WO2017177733A1 - 用于测量多体征数据的智能腕表 - Google Patents

用于测量多体征数据的智能腕表 Download PDF

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Publication number
WO2017177733A1
WO2017177733A1 PCT/CN2017/070557 CN2017070557W WO2017177733A1 WO 2017177733 A1 WO2017177733 A1 WO 2017177733A1 CN 2017070557 W CN2017070557 W CN 2017070557W WO 2017177733 A1 WO2017177733 A1 WO 2017177733A1
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user
blood pressure
data
heart rate
watch
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PCT/CN2017/070557
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English (en)
French (fr)
Inventor
张贯京
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深圳市前海康启源科技有限公司
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Publication of WO2017177733A1 publication Critical patent/WO2017177733A1/zh

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition

Definitions

  • the present invention relates to the field of wearable devices, and more particularly to a smart wristwatch for measuring multi-signal data.
  • smart wearable devices such as smart watches and wristbands
  • comfortable wearing and health signal monitoring functions have been widely used in various fields.
  • the smart watches that have been introduced can monitor the user's pulse and blood pressure and other physiological health data, but the detection function is single, and can not have multiple dimensions of multiple vital signs such as "breathing, body temperature, blood pressure, heart rate”. Detection function.
  • embedded medical chip technology it is possible to design a multi-dimensional integrated physical sign detection and integrated high-intelligence wristwatch for detecting multi-dimensional vital signs data.
  • the present invention provides a smart wristwatch for measuring multi-signal data, including a watch body and a watch band, the smart watch further including a piezoelectric film, a thermistor, and a heart rate blood pressure sensor. And a display screen and a microcontroller, wherein the piezoelectric film, the thermistor, the heart rate blood pressure sensor, and the display screen are connected to the microcontroller through a signal line, wherein: [0006] The piezoelectric film is disposed outside the left side of the watch body for measuring a breathing frequency of a user and transmitting to the microcontroller;
  • the thermistor is disposed on the top of the upper surface of the watch body for sensing the temperature of the user's forehead as the body temperature data of the user and transmitting to the microcontroller;
  • the heart rate blood pressure sensor is disposed on a lower surface of the watch body for contacting with a wrist of a user, measuring blood pressure of the user's wrist artery to obtain blood pressure data of the user, and transmitting the blood pressure data to the microcontroller. And measuring the user's wrist artery pulse frequency to obtain the user's heart rate data and transmitting the data to the microcontroller; [0009] the microcontroller is disposed inside the body for using the user's blood pressure data, Heart rate data, body temperature data, and respiratory rate are displayed on the display.
  • the display screen is disposed at an upper middle position of the watch body for displaying blood pressure data, heart rate data, body temperature data, and respiratory frequency of the user.
  • the smart wristwatch further includes a blood pressure heart rate measurement button, where the blood pressure heart rate measurement key is disposed at a right middle position of the watch body, and is configured to control the blood pressure heart rate sensor to measure a user's blood pressure data. And heart rate data.
  • the smart watch further includes a temperature breathing measurement button, the temperature breathing measurement button is disposed at a lower right side of the watch body, and is configured to control the piezoelectric film to measure a user's respiratory frequency and The thermistor is controlled to measure body temperature data of the user.
  • the smart watch further includes a key, and the key is disposed at an upper right side of the watch body for controlling the opening or closing of the smart watch.
  • the inside of the watch body is provided with a micro battery, which is a rechargeable lithium battery or a button battery.
  • the micro battery is connected with a charging port, which is disposed outside the front side or the rear side of the watch body for plugging an external power source to charge the micro battery.
  • both ends of the strap are fixedly connected to the watch body for wearing the watch body on the wrist of the user.
  • the heart rate blood pressure sensor is a circuit integrated sensor integrated by a heart rate sensing unit and a blood pressure sensing unit.
  • the smart wristwatch for measuring multi-signal data according to the present invention adopts the above technical solution, and achieves the following technical effects: capable of measuring user's body temperature data, respiratory rate, blood pressure simultaneously Four physical data such as data and heart rate data, with multi-signal data detection integration, high integration, easy to use, etc., can facilitate the user to detect multiple vital signs data.
  • FIG. 1 is a schematic view showing the external structure of the body of the preferred embodiment of the smart wristwatch for the multi-signal data of the present invention
  • FIG. 2 is a schematic view showing the outer structure of the preferred embodiment of the smart wristwatch for the multi-signal data of the present invention
  • FIG. 3 is a schematic diagram showing the internal circuit structure of a preferred embodiment of a smart wristwatch for 3 ⁇ 4 multi-signal data.
  • FIG. 1 is a schematic diagram showing the external structure of the smart body of the preferred embodiment of the smart wristwatch for measuring multi-signal data
  • FIG. 2 is a schematic diagram of FIG.
  • FIG. 3 is a preferred embodiment of the smart wristwatch for measuring multi-signal data according to the present invention.
  • the smart wristwatch includes a piezoelectric film 1, a display screen 2, a thermistor 3, a body 4, a key 5, a blood pressure heart rate measuring key 6, and a temperature.
  • the piezoelectric film 1 is disposed outside the left side of the body 4, and the piezoelectric film 1 is used for measuring the respiratory frequency of the user, and the working principle is as follows: a respiratory wave generated by human breathing to the piezoelectric Membrane 1 generates a vibration wave signal, The microcontroller 10 converts the vibration wave signal generated by the piezoelectric film 1 into an electrical signal to obtain the breathing frequency of the user.
  • the display screen 2 is disposed at an upper middle position of the watch body 4 for displaying blood pressure data, heart rate data, body temperature data, and respiratory frequency of the user.
  • the thermistor 3 is disposed on the top of the upper surface of the watch body 4, and the thermistor 3 is used to sense the temperature of the user's forehead as the body temperature data of the user.
  • the thermistor 3 can receive the heat energy emitted from the forehead of the human body, thereby measuring the temperature of the forehead portion of the human body as the body temperature data of the user.
  • the cymbal key 5 is disposed on the upper right side of the watch body 4 for controlling the opening or closing of the smart watch.
  • the blood pressure heart rate measurement key 6 is disposed in the middle of the right side of the body 4, and is used for controlling the blood pressure heart rate sensor 9 to measure the blood pressure data and heart rate data of the user and send it to the microcontroller 10.
  • the temperature breathing measurement key 7 is disposed at a lower right side of the body 4 for controlling the piezoelectric film 1 to measure a user's respiratory frequency and transmitting to the microcontroller 10, and controlling the thermistor 3
  • the user's body temperature data is measured and sent to the microcontroller 10.
  • the piezoelectric film 1 measures the respiratory frequency of the user as follows: The respiratory wave generated by the human body generates a vibration wave signal to the piezoelectric film 1, and the vibration wave generated by the piezoelectric film 1 by the micro-controller 10 The signal is converted to an electrical signal to obtain the user's respiratory rate.
  • Both ends of the strap 8 are fixedly connected to the watch body 4 for wearing the watch body 4 on the wrist of the user, so that the user can measure the vital sign data.
  • the heart rate blood pressure sensor 9 is disposed on a lower surface of the body 4 (refer to FIG. 2), and the heart rate blood pressure sensor 9 is a circuit integrated by a heart rate sensing unit and a blood pressure sensing unit.
  • the sensor is configured to contact the wrist of the user, measure the blood pressure of the wrist of the user, obtain blood pressure data of the user, send the data to the microcontroller 10, and measure the pulse frequency of the wrist of the user to obtain the heart rate data of the user. And sent to the microcontroller 10.
  • the pulse rate and heart rate of a normal person are the same, that is, the heart rate is known by measuring the pulse rate, and the user's heart rate data can be obtained.
  • a normal adult is 60 to a minute/minute, often 70 to 80 times per minute, with an average of about 72 beats per minute.
  • the microcontroller 10 is disposed inside the body 4 (not shown in FIGS. 1 and 2). Referring to FIG. 3, the piezoelectric film 1, the display 2, and the thermistor 3 The ⁇ key 5, the blood pressure heart rate measurement key 6, the temperature respiration measurement key 7 and the heart rate blood pressure sensor 8 are all connected to the microcontroller 10 via signal lines. [0034]
  • the micro battery 11 is disposed inside the watch body 4 for providing working power for the smart watch.
  • the micro battery 11 may be a rechargeable lithium battery or a button battery.
  • the micro battery 11 is connected to a charging port 12, which is disposed at an outer side of the front side of the watch body 4 or at an arbitrary position outside the rear side (FIG. 1 shows the front of the watch body 4).
  • the side port), the charging port 12 can be a USB interface or other standard battery charging interface, the charging port 12 can be directly inserted into an external power source (such as a computer USB interface or a low voltage regulator, etc.) on the micro battery 11 to charge.
  • an external power source such as a computer USB interface or a low voltage regulator, etc.
  • the user uses the smart wristwatch for measuring multi-signal data according to the present invention to measure the vital sign data, and the smart wristwatch is placed on the wrist, and the smart wrist described by the key 5 is pressed. table.
  • the microcontroller 10 activates the heart rate blood pressure sensor 9 to collect the user's heart rate data and blood pressure data, and displays the user's heart rate data and blood pressure data. On the display screen 2.
  • the user attaches the upper surface of the watch body 4 to the forehead, and simultaneously brings the piezoelectric film 1 close to the nose end, and contacts the thermistor 3 with the forehead skin, which is another user's One hand can press the temperature breathing measurement key 7, and the piezoelectric film 1 generates a vibration wave signal by collecting a breathing wave generated by a user's breathing, and the microcontroller 10 generates a vibration wave generated by the piezoelectric film 1.
  • the signal is converted into an electrical signal to obtain a breathing frequency of the user, and the microcontroller 10 collects the user's forehead temperature information as body temperature data through the thermistor 3.
  • the micro-controller 10 receives the respiratory frequency and body temperature data collected by the piezoelectric membrane 1 and displays the data on the display screen 2 for the doctor to understand the plurality of vital signs of the user, thereby providing a basis for diagnosis and treatment of the condition.
  • the smart wristwatch for measuring multi-signal data can simultaneously measure four physical vitality data such as body temperature data, respiratory frequency, blood pressure data and heart rate data of the user, and has the advantages of multifunctional integration. It integrates multiple sign detection functions into a smart watch, which is convenient for users to use. It can easily detect multi-dimensional vital signs data and send the measured vital signs data to the medical monitoring center through the communication port. Good help and support in medical pathways such as telemedicine and family health care
  • the smart wristwatch for measuring multi-signal data adopts the above technical solution, and achieves the following technical effects:
  • the same can measure the user's body temperature data, respiratory frequency, blood pressure data and heart rate
  • Four physical data such as data, with multi-signal data detection integration, high integration, easy to use, etc., can facilitate the user to detect multiple vital signs data.

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  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Cardiology (AREA)
  • Physiology (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Medical Informatics (AREA)
  • Biophysics (AREA)
  • Pathology (AREA)
  • Engineering & Computer Science (AREA)
  • Biomedical Technology (AREA)
  • Pulmonology (AREA)
  • Physics & Mathematics (AREA)
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  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Measuring Pulse, Heart Rate, Blood Pressure Or Blood Flow (AREA)
  • Measuring And Recording Apparatus For Diagnosis (AREA)

Abstract

一种用于测量多体征数据的智能腕表,包括表体(4)、表带(8)、压电膜(1)、热敏电阻(3)、心率血压传感器(9)、显示屏(2)及微控制器(10)。压电膜(1)设置在表体(4)的左侧外部,用于测量使用者的呼吸频率。热敏电阻(3)设置在表体(4)的上表面顶部,用于测量使用者的体温数据。心率血压传感器(9)设置在表体(4)的下表面,用于测量使用者的腕动脉血压得到使用者的血压数据,以及测量使用者的腕动脉脉搏频率得到使用者的心率数据。微控制器(10)设置在表体(4)的内部,用于将使用者的血压数据、心率数据、体温数据及呼吸频率显示在显示屏(2)上。所述智能腕表能够同时测量体温、呼吸、血压和心率四个体征数据,具有多体征数据检测一体化、集成度高、方便使用等优点。

Description

说明书 发明名称:用于测量多体征数据的智能腕表 技术领域
[0001] 本实用新型涉及可穿戴设备领域, 尤其涉及一种用于测量多体征数据的智能腕 表。
背景技术
[0002] 目前, 糖尿病以及高血压等慢性病是对人类危害极大的疾病, 而通过血压、 心 电图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, 价格昂贵, 体积庞大, 不便于移动且主要集中在大 型医院, 在家庭和社区医院无法实现随吋对病人的病情进行监测, 给医生和病 人带来了很大的不便。
[0003] 随着便携式、 智能、 多功能电子产品的技术升级, 具有穿戴舒适、 健康信号监 测等功能的智能穿戴式设备 (例如, 智能腕表、 手环) 已广泛应用在各个领域 。 目前已经面世的智能腕表在功能上虽然能够监测使用者的脉搏、 血压等生理 健康数据, 但是检测功能单一, 不能同吋具备"呼吸、 体温、 血压、 心率"等多个 体征数据的多维度检测功能。 近年来, 随着嵌入式医疗芯片技术的发展, 设计 一种多维度一体化体征检测、 集成化高的用于检测多维度体征数据的智能腕表 成为可能。
技术问题
[0004] 本实用新型的目的在于提供一种用于测量多体征数据的智能腕表, 旨在现有腕 表不具备多体征数据检测一体化功能的产品缺陷。
问题的解决方案
技术解决方案
[0005] 为实现上述目的, 本实用新型提供一种用于测量多体征数据的智能腕表, 包括 表体以及表带, 所述智能腕表还包括压电膜、 热敏电阻、 心率血压传感器、 显 示屏以及微控制器, 所述压电膜、 热敏电阻、 心率血压传感器和显示屏均通过 信号线连接至所述微控制器上, 其中: [0006] 所述压电膜设置在所述表体的左侧外部, 用于测量使用者的呼吸频率并发送至 所述微控制器;
[0007] 所述热敏电阻设置在所述表体的上表面顶部, 用于感测使用者额头的温度作为 使用者的体温数据并发送至所述微控制器;
[0008] 所述心率血压传感器设置在所述表体的下表面, 用于与使用者的手腕相接触吋 测量使用者的腕动脉血压得到使用者的血压数据并发送至所述微控制器, 以及 测量使用者的腕动脉脉搏频率得到使用者的心率数据并发送至所述微控制器; [0009] 所述微控制器设置在所述表体的内部, 用于将使用者的血压数据、 心率数据、 体温数据以及呼吸频率显示在所述显示屏上。
[0010] 优选的, 所述显示屏设置在所述表体的上面中间位置处, 用于显示使用者的血 压数据、 心率数据、 体温数据以及呼吸频率。
[0011] 优选的, 所述智能腕表还包括血压心率测量键, 该血压心率测量键设置在所述 表体的右侧中间位置处, 用于控制所述血压心率传感器测量使用者的血压数据 和心率数据。
[0012] 优选的, 所述智能腕表还包括温度呼吸测量键, 该温度呼吸测量键设置在所述 表体的右侧下部, 用于控制压所述压电膜测量使用者的呼吸频率以及控制所述 热敏电阻测量使用者的体温数据。
[0013] 优选的, 所述智能腕表还包括幵关键, 该幵关键设置在所述表体的右侧上部, 用于控制所述智能腕表的幵启或关闭。
[0014] 优选的, 所述表体的内部设置有微型电池, 该微型电池为可充电的锂电池或纽 扣电池。
[0015] 优选的, 所述微型电池连接有充电端口, 该充电端口设置在所述表体的前侧外 部或后侧外部, 用于接插外部电源对所述微型电池进行充电。
[0016] 优选的, 所述表带的两端固定连接至所述表体上, 用于将所述表体佩戴在使用 者的手腕上。
[0017] 优选的, 所述心率血压传感器是由心率传感单元与血压传感单元集成在一起的 电路集成传感器。
发明的有益效果 有益效果
[0018] 相较于现有技术, 本实用新型所述用于测量多体征数据的智能腕表采用上述技 术方案, 达到了如下技术效果: 能够同吋测量使用者的体温数据、 呼吸频率、 血压数据和心率数据等四个体征数据, 具有多体征数据检测一体化、 集成度高 、 方便使用等优点, 能够方便使用者同吋检测出多个体征数据。
对附图的简要说明
附图说明
[0019] 图 1为本实用新型用于 ¾量多体征数据的智能腕表较佳实施例的表体朝上的外 部结构示意图;
[0020] 图 2为本实用新型用于 ¾量多体征数据的智能腕表较佳实施例的表体朝下的外 部结构示意图;
[0021] 图 3为本实用新型用于 ¾量多体征数据的智能腕表较佳实施例的内部电路结构 示意图。
实施该发明的最佳实 Ϊ
本发明的最佳实施方式
[0022] 为更进一步阐述本实用新型为达成上述目的所采取的技术手段及功效, 以下结 合附图及较佳实施例, 对本实用新型的具体实施方式、 结构、 特征及其功效进 行详细说明。 应当理解, 此处所描述的具体实施例仅仅用以解释本实用新型, 并不用于限定本实用新型。
[0023] 如图 1所示, 图 1为本实用新型用于测量多体征数据的智能腕表较佳实施例的表 体朝上的外部结构示意图; 如图 2所示, 图 2为本实用新型用于测量多体征数据 的智能腕表较佳实施例的表体朝下的外部结构示意图; 如图 3所示, 图 3为本实 用新型用于测量多体征数据的智能腕表较佳实施例的内部电路结构示意图。
[0024] 参考图 1、 图 2和图 3所示, 所述智能腕表包括压电膜 1、 显示屏 2、 热敏电阻 3、 表体 4、 幵关键 5、 血压心率测量键 6、 温度呼吸测量键 7、 表带 8、 心率血压传感 器 9、 微控制器 10以及微型电池 11。
[0025] 所述压电膜 1设置在表体 4的左侧外部, 所述压电膜 1用于测量使用者的呼吸频 率, 其工作原理为: 人体呼吸产生的呼吸波对所述压电膜 1产生振动波信号, 所 述微控制器 10将所述压电膜 1产生的振动波信号转为电信号得到使用者的呼吸频 率。
[0026] 所述显示屏 2设置在所述表体 4的上面中间位置处, 用于显示使用者的血压数据 、 心率数据、 体温数据以及呼吸频率。
[0027] 所述热敏电阻 3设置在表体 4的上表面顶部, 所述热敏电阻 3用于感测使用者额 头的温度作为使用者的体温数据。 在本实施例中, 所述热敏电阻 3能够接收人体 额头部位散发的热能, 从而测量到人体额头部位的温度作为使用者的体温数据
[0028] 所述幵关键 5设置在表体 4的右侧上部, 用于控制所述智能腕表的幵启或关闭。
[0029] 所述血压心率测量键 6设置在表体 4的右侧中间, 用于控制血压心率传感器 9量 测使用者的血压数据和心率数据并发送至所述微控制器 10。
[0030] 所述温度呼吸测量键 7设置在表体 4的右侧下部, 用于控制压电膜 1测量使用者 的呼吸频率并发送至所述微控制器 10, 以及控制所述热敏电阻 3测量使用者的体 温数据并发送至所述微控制器 10。 在本实施例中, 所述压电膜 1测量使用者的呼 吸频率原理为: 人体呼吸产生的呼吸波对压电膜 1产生振动波信号, 微控制器 10 将压电膜 1产生的振动波信号转为电信号得到使用者的呼吸频率。
[0031] 所述表带 8的两端固定连接至所述表体 4上, 用于将所述表体 4佩戴在使用者的 手腕上, 方便使用者测量体征数据。
[0032] 所述心率血压传感器 9设置在所述表体 4的下表面 (参考图 2所示) , 所述心率 血压传感器 9是由心率传感单元与血压传感单元集成在一起的电路集成传感器, 用于与使用者的手腕相接触吋测量使用者的腕动脉血压得到使用者的血压数据 并发送至所述微控制器 10, 以及测量使用者的腕动脉脉搏频率得到使用者的心 率数据并发送至所述微控制器 10。 在一般情况下, 正常人的脉搏频率和心跳频 率是一致的, 也即测出脉搏频率就可知道心跳频率, 即可得到使用者心率数据 。 例如, 正常成人为 60到次 /分, 常为每分钟 70至 80次, 平均约 72次 /分。
[0033] 所述微控制器 10设置在所述表体 4的内部 (图 1和图 2未示出) , 参考图 3所示, 所述压电膜 1、 显示屏 2、 热敏电阻 3、 幵关键 5、 血压心率测量键 6、 温度呼吸测 量键 7以及心率血压传感器 8均通过信号线连接至所述微控制器 10上。 [0034] 所述微型电池 11设置在所述表体 4的内部, 用于为所述智能腕表提供工作电源 , 所述微型电池 11可以为可充电的锂电池或纽扣电池。
[0035] 所述微型电池 11连接有一个充电端口 12, 该充电端口 12设置在所述表体 4的前 侧外部或后侧外部任意位置处 (图 1示出了所述表体 4的前侧位置处) , 该充电 端口 12可以为一种 USB接口或其它标准的电池充电接口, 该充电端口 12可以直接 ***外部电源 (例如电脑 USB接口或者低压稳压器等) 上对所述微型电池 11进行 充电。
[0036] 使用者在使用本实用新型所述用于测量多体征数据的智能腕表测量体征数据吋 , 将所述智能腕表套在手腕上, 按下幵关键 5幵启所述的智能腕表。 当使用者按 下所述血压心率测量键 6吋, 所述微控制器 10幵启所述心率血压传感器 9来采集 使用者的心率数据和血压数据, 并将使用者的心率数据和血压数据显示在所述 显示屏 2上。 此外, 使用者将所述表体 4的上表面贴到额头上, 同吋将所述压电 膜 1靠近鼻子端, 并将所述热敏电阻 3与额头皮肤接触, 这吋使用者的另一只手 可以按下所述温度呼吸测量键 7, 所述压电膜 1通过采集使用者呼吸产生的呼吸 波以产生振动波信号, 所述微控制器 10将压电膜 1产生的振动波信号转为电信号 得到使用者的呼吸频率, 所述微控制器 10通过所述热敏电阻 3采集到使用者的额 头温度信息作为体温数据。 所述微控制器 10接收压电膜 1采集的呼吸频率及体温 数据显示在所述显示屏 2上, 以供医生了解使用者的多个体征数据, 从而为病情 的诊断和治疗提供依据。
[0037] 本实用新型所述用于测量多体征数据的智能腕表能够同吋测量使用者的体温数 据、 呼吸频率、 血压数据和心率数据等四个体征数据, 具有多功能一体化的优 点, 它将多个体征检测功能高度集成到一只智能腕表, 便于使用者随身使用, 能够方便地检测出多维度的体征数据并能将测量到的体征数据通过通讯端口发 送至医疗监护中心, 为远程医疗和家庭保健等医疗途径提供良好的帮助与支持
[0038]
[0039] 以上仅为本实用新型的优选实施例, 并非因此限制本实用新型的专利范围, 凡 是利用本实用新型说明书及附图内容所作的等效结构或等效流程变换, 均同理 包括在本实用新型的专利保护范围内。
工业实用性
相较于现有技术, 本实用新型所述用于测量多体征数据的智能腕表采用上述技 术方案, 达到了如下技术效果: 能够同吋测量使用者的体温数据、 呼吸频率、 血压数据和心率数据等四个体征数据, 具有多体征数据检测一体化、 集成度高 、 方便使用等优点, 能够方便使用者同吋检测出多个体征数据。

Claims

权利要求书
[权利要求 1] 一种用于测量多体征数据的智能腕表, 包括表体以及表带, 其特征在 于, 所述智能腕表还包括压电膜、 热敏电阻、 心率血压传感器、 显示 屏以及微控制器, 所述压电膜、 热敏电阻、 心率血压传感器和显示屏 均通过信号线连接至所述微控制器上, 其中: 所述压电膜设置在所述 表体的左侧外部, 用于测量使用者的呼吸频率并发送至所述微控制器 ; 所述热敏电阻设置在所述表体的上表面顶部, 用于感测使用者额头 的温度作为使用者的体温数据并发送至所述微控制器; 所述心率血压 传感器设置在所述表体的下表面, 用于与使用者的手腕相接触吋测量 使用者的腕动脉血压得到使用者的血压数据并发送至所述微控制器, 以及测量使用者的腕动脉脉搏频率得到使用者的心率数据并发送至所 述微控制器; 所述微控制器设置在所述表体的内部, 用于将使用者的 血压数据、 心率数据、 体温数据以及呼吸频率显示在所述显示屏上。
[权利要求 2] 如权利要求 1所述的用于测量多体征数据的智能腕表, 其特征在于, 所述显示屏设置在所述表体的上面中间位置处, 用于显示使用者的血 压数据、 心率数据、 体温数据以及呼吸频率。
[权利要求 3] 如权利要求 1所述的用于测量多体征数据的智能腕表, 其特征在于, 所述智能腕表还包括血压心率测量键, 该血压心率测量键设置在所述 表体的右侧中间位置处, 用于控制所述血压心率传感器测量使用者的 血压数据和心率数据。
[权利要求 4] 如权利要求 3所述的用于测量多体征数据的智能腕表, 其特征在于, 所述智能腕表还包括温度呼吸测量键, 该温度呼吸测量键设置在所述 表体的右侧下部, 用于控制压所述压电膜测量使用者的呼吸频率以及 控制所述热敏电阻测量使用者的体温数据。
[权利要求 5] 如权利要求 4所述的用于测量多体征数据的智能腕表, 其特征在于, 所述智能腕表还包括幵关键, 该幵关键设置在所述表体的右侧上部, 用于控制所述智能腕表的幵启或关闭。
[权利要求 6] 如权利要求 1所述的用于测量多体征数据的智能腕表, 其特征在于, 所述表体的内部设置有微型电池, 该微型电池为可充电的锂电池或纽 扣电池。
[权利要求 7] 如权利要求 6所述的用于测量多体征数据的智能腕表, 其特征在于, 所述微型电池连接有充电端口, 该充电端口设置在所述表体的前侧外 部或后侧外部, 用于接插外部电源对所述微型电池进行充电。
[权利要求 8] 如权利要求 1至 7任一项所述的用于测量多体征数据的智能腕表, 其特 征在于, 所述表带的两端固定连接至所述表体上, 用于将所述表体佩 戴在使用者的手腕上。
[权利要求 9] 如权利要求 8所述的用于测量多体征数据的智能腕表, 其特征在于, 所述心率血压传感器是由心率传感单元与血压传感单元集成在一起的 电路集成传感器。
PCT/CN2017/070557 2016-04-16 2017-01-07 用于测量多体征数据的智能腕表 WO2017177733A1 (zh)

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