WO2017219496A1 - 电子设备及信号检测方法 - Google Patents

电子设备及信号检测方法 Download PDF

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Publication number
WO2017219496A1
WO2017219496A1 PCT/CN2016/097592 CN2016097592W WO2017219496A1 WO 2017219496 A1 WO2017219496 A1 WO 2017219496A1 CN 2016097592 W CN2016097592 W CN 2016097592W WO 2017219496 A1 WO2017219496 A1 WO 2017219496A1
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WIPO (PCT)
Prior art keywords
electronic device
sensor
sensors
circuit board
housing
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Application number
PCT/CN2016/097592
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English (en)
French (fr)
Inventor
宫锦超
吴崚
Original Assignee
中兴通讯股份有限公司
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Application filed by 中兴通讯股份有限公司 filed Critical 中兴通讯股份有限公司
Priority to EP16906036.5A priority Critical patent/EP3444700A4/en
Publication of WO2017219496A1 publication Critical patent/WO2017219496A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/16Constructional details or arrangements
    • G06F1/1613Constructional details or arrangements for portable computers
    • G06F1/163Wearable computers, e.g. on a belt
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/16Constructional details or arrangements
    • G06F1/1613Constructional details or arrangements for portable computers
    • G06F1/1633Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
    • G06F1/1684Constructional details or arrangements related to integrated I/O peripherals not covered by groups G06F1/1635 - G06F1/1675
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/011Arrangements for interaction with the human body, e.g. for user immersion in virtual reality

Definitions

  • Embodiments of the present invention relate to, but are not limited to, the field of electromechanical, and more particularly to an electronic device and a signal detecting method.
  • a common solution in the related art is as follows: a part of the sensor is placed on the surface of the watch. Although more sensors can be installed to some extent, as the number of sensors is increased, the area of the measurement holes is also increased, and the area that the watch can use for displaying content is reduced, which is for users who use smart watches. Words are not very friendly. Therefore, in the related art, there has not been a better solution to solve the problem that more sensors cannot be set in an electronic device.
  • Embodiments of the present invention provide an electronic device and a signal detection method to solve at least the problem of how to set more sensors in an electronic device in the related art.
  • an electronic device including: a housing 1, a sensor module 2, and a driving device 3;
  • the sensor module 2 disposed in the housing 1, includes one or more sensors 21;
  • a driving device 3 disposed in the housing 1 and connected to the sensor module for driving the movement of the sensor module 2; wherein when the one or more sensors 21 are moved to a predetermined position, the driving device The sensor 21 performs signal detection.
  • the sensor module 2 further includes: the circuit board is connected to the driving device 3, and the one or more sensors 21 are disposed on one or both sides of the circuit board 4.
  • the housing 1 is further provided with a sensor detecting hole 11;
  • the sensor moving to the predetermined position performs signal detection through the detection hole 11.
  • one or more contact terminals 21' respectively connected to the one or more sensors 21 are disposed on one or both sides of the circuit board 4;
  • the electronic device further includes: a main board 5 mounted on the housing 1; wherein the main board 5 is fixed with a connector 51, and the connector 51 and the plurality of contact terminals 21' are respectively The contact terminals of the one or more sensors 21 are in contact to enable the one or more sensors.
  • the circuit board 4 further includes: one or more positioning holes 41 located on the circuit board 4.
  • the main board 5 further includes: a positioning probe 52 fixed on the main board 5, the positioning probe 52 and one or more when the connector 51 contacts the contact terminal 21' At least one of the positioning holes 41 is inserted to fix the circuit board 4.
  • the driving device 3 comprises: a dial 3A or a motor 3B.
  • the dial plate 31A is a disc structure having a tooth shape
  • the circuit board 4 is a toothed disc structure that cooperates with the dial plate 31A.
  • the electronic device when the driving device 3 is the motor 3B, the electronic device further includes: a controller, configured to generate an operation instruction for driving the motor 3B; the motor 3B is fixed on the main board 5, And configured to drive the circuit board 4 to rotate when receiving the operation instruction sent by the controller.
  • a controller configured to generate an operation instruction for driving the motor 3B
  • the motor 3B is fixed on the main board 5, And configured to drive the circuit board 4 to rotate when receiving the operation instruction sent by the controller.
  • the plurality of contact terminals 21' and the connector 51 are in an array arrangement.
  • a signal detecting method comprising: receiving an operation instruction of a user on an electronic device; driving the sensor module to be triggered by the operation instruction; and when one of the sensor modules When the plurality of sensors move to a predetermined position, the sensor is activated for signal detection.
  • the receiving an operation instruction of the user on the electronic device includes: receiving the operation instruction generated by the user operating the operation interface of the electronic device.
  • a storage medium is also provided.
  • the storage medium is arranged to store program code for performing the following steps:
  • the sensor When one or more sensors in the sensor module move to a predetermined position, the sensor is activated to perform signal detection.
  • sensor motion of one or more of the sensor modules is driven by the drive device, and when the sensor is moved to a predetermined position, the sensor is activated for signal detection. Therefore, the problem that more sensors cannot be set in the electronic device is solved, thereby realizing simple and convenient setting of more sensors in the electronic device. At the same time, it also realizes the purpose of switching to the user-specified sensor according to actual needs.
  • FIG. 1 is a structural diagram of an electronic device according to an embodiment of the present invention.
  • FIG. 2 is a structural view of a housing in accordance with an embodiment of the present invention.
  • FIG. 3 is a structural diagram of a dial according to an embodiment of the present invention.
  • FIG. 4 is a structural diagram of a sensor module according to an embodiment of the present invention.
  • FIG. 5 is a structural diagram of another electronic device according to an embodiment of the present invention.
  • FIG. 6 is a structural diagram of a motherboard according to an embodiment of the invention.
  • FIG. 7 is a structural diagram of an electronic device according to an embodiment of the present invention.
  • Figure 8 is a structural view of a housing in accordance with an embodiment of the present invention.
  • FIG. 9 is a structural diagram of a sensor module according to an embodiment of the present invention.
  • FIG. 10 is a structural diagram of another electronic device according to an embodiment of the present invention.
  • FIG. 11 is a structural diagram of a motherboard according to an embodiment of the present invention.
  • FIG. 13 is a flowchart of a signal detecting method according to an embodiment of the present invention.
  • the electronic device in the present application may include, but is not limited to, a multi-sensor smart watch, a mobile terminal, a smart bracelet, a smart earphone, a smart hearing aid, a smart glasses, and a VR (Virtual Reality) device, etc., which can be used for health monitoring. Wearable device.
  • FIG. 1 is a structural diagram of an electronic device according to an embodiment of the present invention. As shown in FIG. 1, the device includes: a housing 1, a sensor module 2, and a driving device 3. . among them,
  • the sensor module 2 is disposed in the housing 1 and includes one or more sensors 21;
  • a driving device 3 disposed in the housing 1 and connected to the sensor module for driving the movement of the sensor module 2, wherein when the one or more sensors 21 are moved to a predetermined position, the triggering Sensor 21 begins signal acquisition.
  • the sensor module 2 further includes: a circuit board 4 , and one or more sensors 21 are disposed on one or both sides of the circuit board 4 , the circuit board and the The drive unit 3 is connected.
  • the driving device 3 and the circuit board 4 used in the embodiment may each be a toothed disk structure.
  • the circuit board in Fig. 1 only exemplarily draws four sensors.
  • other numbers of sensors can be placed on the size of the board depending on the size of the board and the sensor.
  • the driving device 3 is used as a dial button as an example. The following description is based on the use of a dial as a drive.
  • the electronic device in this embodiment is a wearable device for implementing health monitoring (for example, a multi-sensor smart watch, a mobile terminal, a smart bracelet, a smart earphone, a smart hearing aid, smart glasses, and VR (Virtual Reality). ) equipment, etc.).
  • the housing 1 includes a detecting hole 11 and a dial-converting opening 12.
  • the detecting hole 11 is configured to perform signal detection through the detecting hole 11 when the one or more sensors move to the detecting hole 11 corresponding to the predetermined position.
  • a dial transfer opening 12 is located on the side of the housing 1 for exposing a portion of the dial to the housing 1.
  • the housing 1 is further provided with an assembly shaft 13 and a dial assembly shaft 14.
  • the mounting shaft 13 is fixed to the housing 1 and the circuit board 4 is fixed to the housing by means of plugging.
  • the dial assembly shaft 14 is fixed to the housing 1 and is fixed to the housing 1 by means of plugging.
  • the dial includes at least: a dial plate 31A.
  • the dial plate 31A one side of the dial plate 31A is exposed to the housing 1 through the dial transfer opening 12A for the user's hand-dial operation, and the other side of the button board 31A can be connected to the circuit board ,
  • the circuit board 4 can be driven to rotate.
  • the dial board 3A further includes: a second mounting hole 32A.
  • the second fitting hole 32A is fitted to the dial fitting shaft 14A fixed to the housing 1 to fix the dial plate 31A.
  • the sensor module includes, in addition to the one or more sensors 21 and the circuit board 4, a plurality of contact terminals 21' and a plurality of positioning holes 41.
  • the contact terminals 21' are provided on the circuit board 3 on one or both sides of the circuit board 4. At the same time, the contact terminal 21' is connected to a plurality of sensors. The contact terminal 21' is capable of receiving the detected signal when one or more of the plurality of sensors perform signal detection.
  • the positioning hole 41 is located on the circuit board 3.
  • the sensor module further includes: a first mounting hole 22.
  • the first fitting hole 22 is fitted to the fitting shaft 13 fixed to the casing 1 to fix the circuit board 4.
  • FIG. 5 is a structural diagram of another electronic device according to an embodiment of the present invention. As shown in FIG. 5, on the basis of the electronic device of FIG. 1 to FIG. 4, the main board 5 is further included. The main board 5 is mounted on the housing 1.
  • FIG. 6 is a structural diagram of a motherboard according to an embodiment of the invention. As shown in FIG. 6, the main board 5 includes at least a connector 51 and a positioning probe 52.
  • the connector 51 fixed to the main board 5, is in contact with a contact terminal corresponding to one or more sensors in one or more contact terminals 21' on the circuit board 4 to enable one or more sensors.
  • enabling the operation of the one or more sensors includes indicating that the sensor moving to the predetermined position begins signal acquisition and receives measurement data for one or more sensors.
  • the positioning probe 52 is inserted into at least one of the plurality of positioning holes 41 (shown in FIG. 4) to fix the circuit board 4.
  • the corresponding sensor of the positioning hole is the one or more sensors indicated above, and the signal detection can be performed through the sensor detecting hole 11.
  • the connector may be a pogopin contact module.
  • Simultaneous connector 51 and positioning probe The needle 52 can be embodied as a retractable spring head that is fixed to the main plate 5 by soldering.
  • the plurality of contact terminals 21' and the connector 52 are in an array arrangement.
  • the dial plate 31A on the outer side of the casing 1 When the user dials the dial plate 31A on the outer side of the casing 1, the dial plate 31A on the inner side of the casing 1 also rotates. At this time, the dial will drive the circuit board 4 to rotate.
  • the positioning probe 52 on the main board 5 When the circuit board 4 starts to rotate, the positioning probe 52 on the main board 5 is retracted from the corresponding positioning hole of the original sensor. Then, as the user continues to dial the dial, when one or more sensors enter the position of the sensor detecting hole 11 on the housing 1, the positioning probe 52 on the main board 5 is also just inserted into the corresponding positioning hole of one or more sensors. .
  • the main board 5 is positioned here and the positioning probe 52 is positioned in position, and the user is given a feeling such as vibration.
  • the user After receiving the feedback, the user knows that the current sensor is the target sensor, and also knows where the target sensor is located. Location status.
  • the connector 51 on the main board 5 will be in contact with the feed point of the contact terminal 21' to which the target sensor is connected, so that the electrical function is effective. At this time, the connector 51 can acquire the data when the target sensor performs signal measurement through the sensor detecting hole 11 by the contact terminal 21' of the contact.
  • the drive device 3 is also used to switch the sensor function on or off.
  • the dial plate 31A on the inner side of the casing 1 is also rotated.
  • the dial 3A will drive the circuit board 4 to rotate.
  • the positioning probe 52 on the main board 5 is retracted from the positioning hole corresponding to the function of the closing sensor, and then the sensor enters the sensor detecting hole on the housing 1 as the user continues to dial the dial. After the 11 position, the positioning probe 52 on the main board 5 is also just inserted into the corresponding positioning hole of the sensor.
  • the main board 5 is positioned here and the positioning probe 52 is positioned in place, and the user is given a feel. After receiving the feedback, the user knows that the electronic device has turned on the sensor function. On the other hand, when the circuit board 4 is rotated to the sensor, the connector 51 on the main board 5 will be in contact with the feed point of the contact terminal 21' to which the sensor is connected, so that the electrical function is effective. At this time, the connector 51 can acquire the data when the target sensor performs signal measurement through the sensor detecting hole 11 by the contact terminal 21' of the contact.
  • FIG. 7 is a structural diagram of an electronic device according to an embodiment of the present invention. As shown in FIG. 1 and FIG. 7, the device includes: the device includes: a housing 1, The sensor module 2 and the drive device 3B. among them,
  • the sensor module 2 is disposed in the housing 1 and includes one or more sensors 21;
  • a driving device 3 disposed in the housing 1 and connected to the sensor module for driving the movement of the sensor module 2, wherein when the one or more sensors 21 are moved to a predetermined position, the motion is triggered to The sensor at the predetermined position begins signal acquisition.
  • the sensor module 2 further includes a circuit board 4 on one or both sides of which the sensor 21 is disposed, the circuit board being connected to the driving device 3.
  • the circuit board used in this embodiment may be a toothed disc structure.
  • the circuit board in Fig. 7 only exemplarily shows four sensors. However, in practical applications, other numbers of sensors can be placed on the board depending on the size of the board and the sensor.
  • the driving device 3 is taken as an example of a motor.
  • the electronic device in this embodiment is a wearable device for implementing health monitoring (for example, a multi-sensor smart watch, a mobile terminal, a smart bracelet, a smart earphone, a smart hearing aid, smart glasses, and VR (Virtual Reality). ) equipment, etc.).
  • FIG. 8 is a structural view of a housing according to an embodiment of the present invention. As shown in FIG. 8, the housing 1 includes a detecting hole 11.
  • the detection hole 11 detects signal detection by the sensor detection hole 11 when one or more sensors move to the sensor detection hole 11.
  • the housing 1 further includes:
  • the mounting shaft 12 is fixed to the housing 1 and the circuit board 4 is fixed to the housing by means of plugging.
  • the sensor module includes, in addition to the one or more sensors 21 and the circuit board 4, a plurality of contact terminals 21'.
  • the contact terminals 21' are provided on the circuit board 4 on one or both sides of the circuit board 4. At the same time, the contact terminal 21' is connected to one or more sensors. The contact terminal 21' is capable of receiving the detected signal when one or more sensors perform signal detection.
  • the sensor module 2 further includes: a first assembly hole 22 .
  • the first fitting hole 22 is fitted to the fitting shaft 13 fixed to the casing 1 to fix the circuit board 4.
  • FIG. 10 is a structural diagram of an electronic device according to an embodiment of the present invention. As shown in FIG. 5, the electronic device in this embodiment further includes: a motherboard 5. The main board 5 is mounted on the housing 1.
  • FIG. 11 is a structural diagram of a main board according to an embodiment of the present invention. As shown in FIG. 11, the main board 5 includes a motor 3 and a connector 51.
  • the motor 3 includes a motor body 31B, a rotating shaft 32B, and a rotor 33B.
  • the motor 3B is specified on the main board 5 by means of patching or crimping.
  • the connector 51 fixed to the main board 5, is in contact with a contact terminal corresponding to one or more sensors in one or more contact terminals 21' on the circuit board 3 to enable one or more sensors.
  • enabling the one or more sensors includes instructing one or more sensors to begin signal acquisition and receiving measurement data for one or more sensors.
  • the connector may be a pogopin contact module.
  • the connector 51 can be embodied as a retractable spring head, which is fixed on the main board 5 by soldering.
  • the plurality of contact terminals 21' and the connector 51 are both in an array arrangement.
  • the operation of using one or more sensors includes instructing one or more sensors to perform signal detection and receiving measurement data of one or more sensors.
  • FIG. 12 is a flow chart of sensor switching in accordance with an embodiment of the present invention. As shown in FIG. 12, the following application scenarios are also provided in this embodiment to facilitate understanding of the operating principle of the foregoing electronic device structure in this embodiment.
  • the sensor switching software in the electronic device drives the hardware node in the electronic device after receiving the user operation instruction.
  • Construct for example, start a hardware processor.
  • the hardware structure After receiving the drive command, the hardware structure sends a motor rotation command to the motor body 31B in the motor 3B. After the motor body 31B receives the rotation command transmitted from the electronic device, the rotating shaft 32B is driven to drive the rotor 33B to rotate. 7 to 11, in order to rotate the circuit board 4. Since the distance parameter between the sensor and the sensor is a fixed value. Therefore, after receiving the sensor driving instruction, the sensor switching software can calculate the switching time of switching to the target sensor according to the distance parameter.
  • the sensor switching software terminates the driving of the hardware structure in the electronic device.
  • the target sensor provided on the circuit board will just turn to the sensor detecting hole 11 facing the housing 1 to perform signal detection through the sensor detecting hole 11.
  • the connector 51 on the main board 5 will be in contact with the feed point of the contact terminal 21' to which the target sensor is connected, so that the electrical function is effective.
  • the connector 51 can acquire the data when the target sensor performs signal measurement through the sensor detecting hole 11 by the contact terminal 21' of the contact.
  • the drive device 3 is also used to switch the sensor function on or off.
  • the sensor switching software in the electronic device drives the hardware structure in the electronic device (eg, starts a hardware processor) after receiving the user operation instruction.
  • the hardware structure sends a motor rotation command to the motor body 31B in the motor 3B after receiving the drive command (including turning on the sensor function command or turning off the sensor function command, and using the sensor function command in this scenario).
  • the rotating shaft 32B is driven to drive the rotor 33B to rotate.
  • the sensor switching software can calculate the switching time of switching to the target sensor according to the distance parameter.
  • the sensor switching software terminates the driving of the hardware structure in the electronic device.
  • the sensor on the circuit board will just turn to the sensor detecting hole 11 facing the housing 1 to perform signal detection through the sensor detecting hole 11.
  • the connector 51 on the main board 5 will be in contact with the feed point of the contact terminal 21' to which the sensor is connected, so that the electrical function is effective.
  • the connector 51 can acquire the signal of the target sensor through the sensor detecting hole 11 by using the contact terminal 21' of the contact. The data at the time of measurement.
  • FIG. 13 is a flowchart of a signal detection method according to an embodiment of the present invention. As shown in FIG. :
  • the operation instruction is an instruction to switch the current sensor to the target sensor.
  • the instruction to switch the current sensor to the one or more sensors is translated into a time parameter or a distance parameter that is switched to the target sensor.
  • the hardware structure is a hardware processor in the electronic device, and may be embodied as a chip or other integrated circuit structure.
  • the rotation of the circuit board in the driving electronic device can be realized by the following steps: after receiving the operation instruction, the motor body in the motor drives the rotating shaft to rotate the rotor to rotate the circuit board.
  • Embodiments of the present invention also provide a storage medium.
  • the foregoing storage medium may be configured to store program code for performing the following steps:
  • the sensor When one or more sensors in the sensor module move to a predetermined position, the sensor is activated to perform signal detection.
  • the foregoing storage medium may include, but not limited to, a USB flash drive, a Read-Only Memory (ROM), a Random Access Memory (RAM), a mobile hard disk, and a magnetic memory.
  • ROM Read-Only Memory
  • RAM Random Access Memory
  • a mobile hard disk e.g., a hard disk
  • magnetic memory e.g., a hard disk
  • the processor executes, according to the stored program code in the storage medium, the operation instruction generated by the user operating the operation interface of the electronic device.
  • the electronic device and the signal detecting method provided by the embodiments of the present invention solve the problem that the electronic device cannot be set more in the related art by using the electronic device provided by the embodiment of the present invention. This makes it simple and convenient to set up more sensors in the electronic device. At the same time, it also realizes the purpose of switching to the user-specified sensor according to actual needs.

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  • General Engineering & Computer Science (AREA)
  • Computer Hardware Design (AREA)
  • Human Computer Interaction (AREA)
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Abstract

一种电子设备以及信号检测方法,包括:壳体(1);传感器模块(2),设置于所述壳体(1)内,包括一个或多个传感器(21);驱动装置(3),设置于所述壳体(1)内,与所述传感器模块(2)连接,用于驱动所述传感器模块(2)运动,其中,当所述一个或多个传感器(21)运动到预定位置时,触发运动到所述预定位置的传感器(21)开始进行信号采集。解决相关技术中电子设备中无法被设置更多传感器(21)的问题。从而能够简单方便地在电子设备中设置更多的传感器(21)。同时,还可以根据实际需要,切换到用户指定的传感器(21)。

Description

电子设备及信号检测方法 技术领域
本发明实施例涉及但不限于机电领域,尤指一种电子设备及信号检测方法。
背景技术
随着科技的发展,人们的需求也在不断提升,比如需要在传统的电子设备上增加移动终端的功能:对于过去只能够用于显示时间的手表,也需要具备网络功能,能够与其他传统移动终端互动,甚至可以在购物时实现支付。由于手表的便携性,因此,很多的智能手表都具有测量人体参数的功能。比如血压,心跳,体温等。相关技术中,上述人体参数通过位于智能手表内部的传感器经由测量孔测量获得。同时,每一个传感器都会对应专用的测量孔。但是,受限于使用者的个人因素(例如使用者的手腕粗细程度)以及测量孔需要占用一定的面积,往往一只智能手表上能够设置的传感器数量不多,功能较为单一。
在相关技术中通常的解决办法如下:将一部分的传感器置于手表表面。虽然一定程度上能够设置更多的传感器,但是随着设置传感器数量增加,需要测量孔的面积也会增加,手表能够用于显示内容的面积就会缩小,这种方式对于使用智能手表的用户而言,不是很友好。因此,在相关技术中,还没有一种比较好的解决方法以来解决电子设备中无法被设置更多传感器的问题。
发明内容
以下是对本文详细描述的主题的概述。本概述并非是为了限制权利要求的保护范围。
本发明实施例提供了一种电子设备及信号检测方法,以至少解决相关技术中如何在电子设备中设置更多的传感器的问题。
根据本发明的一个实施例,提供了一种电子设备,包括:壳体1、传感器模块2、驱动装置3;其中,
传感器模块2,设置与所述壳体1内,包括一个或多个传感器21;
驱动装置3,设置于所述壳体1内,且与所述传感器模块连接,用于驱动所述传感器模块2运动;其中,当所述一个或多个传感器21运动到预定位置时,启动所述传感器21进行信号检测。
可选地,所述传感器模块2还包括:所述电路板与所述驱动装置3连接,所述一个或多个的传感器21设置在所述电路板4的一个或者两面上。
可选地,所述壳体1上还设置有传感器探测孔11;其中,
当所述一个或多个传感器21运动到所述预定位置对应的探测孔11处时,所述运动到所述预定位置的传感器通过所述探测孔11进行信号检测。
可选地,在所述电路板4的一面或者两面上设置有分别与所述一个或多个传感器21连接的一个或多个接触端子21’;
所述电子设备还包括:主板5,装配在所述壳体1上;其中,所述主板5上固定有连接器51,所述连接器51分别与所述多个接触端子21’中与所述一个或多个传感器21对应的接触端子接触,以使能所述一个或多个传感器。
可选地,所述电路板4还包括:一个或多个定位孔41,位于电路板4上。
可选地,所述主板5还包括:定位探针52,固定于所述主板5上,在所述连接器51接触所述接触端子21’时,所述定位探针52与一个或多个定位孔41中的至少一个定位孔插接,以固定所述电路板4。
可选地,所述驱动装置3包括:拨钮3A或电机3B。
可选地,所述拨钮板31A为边缘为齿形的圆盘结构,所述电路板4为与所述拨钮板31A相配合的齿形圆盘结构。
可选地,在所述驱动装置3为电机3B时,所述电子设备还包括:控制器,用于产生用于驱动所述电机3B的操作指令;所述电机3B,固定于主板5上,用于在接收到所述控制器发送的所述操作指令时,驱动所述电路板4转动。
可选地,所述多个接触端子21’与所述连接器51均为阵列排布结构。
根据本发明另一个实施例,还提供了一种信号检测方法,包括:接收用户对电子设备的操作指令;在所述操作指令的触发下,驱动传感器模块运动;当所述传感器模块中的一个或多个传感器运动到预定位置时,启动所述传感器进行信号检测。
可选地,所述接收用户对电子设备的操作指令,包括:接收所述用户对所述电子设备的操作界面进行操作产生的所述操作指令。
根据本发明又一个实施例,还提供了一种存储介质。该存储介质设置为存储用于执行以下步骤的程序代码:
S1,接收用户对电子设备的操作指令;
S2,在所述操作指令的触发下,驱动传感器模块运动;
S3,当所述传感器模块中的一个或多个传感器运动到预定位置时,启动所述传感器进行信号检测。
通过本发明,通过驱动装置驱动传感器模块中一个或多个的传感器运动,在所述传感器运动到预定位置时,启动所述传感器进行信号检测。因此,解决了电子设备中无法被设置更多传感器问题,从而实现了简单、方便地在电子设备中设置更多的传感器。同时,还实现了根据实际需要,切换到用户指定的传感器的目的。
本发明实施例的其它特征和优点将在随后的说明书中阐述,并且,部分地从说明书中变得显而易见,或者通过实施本发明而了解。本发明的目的和其他优点可通过在说明书、权利要求书以及附图中所特别指出的结构来实现和获得。
在阅读并理解了附图和详细描述后,可以明白其他方面。
附图概述
此处所说明的附图用来提供对本发明的进一步理解,构成本申请的一部分,本发明的示意性实施例及其说明用于解释本发明,并不构成对本发明的不当限定。在附图中:
图1是根据本发明实施例的一种电子设备的结构图;
图2是根据本发明实施例的一种壳体的结构图;
图3是根据本发明实施例的一种拨钮的结构图;
图4是根据本发明实施例的一种传感器模块的结构图;
图5根据本发明实施例的另一种电子设备的结构图;
图6根据本发明实施例的一种主板的结构图;
图7是根据本发明实施例的一种电子设备的结构图;
图8是根据本发明实施例的一种壳体的结构图;
图9是根据本发明实施例的一种传感器模块的结构图;
图10是根据本发明实施例的另一种电子设备的结构图;
图11是根据本发明实施例的一种主板的结构图;
图12是根据本发明实施例的一种传感器切换的流程图;
图13是根据本发明实施例的一种信号检测方法的流程图。
本发明的较佳实施方式
下文中将参考附图并结合实施例来详细说明本发明。需要说明的是,在不冲突的情况下,本申请中的实施例及实施例中的特征可以相互组合。
需要说明的是,本发明的说明书和权利要求书及上述附图中的术语“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。
本申请中的电子设备可以包括但不限于:多传感器的智能手表、移动终端、智能手环、智能耳机、智能助听器、智能眼镜以及VR(Virtual Reality,虚拟现实)设备等可以用于实现健康监测的可穿戴设备。
实施例1
在本实施例中提供了一种电子设备,图1是根据本发明实施例的一种电子设备的结构图,如图1所示,该装置包括:壳体1,传感器模块2以及驱动装置3。其中,
传感器模块2,设置于所述壳体1内,包括一个或多个传感器21;
驱动装置3,设置于所述壳体1内,与所述传感器模块连接,用于驱动所述传感器模块2运动,其中,当所述一个或多个传感器21运动到预定位置时,触发所述传感器21开始进行信号采集。
可选地,如图1所示,所述传感器模块2还包括:电路板4,所述电路板4的一面或者两面上设置有所述一个或多个的传感器21,所述电路板与所述驱动装置3连接。
需要指出的是,本实施例中使用的驱动装置3以及电路板4均可以是齿形圆盘结构。同时,图1中电路板仅示例性画出4个传感器。但是在实际应用当中,可以根据电路板以及传感器的大小,在电路板的大小上设置其他数量的传感器。同时,在本实施例中以驱动装置3为拨钮为例。以下描述均基于以拨钮为驱动装置。同时,本实施例中的电子设备为用于实现健康监测的可穿戴设备(例如多传感器的智能手表、移动终端、智能手环、智能耳机、智能助听器、智能眼镜以及VR(Virtual Reality,虚拟现实)设备等)。
图2是根据本发明实施例的一种壳体的结构图,如图2所示,该壳体1包括:探测孔11、拨钮转配开孔12。
探测孔11,当所述一个或多个传感器运动到所述预定位置对应的探测孔11处时,所述传感器21通过所述探测孔11进行信号检测。
拨钮转配开孔12,位于壳体1侧面,用于将拨钮的一部分外露与壳体1。
可选地,如图2所示,该壳体1上还设置有:装配轴13以及拨钮装配轴14。
装配轴13,固定于壳体1上,通过插接的方式,将电路板4固定在壳体上。
拨钮装配轴14,固定于壳体1上,通过插接的方式,将拨钮固定在壳体1上。
图3是根据本发明实施例的一种拨钮的结构图。如图3所示,该拨钮至少包括:拨钮板31A。
拨钮板31A,该拨钮板31A的一侧通过拨钮转配开孔12A外露于壳体1,用于用户的手拨操作,而该按钮板31A的另一侧能够与电路板向连接,在用 户转动拨钮板31A时,能够驱动电路板4转动。
可选地,如图3所示,所述拨钮板3A还包括:第二装配孔32A。
第二装配孔32A,装配在固定于壳体1上的拨钮装配轴14A上,以固定拨钮板31A。
图4是根据本发明实施例的一种传感器模块的结构图。如图4所示,该传感器模块除了包括一个或多个传感器21以及电路板4以外,还包括:多个接触端子21’以及多个定位孔41。
接触端子21’,设置在电路板3上,位于电路板4的一面或者两面上。同时,接触端子21’与多个传感器相连。在多个传感器中的一个或多个传感器进行信号检测时,接触端子21’能够接收检测到的信号。
定位孔41,位于电路板3上。
可选地,如图4所示,该传感器模块还包括:第一装配孔22。
第一装配孔22,装配在固定于壳体1上的装配轴13上,以固定电路板4。
图5根据本发明实施例的另一种电子设备的结构图。如图5所示,在上述图1至图4的电子设备的基础之上,还包括:主板5。主板5装配在壳体1上。
图6根据本发明实施例的一种主板的结构图。如图6所示,所述主板5至少包括:连接器51以及定位探针52。
连接器51,固定于主板5上,与位于电路板4上的一个或多个接触端子21’中与一个或多个传感器对应的接触端子接触,以使能一个或多个传感器。
具体地,使能一个或多个传感器的操作包括:指示运动到所述预定位置的传感器开始进行信号采集,并接收一个或多个传感器的测量数据。
定位探针52与多个定位孔41(如图4所示)中的至少一个定位孔插接,以固定所述电路板4。
具体地,在定位探针插接定位孔时,该定位孔对应的传感器为上述指出的一个或多个传感器,能够通过传感器探测孔11进行信号检测。
可选地,上述连接器可以为pogopin接触模块。同时连接器51与定位探 针52的可以表现为可伸缩弹簧头,通过焊接的方式固定在主板5上面。
可选地,多个接触端子21’与所述连接器52均为阵列排布结构。
此外,结合图1至图6,在本实施例当中还提供了以下的应用场景,以便于理解本实施例中上述电子设备结构的运行原理。
场景1
当用户拨动壳体1外侧的拨钮板31A时,在壳体1的内侧的拨钮板31A也就随之转动。此时,拨钮会带动电路板4转动。当电路板4开始转动后,主板5上的定位探针52从原来的传感器对应的定位孔中缩回。而后随着用户继续拨动拨钮,当一个或多个传感器进入壳体1上传感器探测孔11位置后,主板5上的定位探针52也刚好插接到一个或多个传感器对应的定位孔。主板5在此处得到定位且由于定位探针52定位到位,会给用户回馈一个手感如震动等,用户接收到这个反馈后,便知道当前传感器为目标传感器,同时也能够知道目标传感器所处的位置状态。另一方面,当电路板4转动到目标传感器时,主板5上的连接器51将会与目标传感器连接的接触端子21’的馈点接触,使得电气功能生效。此时,连接器51就能够利用接触的接触端子21’,获取目标传感器通过传感器探测孔11进行信号测量时的数据。
场景2
需要指出的是,对于只有一个传感器的电子设备,本实施中上述装置也能够实现。具体地,所述驱动装置3还用于开启或关闭传感器功能。当用户拨动壳体1外侧的拨钮板31A,用于开启传感器功能时,在壳体1的内侧的拨钮板31A也就随之转动。此时,拨钮3A会带动电路板4转动。当电路板4开始转动后,主板5上的定位探针52就会从关闭传感器功能对应的定位孔中缩回,而后随着用户继续拨动拨钮,当传感器进入壳体1上传感器探测孔11位置后,主板5上的定位探针52也刚好插接到传感器对应的定位孔。主板5在此处得到定位且由于定位探针52定位到位,会给用户回馈一个手感,用户接收到这个反馈后,便知道电子设备开启了传感器功能。另一方面,当电路板4转动到传感器时,主板5上的连接器51将会与传感器连接的接触端子21’的馈点接触,使得电气功能生效。此时,连接器51就能够利用接触的接触端子21’,获取目标传感器通过传感器探测孔11进行信号测量时的数据。
实施例2
在本实施例中提供了一种电子设备,图7是根据本发明实施例的一种电子设备的结构图,结合图1和图7所示,该装置包括:该装置包括:壳体1,传感器模块2以及驱动装置3B。其中,
传感器模块2,设置于所述壳体1内,包括一个或多个传感器21;
驱动装置3,设置于所述壳体1内,与所述传感器模块连接,用于驱动所述传感器模块2运动,其中,当所述一个或多个传感器21运动到预定位置时,触发运动到所述预定位置的传感器开始进行信号采集。
可选地,所述传感器模块2还包括:电路板4,所述电路板4的一面或者两面上设置有所述一个或多个的传感器21,所述电路板与所述驱动装置3连接。
需要指出的是,本实施例中使用的电路板可以是齿形圆盘结构。同时,图7中电路板仅示例性画出4个传感器。但是在实际应用当中,可以根据电路板以及传感器的大小,在电路板的上设置其他数量的传感器。同时,在本实施例中以驱动装置3为电机为例。同时,本实施例中的电子设备为用于实现健康监测的可穿戴设备(例如多传感器的智能手表、移动终端、智能手环、智能耳机、智能助听器、智能眼镜以及VR(Virtual Reality,虚拟现实)设备等)。图8是根据本发明实施例的一种壳体的结构图,如图8所示,该壳体1包括:探测孔11。
探测孔11,当一个或多个传感器运动至传感器探测孔11处时,一个或多个传感器通过传感器探测孔11进行信号检测。
可选地,如图8所示,所述壳体1还包括:
装配轴12,固定于壳体1上,通过插接的方式,将电路板4固定在壳体上。
图9是根据本发明实施例的一种传感器模块的结构图。如图9所示,该传感器模块除了包括一个或多个传感器21以及电路板4以外,还包括:多个接触端子21’。
接触端子21’,设置在电路板4上,位于电路板4的一面或者两面上。 同时,接触端子21’与一个或多个传感器相连。在一个或多个传感器进行信号检测时,接触端子21’能够接收检测到的信号。
可选地,如图9所示,该传感器模块2还包括:第一装配孔22。
第一装配孔22,装配在固定于壳体1上的装配轴13上,以固定电路板4。
图10是根据本发明实施例的一种电子设备的结构图,如图5所示,本实施例中的电子设备还包括:主板5。主板5装配在壳体1上。
图11是根据本发明实施例的一种主板的结构图,如图11所示,其中,主板5包括:电机3以及连接器51。
电机3,包括电机本体31B,转轴32B以及转子33B。
具体地,电机3B通过贴片或压接等方式规定在主板5上。
连接器51,固定于主板5上,与位于电路板3上的一个或多个接触端子21’中与一个或多个传感器对应的接触端子接触,以使能一个或多个传感器。
具体地,使能一个或多个传感器的操作包括:指示一个或多个传感器开始进行信号采集,并接收一个或多个传感器的测量数据。可选地,上述连接器可以为pogopin接触模块。同时连接器51可以表现为可伸缩弹簧头,通过焊接的方式固定在主板5上面。
可选地,多个接触端子21’与所述连接器51均为阵列排布结构。
具体地,使用一个或多个传感器的操作包括:指示一个或多个传感器进行信号检测,并接收一个或多个传感器的测量数据。
此外,在本实施例当中还提供了以下的应用场景,以便于理解本实施例中上述电子设备结构的运行原理。
图12是根据本发明实施例的一种传感器切换的流程图。如图12所示,在本实施例当中还提供了以下的应用场景,以便于理解本实施例中上述电子设备结构的运行原理。
场景1:
在用户通过UI界面操作电子设备时(例如切换到目标传感器),电子设备中传感器切换软件在接收到用户操作指令后,驱动电子设备中的硬件结 构(例如,启动一个硬件处理器)。硬件结构在收到驱动指令后,会向电机3B中的电机本体31B发送电机转动指令。在电机本体31B接收到电子设备发送的转动指令后,会驱动转轴32B带动转子33B进行转动。结合图7至图11,从而以使电路板4转动。由于传感器与传感器之间的距离参数是固定值。因此,传感器切换软件在接收到传感器驱动指令后,可以根据该距离参数计算出切换到目标传感器的切换时间。在满足切换时间时,传感器切换软件会终止对电子设备中的硬件结构的驱动。此时电路板上设置的目标传感器会恰好转到正对与壳体1上的传感器探测孔11,从而通过该传感器探测孔11进行信号检测。另一方面,当电路板4转动到目标传感器时,主板5上的连接器51将会与目标传感器连接的接触端子21’的馈点接触,使得电气功能生效。此时,连接器51就能够利用接触的接触端子21’,获取目标传感器通过传感器探测孔11进行信号测量时的数据。
场景2:
需要指出的是,对于只有一个传感器的电子设备,本实施中上述装置也能够实现。具体地,所述驱动装置3还用于开启或关闭传感器功能。在用户通过UI界面操作电子设备时(例如切换到目标传感器),电子设备中传感器切换软件在接收到用户操作指令后,驱动电子设备中的硬件结构(例如,启动一个硬件处理器)。硬件结构在收到驱动指令(包括开启传感器功能指令或者关闭传感器功能指令,在本场景中使用的是开启传感器功能指令)后,会向电机3B中的电机本体31B发送电机转动指令。在电机本体31B接收到电子设备发送的转动指令后,会驱动转轴32B带动转子33B进行转动。结合图7至图11,从而以使电路板4转动。由于与传感器之间的距离参数是固定值。因此,传感器切换软件在接收到驱动指令后,可以根据该距离参数计算出切换到目标传感器的切换时间。在满足切换时间时,传感器切换软件会终止对电子设备中的硬件结构的驱动。此时电路板上传感器会恰好转到正对与壳体1上的传感器探测孔11,从而通过该传感器探测孔11进行信号检测。另一方面,当电路板4转动到传感器时,主板5上的连接器51将会与传感器连接的接触端子21’的馈点接触,使得电气功能生效。此时,连接器51就能够利用接触的接触端子21’,获取目标传感器通过传感器探测孔11进行信号 测量时的数据。
实施例3
在本实施例中提供了一种从UI界面驱动并转换为电机驱动的信号检测方法,图13是根据本发明实施例的一种信号检测方法的流程图,如图13所示,包括以下步骤:
S1302,接收用户对电子设备的操作指令;
可选地,接收所述用户对所述电子设备的操作界面进行操作产生的所述操作指令。
可选地,所述操作指令为切换当前传感器至目标传感器的指令。
S1304,在所述操作指令的触发下,驱动传感器模块运动;
S1306,当所述传感器模块中的一个或多个传感器运动到预定位置时,启动所述传感器进行信号检测。
具体地,由于传感器与传感器之间的距离参数是固定值,因此在接收到操作指令后,将操作切换当前传感器至一个或多个传感器的指令翻译为切换至目标传感器的时间参数或者距离参数。
可选地,硬件结构为电子设备中的硬件处理器,具体可以表现为芯片或者其他集成电路结构。
具体地,在驱动装置为电机时,驱动电子设备中的电路板进行转动可以通过以下形式实现:电机中的电机本体在接收到操作指令后,驱动转轴带动转子进行转动,以转动电路板。
实施例4
本发明的实施例还提供了一种存储介质。可选地,在本实施例中,上述存储介质可以被设置为存储用于执行以下步骤的程序代码:
S1,接收用户对电子设备的操作指令;
S2,在所述操作指令的触发下,驱动传感器模块运动;
S3,当所述传感器模块中的一个或多个传感器运动到预定位置时,启动所述传感器进行信号检测。
可选地,在本实施例中,上述存储介质可以包括但不限于:U盘、只读存储器(ROM,Read-Only Memory)、随机存取存储器(RAM,Random Access Memory)、移动硬盘、磁碟或者光盘等各种可以存储程序代码的介质。
可选地,在本实施例中,处理器根据存储介质中已存储的程序代码执行,接收所述用户对所述电子设备的操作界面进行操作产生的所述操作指令。
可选地,本实施例中的具体示例可以参考上述实施例及可选实施方式中所描述的示例,本实施例在此不再赘述。以上所述仅为本发明的优选实施例而已,并不用于限制本发明,对于本领域的技术人员来说,本发明可以有各种更改和变化。凡在本发明的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本发明的保护范围之内。
工业实用性
本发明实施例提出的电子设备及信号检测方法,通过本发明实施例提供的电子设备,解决了相关技术中电子设备中无法被设置更多传感器的问题。从而实现了简单、方便地在电子设备中设置更多的传感器。同时,还实现了根据实际需要,切换到用户指定的传感器的目的。

Claims (12)

  1. 一种电子设备,包括:壳体(1)、传感器模块(2)、驱动装置(3);其中,
    传感器模块(2),设置于所述壳体(1)内,包括一个或多个传感器(21);
    驱动装置(3),设置于所述壳体(1)内,与所述传感器模块(2)连接,用于驱动所述传感器模块(2)运动;其中,当所述一个或多个传感器(21)运动到预定位置时,触发运动到所述预定位置的传感器开始进行信号采集。
  2. 根据权利要求1所述的电子设备,所述传感器模块(2)还包括:
    所述电路板与所述驱动装置(3)连接,所述一个或多个的传感器(21)设置在所述电路板(4)的一面或者两面上。
  3. 根据权利要求1所述的电子设备,所述壳体(1)上还设置有传感器探测孔(11);其中,
    当所述一个或多个传感器(21)运动到所述预定位置对应的探测孔(11)处时,所述运动到所述预定位置的传感器通过所述探测孔(11)进行信号检测。
  4. 根据权利要求2所述的电子设备,其特征在于,在所述电路板(4)的一面或者两面上设置有分别与所述一个或多个传感器(21)连接的一个或多个接触端子(21’);
    所述电子设备还包括:主板(5),装配在所述壳体(1)上;其中,所述主板(5)上固定有连接器(51),所述连接器(51)分别与所述多个接触端子(21’)中与所述一个或多个传感器(21)对应的接触端子接触连接,以使能所述运动到预定位置的传感器。
  5. 根据权利要求4所述的电子设备,所述电路板(4)还包括:一个或多个定位孔(41),位于电路板(4)上;
    所述主板(5)还包括:定位探针(52),固定于所述主板(5)上,在所述连接器(51)接触所述接触端子(21’)时,所述定位探针(52)与一个或多个定位孔(41)中的至少一个定位孔插接,以固定所述电路板(4)。
  6. 根据权利要求1或6所述的电子设备,其中,所述驱动装置(3)包括:拨钮(3A)或电机(3B)。
  7. 根据权利要求6所述的电子设备,其中,所述拨钮板(31A)为边缘为齿形的圆盘结构,所述电路板(4)为与所述拨钮板(31A)相配合的齿形圆盘结构。
  8. 根据权利要求6所述的电子设备,其中,所述电子设备还包括:控制器,用于产生用于驱动所述电机(3B)的操作指令;
    所述电机(3B),固定于主板(5)上,用于在接收到所述控制器发送的所述操作指令时,驱动所述电路板(4)转动。
  9. 根据权利要求4所述的电子设备,其中,所述多个接触端子(21’)与所述连接器(51)均为阵列排布结构。
  10. 一种信号检测方法,包括:
    接收用户对电子设备的操作指令;
    在所述操作指令的触发下,驱动电子设备中的传感器模块运动;
    当所述传感器模块中的一个或多个传感器运动到预定位置时,启动所述传感器进行信号检测。
  11. 根据权利要求10所述的方法,其中,所述接收用户对电子设备的操作指令,包括:
    接收所述用户对所述电子设备的操作界面进行操作产生的所述操作指令。
  12. 一种计算机可读存储介质,存储有计算机可执行指令,所述计算机可执行指令用于执行权利要求10-11任一项的信号检测方法。
PCT/CN2016/097592 2016-06-21 2016-08-31 电子设备及信号检测方法 WO2017219496A1 (zh)

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