020] The above are only the preferred embodiments of the present invention and do not limit the present invention. Any modification to the technical solutions recorded in the foregoing embodiments, any equivalent replacement of some technical features, and any modification, equivalent replacement, or improvement made shall fall within the protection scope of the present invention.
Claims
1. An integrated neonatal ward batch escape and transfer device based on air cushion guiding and constant temperature protection, comprising a base member (1) and a bottom plate member (2) provided on the lower end surface of the base member (1), characterized in that, It further includes: A first carrier plate (3), fixed to one side of the upper end surface of the base member (1). A thermostatic protection cabin (4) is fixed to the upper end surface of the first carrier plate (3). A flexible air cushion (402) is arranged inside the thermostatic protection cabin (4); A positioning mechanism, arranged at the lower end of the thermostatic protection cabin (4), for connecting the main thermostatic protection cabin (4) to the first carrier plate (3); A second carrier plate (5), arranged on one side of the first carrier plate (3). Locking mechanisms (6) are symmetrically arranged on the left and right sides inside the first carrier plate (3) for connecting and limiting the first carrier plate (3) and the second carrier plate (5); A protection panel (7), arranged at the upper end of the thermostatic protection cabin (4), for protecting the connection between two groups of thermostatic protection cabins (4); A reinforcement mechanism (9), arranged on the upper end surface of the base member (1), for limiting multiple groups of second carrier plates (5); A protection component (11), arranged inside the thermostatic protection cabin (4); A medical monitoring component (10), arranged at the upper end inside the thermostatic protection cabin (4). An emergency support interface (12) is arranged on one side of the thermostatic protection cabin (4).
2. The integrated neonatal ward batch escape and transfer device based on air-cushion guiding and constant temperature protection according to claim 1, wherein Universal wheels (201) are evenly arranged on the lower end surface of the bottom plate member (2). An adjusting rod (301) is arranged outside the first carrier plate (3), and the adjusting rod (301) is rotatably connected to one end of the first carrier plate (3).
3. The integrated neonatal ward batch escape and transfer device based on air-cushion guidance and constant temperature protection according to claim 1, characterized in that, The positioning mechanism includes a connecting chute (302) and a positioning plate (401). The connecting chute (302) is opened on the upper end surface of the first carrier plate (3), and the cross-section of the connecting chute (302) is a "T" - shaped structure. The positioning plate (401) is fixed to the lower end surface of the thermostatic protection cabin (4), and the positioning plate (401) is slidably clamped inside the thermostatic protection cabin (4).
4. The integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection according to claim 1, characterized in that, An extension plate (501) is fixed to one side of the second carrier plate (5), and the extension plate (501) is slidably clamped and embedded inside the first carrier plate (3). Positioning chutes (502) are evenly arranged on the outside of the extension plate (501).
5. The integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection according to claim 4, characterized in that, The locking mechanism (6) includes a pressing plate (601), a pushing spring (602), a connecting rod (603), a positioning rotating shaft (604), a pushing plate (605), and a pushing groove (606). The pressing plate (601) is slidably clamped on one side of the first carrier plate (3). The pushing springs (602) are symmetrically arranged on the left and right sides of the pressing plate (601). The connecting rod (603) is fixed to the inside of the pressing plate (601). The positioning rotating shaft (604) is rotatably connected to the inside of the first carrier plate (3). The pushing plate (605) is rotatably connected to the outside of the positioning rotating shaft (604). The pushing groove (606) is opened on one side of the pushing plate (605), and one end of the connecting rod (603) can be slidably embedded into the pushing groove (606).
6. The integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection according to claim 5, characterized in that, A locking clamping plate (607) is fixed to the side of the pushing plate (605) away from the pushing groove (606), and the locking clamping plate (607) is gear - shaped and slidably embedded into the positioning chute (502).
7. The integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection according to claim 1, characterized in that, The inner wall of the protective panel (7) is symmetrically fixed with limiting sliding plates (701). Limiting sliding grooves (702) are symmetrically formed on the left and right sides of the constant temperature protection cabin body (4). The protective panel (7) slides along the inside of the protective panel (7). A magnet ring (703) is fixed on the outer surface of the second bearing plate (5), and one end of the protective panel (7) is in contact with the magnet ring (703).
8. The integrated neonatal ward mass escape and transfer device based on air-cushion guidance and constant temperature protection according to claim 1, characterized in that Limiting block members (8) are symmetrically fixed on the lower end surface of the second bearing plate (5). Limiting grooves (801) are formed on the lower end surfaces of the limiting block members (8). Reinforcing sliding grooves (101) are formed on the upper end surface of the base member (1), and the limiting block members (8) slide along the inside of the reinforcing sliding grooves (101).
9. The integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection according to claim 8, characterized in that, The reinforcing mechanism (9) includes a reinforcing groove (901), a return spring (902), a connecting plate (903), a reinforcing plate (904) and a magnet disk (905). The reinforcing groove (901) is formed on the upper end surface of the base member (1). The return spring (902) is arranged inside the reinforcing groove (901). The connecting plate (903) is slidably clamped inside the reinforcing groove (901). The reinforcing plate (904) is fixed on the upper end surface of the return spring (902). The magnet disk (905) is fixed inside the reinforcing groove (901), and the upper end of the reinforcing plate (904) is slidably embedded inside the limiting groove (801).
10. The integrated neonatal ward batch escape and transfer device based on air cushion guidance and constant temperature protection according to claim 1, characterized in that, The protective component (11) includes a medical TPU outer shell (1101), a flexible flame-retardant heat-insulating layer (1102), a pneumatic heat-insulating layer (1103), a constant temperature gel layer (1104) and an antibacterial inner liner (1105). The medical TPU outer shell (1101) is arranged inside the constant temperature protection cabin body (4). The flexible flame-retardant heat-insulating layer (1102) is arranged on the inner side of the medical TPU outer shell (1101). The pneumatic heat-insulating layer (1103) is arranged on the inner side of the flexible flame-retardant heat-insulating layer (1102). The constant temperature gel layer (1104) is arranged on the inner side of the pneumatic heat-insulating layer (1103). The antibacterial inner liner (1105) is arranged on the inner side of the temperature gel layer (1104), and the antibacterial inner liner (1105) is located on the inner wall of the constant temperature protection cabin body (4).