Incubator capable of slightly shaking

By designing a neonatal incubator that can shake slightly, using a sleep-assisting and orientation-adjusting mechanism, combined with an electric telescopic rod and universal wheels, the problems of the existing incubator's single shaking effect and inconvenient movement are solved, the flexibility and safety of the equipment are improved, and the operation process is simplified.

CN120678616APending Publication Date: 2025-09-23PEOPLES HOSPITAL AFFILIATED TO FUJIAN UNIV OF TRADITIONAL CHINESE MEDICINE (FUJIAN PROVINCIAL PEOPLES HOSPITAL)
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Patent Information

Application Number
CN202511119840.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-11
Publication Date
2025-09-23

AI Technical Summary

Technical Problem

Existing neonatal incubators have a single rocking effect, resulting in slow sleep acceleration efficiency. They are also inconvenient to move and have complicated power connections, which increases the labor intensity of medical staff.

Method used

A slightly swaying incubator was designed. The sleeping-assisting mechanism and the orientation-adjusting mechanism were used to achieve slight swaying and orientation adjustment of the neonatal incubator. The electric telescopic rod and universal wheels were combined to improve the flexibility of the equipment. The battery was used for power supply to reduce the use of external circuits.

Benefits of technology

It improves the sleeping comfort of newborns, reduces the operating difficulty of medical staff, enhances the flexibility and safety of equipment, and simplifies power management.

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Abstract

The invention discloses an incubator capable of slightly shaking, and relates to the technical field of medical equipment.The incubator capable of slightly shaking comprises a newborn incubator body, and a heat preservation inner pad is mounted in the newborn incubator body. The incubator capable of slightly shaking has the beneficial effects that the newborn incubator body, an upper mounting cover, a lower mounting cover and a sleep assisting mechanism are arranged; visual windows are formed in the two sides of the newborn incubator, medical staff can conveniently observe the condition of a newborn from the outside, the interior of the newborn incubator is opened through cooperation of an opening and closing cover, and follow-up operation is carried out; the newborn incubator is provided with the direction adjusting mechanism and the supporting stand column, the using flexibility of the newborn incubator is improved, the height of the newborn incubator is driven to be adjusted through operation of the electric telescopic rod, the newborn incubator is driven to move through universal wheels, and therefore the using flexibility of the newborn incubator is improved, the requirements of operation in different scenes are met, and the whole newborn incubator is simple in structure, easy to operate and convenient to use. And the difficulty in operation of medical staff is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of medical equipment, in particular to a slightly swayable incubator. Background Art

[0002] A neonatal incubator, also known as a neonatal heat incubator or infant warmer, is a medical device used to help newborns, particularly premature or low-birth-weight infants, maintain a suitable body temperature. By providing a stable temperature environment, this device reduces heat loss in newborns and promotes their healthy development.

[0003] Chinese Patent Publication No. CN 221981068 U discloses the technical field of medical auxiliary equipment, and particularly relates to an infusion-capable warming box for use in neonatal intensive care units, comprising an infusion box body, wherein the upper left portion of the infusion box body is movably connected to an insulation cover via a rotating shaft, the lower end of the infusion box body is fixedly connected to a connecting frame, the front and rear lower ends of the connecting frame are fixedly connected to a support structure, the lower ends of the two support structures are fixedly connected to a connecting plate, the left and right portions of the two connecting plates are commonly fixedly connected to a rectangular plate, the front right and right portions of the infusion box body are both provided with an operating hole, the rear end of the infusion box body is provided with a rectangular hole, and the rear end of the infusion box body is fixedly connected to a high-temperature structure. The infusion-capable warming box for use in neonatal intensive care units described in this utility model can heat the infusion pipes to prevent the baby from feeling uncomfortable, and at the same time, slightly shake the infusion box body to accelerate the baby's sleep.

[0004] However, the above solution still has the following problems: it only has a single shaking effect, which is slow in accelerating the sleep of newborns. It is not convenient to move the entire equipment conveniently, which increases the labor intensity of medical staff in carrying it. At the same time, it occupies a large number of cables for use, which causes inconvenience during use and brings many problems. It cannot meet the needs of normal use. Therefore, the present invention needs to design an incubator that can be slightly shaken to solve the above problems. Summary of the Invention

[0005] The object of the present invention is to provide a slightly swayable incubator to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: a slightly swayable incubator, comprising: a neonatal incubator, a thermal insulation pad installed inside the neonatal incubator, a thermal insulation chamber installed at the bottom of the neonatal incubator, the thermal insulation pad being used to place the neonate normally, and the thermal insulation chamber being used to provide thermal insulation; The upper mounting cover is located below the heat preservation bin; The lower mounting cover is located below the upper mounting cover; The support column is located below the lower mounting cover, and electric control boxes are installed on both sides of the support column. A battery is installed inside one of the electric control boxes to provide power resources required by the equipment; The auxiliary sleeping mechanism is located inside the upper and lower mounting covers, and includes a fixing frame. The fixing frame is installed inside the lower mounting cover, and the fixing frame is connected to a rotating cover for rotation. The rotating cover rotates to adjust the neonatal incubator to achieve slight shaking. The azimuth adjustment mechanism is located inside the upper mounting cover and above the rotating cover. The azimuth adjustment mechanism includes a supporting side plate, a supporting side plate is installed above the rotating cover, and a mounting bin is installed on the top of the supporting side plate. The interior of the mounting bin is rotatably connected to a first gear, and both sides of the first gear are rotatably connected to a second gear, and the two second gears are meshed with the first gear. A top limit plate is installed above the two second gears, and the top limit plate is located between the upper mounting cover and the neonatal incubator. Two positioning plates are installed on the top of the top limit plate, and top connecting rods are installed inside the two positioning plates, and the top ends of the two top connecting rods are connected to the bottom of the neonatal incubator.

[0007] As a preferred embodiment of the present invention, a fixing frame is installed on one side of the supporting side plate, a second drive motor is installed inside the fixing frame, a shock-absorbing base is installed at the bottom of the second drive motor, and the shock-absorbing base is connected to the rotating cover. The output end of the second drive motor is fixedly connected to a reduction bearing, and the top end of the reduction bearing extends into the interior of the mounting chamber and is fixedly connected to the second gear lower mounting cover. The axis of the two second gears is fixedly connected to a second connecting rod, and the outer side of the two second connecting rods is installed with a sealing sleeve. The top end of the two second connecting rods is installed with a transmission plate, and the two transmission plates are connected to the top connecting rod through the mounting shaft. When the second drive motor is turned, the reduction bearing is driven to rotate, and the second gear lower mounting cover is driven to rotate, thereby causing the first gear to rotate and driving the two second gears meshing with it to rotate in the opposite direction. That is, at this time, the two second gears rotate in the same direction. Under the connection of the transmission plate and the second connecting rod, the corresponding top connecting rod is driven to rotate, thereby adjusting the direction of the top neonatal incubator to meet the needs of operations in different orientations and improving the flexibility of the equipment.

[0008] As a preferred embodiment of the present invention, a first drive motor is installed on the outside of the fixed frame, and the output end of the first drive motor is connected to a worm gear reducer, and the output end of the worm gear reducer is connected to one of the first connecting shafts. A rotating rod is installed on the side of the rotating cover away from the first connecting shaft, and the rotating rod is rotatably connected to the fixed frame. The rotation of the rotating cover is limited by the fixed frame, and the first drive motor is operated to drive the worm gear reducer to operate, thereby driving the first connecting shaft to rotate, and driving the rotating cover to rotate slightly inside the fixed frame, thereby slightly shaking the entire neonatal incubator.

[0009] A label plate is installed on one side of the insulation chamber, and symmetrically distributed insulation plates are installed on the top of the insulation chamber. The two insulation plates are located on both sides of the neonatal incubator. Symmetrically distributed reinforcement sleeves are installed between the neonatal incubator and the insulation chamber. The reinforcement sleeves are used to reinforce the connection between the neonatal incubator and the insulation chamber. The insulation plates are installed on both sides of the neonatal incubator to achieve a sealed and heat-insulating effect when the neonatal incubator is in use. The interior of the insulation chamber is provided with electric heating elements used in conjunction with the insulation inner pad, such as heating wires or heating plates. These elements heat the air through electricity to maintain a constant temperature.

[0010] As a preferred embodiment of the present invention, an insulating top plate is installed on the top of the neonatal incubator, and symmetrically distributed visual windows are provided on both sides of the neonatal incubator, wherein an opening and closing cover is installed above two of the visual windows. By providing visual windows on both sides of the neonatal incubator, it is convenient for medical staff to observe the condition of the newborn from the outside, and the interior of the neonatal incubator can be opened by cooperating with the opening and closing cover to perform subsequent operations.

[0011] The top of the support column is fixedly connected to an electric telescopic rod, the output end of the electric telescopic rod is fixedly connected to a first connecting rod, the electric telescopic rod is located between two electrical control boxes, and one end of the top of the first connecting rod is fixedly connected to the bottom of the lower mounting cover. The electric telescopic rod is operated to drive the first connecting rod to move upward, thereby fine-tuning the height of the neonatal incubator to the required height, thereby improving the overall flexibility of the equipment when used.

[0012] As a preferred embodiment of the present invention, a mounting groove for cooperating with the orientation adjustment mechanism is provided on the top of the upper mounting cover, and the orientation adjustment mechanism is installed by providing a mounting groove inside the upper mounting cover.

[0013] As a preferred embodiment of the present invention, a first connecting rod is installed on both sides of the lower mounting cover, and an anti-slip strip is installed on the side of the lower mounting cover adjacent to the first connecting rod. A first connecting rod and an anti-slip strip of the same structure are installed on the outer side of the upper mounting cover. A filling inner pad is installed between the lower mounting cover and the upper mounting cover, and the lower mounting cover and the upper mounting cover are sealed during installation by using the filling inner pad. Sealing plates are installed on both sides of the upper mounting cover and the lower mounting cover to provide a sealing and protective effect to the upper mounting cover and the lower mounting cover. Anti-slip strips are installed on both sides of the upper mounting cover and the lower mounting cover to reduce the anti-slip effect during actual use.

[0014] As a preferred embodiment of the present invention, the bottom of the support column is fixedly connected to a support base plate, and the bottom of the support base plate is fixedly connected to symmetrically distributed universal wheels. The entire equipment is driven to move by four universal wheels until it moves to the desired work location, thereby improving the overall flexibility of the equipment when in use.

[0015] As a preferred embodiment of the present invention, a control panel is fixedly connected to the outside of the neonatal incubator, and the electrical control box, electric telescopic rod, worm gear reducer, first drive motor and second drive motor are all electrically connected to the control panel. The control panel is used to control the operation of the electrical control box, electric telescopic rod, worm gear reducer, first drive motor and second drive motor, thereby realizing unified management of power equipment and facilitating on-site equipment management by medical staff.

[0016] Compared with the prior art, the present invention has the following beneficial effects: 1. The present invention is provided with a neonatal incubator, an upper mounting cover, a lower mounting cover and a sleeping auxiliary mechanism. When in use, the control panel is opened, and the neonatal incubator is adjusted by rotating the rotating cover to perform a slight shaking process, and the rotation of the rotating cover is limited by the fixing frame. The first driving motor is driven to operate the worm gear reducer, thereby driving the first connecting shaft to rotate, driving the rotating cover to rotate slightly inside the fixing frame, thereby performing a slight shaking process on the entire neonatal incubator. The neonatal incubator and the insulation chamber are reinforced by the reinforcement sleeve when they are connected. Insulation plates are installed on both sides of the neonatal incubator to achieve a sealed and heat-insulating effect when the neonatal incubator is in use. The interior of the insulation chamber is provided with electric heating elements used in conjunction with the insulation inner pad, such as heating wires or heating plates. These elements heat the air by electricity to maintain a constant temperature. Visual windows are opened on both sides of the neonatal incubator to facilitate medical staff to observe the condition of the newborn from the outside. The interior of the neonatal incubator is opened by opening and closing the cover to perform subsequent operations. 2. The present invention is provided with an orientation adjustment mechanism and a supporting column, and a neonatal incubator is provided to keep the neonate warm. An auxiliary sleeping mechanism is provided inside the upper mounting cover and the lower mounting cover. The first driving motor is operated, and the rotating cover rotates to drive the neonatal incubator to shake slightly as a whole. The second driving motor is operated to drive the neonatal incubator to rotate slightly to adjust the orientation. A more comfortable environment is created by rotation and shaking to facilitate the rest of the neonate, thereby improving the flexibility of the equipment when used. The electric telescopic rod is operated to drive the height of the neonatal incubator to be adjusted, and the universal wheel drives the equipment to move, thereby improving the flexibility of the equipment and meeting the needs of operations in different scenarios. The overall equipment structure is simple and easy to operate, which reduces the difficulty of medical staff to get started. At the same time, the electrical control box and the battery are provided to provide the power supply required for the equipment, reducing the cumbersome problems of various external circuits and reducing safety hazards to a certain extent. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the overall structure of a slightly swaying warming box of the present invention. Figure 1 ; Figure 2 This is a schematic diagram of the overall structure of a slightly swaying warming box of the present invention. Figure 2 ; Figure 3 This is an enlarged schematic diagram of the structure of a neonatal incubator that can be slightly shaken according to the present invention; Figure 4 This is a schematic diagram of the internal structure of a neonatal incubator that can be slightly shaken according to the present invention; Figure 5 This is an exploded schematic diagram of the upper and lower mounting covers of a slightly swayable incubator according to the present invention; Figure 6 This is an enlarged schematic diagram of the orientation adjustment mechanism of a slightly swaying warming box of the present invention. Figure 1 ; Figure 7 This is an enlarged schematic diagram of the orientation adjustment mechanism of a slightly swaying warming box of the present invention. Figure 2 ; Figure 8 This is an accessory of a slightly swayable warming box of the present invention. Figure 7 A schematic diagram of the structure at point A in the figure.

[0018] In the picture: 1. Neonatal incubator; 11. Insulation chamber; 12. Opening and closing lid; 13. Insulation board; 14. Viewing window; 15. Label board; 16. Insulation inner pad; 17. Insulation top plate; 18. Reinforcement cover; 2. Install the cover; 3. Lower mounting cover; 31. Filling pad; 32. First connecting rod; 33. Sealing plate; 34. Anti-slip strip; 35. Mounting slot; 4. Support column; 41. Electric control box; 42. Support base plate; 43. Control panel; 44. Universal wheel; 45. Electric telescopic rod; 5. Fixed frame; 51. Rotating cover; 52. Worm gear reducer; 53. First connecting shaft; 54. First drive motor; 6. Support side plate; 61. Mounting compartment; 62. Top limit plate; 63. Reduction bearing; 64. Second drive motor; 65. Shock-absorbing base; 66. Fixed frame; 67. Transmission plate; 68. First gear; 69. Second gear; 691. Sealing sleeve; 692. Second connecting rod; 694. Top connecting rod; 695. Positioning plate. DETAILED DESCRIPTION

[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0020] See also Figures 1-8 The present invention provides a technical solution: a slightly swayable incubator, comprising: a neonatal incubator 1, wherein a thermal insulation pad 16 is installed inside the neonatal incubator 1, and a thermal insulation chamber 11 is installed at the bottom of the neonatal incubator 1, wherein the thermal insulation pad 16 is used to place the neonate normally and the thermal insulation chamber 11 is used to provide thermal insulation; an upper mounting cover 2, wherein the upper mounting cover 2 is located below the thermal insulation chamber 11; a lower mounting cover 3, wherein the lower mounting cover 3 is located below the upper mounting cover 2; a support column 4, wherein the support column 4 is located below the lower mounting cover 3, and electric control boxes 41 are installed on both sides of the support column 4, wherein a battery is installed inside one of the electric control boxes 41, and the battery provides power resources required by the equipment; In this embodiment, the sleeping aid mechanism is located inside the upper mounting cover 2 and the lower mounting cover 3. The sleeping aid mechanism includes a fixing frame 5. The fixing frame 5 is installed inside the lower mounting cover 3. The fixing frame 5 is connected to a rotating cover 51 for rotation. The rotating cover 51 rotates to adjust the neonatal incubator 1 to slightly shake. The orientation adjustment mechanism in this scheme is located inside the upper mounting cover 2 and above the rotating cover 51. The orientation adjustment mechanism includes a supporting side plate 6. The supporting side plate 6 is installed above the rotating cover 51. The top of the supporting side plate 6 is installed with a mounting chamber 61. The interior of the mounting chamber 61 is rotatably connected to a first gear 68. Both sides of the first gear 68 are rotatably connected to second gears 69. The two second gears 69 are meshed with the first gear 68. A top limit plate 62 is installed above the two second gears 69. The top limit plate 62 is located between the upper mounting cover 2 and the neonatal incubator 1. Two positioning plates 695 are installed on the top of the top limit plate 62. Top connecting rods 694 are installed inside the two positioning plates 695. The top ends of the two top connecting rods 694 are connected to the bottom of the neonatal incubator 1.

[0021] In this solution, a neonatal incubator 1 is provided to keep the neonate warm, and an auxiliary sleeping mechanism is provided inside the upper mounting cover 2 and the lower mounting cover 3. The first driving motor 54 is operated, and the rotating cover 51 rotates to drive the neonatal incubator 1 to shake slightly as a whole. The second driving motor 64 is operated to drive the neonatal incubator 1 to rotate slightly and adjust its orientation. A more comfortable environment is created by rotation and shaking to facilitate the rest of the neonate, thereby improving the flexibility of the equipment when used. The electric telescopic rod 45 is operated to drive the height of the neonatal incubator 1 to be adjusted, and the universal wheel 44 is used to drive the equipment to move, thereby improving the flexibility of the equipment and meeting the needs of operations in different scenarios. The overall equipment structure is simple and easy to operate, which reduces the difficulty of medical staff to get started.

[0022] See also Figure 6-Figure 8 A fixed frame 66 is installed on one side of the supporting side plate 6, and a second drive motor 64 is installed inside the fixed frame 66. A shock-absorbing base 65 is installed at the bottom of the second drive motor 64, and the shock-absorbing base 65 is connected to the rotating cover 51. The output end of the second drive motor 64 is fixedly connected to a reduction bearing 63, and the top end of the reduction bearing 63 extends to the inside of the mounting chamber 61 and is fixedly connected to the mounting cover 3 under the second gear 69. The axis centers of the two second gears 69 are fixedly connected with second connecting rods 692, and sealing sleeves 691 are installed on the outsides of the two second connecting rods 692. A transmission plate 67 is installed at the top end of the two second connecting rods 692, and the two transmission plates 67 are connected to the top connecting rod 694 through a mounting shaft.

[0023] In this solution, the second drive motor 64 is operated to drive the reduction bearing 63 to rotate, and the mounting cover 3 under the second gear 69 is driven to rotate, so that the first gear 68 rotates, and drives the two second gears 69 meshing with it to rotate in the opposite direction. That is, at this time, the two second gears 69 rotate in the same direction, and under the connection of the transmission plate 67 and the second connecting rod 692, the corresponding top connecting rod 694 is driven to rotate, thereby adjusting the direction of the top neonatal incubator 1 to meet the needs of operations in different orientations and improve the flexibility of the equipment.

[0024] See also Figure 1-Figure 5 A first drive motor 54 is installed on the outside of the fixed frame 5, and the output end of the first drive motor 54 is connected to a worm gear reducer 52. The output end of the worm gear reducer 52 is connected to one of the first connecting shafts 53. A rotating rod is installed on the side of the rotating cover 51 away from the first connecting shaft 53, and the rotating rod is rotatably connected to the fixed frame 5.

[0025] In this solution, the rotation of the rotating cover 51 is limited by the fixed frame 5, and the first drive motor 54 is driven to operate the worm gear reducer 52, thereby driving the first connecting shaft 53 to rotate, and driving the rotating cover 51 to rotate slightly inside the fixed frame 5, thereby slightly shaking the entire neonatal incubator 1.

[0026] See also Figure 1-Figure 5 A label plate 15 is installed on one side of the thermal insulation chamber 11, and symmetrically distributed thermal insulation plates 13 are installed on the top of the thermal insulation chamber 11. The two thermal insulation plates 13 are located on both sides of the neonatal incubator 1. Symmetrically distributed reinforcement sleeves 18 are installed between the neonatal incubator 1 and the thermal insulation chamber 11. The reinforcement sleeves 18 are used to reinforce the connection between the neonatal incubator 1 and the thermal insulation chamber 11. The thermal insulation plates 13 are installed on both sides of the neonatal incubator 1 to achieve a sealed and thermal insulation effect for the neonatal incubator 1 when in use. The interior of the thermal insulation chamber 11 is provided with an electric heating element, such as a heating wire or a heating plate, which is used in conjunction with the thermal insulation inner pad 16. These elements heat the air through electricity to maintain a constant temperature.

[0027] In this solution, an insulating top plate 17 is installed on the top of the neonatal incubator 1, and symmetrically distributed viewing windows 14 are opened on both sides of the neonatal incubator 1, and an opening and closing cover 12 is installed above the two viewing windows 14. By opening the viewing windows 14 on both sides of the neonatal incubator 1, it is convenient for medical staff to observe the condition of the newborn from the outside, and the interior of the neonatal incubator 1 can be opened by cooperating with the opening and closing cover 12 to carry out subsequent operations.

[0028] See also Figure 1-Figure 5The top of the supporting column 4 is fixedly connected to an electric telescopic rod 45, and the output end of the electric telescopic rod 45 is fixedly connected to the first connecting rod 32. The electric telescopic rod 45 is located between the two electric control boxes 41. One end of the top of the first connecting rod 32 is fixedly connected to the bottom of the lower mounting cover 3. The electric telescopic rod 45 is operated to drive the first connecting rod 32 to move upward, thereby fine-tuning the height of the neonatal incubator 1 to the required height, thereby improving the overall flexibility of the equipment when used.

[0029] In this solution, the bottom of the support column 4 is fixedly connected to the support base plate 42, and the bottom of the support base plate 42 is fixedly connected to symmetrically distributed universal wheels 44. The entire equipment is driven to move by four universal wheels 44 until it moves to the required work location, thereby improving the overall flexibility of the equipment when in use.

[0030] See also Figure 1-Figure 3 The top of the upper mounting cover 2 is provided with a mounting groove 35 used in conjunction with the azimuth adjustment mechanism, and the mounting groove 35 is provided inside the upper mounting cover 2 to cooperate with the azimuth adjustment mechanism for installation.

[0031] In this solution, first connecting rods 32 are installed on both sides of the lower mounting cover 3, and anti-slip strips 34 are installed on the side of the lower mounting cover 3 adjacent to the first connecting rod 32. The outer side of the upper mounting cover 2 is installed with a first connecting rod 32 and anti-slip strips 34 of the same structure. A filling inner pad 31 is installed between the lower mounting cover 3 and the upper mounting cover 2. The filling inner pad 31 is used to seal the lower mounting cover 3 and the upper mounting cover 2 during installation. Sealing plates 33 are installed on both sides of the upper mounting cover 2 and the lower mounting cover 3 to provide sealing protection for the upper mounting cover 2 and the lower mounting cover 3. Anti-slip strips 34 are installed on both sides of the upper mounting cover 2 and the lower mounting cover 3 to reduce the anti-slip effect during actual use.

[0032] See also Figures 1-8 A control panel 43 is fixedly connected to the outside of the neonatal incubator 1 , and the electric control box 41 , the electric telescopic rod 45 , the worm gear reducer 52 , the first drive motor 54 and the second drive motor 64 are all electrically connected to the control panel 43 .

[0033] In this solution, the control panel 43 is used to control the operation of the electric control box 41, the electric telescopic rod 45, the worm gear reducer 52, the first drive motor 54 and the second drive motor 64, thereby realizing unified management of power equipment and facilitating on-site equipment management for medical staff.

[0034] See also Figures 1-8 , the working principle of the present invention: The present invention is provided with a neonatal incubator 1, an upper mounting cover 2, a lower mounting cover 3 and a sleeping auxiliary mechanism. When in use, the control panel 43 is opened, and the neonatal incubator 1 is adjusted to slightly shake by rotating the rotating cover 51, and the rotation of the rotating cover 51 is limited by the fixing frame 5.

[0035] The first drive motor 54 drives the worm gear reducer 52 to operate, thereby driving the first connecting shaft 53 to rotate, and driving the rotating cover 51 to rotate slightly inside the fixed frame 5, thereby slightly shaking the neonatal incubator 1 as a whole, and reinforcing the neonatal incubator 1 and the insulation chamber 11 when connected through the reinforcement sleeve 18.

[0036] The first drive motor 54 is a servo motor, and the motor operation trajectory is pre-set to ensure that it runs in a manner of half a circle forward and half a circle reverse to reset during use, thereby reducing the degree of shaking and creating an environment more suitable for newborn sleep.

[0037] By installing insulation boards 13 on both sides of the neonatal incubator 1, the neonatal incubator 1 is sealed and insulated when in use. The interior of the insulation chamber 11 is provided with electric heating elements, such as heating wires or heating plates, used in conjunction with the insulation inner pad 16. These elements heat the air through electricity to maintain a constant temperature. A temperature sensor can be set inside the neonatal incubator 1 to monitor the temperature in real time, making it convenient for medical staff to adjust the temperature in time.

[0038] By providing visual windows 14 on both sides of the neonatal incubator 1, medical staff can conveniently observe the condition of the neonate from the outside, and open the interior of the neonatal incubator 1 by cooperating with the opening and closing cover 12 to perform subsequent operations.

[0039] The control panel 43 is used to control the operation of the electric control box 41, the electric telescopic rod 45, the worm gear reducer 52, the first drive motor 54 and the second drive motor 64, thereby realizing unified management of power equipment and facilitating on-site equipment management by medical staff.

[0040] The present invention is provided with an azimuth adjustment mechanism and a support column 4, wherein a battery is installed inside an electric control box 41, and the battery provides the power resources required by the equipment.

[0041] The second drive motor 64 is operated to drive the reduction bearing 63 to rotate, and the mounting cover 3 under the second gear 69 is driven to rotate, so that the first gear 68 rotates, and the two second gears 69 meshed with it are driven to rotate in the opposite direction. That is, at this time, the two second gears 69 rotate in the same direction. Under the connection of the transmission plate 67 and the second connecting rod 692, the corresponding top connecting rod 694 is driven to rotate, thereby adjusting the direction of the neonatal incubator 1 on the top to meet the needs of operations in different orientations and improve the flexibility of the equipment.

[0042] The electric telescopic rod 45 is operated to drive the first connecting rod 32 to move upward, thereby fine-tuning the height of the neonatal incubator 1 to a desired height, thereby improving the overall flexibility of the device when in use.

[0043] The entire equipment is driven to move by four universal wheels 44 until it moves to the desired work location, thereby improving the overall flexibility of the equipment when in use. A mounting groove 35 is provided inside the upper mounting cover 2 to cooperate with the orientation adjustment mechanism for installation, and the lower mounting cover 3 and the upper mounting cover 2 are sealed during installation by filling the inner pad 31. Sealing plates 33 are installed on both sides of the upper mounting cover 2 and the lower mounting cover 3 to provide sealing protection for the upper mounting cover 2 and the lower mounting cover 3. Anti-slip strips 34 are installed at equal distances on both sides of the upper mounting cover 2 and the lower mounting cover 3 to reduce the anti-slip effect during actual use.

[0044] A neonatal incubator 1 is provided to keep the neonate warm, and an auxiliary sleeping mechanism is provided inside the upper mounting cover 2 and the lower mounting cover 3. The first driving motor 54 is operated, and the neonatal incubator 1 is driven to shake slightly as a whole under the rotation of the rotating cover 51. The second driving motor 64 is operated to drive the neonatal incubator 1 to rotate slightly and adjust its orientation. A more comfortable environment is created through rotation and shaking to cooperate with the rest of the neonate, accelerate the sleep efficiency of the neonate, and improve the flexibility of the equipment when used. The electric telescopic rod 45 is operated to drive the height of the neonatal incubator 1 to be adjusted, and the universal wheel 44 is used to drive the equipment to move, thereby improving the flexibility of the equipment and meeting the needs of operations in different scenarios. The overall equipment structure is simple and easy to operate, which reduces the difficulty of medical staff to get started. At the same time, the electrical control box 41 and the battery are provided to provide the power supply required for the equipment, reduce the cumbersome problems of various external circuits, and reduce safety hazards to a certain extent.

[0045] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A slightly swayable warming box, characterized in that: include: The neonatal incubator (1) is provided with a thermal insulation inner pad (16) installed inside the neonatal incubator (1), and a thermal insulation chamber (11) is installed at the bottom of the neonatal incubator (1); The upper mounting cover (2) is located below the heat preservation chamber (11); The lower mounting cover (3), the lower mounting cover (3) is located below the upper mounting cover (2); The support column (4), the support column (4) is located below the lower mounting cover (3), and electric control boxes (41) are installed on both sides of the support column (4); The auxiliary sleep mechanism is located inside the upper mounting cover (2) and the lower mounting cover (3), and comprises a fixing frame (5). The fixing frame (5) is installed inside the lower mounting cover (3), and the fixing frame (5) is rotatably connected to a rotating cover (51) inside. The orientation adjustment mechanism is located inside the upper mounting cover (2) and above the rotating cover (51), and the orientation adjustment mechanism includes a supporting side plate (6), a supporting side plate (6) is installed above the rotating cover (51), a mounting chamber (61) is installed on the top of the supporting side plate (6), a first gear (68) is rotatably connected inside the mounting chamber (61), a second gear (69) is rotatably connected on both sides of the first gear (68), two second gears (69) are meshed with the first gear (68), a top limiting plate (62) is installed above the two second gears (69), two positioning plates (695) are installed on the top of the top limiting plate (62), a top connecting rod (694) is installed inside the two positioning plates (695), and one end of the top of the two top connecting rods (694) is connected to the bottom of the neonatal incubator (1).

2. The slightly swayable incubator according to claim 1, characterized in that: A fixing frame (66) is installed on one side of the supporting side plate (6), a second driving motor (64) is installed inside the fixing frame (66), a shock-absorbing base (65) is installed at the bottom of the second driving motor (64), and the shock-absorbing base (65) is connected to the rotating cover (51). The output end of the second driving motor (64) is fixedly connected to a reduction bearing (63), and the top end of the reduction bearing (63) extends to the inside of the mounting chamber (61) and is fixedly connected to the mounting cover (3) under the second gear (69). The axis of the two second gears (69) is fixedly connected to a second connecting rod (692), and the outer side of the two second connecting rods (692) is installed with a sealing sleeve (691). The top end of the two second connecting rods (692) is installed with a transmission plate (67), and the two transmission plates (67) are connected to the top connecting rod (694) through a mounting shaft.

3. The slightly swayable incubator according to claim 2, characterized in that: A first drive motor (54) is installed on the outside of the fixing frame (5), the output end of the first drive motor (54) is connected to a worm gear reducer (52), the output end of the worm gear reducer (52) is connected to one of the first connecting shafts (53), and a rotating rod is installed on the side of the rotating cover (51) away from the first connecting shaft (53), and the rotating rod is rotatably connected to the fixing frame (5).

4. The slightly swayable incubator according to claim 3, characterized in that: A label plate (15) is installed on one side of the thermal insulation chamber (11), and symmetrically distributed thermal insulation plates (13) are installed on the top of the thermal insulation chamber (11). The two thermal insulation plates (13) are located on both sides of the neonatal incubator (1), and symmetrically distributed reinforcement sleeves (18) are installed between the neonatal incubator (1) and the thermal insulation chamber (11).

5. The slightly swayable incubator according to claim 1, characterized in that: A heat-insulating top plate (17) is installed on the top of the neonatal incubator (1), and symmetrically distributed viewing windows (14) are provided on both sides of the neonatal incubator (1), wherein an opening and closing cover (12) is installed above two of the viewing windows (14).

6. The slightly swayable incubator according to claim 4, characterized in that: The top of the support column (4) is fixedly connected to an electric telescopic rod (45), the output end of the electric telescopic rod (45) is fixedly connected to a first connecting rod (32), the electric telescopic rod (45) is located between the two electric control boxes (41), and one end of the top of the first connecting rod (32) is fixedly connected to the bottom of the lower mounting cover (3).

7. The slightly swayable incubator according to claim 1, characterized in that: A mounting groove (35) for cooperating with the orientation adjustment mechanism is provided on the top of the upper mounting cover (2).

8. The slightly swayable incubator according to claim 6, characterized in that: First connecting rods (32) are installed on both sides of the lower mounting cover (3), and anti-slip strips (34) distributed at equal intervals are installed on one side of the lower mounting cover (3) adjacent to the first connecting rod (32). A first connecting rod (32) and anti-slip strips (34) of the same structure are installed on the outer side of the upper mounting cover (2), and a filling pad (31) is installed between the lower mounting cover (3) and the upper mounting cover (2).

9. The slightly swayable incubator according to claim 8, characterized in that: The bottom of the support column (4) is fixedly connected to a support base plate (42), and the bottom of the support base plate (42) is fixedly connected to symmetrically distributed universal wheels (44).

10. The slightly swayable incubator according to claim 6, characterized in that: A control panel (43) is fixedly connected to the outside of the neonatal incubator (1), and the electric control box (41), the electric telescopic rod (45), the worm gear reducer (52), the first drive motor (54) and the second drive motor (64) are all electrically connected to the control panel (43).