Sleep health monitoring auxiliary device

By incorporating monitoring and adjustment components in pillows and towels, using rack and rack mechanism and inflation system, the monitoring data inaccurate caused by user sleep posture interference is solved, and high-precision sleep data monitoring and personalized sleep adjustment are achieved.

CN120419908APending Publication Date: 2025-08-05SHANGHAI JIAOTONG UNIV
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Patent Information

Application Number
CN202510588623.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2025-08-05

AI Technical Summary

Technical Problem

The existing sleep health monitoring device is inaccurate due to user sleep posture interference, and cannot provide reliable sleep analysis results.

Method used

A sleep health monitoring assistance device is designed, including pillows and towels, built-in monitoring components, adjustment components, drive components and inflation components. Through rack and rack mechanisms and inflation systems, the position and posture of the monitoring components are adjusted in real time to maintain accurate positioning and comfort of the user's head.

Benefits of technology

During the user's sleep process, the monitoring components accurately locate the user's head, reduce mechanical vibration errors, improve the accuracy of data monitoring and user comfort, and provide personalized sleep adjustment suggestions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of sleep health monitoring, in particular to a sleep health monitoring auxiliary device which comprises a pillow and a paving towel, and a monitoring assembly is arranged on the pillow. A cavity is formed in the pillow, a bottom plate is fixedly connected to the bottom of the cavity, and an adjusting assembly, a driving assembly and an inflation assembly are arranged on the bottom plate. The driving assembly comprises a telescopic piece, an output shaft of the telescopic piece is fixedly connected with a pushing frame, and the pushing frame is rotationally connected with a first gear. The first gear is engaged with a first rack, and a sliding plate is fixedly connected to the first rack. The sliding plate is fixedly connected with a monitoring plate, and the monitoring plate is fixedly connected with the monitoring assembly. The first gear drives the first rack to slide so as to drive the sliding plate and the monitoring plate to slide, and the monitoring plate slides to drive the monitoring assembly to move along with the user, so that the monitoring effect of the monitoring assembly on the sleep health data of the user is improved, and the sleep analysis result is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of sleep health monitoring, and in particular to a sleep health monitoring auxiliary device. Background Art

[0002] A sleep health monitoring device monitors multiple physiological indicators during sleep, collecting and analyzing this data to understand the user's sleep status. Through objective data collection and analysis, the device provides an accurate sleep quality assessment, helping users understand their sleep status. Based on the monitoring results, users can make more targeted adjustments to their lifestyle and sleeping environment, or seek professional medical help to improve their sleep quality.

[0003] Generally speaking, when users use sleep health equipment, they will be disturbed by their sleeping posture, resulting in large errors in the existing devices when monitoring the user's sleep data. When the data fluctuates greatly, it is impossible to provide users with reliable sleep analysis results.

[0004] In summary, how to solve the problem of large sleep data due to interference from the user's sleeping posture, and the inability to provide users with reliable sleep analysis results, has become a technical challenge that technicians in this field urgently need to solve. Therefore, it is necessary to propose a sleep health monitoring auxiliary device. Summary of the Invention

[0005] To solve the above problems, the present invention provides a sleep health monitoring auxiliary device, which drives the first rack to slide through the first gear, and then drives the sliding plate and the monitoring plate to slide. The sliding of the monitoring plate drives the monitoring component to move with the user, thereby improving the monitoring effect of the monitoring component on the user's sleep health data and improving the sleep analysis results.

[0006] In order to achieve the above-mentioned purpose, the technical solution of the present invention is as follows: A sleep health monitoring auxiliary device includes a pillow and a drape, and the pillow is provided with a monitoring component for monitoring sleep health.

[0007] A cavity is opened in the pillow, and a base plate is fixedly connected to the bottom of the cavity. The base plate is provided with an adjustment component for adjusting the sleeping posture, a driving component for driving the monitoring component to move, and an inflation component for inflating the adjustment component.

[0008] The driving assembly includes a telescopic member and a controller, both of which are fixedly connected to the base plate. The controller is used to control the operation of the telescopic member. The output shaft of the telescopic member is fixedly connected to the push frame, and the push frame is rotatably connected to the first gear. The first gear is engaged with a first rack, and the first rack is fixedly connected to a sliding plate. The first connecting rod is coaxially fixedly connected to both sides of the first gear. The end of the first connecting rod away from the first gear passes through the push frame and is fixedly connected to the second gear. The second gear is engaged with a second rack, and the second rack is fixedly connected to the base plate. Support plates are symmetrically fixedly connected to the base plate, and the support plates are slidably matched with the sliding plates. A monitoring plate is fixedly connected to the sliding plate, and the monitoring plate passes through the top of the pillow and extends to the outside of the pillow. The monitoring plate is fixedly connected to the monitoring assembly.

[0009] The technical principles of this solution are as follows: The monitoring component monitors the user's head position and sleep data in real time. The telescopic member drives the push frame to move, thereby rotating the first gear. The rotation of the first gear drives the movement of the first rack, which in turn drives the movement of the sliding plate and monitoring plate. The movement of the push frame inflates the inflatable component. The adjustment component adjusts the user's sleeping position, improving sleep quality.

[0010] The above scheme has the following beneficial effects:

[0011] 1. With traditional monitoring devices, when a user turns over or adjusts their sleeping position, the relative position of the user's head and the monitoring component changes, causing deviations or even interruptions in the monitoring data. This invention adjusts the position of the monitoring component in real time by moving the monitoring board, ensuring that the monitoring component is always aligned with the user's head and maintains a specific distance, thereby ensuring that the monitoring component can accurately monitor the user's sleep data. This effectively solves the monitoring blind spot problem caused by position offset in existing technologies.

[0012] 2. This invention uses a monitoring component to monitor the user's sleep data and collects data in a contactless manner, thereby improving the user's sleep comfort. This contactless data collection eliminates the sense of restraint brought by physical contact and improves the user's sleep comfort.

[0013] 3. The present invention drives the sliding plate and the monitoring plate to move by the rack, thereby reducing the situation where the sensor error is too large due to mechanical vibration, and can further improve the user's sleeping comfort.

[0014] Furthermore, the inflation component includes a piston cylinder, which is fixedly connected to the base plate, and a first air inlet and a first air outlet are opened in the piston cylinder. The first air inlet and the first air outlet are fixedly connected to a one-way valve, and the first air inlet is fixedly connected to an air intake pipe. The end of the air intake pipe away from the first air inlet passes through the pillow and extends to the outside of the pillow. The first air outlet is connected to a temporary storage component.

[0015] A piston head is slidably fitted in the piston cylinder, a side of the piston head away from the first air inlet is fixedly connected to a second connecting rod, and an end of the second connecting rod away from the piston head is fixedly connected to the push frame.

[0016] Beneficial effect: When the sliding plate is pushed by the telescopic part to adjust the position of the monitoring component, the piston head is simultaneously driven to reciprocate in the piston cylinder, sucking in external air and forming a one-way airflow through the one-way valve, directly supplying air to the adjustment component, realizing efficient coordination of inflation and monitoring component position adjustment.

[0017] Furthermore, the temporary storage component includes a temporary storage box, which has an air supply port, and is fixedly connected to the bottom plate. The temporary storage box has a second air inlet and a second air outlet, and the second air inlet is connected to the first air outlet. The second air outlet is fixedly connected to a first solenoid valve, and the controller is used to control the opening and closing of the first solenoid valve. The second air outlet is connected to the adjustment component.

[0018] Beneficial Effects: The design of the temporary storage box and the second solenoid valve makes gas storage and release more stable and reliable. The controller's coordinated control of the first and second solenoid valves enables precise regulation of the inflation and deflation of the adjustment component. This enhances the device's intelligence and allows users to customize settings based on their sleep needs, further improving sleep quality.

[0019] Furthermore, the adjustment assembly includes a plurality of adjustment airbags, each fixedly connected to the base plate. Each adjustment airbag has a third air inlet and a third air outlet. The third air inlet and the third air outlet are each fixedly connected to a second solenoid valve. The controller is used to control the opening and closing of the second solenoid valve. The third air inlet is connected to the second air outlet.

[0020] Beneficial Effects: The adjustable airbag design allows the pillow to automatically adjust to the user's sleeping position and comfort needs, providing a more fitted and comfortable sleeping experience. Furthermore, the introduction of a second solenoid valve enables precise control of the inflation and deflation of the adjustable airbag, allowing users to customize settings based on their needs, increasing the device's flexibility and convenience.

[0021] Furthermore, the monitoring component includes a temperature sensor, a sound sensor, a millimeter wave radar and an infrared sensor, and the temperature sensor, the sound sensor, the millimeter wave radar and the infrared sensor are all fixedly connected to the monitoring board.

[0022] The controller is configured to receive temperature data monitored by the temperature sensor, sound data monitored by the sound sensor, respiratory rate data monitored by the millimeter-wave radar, and distance data monitored by the infrared sensor. The controller analyzes the sound data monitored by the sound sensor. When the sound sensor detects snoring from the user, the controller controls the opening of the first solenoid valve and the second solenoid valve within the third air inlet to inflate and deflate the adjustment airbag. The controller also analyzes distance data monitored by the infrared sensor. When the infrared sensor detects a change in the distance between the infrared sensor and the user's head, the controller controls the operation of the telescopic member to adjust the position of the monitoring plate.

[0023] Beneficial Effects: The combination of temperature sensors, sound sensors, millimeter-wave radar, and infrared sensors can capture the user's sleep status and environmental information in real time, providing comprehensive data support for the controller. Simultaneously, the controller analyzes and determines based on the monitoring data, automatically adjusting the operating status of adjustment and monitoring components, thereby providing users with more accurate and personalized sleep health monitoring services.

[0024] Furthermore, a number of supporting airbags are fixedly connected to the drape, each of which is provided with a fourth air inlet and a fourth air outlet. The fourth air inlet is connected to the second air outlet, and a third solenoid valve is fixedly connected to the fourth air inlet and the fourth air outlet. The controller is used to control the opening and closing of the third solenoid valve.

[0025] Beneficial Effects: The introduction of the support airbag and third solenoid valve further enhances the comfort and functionality of the device. The support airbag design allows the drape to automatically adjust to the user's body curves and comfort needs, providing a more fitted and comfortable sleeping experience. Furthermore, the third solenoid valve allows for precise control of the inflation and deflation of the support airbag.

[0026] Furthermore, a plurality of pressure sensors are fixedly connected to the drape, and the controller is used to receive pressure data monitored by the pressure sensors.

[0027] The controller analyzes the pressure data monitored by the pressure sensor. When the pressure sensor detects that the pressure area of the drape is reduced and the pressure distribution is concentrated in a strip shape, the controller determines that the user's sleeping position has changed from lying down to sleeping on the side. At this time, the controller controls the first solenoid valve and the third solenoid valve in the fourth air inlet to open, and inflate and deflate the support airbag.

[0028] Beneficial Effects: The pressure sensor captures real-time information about the user's pressure distribution on the drape, providing accurate data to the controller. The controller then analyzes and determines this pressure data, automatically adjusting the inflation level of the support airbags to guide the user in adjusting their sleeping position and avoid discomfort caused by maintaining the same position for extended periods.

[0029] Furthermore, a plurality of heat dissipation holes are provided on the surface of the pillow.

[0030] Beneficial effect: The setting of the heat dissipation holes enables the air inside the pillow to be exchanged with the outside world, thereby effectively reducing the temperature and humidity inside the pillow and preventing the user from feeling stuffy and uncomfortable during sleep.

[0031] Furthermore, a carbon dioxide concentration sensor is fixedly connected to the bottom plate, and the controller is used to receive carbon dioxide concentration data monitored by the carbon dioxide concentration sensor.

[0032] Beneficial effect: The carbon dioxide concentration sensor can be used to monitor the carbon dioxide concentration in the user's sleeping environment, and then judge the user's sleep quality through the controller.

[0033] Furthermore, a side of the second gear away from the first gear is fixedly connected to a third connecting rod, and an end of the third connecting rod away from the second gear is fixedly connected to a fan blade.

[0034] Beneficial effect: The rotation of the fan blades can generate airflow to promote the flow of gas in the pillow, so that the carbon dioxide concentration sensor can more accurately measure the carbon dioxide concentration in the surrounding environment.

[0035] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] Figure 1 This is a top view of a sleep health monitoring auxiliary device of the present invention.

[0037] Figure 2 This is an axonometric diagram of an adjustment component and a monitoring component in a sleep health monitoring auxiliary device of the present invention.

[0038] Figure 3 This is an axonometric diagram of a drive component and an inflation component in a sleep health monitoring auxiliary device of the present invention.

[0039] Figure 4 for Figure 3 Enlarged schematic diagram of part A.

[0040] Figure 5 This is a cross-sectional view of a driving component and an inflation component in a sleep health monitoring auxiliary device of the present invention.

[0041] The figure marks in the drawings of the specification include: 1. pillow; 2. monitoring board; 3. drape; 4. support airbag; 5. pressure sensor; 6. bottom plate; 7. adjustment airbag; 8. sliding plate; 9. piston cylinder; 10. temporary storage box; 11. electric telescopic rod; 12. pushing frame; 13. first gear; 14. fan blade; 15. second gear; 16. second rack; 17. infrared sensor; 18. temperature sensor; 19. sound sensor; 20. millimeter wave radar; 21. first rack; 22. piston head; 23. support plate; 24. heat dissipation hole. DETAILED DESCRIPTION

[0042] The following is further described in detail through specific implementation methods:

[0043] Example 1:

[0044] As attached Figure 1-Figure 5 Shown: A sleep health monitoring auxiliary device, including a pillow 1 and a drape 3, wherein the pillow 1 is provided with a monitoring component for monitoring sleep health.

[0045] The pillow 1 has a cavity therein, and a base plate 6 is fixedly connected to the bottom of the cavity by screws. The base plate 6 is provided with an adjustment component for adjusting the sleeping posture, a driving component for driving the monitoring component to move, and an inflation component for inflating the adjustment component.

[0046] like Figure 3 and Figure 4 As shown, the drive assembly includes a telescopic member and a controller. In this embodiment, the telescopic member is an electric telescopic rod 11. The electric telescopic rod 11 and the controller are both screw-fixed to the base plate 6. The controller is used to control the operation of the electric telescopic rod 11. The output shaft of the electric telescopic rod 11 is screw-fixed to the push frame 12, and the push frame 12 is rotatably connected to the first gear 13. The first gear 13 meshes with a first rack 21, and the first rack 21 is bolt-fixed to the sliding plate 8.

[0047] First connecting rods are coaxially screwed to both sides of the first gear 13. The ends of the first connecting rods, away from the first gear 13, extend through the push frame 12 and are screwed to the second gear 15. The second gears 15 are meshed with second racks 16, which are bolted to the base plate 6. Support plates 23 are symmetrically bolted to the base plate 6, and the support plates 23 are slidably engaged with the sliding plate 8.

[0048] like Figure 2 As shown, the monitoring plate 2 is fixedly connected to the sliding plate 8 by screws. The monitoring plate 2 passes through the top of the pillow 1 and extends to the outside of the pillow 1. The monitoring plate 2 is fixedly connected to the monitoring component by screws.

[0049] like Figure 5As shown, the inflation assembly includes a piston cylinder 9, which is bolted to the base plate 6. A first air inlet and a first air outlet are formed in the piston cylinder 9. Both the first air inlet and the first air outlet are screwed to a one-way valve. The first air inlet is screwed to an air inlet pipe, which extends through the pillow 1 to the outside of the pillow 1 at the end away from the first air inlet. The first air outlet is connected to a temporary storage assembly. A piston head 22 is slidably fitted within the piston cylinder 9. A second connecting rod is screwed to the side of the piston head 22 away from the first air inlet. The end of the second connecting rod away from the piston head 22 is screwed to the push frame 12. The temporary storage component includes a temporary storage box 10, which has a gas supply port. The temporary storage box 10 is fixedly connected to the base plate 6 with bolts. The temporary storage box 10 has a second air inlet and a second air outlet. The second air inlet is connected to the first air outlet. The second air outlet is fixedly connected to the first solenoid valve by screws. The controller is used to control the opening and closing of the first solenoid valve. The second air outlet is connected to the adjustment component.

[0050] The adjustment assembly includes several adjustment airbags 7, each bonded to the base plate 6. Each airbag 7 has a third air inlet and a third air outlet. These third air inlets and third air outlets are screwed into a second solenoid valve. A controller controls the opening and closing of the second solenoid valve. The third air inlets are connected to the second air outlet.

[0051] The monitoring component includes a temperature sensor 18 , a sound sensor 19 , a millimeter-wave radar 20 and an infrared sensor 17 , and the temperature sensor 18 , the sound sensor 19 , the millimeter-wave radar 20 and the infrared sensor 17 are all fixedly connected to the monitoring board 2 by screws.

[0052] The controller is configured to receive temperature data monitored by the temperature sensor 18, sound data monitored by the sound sensor 19, respiratory rate data monitored by the millimeter-wave radar 20, and distance data monitored by the infrared sensor 17. The controller analyzes the sound data monitored by the sound sensor 19. When the sound sensor 19 detects snoring from the user, the controller controls the opening of the first solenoid valve and the second solenoid valve within the third air inlet to inflate and deflate the adjustment airbag 7. The controller also analyzes the distance data monitored by the infrared sensor 17. When the infrared sensor 17 detects a change in the distance between the infrared sensor 17 and the user's head, the controller controls the operation of the electric telescopic rod 11 to adjust the position of the monitoring plate 2.

[0053] like Figure 1As shown, the drape 3 is bonded with several support airbags 4, each of which has a fourth air inlet and a fourth air outlet. The fourth air inlet is connected to the second air outlet. A third solenoid valve is screwed into each of the fourth air inlet and outlet. A controller controls the opening and closing of the third solenoid valve. Several pressure sensors 5 are bonded to the drape 3, and the controller receives pressure data monitored by the pressure sensors 5.

[0054] The controller analyzes the pressure data monitored by the pressure sensor 5. When the pressure sensor 5 detects that the pressure area of the drape 3 is reduced and the pressure distribution is concentrated in a strip shape, the controller determines that the user's sleeping position has changed from lying down to sleeping on the side. At this time, the controller controls the first solenoid valve and the third solenoid valve in the fourth air inlet to open, and inflate and deflate the support airbag 4.

[0055] The specific implementation process is as follows: First, the user can place the pillow 1 and the drape 3 on the bed, and then the user can rest their head on the pillow 1 and lie on the drape 3. Air can be pre-introduced into the temporary storage box 10 through the air inlet. Since air is compressible, the gas in the temporary storage box 10 is sufficient to adjust the gas pressure in the adjustment airbag 7 and the support airbag 4. The user can control the second solenoid valve in the third air inlet and the third air outlet through the controller to adjust the height of the adjustment airbag 7, and the user can control the third solenoid valve in the fourth air inlet and the fourth air outlet through the controller to adjust the height of the support airbag 4, thereby improving the user's sleeping comfort.

[0056] by Figure 5 For example, while the user is sleeping, the temperature sensor 18 will monitor the temperature data near the user's head, the sound sensor 19 will monitor the sound characteristics of the user's sleep, and the millimeter-wave radar 20 will monitor the user's head movements and breathing rate during sleep. The controller can summarize the user's head temperature data, sound data, head micro-movements, and breathing rate. When the temperature sensor 18 monitors the user's head temperature data at 35°C, the sound sensor 19 monitors the user's breathing sound less than 20 decibels, and the millimeter-wave radar 20 monitors the user's breathing rate less than 25 times, the controller determines that the user's sleep quality is good. Through the controller's judgment, the user is assisted in completing the monitoring of his or her own sleep health.

[0057] When the user turns over during sleep, the distance between the user's head and the temperature sensor 18, sound sensor 19 and millimeter-wave radar 20 will change. When the distance increases, it will affect the monitoring accuracy of the temperature sensor 18, sound sensor 19 and millimeter-wave radar 20.

[0058] The infrared sensor 17 monitors the distance between the infrared sensor 17 and the user's head. When the user turns over during sleep, the distance between the user and the infrared sensor 17 will change. The user can preset the distance data between the infrared sensor 17 and the user's head through the controller. When the distance between the infrared sensor 17 and the user's head changes, the controller controls the electric telescopic rod 11 to start according to the distance change.

[0059] Combine Figure 3 and Figure 4 As shown, when the electric telescopic rod 11 is activated, it drives the push frame 12 to move. As the push frame 12 moves, the second gear 15 meshes with the second rack 16, causing the second gear 15 to rotate along the second rack 16. The rotation of the second gear 15 drives the first gear 13 to rotate. Because the first gear 13 meshes with the first rack 21, which is bolted to the sliding plate 8, the rotation of the first gear 13 drives the first rack 21 to move. At this point, the sliding plate 8 slides along the support plate 23 under the action of the first rack 21.

[0060] Combine Figure 1 and Figure 2 As shown, when the sliding plate 8 slides, it will drive the monitoring plate 2 to slide. At this time, as the monitoring plate 2 slides, the distance between the infrared sensor 17, the temperature sensor 18, the sound sensor 19 and the millimeter-wave radar 20 and the user's head can be adjusted, thereby further improving the monitoring effect of the temperature sensor 18, the sound sensor 19 and the millimeter-wave radar 20 on the user's sleep quality.

[0061] Combine Figure 5 As shown, as the electric telescopic rod 11 drives the pushing frame 12 to move, the pushing frame 12 will drive the piston head 22 to slide in the piston cylinder 9. As the pushing frame 12 moves, the air in the external environment will enter the piston cylinder 9 through the air intake pipe and the one-way valve of the first air inlet. Then the gas in the piston cylinder 9 will enter the temporary storage box 10 through the one-way valve in the first air outlet to further replenish the gas in the temporary storage box 10.

[0062] When the millimeter-wave radar 20 detects that the user's head is tilted back excessively, the airway in the throat is narrowed and the airflow is blocked, thereby making a snoring sound. The sound sensor 19 will detect the snoring sound made by the user. At this time, the controller will control the first solenoid valve and the second solenoid valve in the third air inlet to open. At this time, the gas in the temporary storage box 10 will enter the adjustment airbag 7, thereby increasing the air pressure of the adjustment airbag 7. When the air pressure in the adjustment airbag 7 increases, the adjustment airbag 7 will lift the user's head so that the user's head will not tilt back excessively, thereby adjusting the user's sleeping posture and reducing the possibility of snoring.

[0063] When the millimeter-wave radar 20 detects that the user's head tilt angle is too small, the neck and head will bend at a certain angle, causing the throat to relax, resulting in snoring. At this time, the controller can control the second solenoid valve in the third air outlet to open, so that the pressure in the adjustment airbag 7 is reduced, thereby increasing the tilt angle of the user's head, and then adjusting the user's sleeping posture to improve the user's sleeping comfort.

[0064] When the sound sensor 19 detects that the user has stopped snoring, the controller can control the first solenoid valve and the second solenoid valve in the third air inlet to close.

[0065] Combine Figure 1 As shown, during the user's sleep, the pressure sensor 5 will continuously monitor the pressure on different positions of the drape 3. When the user's sleeping position changes from lying flat to lying on the side, the pressure sensor 5 will detect that the area of the drape 3 subjected to pressure decreases, and the pressure is concentrated in a strip shape.

[0066] The controller then detects this pressure change and controls the opening of the first solenoid valve and the third solenoid valve within the fourth air inlet, allowing the gas within the temporary storage box 10 to enter the support airbag 4. This increases the air pressure within the support airbag 4, providing a certain degree of support for the user's body, thereby improving the user's sleep comfort. The support provided by the support airbag 4 helps the user maintain a stable sleeping position, reduces tossing and turning during the night, and thus prolongs deep sleep and improves sleep quality.

[0067] In the process of adjusting the air pressure in the support airbag 4, the pressure on the user's body can also be dispersed, which helps to relieve muscle fatigue and discomfort, making the user feel more relaxed and comfortable during sleep.

[0068] Example 2:

[0069] The difference from the above embodiment is that a plurality of heat dissipation holes 24 are opened on the surface of the pillow 1 .

[0070] The specific implementation process is as follows: The design of the heat dissipation holes 24 allows air inside the pillow 1 to exchange with the outside air, thereby improving the breathability of the pillow 1 and enhancing the user's sleeping comfort. A hot and stuffy environment can disrupt the user's sleep cycle and cause more light sleep. The breathable environment maintained by the heat dissipation holes 24 helps promote melatonin secretion and prolong the user's deep sleep.

[0071] Example 3:

[0072] like Figure 3 and Figure 4As shown, the difference from the above embodiment is that a carbon dioxide concentration sensor (not shown) is fixedly connected to the bottom plate 6 with screws, and the controller is used to receive carbon dioxide concentration data monitored by the carbon dioxide concentration sensor. The side of the second gear 15 away from the first gear 13 is fixedly connected to the third connecting rod with screws, and the end of the third connecting rod away from the second gear 15 is fixedly connected to the fan blade 14 with screws.

[0073] The specific implementation process is as follows: the carbon dioxide concentration sensor can monitor the carbon dioxide concentration in the user's sleeping environment in real time. When the second gear 15 rotates, it will drive the fan blades 14 to rotate. As the fan blades 14 rotate, the air circulation in the pillow 1 will be promoted, thereby further promoting the exchange of gas in the pillow 1 with the external gas, and improving the monitoring accuracy of the carbon dioxide concentration sensor.

[0074] Obviously, the above embodiments are merely examples for clarity of explanation and are not intended to limit the implementation methods. Those skilled in the art will readily appreciate that other variations or modifications based on the above descriptions are possible. It is not necessary and impossible to enumerate all implementation methods here. Obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.

Claims

1. A sleep health monitoring auxiliary device, comprising a pillow (1) and a drape (3), characterized in that: The pillow (1) is provided with a monitoring component for monitoring sleep health; The pillow (1) has a cavity formed therein, the bottom of the cavity being fixedly connected to a base plate (6), and the base plate (6) is provided with an adjustment component for adjusting a sleeping posture, a driving component for driving the monitoring component to move, and an inflation component for inflating the adjustment component; The driving assembly includes a telescopic member and a controller, both of which are fixedly connected to a base plate (6). The controller is used to control the operation of the telescopic member. The output shaft of the telescopic member is fixedly connected to a push frame (12), and the push frame (12) is rotatably connected to a first gear (13); the first gear (13) is meshed with a first rack (21), and the first rack (21) is fixedly connected to a sliding plate (8); Both sides of the first gear (13) are coaxially fixedly connected to a first connecting rod, one end of the first connecting rod away from the first gear (13) passes through the pushing frame (12) and is fixedly connected to a second gear (15), the second gear (15) is meshed with a second rack (16), and the second rack (16) is fixedly connected to the bottom plate (6); The bottom plate (6) is symmetrically fixedly connected with a support plate (23), and the support plate (23) is slidably matched with the sliding plate (8); A monitoring plate (2) is fixedly connected to the sliding plate (8), the monitoring plate (2) passes through the top of the pillow (1) and extends to the outside of the pillow (1), and the monitoring plate (2) is fixedly connected to the monitoring assembly.

2. The sleep health monitoring auxiliary device according to claim 1, characterized in that: The inflation component includes a piston cylinder (9), the piston cylinder (9) is fixedly connected to the bottom plate (6), a first air inlet and a first air outlet are formed in the piston cylinder (9), the first air inlet and the first air outlet are fixedly connected to a one-way valve, the first air inlet is fixedly connected to an air inlet pipe, an end of the air inlet pipe away from the first air inlet passes through the pillow (1) and extends to the outside of the pillow (1), and the first air outlet is connected to a temporary storage component; A piston head (22) is slidably fitted in the piston cylinder (9), a second connecting rod is fixedly connected to the side of the piston head (22) away from the first air inlet, and an end of the second connecting rod away from the piston head (22) is fixedly connected to the push frame (12).

3. The sleep health monitoring auxiliary device according to claim 2, characterized in that: The temporary storage component includes a temporary storage box (10), a gas transmission port is provided on the temporary storage box (10), the temporary storage box (10) is fixedly connected to the bottom plate (6), a second air inlet and a second air outlet are provided on the temporary storage box (10), the second air inlet is connected to the first air outlet, a first electromagnetic valve is fixedly connected in the second air outlet, a controller is used to control the opening and closing of the first electromagnetic valve, and the second air outlet is connected to the adjustment component.

4. The sleep health monitoring auxiliary device according to claim 3, characterized in that: The adjustment assembly includes a plurality of adjustment airbags (7), each of which is fixedly connected to the bottom plate (6), each of which is provided with a third air inlet and a third air outlet, each of which is fixedly connected to a second solenoid valve, and a controller is used to control the opening and closing of the second solenoid valve; The third air inlet is communicated with the second air outlet.

5. The sleep health monitoring auxiliary device according to claim 4, characterized in that: The monitoring component includes a temperature sensor (18), a sound sensor (19), a millimeter wave radar (20) and an infrared sensor (17), and the temperature sensor (18), the sound sensor (19), the millimeter wave radar (20) and the infrared sensor (17) are all fixedly connected to the monitoring board (2); The controller is used to respectively receive temperature data monitored by the temperature sensor (18), sound data monitored by the sound sensor (19), respiratory rate data monitored by the millimeter wave radar (20), and distance data monitored by the infrared sensor (17); The controller analyzes the sound data detected by the sound sensor (19). When the sound sensor (19) detects that the user is snoring, the controller controls the first solenoid valve and the second solenoid valve in the third air inlet to open, thereby inflating and deflating the adjustment airbag (7). The controller analyzes the distance data monitored by the infrared sensor (17). When the infrared sensor (17) detects that the distance between the infrared sensor (17) and the user's head changes, the controller controls the telescopic member to operate and adjusts the position of the monitoring plate (2).

6. The sleep health monitoring auxiliary device according to claim 5, characterized in that: A plurality of supporting air bags (4) are fixedly connected to the drape (3), each of the supporting air bags (4) is provided with a fourth air inlet and a fourth air outlet, each of the fourth air inlets is connected to the second air outlet, and each of the fourth air inlets and the fourth air outlet is fixedly connected to a third solenoid valve, and a controller is used to control the opening and closing of the third solenoid valve.

7. The sleep health monitoring auxiliary device according to claim 6, characterized in that: A plurality of pressure sensors (5) are fixedly connected to the drape (3), and the controller is used to receive pressure data monitored by the pressure sensors (5); The controller analyzes the pressure data monitored by the pressure sensor (5). When the pressure sensor (5) detects that the pressure area of the drape (3) is reduced and the pressure distribution is concentrated in a strip shape, the controller determines that the user's sleeping posture has changed from lying down to side sleeping. At this time, the controller controls the first solenoid valve and the third solenoid valve in the fourth air inlet to open, and inflate and deflate the support airbag (4).

8. The sleep health monitoring auxiliary device according to claim 7, characterized in that: A plurality of heat dissipation holes (24) are provided on the surface of the pillow (1).

9. The sleep health monitoring auxiliary device according to claim 8, characterized in that: A carbon dioxide concentration sensor is fixedly connected to the bottom plate (6), and the controller is used to receive carbon dioxide concentration data monitored by the carbon dioxide concentration sensor.

10. The sleep health monitoring auxiliary device according to claim 9, characterized in that: A side of the second gear (15) away from the first gear (13) is fixedly connected to a third connecting rod, and an end of the third connecting rod away from the second gear (15) is fixedly connected to a fan blade (14).