WO2021057102A1 - 一种生物监测用贴片 - Google Patents

一种生物监测用贴片 Download PDF

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Publication number
WO2021057102A1
WO2021057102A1 PCT/CN2020/095735 CN2020095735W WO2021057102A1 WO 2021057102 A1 WO2021057102 A1 WO 2021057102A1 CN 2020095735 W CN2020095735 W CN 2020095735W WO 2021057102 A1 WO2021057102 A1 WO 2021057102A1
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pin
module
patch
sensor
induction device
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PCT/CN2020/095735
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English (en)
French (fr)
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张丹
魏建磊
霍瑞鹏
阎嵩
汤先保
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橙意家人科技(天津)有限公司
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Priority claimed from CN201921604683.6U external-priority patent/CN210666409U/zh
Priority claimed from CN201910910511.XA external-priority patent/CN110579990A/zh
Application filed by 橙意家人科技(天津)有限公司 filed Critical 橙意家人科技(天津)有限公司
Publication of WO2021057102A1 publication Critical patent/WO2021057102A1/zh

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01KMEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
    • G01K13/00Thermometers specially adapted for specific purposes
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B19/00Programme-control systems
    • G05B19/02Programme-control systems electric
    • G05B19/04Programme control other than numerical control, i.e. in sequence controllers or logic controllers
    • G05B19/042Programme control other than numerical control, i.e. in sequence controllers or logic controllers using digital processors

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  • the utility model belongs to the technical field of human body monitoring, in particular to a patch for biological monitoring.
  • this utility model is to provide a biomonitoring patch with a reasonable design. It can extract multiple physiological parameters of the human body through multiple sensors such as the head and chest. It has multifunctional integration and integration. High degree of automation and high degree of automation, using RF for data transmission and command control, app analysis software for classification and analysis of various physiological parameters, providing powerful data support for the perfect evaluation of human health.
  • the present invention provides a biomonitoring patch, which includes a patch body, which includes an upper shell (1) and a lower shell (2) that is engaged with the upper shell (1) ,
  • the connection between the upper shell (1) and the lower shell (2) is provided with a gap for placing the switch (3), and the bottom of the lower shell (2) is provided with at least three signal input and power input Interface (4)
  • the housing space formed by the upper shell (1) and the lower shell (2) is provided with a sensor, a charging path and a signal measurement path switching module, a charging module, a power supply module, a storage module, a reset module, and a crystal oscillator Module and controller
  • the switch (3), sensor, charging path and signal measurement path switching module, charging module, power module, storage module, reset module, crystal oscillator module are all electrically connected to the controller (U1).
  • the upper shell (1) is also provided with an indicator light connected to the controller (U1);
  • the controller (U1) is a dual-core microcontroller of CYPRESS, and the model of the dual-core microcontroller of CYPRESS is CY8C6347BZI-BLD53;
  • the charging path and signal measurement path switching module includes an analog switch (U8), a magnetic induction device (U12), and a selection diode (U11) for supplying power to the analog switch (U8) and the magnetic induction device (U12).
  • the chip model of the analog switch (U8) is SGM3001
  • the model of the magnetic induction device (U12) is MT8251AT
  • the model of the selection diode (U11) is BAV70;
  • the connector (4) is respectively connected to the bidirectional transient suppression diode (D3) and then grounded, to the pin 2 of the selection diode (U11) and to the pin 5 of the analog switch (U8); the indicator light is connected to the pin 2 of the selection diode (U11) and the pin 5 of the analog switch (U8).
  • the pin 1 of the selection diode (U11) is connected, and the pin 3 of the selection diode (U11) and the pin 2 of the analog switch (U8) are connected to the ground after the capacitor (C49) and the capacitor (C34) connected in parallel.
  • pin 1 of the analog switch (U8) is grounded through a capacitor (C50), and a resistor (R68) is connected to the pin 1 of the magnetic induction device (U12) and the magnetic induction device ( U12) pin 2 is connected, pin 3 of the magnetic induction device (U12) is grounded, pin 4 of the magnetic induction device (U12) is connected to the power module, and pin 6 is connected to the sensor; when the patch body is placed When charging the box, the magnetic induction device (U12) senses the magnetic field of the magnet of the charging box, and the magnetic induction device (U12) pin 2 outputs a low level so that the pins 5 and 4 of the analog switch (U8) are in the analog switch (U8)
  • the internal conduction, the interface (4) is connected with the power module to realize the charging of the patch body; when the product is used, the product leaves the charging box, the magnetic induction device (U12) feels away from the magnetic field, and the magnetic induction device (U12) pin 2
  • the charging module includes a diode (U9) and a charger (U10), the model of the diode (U9) is BAV70, and the model of the charger (U10) is TP4054;
  • pin 1 of the charger (U10) is connected to pin P9_4 of the controller (U1), pin 3 is used as the output terminal of the charging module to connect to the battery, and pin 5 is grounded through a resistor (R60) ; Pin 1 and pin 2 of the diode (U9) are connected in parallel through a capacitor (C47) to ground and connect to pin 4 of the charger (U10);
  • the senor includes a snoring sensor, a temperature sensor, a blood oxygen ECG sensor, a body position sensor, and an ECG breathing sensor.
  • the node is small, low power consumption, suitable for long-term wear and use;
  • the bridge adopts wireless mode to avoid the limitation of wired connection
  • Figure 1 is a system block diagram of a patch for biological monitoring provided by the utility model.
  • Figure 2 is a sensor block diagram of a patch for biological monitoring provided by the utility model.
  • Fig. 3 is a circuit diagram of a controller of a patch for biological monitoring provided by the utility model.
  • Fig. 4 is a circuit diagram of a charging path and a signal measurement path switching module of a biomonitoring patch provided by the utility model.
  • Fig. 5 is a circuit diagram of a charging module of a patch for biological monitoring provided by the utility model.
  • Figure 6 is a schematic structural diagram of a patch for biological monitoring provided by the utility model.
  • Fig. 7 is a schematic diagram of the structure of a biomonitoring patch provided by the utility model applied to the head.
  • Fig. 8 is a schematic structural diagram of a biological monitoring patch provided by the utility model applied to the chest.
  • a patch for biological monitoring provided by the present invention includes a patch body, which includes an upper shell 1 and a lower shell 2 that is engaged with the upper shell 1.
  • the connection between the upper shell 1 and the lower shell 2 is provided with a gap for placing the switch 3, the bottom of the lower shell 2 is provided with at least three ports 4 for signal input and power input, and the upper shell 1 and the lower shell 2 are formed
  • the housing space is equipped with sensors, charging path and signal measurement path switching module, charging module, power supply module, storage module, reset module, crystal oscillator module and controller, switch 3, sensor, charging path and signal measurement path switching module, charging The module, power module, storage module, reset module, and crystal oscillator module are all electrically connected to the controller U1.
  • the upper shell 1 is also provided with an indicator light connected to the controller U1.
  • the controller U1 is a dual-core microcontroller of CYPRESS, and the model of the dual-core microcontroller of CYPRESS is CY8C6347BZI-BLD53.
  • the charging path and signal measurement path switching module includes an analog switch U8, a magnetic induction device U12, and a selection diode U11 for supplying power to the analog switch U8 and the magnetic induction device U12.
  • the chip model of the analog switch U8 is SGM3001
  • the model of the magnetic induction device U12 is MT8251AT
  • the model of the selector diode U11 is BAV70.
  • Connector 4 is connected to the bidirectional transient suppression diode D3 and then grounded, connected to pin 2 of the selection diode U11 and to pin 5 of the analog switch U8; the indicator light is connected to pin 1 of the selection diode U11, and the selection diode U11
  • the pin 3 and the pin 2 of the analog switch U8 are connected to the ground and the pin 3 of the analog switch U8 through the capacitor C49 and the capacitor C34 connected in parallel;
  • the pin 1 of the analog switch U8 is connected to the ground through the capacitor C50 and the resistor R68 is connected to pin 1 of the magnetic induction device U12 and pin 2 of the magnetic induction device U12, the pin 3 of the magnetic induction device U12 is grounded, the pin 4 of the magnetic induction device U12 is connected to the power module, and the pin 6 is connected to the sensor;
  • the magnetic induction device U12 induces the magnetic field of the magnet of the charging box, and the magnetic induction device U12 pin 2 outputs a low level to make the pin 5 and
  • the charging module includes a diode U9 and a charger U10.
  • the model of the diode U9 is BAV70, and the model of the charger U10 is TP4054.
  • the pin 1 of the charger U10 is connected to the pin P9_4 of the controller U1, the pin 3 is used as the output terminal of the charging module to connect to the battery, and the pin 5 is grounded through the resistor R60; the pin 1 of the diode U9 and the lead Pin 2 is connected in parallel to the ground through capacitor C47 and to pin 4 of charger U10.
  • the present utility model does not improve the power supply module, storage module, reset module and crystal oscillator module, and its circuit structure adopts conventional technologies in the field.
  • the controller U1 can control each module, read information from the sensor, and store the sensor information in the storage module, and can also transmit the information to the host computer via RF, such as using available RF channels such as BT, WIFI, and narrowband RF.
  • RF such as using available RF channels such as BT, WIFI, and narrowband RF.
  • the sensors include snoring sensor 5, temperature sensor 6, blood oxygen ECG sensor 7, body position sensor 8 and ECG breathing sensor 9. Different combinations of sensors can be selected according to the applicable parts and nodes.
  • a biomonitoring patch for head sign monitoring is provided for this utility model.
  • the sensors use snoring sensor 5, temperature sensor 6 and blood oxygen ECG sensor 7.
  • the body of the film is attached to the head through electrodes to collect human brain electrical signals, blood oxygen signals, snoring signals, temperature signals, body position characteristics, etc.
  • a biomonitoring patch for chest physical sign monitoring is provided by this utility model.
  • the sensor adopts a body position sensor 8 and an ECG respiration sensor 9, and the patch body is pasted through electrodes. It fits on the chest and collects the body's ECG signal, breathing signal, posture characteristics, etc.

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  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Medical Informatics (AREA)
  • Biomedical Technology (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Pathology (AREA)
  • Molecular Biology (AREA)
  • Surgery (AREA)
  • Animal Behavior & Ethology (AREA)
  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Biophysics (AREA)
  • Automation & Control Theory (AREA)
  • Measurement Of The Respiration, Hearing Ability, Form, And Blood Characteristics Of Living Organisms (AREA)

Abstract

一种生物监测用贴片,包括贴片本体,该贴片本体包括上壳(1)和与上壳(1)相扣合的下壳(2),上壳(1)与下壳(2)连接处均设有一用于放置开关(3)的豁口,下壳(2)底部设有至少三个用于信号输入和电源输入的接口(4),上壳(1)与下壳(2)形成的容置空间内设有传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块和控制器(U1);开关(3)、传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块均与控制器(U1)电性连接;该贴片设计合理,集成度高,自动化程度高。

Description

一种生物监测用贴片 技术领域
本实用新型属于人体身体监测技术领域,尤其涉及一种生物监测用贴片。
背景技术
随着生活水平的提高,人们越来越关注自身的健康,由于很多人工作繁忙,难以做到定期到医疗机构进行体检,因此有关健康自测方面的产品颇受人们的青睐。目前,糖尿病、高血压以及心脑血管疾病等慢性病是对人类危害极大的疾病,而通过血压、心电图、尿液分析和血液分析是诊断和监测该类疾病的主要手段和依据。然而,由于传统的心电监护仪和血液分析仪等监测仪器作用单一,价格昂贵,只能提供人体的某一项生理参数,不能完全反映出人体的健康情况。而且主要集中在大型医院,在家庭和社区医院无法实现随时对人们的健康状况进行综合监测,给人们的健康管理带来了很大的不便。
有鉴于此,特提出本实用新型。
实用新型内容
针对现有技术中存在的问题,本实用新型的目的是提供一种生物监测用贴片,设计合理,通过头部,胸部等多个传感器提取人体多项生理参数,具有多功能一体化、集成度高、自动化程度高,采用RF进行数据传输和命令控制,由app分析软件进行多种生理参数的分类汇总和分析,为人体健康的完善评价提供有力的数据支持。
为了实现上述目的,本实用新型提供的一种生物监测用贴片,包括贴片本体,所述贴片本体包括上壳(1)和与上壳(1)相扣合的下壳(2),所述上壳(1)与下壳(2)连接处均设有一用于放置开关(3)的豁口,所述下壳(2)底部设有至少三个用于信号输入和电源输入的接口(4),所述上壳(1)与下壳(2)形成的容置空间内设有传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块和控制器,所述开关(3)、传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块均与控制器(U1)电性连接。
优选地,所述上壳(1)还设有与控制器(U1)相连的指示灯;
优选地,所述控制器(U1)为CYPRESS的双核微控制器,所述CYPRESS 的双核微控制器的型号为CY8C6347BZI-BLD53;
优选地,所述充电路径和信号测量路径切换模块包括模拟开关(U8)、磁感应器件(U12)和用于给模拟开关(U8)和磁感应器件(U12)供电的选择二极管(U11),所述模拟开关(U8)的芯片型号为SGM3001,所述磁感应器件(U12)的型号为MT8251AT,所述选择二极管(U11)的型号为BAV70;
优选地,所述接头(4)分别与双向瞬变抑制二极管(D3)连接后接地、与选择二极管(U11)的引脚2以及与模拟开关(U8)引脚5连接;所述指示灯与选择二极管(U11)的引脚1相连,所述选择二极管(U11)的引脚3和模拟开关(U8)的引脚2均通过相并联的电容(C49)和电容(C34)后分别接地及与模拟开关(U8)的引脚3相连;所述模拟开关(U8)的引脚1分别通过电容(C50)接地、通过电阻(R68)与磁感应器件(U12)的引脚1及磁感应器件(U12)的引脚2相连,所述磁感应器件(U12)的引脚3接地,所述磁感应器件(U12)的引脚4与电源模块相连,引脚6与传感器相连;当贴片本体放到充电盒时,磁感应器件(U12)感应到充电盒的磁铁的磁场,磁感应器件(U12)引脚2输出低电平使模拟开关(U8)的引脚5和引脚4在模拟开关(U8)内部导通,接口(4)与电源模块相连通,实现贴片本体充电;当使用产品时,产品离开充电盒,磁感应器件(U12)感到离开磁场,磁感应器件(U12)引脚2输出高电平使模拟开关(U8)的引脚5和引脚6在模拟开关(U8)内部导通,接口(4)与传感器相连通,实现贴片本体采集信号;
优选地,所述充电模块包括二极管(U9)和充电器(U10),所述二极管(U9)的型号为BAV70,所述充电器(U10)的型号为TP4054;
优选地,所述充电器(U10)的引脚1与控制器(U1)的引脚P9_4相连,引脚3用于作为充电模块的输出端与电池连接,引脚5通过电阻(R60)接地;所述二极管(U9)的引脚1和引脚2并联后分别通过电容(C47)接地和与充电器(U10)的引脚4相连;
优选地,所述传感器包括鼾声传感器、温度传感器、血氧心电传感器、体位传感器和心电呼吸传感器。
本实用新型提供的一种生物监测用贴片,具有如下有益效果:
1、节点小巧,功耗低,适合长时间佩戴使用;
2、桥梁采用无线方式,避免有线连接使用的限制;
3、核心数据化分析,管理,建立用户档案,便于查询用户的历史数据。
附图说明
图1为本实用新型提供的一种生物监测用贴片的系统框图。
图2为本实用新型提供的一种生物监测用贴片的传感器框图。
图3为本实用新型提供的一种生物监测用贴片的控制器的电路图。
图4为本实用新型提供的一种生物监测用贴片的充电路径和信号测量路径切换模块的电路图。
图5为本实用新型提供的一种生物监测用贴片的充电模块的电路图。
图6为本实用新型提供的一种生物监测用贴片的结构示意图。
图7为本实用新型提供的一种生物监测用贴片应用于头部的结构示意图。
图8为本实用新型提供的一种生物监测用贴片应用于胸部的结构示意图。
图中:
1.上壳 2.下壳 3.开关 4.接头 5.鼾声传感器 6.温度传感器 7.血氧心电传感器 8.体位传感器 9.心电呼吸传感器。
具体实施方式
下面结合具体实施例和附图对本实用新型做进一步说明,以助于理解本实用新型的内容。
如图1-5所示,为本实用新型提供的一种生物监测用贴片,包括贴片本体,所述贴片本体包括上壳1和与上壳1相扣合的下壳2,所述上壳1与下壳2连接处均设有一用于放置开关3的豁口,下壳2底部设有至少三个用于信号输入和电源输入的接口4,上壳1与下壳2形成的容置空间内设有传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块和控制器,开关3、传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块均与控制器U1电性连接。上壳1还设有与控制器U1相连的指示灯。控制器U1为CYPRESS的双核微控制器,所述CYPRESS的双核微控制器的型号为CY8C6347BZI-BLD53。充电路径和信号测量路径切换模块包括模拟开关U8、磁感应器件U12和用于给模拟开关U8和磁感应器件U12供电的选择二极管U11,模拟开关U8的芯片型号为SGM3001, 所述磁感应器件U12的型号为MT8251AT,所述选择二极管U11的型号为BAV70。接头4分别与双向瞬变抑制二极管D3连接后接地、与选择二极管U11的引脚2以及与模拟开关U8引脚5连接;指示灯与选择二极管U11的引脚1相连,所述选择二极管U11的引脚3和模拟开关U8的引脚2均通过相并联的电容C49和电容C34后分别接地及与模拟开关U8的引脚3相连;模拟开关U8的引脚1分别通过电容C50接地、通过电阻R68与磁感应器件U12的引脚1及磁感应器件U12的引脚2相连,磁感应器件U12的引脚3接地,磁感应器件U12的引脚4与电源模块相连,引脚6与传感器相连;当贴片本体放到充电盒时,磁感应器件U12感应到充电盒的磁铁的磁场,磁感应器件U12引脚2输出低电平使模拟开关U8的引脚5和引脚4在模拟开关U8内部导通,接口4与电源模块相连通,实现贴片本体充电;当使用产品时,产品离开充电盒,磁感应器件U12感到离开磁场,磁感应器件U12引脚2输出高电平使模拟开关U8的引脚5和引脚6在模拟开关U8内部导通,接口4与传感器相连通,实现贴片本体采集信号。充电模块包括二极管U9和充电器U10,二极管U9的型号为BAV70,充电器U10的型号为TP4054。充电器U10的引脚1与控制器U1的引脚P9_4相连,引脚3用于作为充电模块的输出端与电池连接,引脚5通过电阻R60接地;所述二极管U9的引脚1和引脚2并联后分别通过电容C47接地和与充电器U10的引脚4相连。其中,本实用新型并未对电源模块、存储模块、复位模块和晶振模块作出改进,其电路结构均采用本领域常规技术。
控制器U1可以对各模块进行控制,从传感器读取信息,并把传感器信息存储到存储模块,也可以把信息通过RF传给上位机,例如采用BT、WIFI、窄带RF等可用的RF信道传输给APP软件手机、电脑等智能设备,把收集到的人体生理参数分类汇总,根据需求加以分析,并建立用户档案。传感器包括鼾声传感器5、温度传感器6、血氧心电传感器7、体位传感器8和心电呼吸传感器9,传感器根据适用部位、节点不同可选择不同组合。
例如,如图6-7所示,为本实用新型提供的一种应用于头部体征监测的生物监测用贴片,传感器采用鼾声传感器5、温度传感器6和血氧心电传感器7,将贴片本体通过电极贴贴合在头部,采集人体的脑电信号,血氧信号,鼾声信号,温度信号,体位特征等。
又例如,如图6、8所示,为本实用新型提供的一种应用于胸部体征监测的生物监测用贴片,传感器采用体位传感器8和心电呼吸传感器9,将贴片本体通过电极贴贴合在胸部,采集人体的心电信号,呼吸信号,体位特征等。
本文中应用了具体个例对实用新型构思进行了详细阐述,以上实施例的说明只是用于帮助理解本实用新型的核心思想。应当指出,对于本技术领域的普通技术人员来说,在不脱离该实用新型构思的前提下,所做的任何显而易见的修改、等同替换或其他改进,均应包含在本实用新型的保护范围之内。

Claims (8)

  1. 一种生物监测用贴片,其特征在于,包括贴片本体,所述贴片本体包括上壳(1)和与上壳(1)相扣合的下壳(2),所述上壳(1)与下壳(2)连接处均设有一用于放置开关(3)的豁口,所述下壳(2)底部设有至少三个用于信号输入和电源输入的接口(4),所述上壳(1)与下壳(2)形成的容置空间内设有传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块和控制器,所述开关(3)、传感器、充电路径和信号测量路径切换模块、充电模块、电源模块、存储模块、复位模块、晶振模块均与控制器(U1)电性连接。
  2. 根据权利要求1所述的一种生物监测用贴片,其特征在于,所述上壳(1)还设有与控制器(U1)相连的指示灯。
  3. 根据权利要求1所述的一种生物监测用贴片,其特征在于,所述控制器(U1)为CYPRESS的双核微控制器,所述CYPRESS的双核微控制器的型号为CY8C6347BZI-BLD53。
  4. 根据权利要求1所述的一种生物监测用贴片,其特征在于,所述充电路径和信号测量路径切换模块包括模拟开关(U8)、磁感应器件(U12)和用于给模拟开关(U8)和磁感应器件(U12)供电的选择二极管(U11),所述模拟开关(U8)的芯片型号为SGM3001,所述磁感应器件(U12)的型号为MT8251AT,所述选择二极管(U11)的型号为BAV70。
  5. 根据权利要求4所述的一种生物监测用贴片,其特征在于,所述接头(4)分别与双向瞬变抑制二极管(D3)连接后接地、与选择二极管(U11)的引脚2以及与模拟开关(U8)引脚5连接;所述指示灯与选择二极管(U11)的引脚1相连,所述选择二极管(U11)的引脚3和模拟开关(U8)的引脚2均通过相并联的电容(C49)和电容(C34)后分别接地及与模拟开关(U8)的引脚3相连;所述模拟开关(U8)的引脚1分别通过电容(C50)接地、通过电阻(R68)与磁感应器件(U12)的引脚1及磁感应器件(U12)的引脚2相连,所述磁感应器件(U12)的引脚3接地,所述磁感应器件(U12)的引脚4与电源模块相连,引脚6与传感器相连;当贴片本体放到充电盒时,磁感应器件(U12)感应到充电盒的磁铁的磁场,磁感应器件(U12)引脚2输出低电平使模拟开关(U8)的引脚5和引脚4在模拟开关(U8)内部导通,接口(4)与电源模块相连通,实现贴片本体充电;当使用产品时,产品离开充电盒,磁感应器件(U12)感到离 开磁场,磁感应器件(U12)引脚2输出高电平使模拟开关(U8)的引脚5和引脚6在模拟开关(U8)内部导通,接口(4)与传感器相连通,实现贴片本体采集信号。
  6. 根据权利要求1所述的一种生物监测用贴片,其特征在于,所述充电模块包括二极管(U9)和充电器(U10),所述二极管(U9)的型号为BAV70,所述充电器(U10)的型号为TP4054。
  7. 根据权利要求6所述的一种生物监测用贴片,其特征在于,所述充电器(U10)的引脚1与控制器(U1)的引脚P9_4相连,引脚3用于作为充电模块的输出端与电池连接,引脚5通过电阻(R60)接地;所述二极管(U9)的引脚1和引脚2并联后分别通过电容(C47)接地和与充电器(U10)的引脚4相连。
  8. 根据权利要求1所述的一种生物监测用贴片,其特征在于,所述传感器包括鼾声传感器、温度传感器、血氧心电传感器、体位传感器和心电呼吸传感器。
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