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WO2015169242A1 - Procédé et dispositif d'alimentation électrique pour dispositif de mesure capable de programmation automatique - Google Patents

Procédé et dispositif d'alimentation électrique pour dispositif de mesure capable de programmation automatique Download PDF

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Publication number
WO2015169242A1
WO2015169242A1 PCT/CN2015/078473 CN2015078473W WO2015169242A1 WO 2015169242 A1 WO2015169242 A1 WO 2015169242A1 CN 2015078473 W CN2015078473 W CN 2015078473W WO 2015169242 A1 WO2015169242 A1 WO 2015169242A1
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Prior art keywords
measured parameter
determining
measuring device
equal
value
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English (en)
Chinese (zh)
Inventor
徐艳东
吴卫
王俊
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RAIING MEDICAL Co
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RAIING MEDICAL Co
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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 for evaluating the cardiovascular system, e.g. pulse, heart rate, blood pressure or blood flow
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/145Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue
    • A61B5/1455Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue using optical sensors, e.g. spectral photometrical oximeters

Definitions

  • the invention belongs to the technical field of measurement, and in particular relates to a method and a device capable of automatically scheduling power supply of a measuring device.
  • thermometers such as chip type electronic thermometers
  • the existing electronic thermometer is generally provided with a switch button, and before the temperature measurement, the switch button needs to be operated first to activate the electronic thermometer. This operation not only increases the user's operation steps, but also reduces the user experience; moreover, due to the setting of the switch button, the housing is difficult to seal and waterproof, which makes the electronic thermometer inconvenient to be disinfected before use between multiple people.
  • the present invention proposes a method and apparatus capable of automatically scheduling the power of a measuring device that can solve the above problems or at least partially solve the above problems.
  • the present invention provides a method for automatically scheduling power to a measurement device, comprising the steps of:
  • the method for determining whether the measured parameter meets the first preset condition includes at least one of the following:
  • V 1 to V n+1 are n+1 consecutive measured parameter values, n ⁇ [1,512],
  • the waking step further includes: a deep sleep step, when the acquired measured parameter meets the second preset condition, the measuring device enters a sleep state Or delay into sleep state.
  • the method for determining that the measured parameter meets the second preset condition includes at least one of the following:
  • the average value of the measured parameter in the acquired t9 is greater than or equal to the twenty-sixth preset value and less than or equal to the twenty-seventh preset value, it is determined that the measured parameter satisfies the second preset condition.
  • the method further includes: between the waking step and the deep sleeping step:
  • a use state of the measuring device including a wearing state and a removing state
  • the wearing warning is performed, and the measuring device is kept in the awake state; when the measuring device is in the removed state, the warning is removed, and the measuring device is put into a sleep state.
  • the method for determining that the measuring device is in the removed state includes at least one of the following:
  • the method for determining that the measuring device is in the wearing state includes at least one of the following:
  • the measuring device When the measuring device does not satisfy the removal state condition, it is determined that the measuring device is in a wearing state.
  • the determining step further includes:
  • Determining an execution step of determining the measured value when the absolute value of the difference between the measured value of the measured parameter and the currently detected measured parameter is greater than or equal to the thirty-fourth preset value The device performs a wake-up operation or a deep sleep operation.
  • the step of waking up further includes:
  • the transmitting step transmits a broadcast signal, the broadcast signal including the measured parameter.
  • the invention can detect the change of the measured parameter in real time, and when the measured parameter satisfies the first preset condition, the measuring device is automatically woken up, so that the switch button does not need to be set on the measuring device, so that the user does not need to perform an additional switch.
  • the operation of the button realizes the out-of-band operation, which simplifies the user's operation steps and improves the user experience.
  • the switch button is not required to be provided on the casing of the measuring device, the measuring device is easier to seal and waterproof the casing, and is convenient for the user to disinfect before use.
  • the present invention also provides a measuring device capable of automatically dispatching a power source, the device comprising: a sheet-shaped housing, a first sensor disposed on the sheet-shaped housing, and disposed in the sheet-shaped housing a judging device and a wake-up device; wherein the judging device is electrically connected to the first sensor, the judging device is configured to receive the measured parameter collected by the first sensor, and determine whether the collected measured parameter satisfies a preset condition; the wake-up device is electrically connected to the determiner, and the wake-up device is configured to wake up the measuring device when the measured parameter meets the first preset condition.
  • the measuring device capable of automatically scheduling the power source further includes: a second sensor electrically connected to the determining device, the second sensor is configured to collect an environmental parameter of an environment in which the measuring device is located, and The first sensor and the second sensor are respectively disposed on opposite wall surfaces of the sheet-shaped housing.
  • the measuring device capable of automatically scheduling the power supply further includes: a deep sleeper electrically connected to the determiner, wherein the deep sleeper is configured to: when the measured parameter meets the second preset condition, The measuring device is in a deep sleep state.
  • the above measuring device capable of automatically scheduling a power source further includes: a transmitter electrically connected to the wake device, the transmitter for transmitting a broadcast signal, the broadcast signal including the measured parameter.
  • the invention can detect the change of the measured parameter in real time, and when the measured parameter satisfies the first preset condition, the measuring device is automatically woken up, so that the switch button does not need to be set on the measuring device, so that the user does not need to perform an additional switch.
  • the operation of the button realizes the out-of-band, simplifying the user The steps to improve the user experience.
  • the switch button is not required to be provided on the casing of the measuring device, the measuring device is easier to seal and waterproof the casing, and is convenient for the user to disinfect before use.
  • FIG. 1 is a flow chart showing an embodiment of a method of automatically scheduling a power supply of a measuring device in the present invention
  • FIG. 2 is a flow chart showing another embodiment of a method for automatically scheduling power of a measurement device in the present invention.
  • FIG. 3 is a flow chart showing another embodiment of a method for automatically scheduling power of a measurement device in the present invention.
  • FIG. 4 is a flow chart showing a method for determining whether a measurement device satisfies a wake-up condition in an embodiment of a method capable of automatically scheduling power of a measurement device according to the present invention
  • FIG. 5 is a flow chart showing a method for determining whether a measuring device satisfies a deep sleep condition in an embodiment of the method capable of automatically scheduling power of a measuring device according to the present invention
  • FIG. 6 is a flow chart showing a method for determining whether a measurement device is in a removal state in an embodiment of a method for automatically scheduling power of a measurement device according to the present invention
  • FIG. 7 is a flow chart showing a method for determining whether a measurement device performs a wake-up operation and a deep sleep operation in an embodiment of the method capable of automatically scheduling power of a measurement device;
  • FIG. 8 is a schematic structural diagram of a preferred embodiment of a measuring device capable of automatically scheduling a power source according to the present invention.
  • FIG. 9 is a schematic view showing a mounting position of a first temperature sensor and a second temperature sensor in a preferred embodiment of a measuring device capable of automatically dispatching a power source according to the present invention
  • Figure 10 is a block diagram showing the structure of a preferred embodiment of a measuring device capable of automatically scheduling power supplies in the present invention.
  • FIG. 1 is a flowchart of an embodiment of a method for automatically scheduling power of a measurement device according to the present invention.
  • the method includes the following steps: acquiring step S1, acquiring a measured parameter measured by a measuring device, wherein the measured parameter includes at least one primary parameter and/or at least one secondary parameter; wherein the measuring device can It is a medical device such as a sphygmomanometer, a thermometer, or an oximeter.
  • the main parameter or the secondary parameter of the measured parameter may be a pathological parameter such as a body temperature, a blood pressure, a blood oxygen, and the like of the patient; and the determining step S2 determines whether the acquired measured parameter is Satisfying the first preset condition; waking up step S3, waking up the measuring device when the measured parameter satisfies the first preset condition.
  • the measuring device when the measuring device is not used, the measuring device is in a deep sleep state. At this time, the measuring device is in a power saving mode, and in this mode, the measured parameter acquired by the sensor on the measuring device is acquired in real time.
  • the measured parameter satisfies the first preset condition, it is considered that the measuring device is already in use at this time, wakes up the measuring device, and causes the measuring device to start performing measurement and the like.
  • waking up the measuring device refers to waking up the measuring device in deep sleep, so that the measuring device is switched from the power saving mode to the working mode.
  • first preset conditions may be set; even for the same measured parameter, the first preset condition may have different setting manners, and the present invention is applicable to the first preset.
  • the specific setting method and form of the conditions are not limited.
  • the embodiment of the present invention can detect the change of the measured parameter in real time.
  • the measuring device is automatically woken up, so that the switch button does not need to be set on the measuring device, so that the user does not need to perform additional
  • the operation of the switch button realizes the ready-to-use, which simplifies the user's operation steps and improves the user experience.
  • the switch button is not required to be provided on the casing of the measuring device, the measuring device is easier to seal and waterproof the casing, and is convenient for the user to disinfect before use.
  • the method for determining whether the measured parameter satisfies the first preset condition includes at least one of the following:
  • the main parameter of the electronic thermometer is the measured value of the temperature sensor.
  • the first preset value ranges from [20 ° C, 40 ° C]. If it is a sphygmomanometer, the main parameter can be selected from a waveform of the MCU port. The frequency count value and the like are taken as the main parameters.
  • the secondary parameter is the measured value of one temperature sensor, and the second preset value can be selected as the range [20 ° C, 40 ° C].
  • the third preset value may be selected to be less than -50 degrees Celsius.
  • the fourth preset value may be selected to be less than -50 degrees Celsius.
  • the sixth preset value may be selected to be less than zero degrees Celsius and the fifth preset value is less than the sixth preset value.
  • the value range of the eighth preset value may be selected to be less than zero degrees Celsius and the seventh preset value is less than the eighth preset value.
  • the preset value is determined, it is determined that the measured parameter satisfies the first preset condition.
  • the value range of the tenth preset value may be selected to be less than -5 degrees Celsius and the ninth preset value is less than the tenth preset value.
  • the eleventh preset value can be selected as [0, 10 ° C].
  • the measured parameter satisfies the first preset when the difference between the measured parameters that are detected twice in the interval t1 is greater than or equal to the twelfth preset value and less than or equal to the thirteenth preset value.
  • the value range of t1 is [0, 120 s]
  • the twelfth preset value is greater than -50 degrees Celsius
  • the thirteenth preset value is greater than the twelfth preset value and less than -25 degrees Celsius.
  • the fourteenth preset value When the absolute value of the difference of the measured parameters that is detected twice in the interval t2 is greater than or equal to the fourteenth preset value, it is determined that the measured parameter satisfies the first preset condition. For example, specific to body temperature timing, t2 has a value range of [0, 120 s], and the fourteenth preset value ranges from [0, 10 ° C].
  • the first preset condition For example, specific to body temperature timing, the value range of t3 is [0, 120s], and the fifteenth and sixteenth preset values range from [-50 °C, -25 °C].
  • t4 When the difference between the mean values of the measured parameters of the continuous sliding window detected twice in the interval t4 is greater than or equal to the seventeenth preset value, it is determined that the measured parameter satisfies the first preset condition.
  • t4 specific to body temperature timing, t4 has a value range of [0, 120 s], and the seventeenth preset value ranges from [0 ° C, 10 ° C].
  • t5 has a value range of [0,500 s]
  • the eighteenth preset value ranges from [0, 10 ° C].
  • the measured parameter when the difference between the mean value of the measured parameter and the obtained current measured parameter is greater than or equal to the nineteenth preset value and less than or equal to the twentieth preset value.
  • the first preset condition is met.
  • the range of t6 is [0,500 s]
  • the range of the nineteenth and twentieth preset values is less than zero degrees
  • the nineteenth preset value is less than or equal to the twentieth preset. value.
  • V 1 to V n+1 are n+1 consecutive measured parameter values, n ⁇ [1,512],
  • the 21st preset value ranges from [0, 10 ° C].
  • the second difference absolute value is greater than or equal to the twenty-second preset value and less than or equal to the twenty-third preset value, determining that the measured parameter meets the first preset condition.
  • the twenty-second and twenty-third preset values range from less than zero degrees Celsius.
  • the electronic thermometer is taken as an example: when the electronic body temperature timer is not used, the electronic thermometer is in a deep sleep state, and the obtained temperature is The ambient temperature of the environment in which the electronic thermometer is located is the value of the secondary parameter; when the electronic thermometer is in use, that is, worn on the forehead of the patient, the acquired temperature is the user's body temperature as the main parameter value. Generally, there is a certain difference between the user's body temperature and the ambient temperature.
  • This embodiment uses the property to determine whether the measured parameter satisfies the first preset condition. In this embodiment, when the acquired temperature value satisfies the first preset condition, it is determined that the electronic thermometer is in a wearing state, and the electronic thermometer is awakened.
  • the method for determining whether the obtained temperature value satisfies the first preset condition is not limited to the above sixteen types.
  • the present invention is not enumerated here, and the present invention determines whether the obtained temperature value satisfies the first
  • the specific judgment method of a predetermined condition is not limited.
  • the specific setting form of the first preset condition is different; in the case of the electronic thermometer, the property uses a certain difference between the temperature value of the environment and the user's body temperature.
  • the first preset condition in the sphygmomanometer and other medical equipment, the first preset condition may also be set by using its own property, and the specific setting form is various, and the specific setting method of the first preset condition of the present invention is Do not make any restrictions.
  • the method further includes: a deep sleep step S4, wherein when the acquired measured parameter meets the second preset condition,
  • the measuring device enters the sleep state immediately or delayed.
  • a timer such as an accumulator is used to perform a predetermined time delay (for example, setting a delay time of t10, t10 is a value range of [0, 2h]), and circulating the second preset during the delay process. The condition is judged, and if the situation is not satisfied, the timing is restarted.
  • the measuring device in the process of performing measurement and the like after the measurement device is woken up, it is also determined in real time whether the acquired measured parameter satisfies the second preset condition, and if it is satisfied, the measurement device is already in the non-status at this time. When the status is used, the measuring device is controlled to be in a sleep state again to save energy.
  • the method for determining that the measured parameter meets the second preset condition includes at least one of the following:
  • the measuring device is for body temperature timing, the twenty-fourth preset value ranges from [0, 40 ° C], and the t7 value ranges from [0, 2 h].
  • the measuring device is a body temperature timing
  • the twentieth The value range of the five preset values is greater than 50 °C, and the range of t8 is [0, 2h].
  • the measuring device is for body temperature
  • the second and twenty-sixth preset values are greater than 50 °C
  • the t9 is for [0, 2h].
  • the waking step and the deep sleep step may further include: a state determining step S5, determining a state in which the measuring device is located, the state including a wearing state and a removing state; and controlling step S6, When the measuring device is in the wearing state, the wearing warning is performed, and the measuring device is woken up. When the measuring device is in the removed state, the warning is removed, and the measuring device is in a deep sleep state.
  • the measuring device in the working process of the measuring device, the measuring device is judged to be in the real time. Wear status (use status) or remove status (non-use status).
  • Wear status use status
  • remove status non-use status
  • the measuring device is controlled to continue to be in an awake state, so that the measuring device performs measurement and the like;
  • the measuring device is in the removed state, the measuring device is controlled to enter the depth immediately or after a delay. Sleep state to reduce energy consumption.
  • the embodiment may also select different warnings for the wearing state and the removal state of the measuring device. In specific implementation, an audible and visual warning may be selected.
  • the method for determining that the measuring device is in the removed state includes at least one of the following:
  • the measuring device When the obtained difference between the current value of the measured parameter and the measured value before the time t11 is greater than or equal to the twenty-eighth preset value, it is determined that the measuring device is in the removed state.
  • the measured parameter is a temperature value
  • the value of t11 is (0,300 s)
  • the value of the twenty-eighth preset value is [-5 ° C, -0.5 ° C].
  • the measuring device When the obtained difference between the current value of the measured parameter and the measured value before the t12 time is less than or equal to the twenty-ninth preset value, it is determined that the measuring device is in the removed state. For example, when the measured parameter is a temperature value, t12 takes the value (0,300 s), and the twenty-ninth preset value ranges from [20 ° C, 50 ° C].
  • the measuring device Determining that the measuring device is in the removed state when the measured parameter in the obtained t13 time is less than the thirtieth preset value and the measured parameter before the time t13 is once greater than the thirty-first preset value.
  • the measured parameter is a temperature value
  • the value of t13 is (0,300 s)
  • the value of the thirtieth preset value is [0, 35 ° C]
  • the range of the thirty-first preset value is [ 25 ° C, 40 ° C].
  • Determining the measurement when the measured parameter in the acquired t14 time is greater than the thirty-second preset value and the measured parameter before the t14 time includes a parameter value smaller than the thirty-third preset value
  • the device is in the removed state.
  • the measured parameter is a temperature value
  • the value of t14 is (0,300 s)
  • the preset value of the thirty-second and thirty-third is [-5 ° C, 0 ° C]
  • the thirty-second The preset value is greater than the thirty-third preset value.
  • the method for determining that the measuring device is in a wearing state includes at least one of the following:
  • the determining step may further include: determining the execution step, when the acquired t15 time is the measured When the absolute value of the difference between the mean value of the parameter and the currently detected parameter is greater than or equal to the thirty-fourth preset value, it is determined that the measuring device performs a wake-up operation or a deep sleep operation. For example, when the measured parameter is a temperature value, the value of t14 is (0,300 s), and the value of the thirty-fourth preset value is [0 ° C, 10 ° C].
  • the waking up step may further include: a transmitting step of transmitting a broadcast signal, where the broadcast signal includes the measured parameter.
  • the host computer receives the broadcast signal and displays the measured parameter included in the received broadcast signal.
  • the host computer can select devices such as ipad.
  • thermometer of the wearing state performs the determination of the removal operation, if the measured value satisfies the second preset condition, the warning is removed, and the thermometer enters the deep sleep state immediately or after a predetermined delay, for example,
  • the counter performs delay calculation, and when the counter reaches the preset value, the sleep operation is performed, wherein any one of the above determination methods may be selected, and the second predetermined condition is determined for the collected measured parameters; Select whether to judge whether the thermometer is awake or dormant. The specific judgment method will not be described here.
  • the wearable electronic sphygmomanometer When the wearable electronic sphygmomanometer is in the sleep state, some working devices are powered off and stopped, and another part of the working device required for the automatic power on/off (automatic wake-up operation or sleep operation), such as the detection thread in the MCU, is used to judge the wearing state.
  • Sensors for example, temperature sensors, pressure sensors, or capacitive touch keys, etc.
  • the sensor and other parameters are judged by the first preset condition. If the power-on condition is met, the wake-up operation is performed, so that other working components enter the working state; when the blood pressure meter is in the working state, the plurality of working operations can be selected.
  • the detection of the removal operation is selected periodically.
  • the sleep operation is performed immediately or the delay operation of the accumulator is performed, and the sleep operation is performed after the predetermined delay is reached, that is, the working device for judging the startup determination is retained.
  • Other working devices are powered off and stop working.
  • the measured parameter collection method is a capacitive touch detection method.
  • a capacitance sensor is formed by a relaxation oscillator, and the relaxation oscillator outputs a PWM signal, which is used to strobe the counter.
  • the sphygmomanometer when the sphygmomanometer is worn (for example, when the skin contacts the wearing place of the sphygmomanometer), the counter is accumulated, and when the count value satisfies the first preset condition (for example, when the first preset value is exceeded), the sphygmomanometer is judged to enter the wearing state.
  • a wake-up operation is performed; otherwise, when it is judged that the count value does not satisfy the second preset condition, a delay or an immediate sleep shutdown operation is performed.
  • the sphygmomanometer according to the method of the invention can save power consumption to the greatest extent, especially for the wearable sphygmomanometer, realizes automatic switching machine (switching between deep sleep and wake-up) without requiring the user to perform operation button operation. It greatly improves the convenience of use, and at the same time, it can better control the power consumption and prevent the battery from being lost due to forgetting the shutdown.
  • the electronic oximeter is especially a wearable oximeter, wherein the optional acquisition device is a photodiode, and the illumination brightness is a measured parameter.
  • the optional acquisition device is a photodiode
  • the illumination brightness is a measured parameter.
  • the embodiment of the present invention does not need to set a switch button on the measuring device, so that the user does not need to perform an operation of the additional switch button, and realizes the ready-to-use operation, which simplifies the user's operation steps and improves the user experience.
  • the switch button is not required to be provided on the casing of the measuring device, the measuring device is easier to seal and waterproof the casing, and is convenient for disinfection before use.
  • the embodiment includes: a sheet-like housing 100 disposed on the sheet-like housing 100 The first sensor thereon, and the determiner 400 and the awaker 500 disposed in the sheet-like casing 100.
  • the determiner 400 is electrically connected to the first sensor, and the determiner 400 is configured to receive the measured parameter collected by the first temperature sensor 200, and determine whether the collected measured parameter meets the first preset condition.
  • the wake-up device 500 is electrically connected to the determiner 400, and the wake-up device 500 is configured to wake up the measuring device when the measured parameter meets the first preset condition.
  • the first sensor is a first temperature sensor 200, which is an electronic thermometer.
  • the measuring device when the electronic thermometer is not used, the measuring device is in a deep sleep state, in which the temperature value detected by the first temperature sensor is acquired in real time, and when the detected first temperature value satisfies the first pre-preparation
  • the condition it is considered that the measuring device is already in use, that is, it has been worn on the forehead of the human body, etc., and the measuring device is awakened at this time, so that the measuring device starts to perform measurement and the like.
  • the change of the temperature value detected by the first temperature sensor is detected in real time, and the electronic thermometer is automatically woken up when the temperature value satisfies the first preset condition. Since the electronic thermometer can be automatically woken up, the electronic thermometer does not need to be provided with a switch button, so that the user does not need to perform the operation of the switch button, which simplifies the user's operation steps, improves the user experience, and realizes the ready-to-use. In addition, since the switch button is not required on the housing of the electronic thermometer, the electronic thermometer is easier to seal and waterproof the housing, and is convenient for disinfection before use.
  • the measuring device in the present invention may be not only an electronic thermometer, but also other medical devices such as an electronic sphygmomanometer.
  • the present invention does not limit the specific type of the measuring device.
  • the measured parameters to be tested are different, and accordingly, the setting method of the first preset condition is different; even for the same measured parameter, the first preset condition may be different.
  • the present invention does not limit the specific setting method of the first preset condition.
  • the specific setting method of the first preset condition can be referred to the above method embodiment, and the present invention will not be repeated herein.
  • the measuring device in the above embodiment further includes: a second temperature sensor 300.
  • the second temperature sensor 300 is electrically connected to the determiner 400.
  • the second temperature sensor 300 is configured to collect an ambient temperature value of an environment in which the measuring device is located, and the first temperature sensor 200 and the second temperature sensor 300 are disposed on opposite wall surfaces of the sheet-shaped housing.
  • the wall surface on which the first temperature sensor 200 is mounted is applied to the forehead of the user.
  • the temperature value detected by the first temperature sensor 200 is the body temperature of the user; and the second temperature sensor 300 and the first temperature sensor are The relative setting of 200 is such that the second temperature sensor 300 does not contact the forehead of the user when worn, and the temperature value detected by the second temperature sensor 300 at this time is the ambient temperature.
  • the temperature values detected by the first temperature sensor 200 and the second temperature sensor 300 are used as the main parameter and the secondary parameter of the measured parameter, and when the measured parameter meets the first preset condition, the electronic thermometer is considered to be worn. State, wake up the electronic thermometer.
  • the measuring device in the above embodiment further includes: a deep sleeper 600.
  • the deep sleeper 600 is electrically connected to the determiner 400.
  • the deep sleeper 600 is configured to control the measuring device to be in a deep sleep state when the measured parameter satisfies the second preset condition.
  • the measuring device in the above embodiment further includes: a transmitter 700.
  • the transmitter 700 is electrically connected to the wake device 500.
  • the transmitter 700 is configured to transmit a broadcast signal including a measured parameter.
  • the determiner, the wake-up device, the deep sleeper, and the transmitter in the embodiment of the present invention are all constructed by using existing chips and hardware circuits.
  • the electronic thermometer since the electronic thermometer can be automatically woken up, the electronic thermometer does not need to be provided with a switch button, so that the user does not need to perform the operation of the switch button, which simplifies the user's operation steps and improves the user experience. Bring it out.
  • the switch button since the switch button is not required on the housing of the electronic thermometer, the electronic thermometer is easier to seal and waterproof the housing, and is convenient for disinfection before use.

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  • Measuring And Recording Apparatus For Diagnosis (AREA)

Abstract

L'invention concerne un procédé et un dispositif d'alimentation électrique pour un dispositif de mesure capable d'une programmation automatique, dans lequel le procédé d'alimentation électrique pour le dispositif de mesure capable d'une programmation automatique comprend les étapes suivantes : une étape d'acquisition consistant à (S1) : acquérir les paramètres de mesure mesurés par le dispositif de mesure; une étape d'évaluation consistant à (S2) : déterminer si les paramètres mesurés satisfont à une première condition prédéterminée; et une étape de réveil consistant à (S3) : réveiller le dispositif de mesure, lorsque les paramètres mesurés satisfont à la première condition prédéterminée. Le procédé et le dispositif peuvent détecter des changements dans les paramètres mesurés en temps réel; lorsqu'un paramètre mesuré satisfait à la première condition prédéterminée, le dispositif de mesure est automatiquement réveillé, de telle sorte que le dispositif de mesure ne nécessite pas un commutateur de marche/arrêt, et l'utilisateur n'a pas besoin d'exécuter l'opération supplémentaire d'un interrupteur marche/arrêt. Le dispositif est prêt à l'emploi; les étapes de fonctionnement pour l'utilisateur sont simples et l'expérience de l'utilisateur est améliorée, et le dispositif de mesure peut être facilement placé dans un boîtier imperméable étanche, ce qui facilite la désinfection avant utilisation.
PCT/CN2015/078473 2014-05-08 2015-05-07 Procédé et dispositif d'alimentation électrique pour dispositif de mesure capable de programmation automatique Ceased WO2015169242A1 (fr)

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CN114650626A (zh) * 2022-03-17 2022-06-21 东集技术股份有限公司 一种扫码头镜片的加热系统、方法和扫码设备
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