CN217723478U - Non-contact sleep monitoring device - Google Patents
Non-contact sleep monitoring device Download PDFInfo
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- CN217723478U CN217723478U CN202121693062.7U CN202121693062U CN217723478U CN 217723478 U CN217723478 U CN 217723478U CN 202121693062 U CN202121693062 U CN 202121693062U CN 217723478 U CN217723478 U CN 217723478U
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Abstract
The utility model discloses a non-contact sleep monitor device, including monitoring body, chip box and mobile terminal, the monitoring body sets gradually top envelope, last shielding layer, PVDF pressure sensor, shielding layer and bottom envelope down from top to bottom, includes signal amplification module, filtering module, analog-to-digital conversion module, control module, wiFi module, storage module and timing module in the chip box. Use the utility model discloses can realize breathing and the measurement of rhythm of the heart, the material is sensitive, and the data of acquisition have more the accuracy. Meanwhile, the manufacturing cost is low, the material is saved, and the installation and the application are simple. The non-contact measurement of physiological signals can be realized, discomfort is avoided, normal sleep of people is not interfered, and the monitoring data is more reliable. The user can know the contents of the self sleep time, the sleep duration, the sleep evaluation and the like according to the sleep monitoring condition and the analysis report. Meanwhile, the sleep condition of the user can be adjusted according to historical data, so that the analysis benchmark is more suitable for the sleep condition of the user.
Description
Technical Field
The utility model belongs to the technical field of the sleep monitor and specifically relates to a non-contact sleep monitor device based on PVDF piezoelectric film.
Background
The importance of sleep on human body health is self-evident, sleep enables the brain and body of people to rest, recuperate and recover, and as an important link for repairing life organism, sleep is closely related to physiological and psychological functions of people, and influences many aspects of health condition, life quality, working efficiency and the like of people. The quality of sleep does not depend on the length of time but on the quality of sleep, and sleep monitoring and sleep quality analysis have become an important link in assessing the health status of a person and preventing related diseases. In addition, many physiological functions in the human body are obviously changed during the sleeping process, the duration of the sleeping process and the change of a body function regulating system, and early signals of various chronic diseases are easy to capture in the period. Therefore, sleep monitoring technology has become an indispensable element in modern medical diagnosis.
Currently, existing monitoring devices are roughly classified into polysomnography, micro-motion sensitive mattresses, infrared monitoring, wearable devices and the like. The parameters of polysomnography monitoring are more, the adopted sensors are various, a plurality of electrodes are required to be attached to a human body, the influence on normal sleep is caused, the defects that the patient is in hospital and is difficult to fall asleep, the sensors are easy to fall off and the like exist in the monitoring process, and the obtained data can not accurately reflect the normal sleep condition of the tested person. The mattress type sleep monitoring product is complex and troublesome in connection and is not easy to realize; the number of the sensors is excessive, the connection is difficult, the data of a plurality of signal sensors are independent, the continuity of signal transmission is poor, and meanwhile, the material consumption and the cost are high; in addition, the device is bulky, inconvenient to move, tedious in procedure and difficult to use in a home. The infrared monitoring equipment is very expensive, can only be used in medical research institutions and is difficult to popularize. Some 'weak invasive' or contact devices, such as smart watches, smart bracelets, wrist strap measurement, fingertip monitoring peripheral arteries and the like, cause discomfort to the tested person and influence the sleep quality.
SUMMERY OF THE UTILITY MODEL
In order to solve the technical problem, the utility model provides a non-contact sleep monitor device based on PVDF piezoelectric film.
The utility model relates to a non-contact sleep monitoring device based on PVDF piezoelectric film, which comprises a monitoring body, a chip box and a mobile terminal, wherein the monitoring body is connected with the chip box through a lead, the monitoring body comprises an upper shielding layer, a PVDF pressure sensor and a lower shielding layer which are sequentially arranged from top to bottom and are packaged together through an outer envelope, the PVDF pressure sensor is transversely arranged between the upper shielding layer and the lower shielding layer, the chip box comprises a signal amplification module, a filtering module, an analog-to-digital conversion module, a control module, a WiFi module, a storage module and a timing module, wherein the signal amplification module is used for receiving respiratory and heartbeat signals collected by the PVDF pressure sensor and sending the signals to the filtering module after increasing the signal amplitude, the filtering module receives the signals sent by the signal amplification module, filters the signals to remove clutter and send the signals to the analog-to-digital conversion module, the analog-to-digital conversion module receives the signals sent by the filtering module, converts the signals into digital signals which the control module can identify operation and sends the digital signals to the control module, the control module receives the signals sent by the digital-analog-to the digital conversion module, analyzes the sleep information to obtain sleep information of a sleep of a user, sends the sleep information to the mobile terminal through the timing module, sends the timing control instruction to the mobile terminal through the mobile terminal, and sends the timing control module, sends the timing instruction to the mobile terminal through the timing module, the command is transmitted back to the control module through the WiFi module, and the storage module is used for storing the sleep information sent by the control module and the duration information sent by the timing module.
Further, still include early warning module, alarm lamp and bee calling organ in the chip box, when control module analysis user's rhythm of the heart data was less than per minute 60 times or rhythm of the heart data was higher than per minute 100 times, control module sent early warning signal to early warning module, and early warning module receives the early warning signal and sends the instruction to alarm lamp and bee calling organ, and the alarm lamp scintillation, bee calling organ carries out audible alarm.
Further, the alarm lamp is a YLB 5611BH type digital display alarm lamp, and the buzzer is an HY1205GP KC1206 type buzzer.
Furthermore, the control module and the mobile terminal can be connected through a Bluetooth module.
Further, the mobile terminal is a mobile phone, a desktop computer or a tablet computer.
Further, the signal amplification module is a TLV2464CNE4 type signal amplification chip, the filtering module is a MAX274BEWI type filter, the analog-to-digital conversion module is an STM32F103C8T6 type analog-to-digital conversion chip, the control module is an STM32F103C8T6 chip, the timing module is an LMC555CMX type timing chip, and the WiFi module is an ESP8266 type WiFi module.
Further, the storage module is a TF storage card or an SD storage card.
Further, the thickness of the outer envelope is 1mm, the thicknesses of the upper shielding layer and the lower shielding layer are 1mm, and the thickness of the PVDF sensor layer is 30-500 μm.
The utility model has the advantages that:
1. the PVDF pressure sensor has the functions of measuring pressure and vibration, and the pressure sensor is an integral structure determined by the structure of the PVDF pressure sensor, can integrally measure data, can be tightly attached to a human body, and ensures the continuity of monitoring data.
2. The material is sensitive, and the obtained data has higher accuracy by matching with an amplifying circuit and a filtering circuit. Meanwhile, the device has the advantages of low manufacturing cost, material saving, simple installation and application, no need of special equipment, no special device mainly comprising a sensor and a chip, convenient connection and easy use. The material is light and thin, has good flexibility, is not afraid of folding, is waterproof and is convenient to carry.
3. The device can realize the non-contact measurement of physiological signals, has no uncomfortable feeling, is very light and thin, and cannot feel the thickness of a user. When the utility model is used, the sleeping posture is not limited, the utility model discloses place the sensing area in human sleeping area, no matter what kind of sleeping posture, as long as the health has the contact with the sensor, just can produce the signal, do not limit any sleeping posture.
4. The user can know the contents of the self sleep time, the sleep duration, the sleep evaluation and the like according to the sleep monitoring condition and the analysis report, and adjust the sleep cycle according to the self condition so as to improve the sleep condition. Meanwhile, the sleep condition of the user can be adjusted according to historical data, so that the analysis benchmark is more suitable for the sleep condition of the user.
Drawings
The accompanying drawings, which form a part of the present application, are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the invention and not to limit the invention.
FIG. 1 is a schematic structural view of a monitoring body;
FIG. 2 is a schematic view of the connection between the monitoring body and the chip box;
FIG. 3 is a schematic diagram of the position of a PVDF pressure sensor in a sleep monitoring device;
FIG. 4 is a block diagram of the circuit structure of the present invention;
fig. 5 is a flow chart of sleep monitoring according to the present invention.
In the figure: 1. chip box, 2, PVDF pressure sensor, 3, monitoring body, 4, last shielding layer, 5, wire, 6, shielding layer down, 7, outer envelope, 8, filtering module, 9, analog-to-digital conversion module, 10, control module, 11, mobile terminal, 12, bluetooth module, 13, wiFi module, 14, storage module, 15, timing module, 16, early warning module, 17, alarm lamp, 18, bee calling organ, 19, signal amplification module.
Detailed Description
In order to enhance the understanding of the present invention, the present invention will be described in detail with reference to the accompanying drawings.
As shown in fig. 1 to 4, the non-contact sleep monitoring device based on the PVDF piezoelectric film in this embodiment includes a monitoring body 3, a chip box 1, and a mobile terminal 11, the monitoring body 3 is connected to the chip box 1 through a wire 5, the monitoring body 3 includes an upper shielding layer 4, a PVDF pressure sensor 2, and a lower shielding layer 6, which are sequentially disposed from top to bottom and packaged together through an outer envelope 7, the PVDF pressure sensor 2 is transversely disposed between the upper shielding layer 4 and the lower shielding layer 6, the chip box 1 includes a signal amplification module 19, a filtering module 8, an analog-to-digital conversion module 9, a control module 10, a WiFi module 13, a storage module 14, and a timing module 15, wherein the signal amplification module 19 is configured to receive respiratory and heartbeat signals collected by the PVDF pressure sensor 2, increase signal amplitudes thereof, and then send the signals to the filtering module 8, the filtering module 8 receives the signal sent by the signal amplifying module 19, filters the signal, removes noise and sends the signal to the analog-to-digital conversion module 9, the analog-to-digital conversion module 9 receives the signal sent by the filtering module 8, converts the signal into a digital signal which can be identified by the control module 10 and sends the digital signal to the control module 10, the control module 10 receives the signal sent by the digital-to-analog conversion module 9, analyzes the signal to obtain sleep information of a user, sends the sleep information to the storage module 14, sends a timing instruction to the timing module 15, the timing module 15 receives the timing instruction of the control module 10, calculates the total sleep duration and the sleep duration of each stage of the user through timing, sends the information to the control module 10 and the storage module 14, the control module 10 sends the sleep information to the mobile terminal 11 through the WiFi module 13 after receiving the signal sent by the timing module 15, the sleep information is displayed to the user through the mobile terminal 11, the user can send an instruction to the controller 10 through the mobile terminal 11, the instruction is sent back to the control module 10 through the WiFi module 13, and the storage module 14 is used for storing the sleep information sent by the control module 10 and the duration information sent by the timing module 15.
Still include early warning module 16, alarm lamp 17 and bee calling organ 18 in the chip box 1, when control module 10 analysis user's rhythm of the heart data is less than 60 times per minute or rhythm of the heart data is higher than 100 times per minute, control module 10 sends early warning signal to early warning module 16, and early warning module 16 receives early warning signal and sends the instruction to alarm lamp 17 and bee calling organ 18, and alarm lamp 17 glimmers, and bee calling organ 18 carries out audible alarm.
The alarm lamp 17 is a YLB 5611BH type digital display alarm lamp, and the buzzer 18 is an HY1205GP KC1206 type buzzer.
The control module 10 and the mobile terminal 11 can also be connected through a bluetooth module 12.
The mobile terminal 11 is a mobile phone, a desktop computer or a tablet computer.
The signal amplification module 19 is a TLV2464CNE4 type signal amplification chip, the filtering module 8 is a MAX274BEWI type filter, the analog-to-digital conversion module 9 is an STM32F103C8T6 type analog-to-digital conversion chip, the control module 10 is an STM32F103C8T6 chip, the timing module 15 is an LMC555CMX type timing chip, and the WiFi module 13 is an ESP8266 type WiFi module.
The storage module 14 is a TF storage card or an SD storage card.
The thickness of the outer envelope 3 is 1mm, the thickness of the upper shielding layer 4 and the lower shielding layer 6 is 1mm, and the thickness of the PVDF sensor 2 layer is 30-500 μm.
As shown in fig. 5, the steps of performing sleep monitoring by applying the non-contact sleep monitoring apparatus of the present embodiment are as follows:
(1) Judging whether the user is used for the first time through the mobile terminal 11, if the user is used for the first time, the user needs to be registered by the mobile terminal 11, jumping to the step 2) to start to establish a sleep record after the registration is finished, and jumping to the step 6) if the sleep record is established;
(2) Starting to establish a sleep record, starting to record sleep start time when the monitoring body 3 collects the breathing and heartbeat data, and collecting a group of breathing frequency and heart rate data every minute;
(3) When the sleep is finished, the monitoring body 3 stops collecting the respiration and heartbeat data, records the sleep finish time, calculates the total sleep time, records the total sleep time as N minutes, and stores the total sleep time into the storage module 14;
(4) Arranging the obtained N respiratory frequency data in a descending order to obtain a { A1, A2, A3.. AN } data set, taking A [ N/4] as a deep sleep respiratory frequency threshold value and A [3N/4] as a light sleep respiratory frequency threshold value, and storing the data set into a storage module 14;
(5) The obtained N heart rate data are arranged in the sequence from small to large to obtain a { B1, B2, B3.. BN } data set, B [ N/4] is taken as a deep sleep heart rate threshold, B [3N/4] is taken as a light sleep heart rate threshold, and the data are stored in a storage module 14;
(6) Starting sleep monitoring, and starting to record sleep starting time when the monitoring body 3 collects breathing and heartbeat data;
(7) The monitoring body 3 collects a group of respiratory rate and heart rate data every minute;
(8) Whether the heart rate of the person in the minute is smaller than a light sleep heart rate threshold value or not, if so, skipping to the step (9), and if not, skipping to the step (11);
(9) Whether the minute heart rate is smaller than a deep sleep heart rate threshold value or not, if so, jumping to the step (10), and if so, jumping to the step (13);
(10) Whether the minute respiratory rate is less than the deep sleep respiratory rate threshold or not, if so, skipping to the step (12), and if not, skipping to the step (13);
(11) Whether the minute respiratory rate is smaller than a light sleep respiratory rate threshold or not, if so, skipping to the step (13), and if so, skipping to the step (14);
(12) Determining the minute as a deep sleep state, and jumping to the step (15);
(13) Determining the minute as a light sleep state, and jumping to the step (15);
(14) Determining the minute as the waking state, and jumping to the step (15);
(15) Judging whether the sleep is finished or not, if the sleep is finished, jumping to the step (16), and if the sleep is not finished, jumping to the step (7);
(16) Recording the sleep ending time, calculating the total sleep time to be N1 minutes, and storing the total sleep time in the storage module 14;
(17) The control module respectively calculates the duration of the waking state, the light sleep state and the deep sleep state and the proportion of the total sleep duration of each sleep state, and displays the duration to the user through the mobile terminal 11;
(18) The user subjectively judges whether the sleep quality is good or not, if the sleep quality is good, the step (19) is skipped, and if the sleep quality is deviated, the step (21) is skipped;
(19) Mixing the N1 respiratory frequency data acquired this time with the respiratory frequency data acquired and retained previously, and arranging the data in a sequence from small to large to obtain a new { A1, A2, A3.. AN + N1} data set, updating A [ (N + N1)/4 ] to be a deep sleep respiratory frequency threshold value, updating A [3 (N + N1)/4 ] to be a shallow sleep respiratory frequency threshold value, and storing the data in the storage module 14;
(20) Mixing the N1 heart rate data acquired this time with the heart rate data acquired and retained previously, and arranging the data in a sequence from small to large to obtain a new { B1, B2, B3.. BN + N1} data set, updating B [ (N + N1)/4 ] to be a deep sleep heart rate threshold value, updating B [3 (N + N1)/4 ] to be a shallow sleep heart rate threshold value, and storing the data in the storage module 14;
(21) And the sleep monitoring is finished.
The above description is only for the purpose of illustrating particular embodiments of the present invention and is not intended to limit the present invention, which may be modified and varied by those skilled in the art. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention should be included in the protection scope of the present invention.
Claims (8)
1. A non-contact sleep monitoring device comprises a monitoring body, a chip box and a mobile terminal, wherein the monitoring body is connected with the chip box through a wire, and the non-contact sleep monitoring device is characterized in that the monitoring body comprises an upper shielding layer, a PVDF pressure sensor and a lower shielding layer which are sequentially arranged from top to bottom and packaged together through an outer envelope, the PVDF pressure sensor is transversely arranged between the upper shielding layer and the lower shielding layer, the chip box comprises a signal amplification module, a filtering module, an analog-to-digital conversion module, a control module, a WiFi module, a storage module and a timing module, wherein the signal amplification module is used for receiving respiration and heartbeat signals collected by the PVDF pressure sensor, increasing the signal amplitude and then sending the signals to the filtering module, the filtering module is used for receiving the signals sent by the signal amplification module and filtering the signals and then removing clutter and sending the signals to the analog-to-digital conversion module, the analog-digital conversion module receives the signal sent by the filtering module, converts the signal into a digital signal which can be identified and operated by the control module and sends the digital signal to the control module, the control module receives the signal sent by the digital-analog conversion module, analyzes the signal to obtain the sleep information of the user, sends the sleep information to the storage module, and sends a timing instruction to the timing module, the timing module receives the timing instruction of the control module, calculates the total sleep duration and the sleep duration of each stage of the user by timing, and sends the information to the control module and the storage module, the control module sends the sleep information to the mobile terminal through the WiFi module after receiving the signal sent by the timing module, displays the sleep information to the user through the mobile terminal, the user can send an instruction to the controller through the mobile terminal, and the instruction is sent back to the control module through the WiFi module, the storage module is used for storing the sleep information sent by the control module and the duration information sent by the timing module.
2. The non-contact sleep monitor device according to claim 1, wherein the chip box further comprises an early warning module, an alarm lamp and a buzzer, when the control module analyzes that the heart rate data of the user is lower than 60 times per minute or the heart rate data is higher than 100 times per minute, the control module sends an early warning signal to the early warning module, the early warning module receives the early warning signal and then sends an instruction to the alarm lamp and the buzzer, the alarm lamp flashes, and the buzzer gives an audible alarm.
3. The non-contact sleep monitor device as claimed in claim 2, wherein the alarm lamp is a digital display alarm lamp of type YLB 5611BH and the buzzer is a buzzer of type HY1205GP KC 1206.
4. The non-contact sleep monitor device as claimed in claim 1, wherein the control module is further connected to the mobile terminal via a bluetooth module.
5. The contactless sleep monitoring device according to claim 1, wherein the mobile terminal is a mobile phone, a desktop computer, or a tablet computer.
6. The non-contact sleep monitoring device as claimed in claim 1, wherein the signal amplifying module is TLV2464CNE4 type signal amplifying chip, the filtering module is MAX274BEWI type filter, the analog-to-digital conversion module is STM32F103C8T6 type analog-to-digital conversion chip, the control module is STM32F103C8T6 chip, the timing module is LMC555CMX type timing chip, and the WiFi module is ESP8266 type WiFi module.
7. The contactless sleep monitoring device according to claim 1, wherein the memory module is a TF memory card or an SD memory card.
8. The contactless sleep monitoring device according to claim 1, wherein the outer envelope has a thickness of 1mm, the upper and lower shield layers have a thickness of 1mm, and the PVDF pressure sensor layer has a thickness of 30-500 μ ι η.
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