WO2017206245A1 - 数据线插拔方法、数据线插拔装置及移动终端 - Google Patents

数据线插拔方法、数据线插拔装置及移动终端 Download PDF

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Publication number
WO2017206245A1
WO2017206245A1 PCT/CN2016/087537 CN2016087537W WO2017206245A1 WO 2017206245 A1 WO2017206245 A1 WO 2017206245A1 CN 2016087537 W CN2016087537 W CN 2016087537W WO 2017206245 A1 WO2017206245 A1 WO 2017206245A1
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WO
WIPO (PCT)
Prior art keywords
data line
mobile terminal
line connector
interface
smart interface
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PCT/CN2016/087537
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English (en)
French (fr)
Inventor
唐小成
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宇龙计算机通信科技(深圳)有限公司
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Publication of WO2017206245A1 publication Critical patent/WO2017206245A1/zh

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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R31/00Coupling parts supported only by co-operation with counterpart
    • H01R31/06Intermediate parts for linking two coupling parts, e.g. adapter
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R43/00Apparatus or processes specially adapted for manufacturing, assembling, maintaining, or repairing of line connectors or current collectors or for joining electric conductors
    • H01R43/26Apparatus or processes specially adapted for manufacturing, assembling, maintaining, or repairing of line connectors or current collectors or for joining electric conductors for engaging or disengaging the two parts of a coupling device
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/62Means for facilitating engagement or disengagement of coupling parts or for holding them in engagement
    • H01R13/6205Two-part coupling devices held in engagement by a magnet
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/62Means for facilitating engagement or disengagement of coupling parts or for holding them in engagement
    • H01R13/629Additional means for facilitating engagement or disengagement of coupling parts, e.g. aligning or guiding means, levers, gas pressure electrical locking indicators, manufacturing tolerances
    • H01R13/631Additional means for facilitating engagement or disengagement of coupling parts, e.g. aligning or guiding means, levers, gas pressure electrical locking indicators, manufacturing tolerances for engagement only
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/62Means for facilitating engagement or disengagement of coupling parts or for holding them in engagement
    • H01R13/629Additional means for facilitating engagement or disengagement of coupling parts, e.g. aligning or guiding means, levers, gas pressure electrical locking indicators, manufacturing tolerances
    • H01R13/633Additional means for facilitating engagement or disengagement of coupling parts, e.g. aligning or guiding means, levers, gas pressure electrical locking indicators, manufacturing tolerances for disengagement only
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/6608Structural association with built-in electrical component with built-in single component
    • H01R13/6633Structural association with built-in electrical component with built-in single component with inductive component, e.g. transformer
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/665Structural association with built-in electrical component with built-in electronic circuit
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/665Structural association with built-in electrical component with built-in electronic circuit
    • H01R13/6683Structural association with built-in electrical component with built-in electronic circuit with built-in sensor
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/70Structural association with built-in electrical component with built-in switch

Definitions

  • the present invention relates to the field of terminal technologies, and in particular, to a data line insertion and removal method, a data line insertion and removal device, and a mobile terminal.
  • the invention is based on at least one of the above technical problems, and proposes a new data line insertion and extraction scheme, which can automatically attract a certain range of data lines from the intelligent interface, and automatically engage the intelligent interface with the data line connector.
  • the present invention provides a data line insertion and removal method, comprising: controlling a multi-turn coil disposed at a periphery of the smart interface to energize to generate a magnetic field around the smart interface to attract a magnetic connector in a predetermined range. a data line; detecting whether a data line connector is close to the smart interface; controlling the power of the multi-turn coil to be powered off when determining that the data line connector is close to the smart interface, and controlling the pin generation in the smart interface
  • the data line connector is magnetically opposite to the first magnet to attract the data line connector.
  • a multi-turn coil disposed at a periphery of the smart interface is energized to generate a magnetic field around the smart interface, attract a data line having a magnetic joint within a predetermined range, and detect whether the data line connector is close to the smart interface.
  • the multi-turn coil is controlled to be powered off, and the pin in the intelligent interface is controlled to generate a first magnetic opposite to the magnetic connection of the data line connector, so as to attract the data line connector, so that the data line of the intelligent interface can be automatically attracted to a certain range.
  • the intelligent interface is automatically connected to the data line connector, and the entire process can realize the connection between the intelligent interface and the data line without human intervention, thereby greatly improving the user experience.
  • the multi-turn coils disposed on the periphery of the smart interface there are various ways to control the multi-turn coils disposed on the periphery of the smart interface. For example, by setting a physical or virtual button, when the user touches the touch operation, the multi-turn coil is energized or detected. Whether the preset condition for triggering the multi-turn coil energization is reached (the preset condition setting can be set according to the specific performance and design requirements of the device where the smart interface is located. For example, if the smart interface is set on the mobile terminal, the remaining power of the mobile terminal can be used as the The preset condition is used to trigger the multi-turn coil energization), and the multi-turn coil can be controlled to be energized when the preset condition for triggering the multi-turn coil energization is reached.
  • the smart interface can be an interface that can be inserted without any positive or negative sides, such as a Type C interface.
  • the detecting whether the data line connector is close to the smart interface is implemented by a proximity switch disposed at a periphery of the smart interface.
  • the proximity switch is an electronic switch sensor capable of accurately sensing the metal detector of the proximity switch, the proximity switch including a passive proximity switch, a Hall proximity switch, etc., preferably, a Hall proximity switch,
  • the Hall proximity switch detects whether a data line connector is close to the smart interface.
  • the Moore component on the switch detection surface changes the state of the internal circuit of the switch due to the Hall effect. , thereby identifying the presence of a magnetic connector with a data line nearby.
  • the method further includes: controlling a pin in the smart interface to generate a second magnetic force that is the same as a magnetic property of the data line connector when receiving a signal that is detached from the data line connector To bounce off the data line connector.
  • the second magnetic force that is magnetically the same as the data line connector is generated by controlling the pin in the smart interface to bounce off the data line connector without manual operation, that is, It can be disconnected from the data cable and automatically pull out the data cable, which improves the user experience.
  • the smart interface is set in the mobile terminal
  • the step of controlling the power supply of the multi-turn coil disposed at the periphery of the smart interface includes: detecting a battery power of the mobile terminal, and determining whether the battery power of the mobile terminal is less than or equal to a predetermined power; When the battery power of the mobile terminal is less than or equal to the predetermined power, the multi-turn coil is controlled to be energized.
  • the multi-turn coil is controlled to be energized, so that Only when the mobile terminal has a charging demand, the multi-turn coil is automatically controlled to be energized to attract a certain range of data lines, which is more suitable for the actual needs of the user, and also avoids that the coil is always energized to consume the power of the mobile terminal, and at the same time, automatic data insertion is realized.
  • the intelligent interface provides prerequisites.
  • the smart interface is disposed on the mobile terminal, and the mobile terminal is charged when the data line connector is sucked and the mobile terminal is charged by a data line. Upon completion, a signal is ejected from the data line connector.
  • a data line plugging apparatus comprising: an intelligent interface, wherein the smart interface is provided with a plurality of turns of a coil, and in the case that the multi-turn coil is energized, the smart interface Generating a magnetic field around to attract a data line having a magnetic joint within a predetermined range; and detecting a module connected to the control module for detecting whether a data line connector is close to the smart interface; the control module being connected to the multi-turn coil And controlling the multi-turn coil to be energized, and when the detecting module determines that the data line connector is close to the smart interface, controlling the multi-turn coil to be powered off, and controlling the pin generation in the smart interface
  • the data line connector is magnetically opposite to the first magnet to attract the data line connector.
  • a multi-turn coil disposed at a periphery of the smart interface is energized to generate a magnetic field around the smart interface, attract a data line having a magnetic joint within a predetermined range, and detect whether the data line connector is close to the smart interface.
  • the multi-turn coil is controlled to be powered off, and the pin in the intelligent interface is controlled to generate a first magnetic opposite to the magnetic connection of the data line connector, so as to attract the data line connector, so that the data line of the intelligent interface can be automatically attracted to a certain range.
  • the intelligent interface is automatically connected to the data line connector, and the entire process can realize the connection between the intelligent interface and the data line without human intervention, thereby greatly improving the user experience.
  • the multi-turn coils disposed on the periphery of the smart interface there are various ways to control the multi-turn coils disposed on the periphery of the smart interface. For example, by setting a physical or virtual button, when the user touches the touch operation, the multi-turn coil is energized or detected. Whether the preset condition for triggering the multi-turn coil energization is reached (the preset condition setting can be set according to the specific performance and design requirements of the device where the smart interface is located. For example, if the smart interface is set on the mobile terminal, the remaining power of the mobile terminal can be used as the The preset condition is used to trigger the multi-turn coil energization), and the multi-turn coil can be controlled to be energized when the preset condition for triggering the multi-turn coil energization is reached.
  • the smart interface can be an interface that can be inserted without any positive or negative sides, such as a Type C interface.
  • the detection module includes a proximity switch.
  • the proximity switch is an electronic switch sensor capable of accurately sensing the metal detector of the proximity switch, the proximity switch including a passive proximity switch, a Hall proximity switch, etc., preferably, a Hall proximity switch,
  • the Hall proximity switch detects whether a data line connector is close to the smart interface.
  • the Moore component on the switch detection surface changes the state of the internal circuit of the switch due to the Hall effect. , thereby identifying the presence of a magnetic connector with a data line nearby.
  • control module is further configured to: when receiving a signal that is detached from the data line connector, control a pin in the smart interface to generate a magnetic relationship with the data line connector The same second magnetic force to bounce off the data line connector.
  • the second magnetic force that is magnetically the same as the data line connector is generated by controlling the pin in the smart interface to bounce off the data line connector without manual operation, that is, It can be disconnected from the data cable and automatically pull out the data cable, which improves the user experience.
  • a mobile terminal comprising: the data line insertion and removal device according to any one of the preceding embodiments; wherein the control module is specifically configured to detect a battery power of the mobile terminal, and determining whether the battery power of the mobile terminal is less than or equal to a predetermined power amount, to control the power of the multi-turn coil when determining that the battery power of the mobile terminal is less than or equal to the predetermined power amount .
  • the multi-turn coil is controlled to be energized, so that Only when the mobile terminal has a charging demand, the multi-turn coil is automatically controlled to be energized to attract a certain range of data lines, which is more suitable for the actual needs of the user, and also avoids that the coil is always energized to consume the power of the mobile terminal, and at the same time, automatic data insertion is realized.
  • the intelligent interface provides prerequisites.
  • the method further includes: a triggering module, configured to: when the data line connector is sucked and the mobile terminal is charged by the data line, when the mobile terminal is fully charged, the missile is fired Signal from the data line connector.
  • a triggering module configured to: when the data line connector is sucked and the mobile terminal is charged by the data line, when the mobile terminal is fully charged, the missile is fired Signal from the data line connector.
  • the data line of a certain range from the intelligent interface can be automatically attracted, and the intelligent interface automatically engages with the data line connector to automatically insert the data line, and the data line can be automatically pulled out.
  • FIG. 1 shows a schematic flow chart of a data line insertion and removal method according to an embodiment of the present invention
  • FIG. 2 shows a schematic block diagram of a data line insertion device in accordance with an embodiment of the present invention
  • FIG. 3 shows a schematic block diagram of a mobile terminal in accordance with an embodiment of the present invention
  • FIG. 4 shows a schematic flow chart of a data line insertion and removal method according to another embodiment of the present invention.
  • FIG. 1 shows a schematic flow chart of a data line insertion and removal method in accordance with one embodiment of the present invention.
  • a data line insertion and removal method includes:
  • Step 102 Control a multi-turn coil disposed at a periphery of the smart interface to be energized to generate a magnetic field around the smart interface to attract a data line having a magnetic joint within a predetermined range.
  • the smart interface can be an interface that can be inserted on both sides, such as a Type C interface, and the Type C interface is a connection interface of a USB (Universal Serial Bus) interface, regardless of whether it is on both sides. It can be inserted, the size is about 8.3mm ⁇ 2.5mm, and it supports the USB standard charging, data transmission, display output and other functions like other interfaces.
  • a Type C interface is a connection interface of a USB (Universal Serial Bus) interface, regardless of whether it is on both sides. It can be inserted, the size is about 8.3mm ⁇ 2.5mm, and it supports the USB standard charging, data transmission, display output and other functions like other interfaces.
  • the multi-turn coils disposed on the periphery of the smart interface there are various ways to control the multi-turn coils disposed on the periphery of the smart interface. For example, by setting a physical or virtual button, when the user touches the touch operation, the multi-turn coil is energized or detected. Whether the preset condition for triggering the multi-turn coil energization is reached (the preset condition setting can be set according to the specific performance and design requirements of the device where the smart interface is located. For example, if the smart interface is set on the mobile terminal, the remaining power of the mobile terminal can be used as the The preset condition is used to trigger the multi-turn coil energization), and the multi-turn coil can be controlled to be energized when the preset condition for triggering the multi-turn coil energization is reached.
  • Step 104 Detect whether there is a data line connector close to the smart interface.
  • the detecting whether the data line connector is close to the smart interface is implemented by a proximity switch disposed at a periphery of the smart interface.
  • the proximity switch is an electronic switch sensor capable of accurately sensing the metal detector of the proximity switch.
  • the proximity switch includes a passive proximity switch, a Hall proximity switch, etc., preferably, a Hall proximity switch is used to detect through the Hall proximity switch. Is there a data line connector close to the smart interface? Therefore, when the magnetic connector of the data line is close to the Hall proximity switch, the molar element on the switch detection surface changes the state of the internal circuit of the switch due to the Hall effect, thereby identifying the presence of the magnetic connector having the data line nearby.
  • Step 106 when it is determined that the data line connector is close to the smart interface, controlling the multi-turn coil to be powered off, and controlling a pin in the smart interface to generate a first magnetic opposite to the data line connector, to Pull the data line connector.
  • the pin in the smart interface can be energized, and by controlling the direction of the current in the pin, the pin in the smart interface generates a first magnetic force opposite to that of the data line connector.
  • a multi-turn coil disposed at a periphery of the smart interface is energized to generate a magnetic field around the smart interface, attract a data line having a magnetic joint within a predetermined range, and detect whether the data line connector is close to the smart interface.
  • the whole process can realize the connection between the intelligent interface and the data line without human intervention, which greatly improves the user experience.
  • the method further includes: controlling a pin in the smart interface to generate a second magnetic force that is the same as a magnetic property of the data line connector when receiving a signal that is detached from the data line connector To bounce off the data line connector.
  • the second magnetic force that is magnetically the same as the data line connector is generated by controlling the pin in the smart interface to bounce off the data line connector without manual operation, that is, It can be disconnected from the data cable and automatically pull out the data cable, which improves the user experience.
  • the step of controlling the power supply of the multi-turn coil disposed at the periphery of the smart interface includes: detecting the battery of the mobile terminal And determining whether the battery power of the mobile terminal is less than or equal to the predetermined power; and controlling the multi-turn coil to be powered when determining that the battery power of the mobile terminal is less than or equal to the predetermined power.
  • the multi-turn coil is automatically controlled to be energized to attract a certain range.
  • the data line inside is more suitable for the actual needs of the user, and also avoids the power consumption of the mobile terminal when the coil is always powered on, and provides the premise guarantee for automatically inserting the intelligent interface into the data.
  • the smart interface is disposed on the mobile terminal, and the mobile terminal is charged when the data line connector is sucked and the mobile terminal is charged by a data line. Upon completion, a signal is ejected from the data line connector.
  • FIG. 2 shows a schematic block diagram of a data line plugging device in accordance with an embodiment of the present invention.
  • the data line plugging apparatus 200 includes: a smart interface 202, a detecting module 204, and a control module 206.
  • the intelligent interface 202 is provided with a plurality of coils on the periphery of the smart interface 202. When the multi-turn coil is energized, a magnetic field is generated around the smart interface 202 to attract a data line with a magnetic joint within a predetermined range. .
  • the smart interface can be an interface that can be inserted on both sides, such as a Type C interface, and the Type C interface is a connection interface of a USB (Universal Serial Bus) interface, regardless of whether it is on both sides. It can be inserted, the size is about 8.3mm ⁇ 2.5mm, and it supports the USB standard charging, data transmission, display output and other functions like other interfaces.
  • a Type C interface is a connection interface of a USB (Universal Serial Bus) interface, regardless of whether it is on both sides. It can be inserted, the size is about 8.3mm ⁇ 2.5mm, and it supports the USB standard charging, data transmission, display output and other functions like other interfaces.
  • the detecting module 204 is connected to the control module 206 for detecting whether a data line connector is close to the smart interface.
  • the detection module includes a proximity switch.
  • the proximity switch is an electronic switch sensor capable of accurately sensing the metal detector of the proximity switch.
  • the proximity switch includes a passive proximity switch, a Hall proximity switch, etc., preferably, a Hall proximity switch is used to detect through the Hall proximity switch. Is there a data cable connector close to the smart interface specifically when the magnetic connector of the data cable is When the near Hall approaches the switch, the molar element on the switch detecting surface changes the state of the internal circuit of the switch due to the Hall effect, thereby identifying the presence of the magnetic connector having the data line nearby.
  • the control module 206 is connected to the multi-turn coil for controlling energization of the multi-turn coil, and controlling the multi-turn coil when the detecting module 204 determines that a data line connector is close to the smart interface And controlling a pin in the smart interface 202 to generate a first magnetic opposite to the data line connector to attract the data line connector.
  • the multi-turn coils disposed on the periphery of the smart interface there are various ways to control the multi-turn coils disposed on the periphery of the smart interface. For example, by setting a physical or virtual button, when the user touches the touch operation, the multi-turn coil is energized or detected. Whether the preset condition for triggering the multi-turn coil energization is reached (the preset condition setting can be set according to the specific performance and design requirements of the device where the smart interface is located. For example, if the smart interface is set on the mobile terminal, the remaining power of the mobile terminal can be used as the The preset condition is used to trigger the multi-turn coil energization), and the multi-turn coil can be controlled to be energized when the preset condition for triggering the multi-turn coil energization is reached.
  • a multi-turn coil disposed at a periphery of the smart interface is energized to generate a magnetic field around the smart interface, attract a data line having a magnetic joint within a predetermined range, and detect whether the data line connector is close to the smart interface.
  • the whole process can realize the connection between the intelligent interface and the data line without human intervention, which greatly improves the user experience.
  • control module 206 is further configured to: when a signal that is detached from the data line connector is received, control a pin in the smart interface to generate a connection with the data line Magnetically identical second magnetic to bounce off the data line connector.
  • the second magnetic force that is magnetically the same as the data line connector is generated by controlling the pin in the smart interface to bounce off the data line connector without manual operation, that is, It can be disconnected from the data cable and automatically pull out the data cable, which improves the user experience.
  • FIG. 3 shows a schematic block diagram of a mobile terminal in accordance with an embodiment of the present invention.
  • the mobile terminal 300 includes: a data line plugging device 200 as shown in FIG. 2; wherein the control module 206 is specifically configured to detect a battery power of the mobile terminal. And determining whether the battery power of the mobile terminal is less than or equal to the predetermined power amount, so as to control the power of the multi-turn coil when determining that the battery power of the mobile terminal is less than or equal to the predetermined power.
  • the multi-turn coil is controlled to be energized, so that Only when the mobile terminal has a charging demand, the multi-turn coil is automatically controlled to be energized to attract a certain range of data lines, which is more suitable for the actual needs of the user, and also avoids that the coil is always energized to consume the power of the mobile terminal, and at the same time, automatic data insertion is realized.
  • the intelligent interface provides prerequisites.
  • the method further includes: a triggering module 302, configured to emit a bounce when the mobile terminal is fully charged when the data line connector is sucked and the mobile terminal is charged by the data line. The signal of the data line connector.
  • the smart interface is described by taking the Type C interface of the mobile terminal as an example.
  • the periphery of the Type C data line is metallic and can be electromagnetically attracted, and the data line connector has a permanent magnet N pole (of course, it can also be an S pole.
  • N is described as an example and is not limited
  • the type C interface of the mobile terminal has a multi-turn coil embedded in the periphery, and a multi-turn coil after being energized generates a magnetic field around the smart interface to attract a data line having a magnetic joint within a predetermined range; and then, the Type C interface automatically attracts
  • the data line is used, it is detected by the proximity switch (such as the Hall switch) set on the mobile terminal whether the data line connector is close to the smart interface.
  • the multi-turn coil is controlled to be powered off, and the tube in the Type C interface is controlled.
  • the foot generates S pole magnetism (specifically, the pin in the Type C interface is energized, according to the right hand principle Control the current direction) to pull the data line connector, let the Type C interface complete the reliable contact, realize the automatic insertion of the data line; when the mobile terminal is completed, control the pin in the Type C interface to generate the N-pole magnetic to repel the data line. Connector, so that the data line is automatically disconnected from the Type C interface.
  • S pole magnetism specifically, the pin in the Type C interface is energized, according to the right hand principle Control the current direction
  • Step 402 Determine whether the battery power in the mobile terminal is less than a predetermined power amount (such as 1%). If yes, go to step 404; otherwise, go back to step 402.
  • the predetermined power may be automatically set by the user according to requirements, or may be an automatic default setting of the system.
  • Step 404 controlling the multi-turn coil of the periphery of the Type C interface to be energized to generate a magnetic field around the Type C to attract a data line having a magnetic joint within a predetermined range.
  • step 406 it is detected whether there is a data line connector approaching, and if so, step 408 is performed; otherwise, step 404 is returned.
  • step 408 the multi-turn coil is controlled to be powered off, and the pin in the Type C interface is controlled to generate S-pole magnetism to attract the data line connector.
  • Step 410 When the charging of the mobile terminal is completed, controlling the pin in the Type C interface to generate N-pole magneticity to repel the data line connector, thereby automatically disconnecting the data line.
  • the technical solution of the present invention is described in detail above with reference to the accompanying drawings.
  • the technical solution of the present invention proposes a new data line insertion and extraction scheme, which can automatically attract a certain range of data lines from the intelligent interface, and automatically interface the intelligent interface with the data line.
  • the connector is snapped in to automatically insert the data cable and automatically pull out the data cable.

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Abstract

一种数据线插拔方法、数据线拔插装置(200)及移动终端(300),其中,数据线拔插方法包括:控制设置在智能接口(202)外围的多匝线圈通电,以在所述智能接口(202)的周围产生磁场,吸引预定范围内的具有磁性接头的数据线;检测是否有数据线接头接近所述智能接口(202);在确定有数据线接头接近所述智能接口(202)时,控制所述多匝线圈断电,并控制所述智能接口(202)中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。通过该技术方案,可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,以自动插入数据线,还可自动拔出数据线。

Description

数据线插拔方法、数据线插拔装置及移动终端 技术领域
本发明涉及终端技术领域,具体而言,涉及一种数据线插拔方法、一种数据线插拔装置和一种移动终端。
背景技术
相关技术中,在对设备(如手机)进行充电或进行数据交互时,一般都依赖人为操作,通常需要用户一只手握持手机,另一只手拿着数据线对准手机的接口,以将数据线插入接口中,整个操作过程比较繁琐,且在一些场景下(如用户在开车或用户所处环境光线较暗),增加了用户手动操作的难度,影响了用户的使用体验。
因此,如何实现接口与数据线自动吸合成为亟待解决的技术问题。
发明内容
本发明正是基于上述技术问题至少之一,提出了一种新的数据线插拔方案,可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合。
有鉴于此,本发明提出了一种数据线插拔方法,包括:控制设置在智能接口外围的多匝线圈通电,以在所述智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线;检测是否有数据线接头接近所述智能接口;在确定有数据线接头接近所述智能接口时,控制所述多匝线圈断电,并控制所述智能接口中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。
在该技术方案中,通过控制设置在智能接口外围的多匝线圈通电,以在智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线,并检测是否有数据线接头接近智能接口,以在确定有数据线接头接近智能 接口时,控制多匝线圈断电,并控制智能接口中的管脚产生与数据线接头磁性相反的第一磁性,以吸合数据线接头,使得可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,整个过程无需人为干预即可实现智能接口与数据线的连接,大大提升了用户的使用体验。
具体地,控制设置在智能接口外围的多匝线圈通电的方式有多种,如可通过设置一实体或虚拟按键,在检测到用户对该按键的触摸操作时触发控制多匝线圈通电,或检测是否达到触发多匝线圈通电的预设条件(预设条件的设置可根据智能接口所在设备的具体性能和设计需求进行设置,如智能接口设置在移动终端上,就可以以移动终端的剩余电量作为预设条件来触发多匝线圈通电),在达到触发多匝线圈通电的预设条件时即可控制多匝线圈通电。其中,智能接口可以是不分正反两面均可插入的接口,如Type C接口。
在上述技术方案中,优选地,所述检测是否有数据线接头接近所述智能接口是通过设置在所述智能接口的外围的接近开关实现的。
在该技术方案中,接近开关是一种电子开关量传感器,能够准确地感应接近开关的金属检测物,接近开关包括无源接近开关、霍尔接近开关等,优选地,采用霍尔接近开关,通过霍尔接近开关检测是否有数据线接头接近智能接口具体为,当数据线的磁性接头靠近霍尔接近开关时,开关检测面上的摩尔元件因产生霍尔效应而使开关内部电路状态发生变化,由此识别附近有数据线的磁性接头存在。
在上述任一项技术方案中,优选地,还包括:收到弹离所述数据线接头的信号时,控制所述智能接口中的管脚产生与所述数据线接头磁性相同的第二磁性,以弹离所述数据线接头。
在该技术方案中,当收到弹离数据线接头的信号时,通过控制智能接口中的管脚产生与数据线接头磁性相同的第二磁性,以弹离数据线接头,无需人为操作,即可与数据线断开连接,自动拔出数据线,提升了用户的使用体验。
在上述任一项技术方案中,优选地,在所述智能接口设置在移动终端 上的情况下,控制设置在智能接口外围的多匝线圈通电的步骤,具体包括:检测所述移动终端的电池电量,并判断所述移动终端的电池电量是否小于或等于预定电量;在判定所述移动终端的电池电量小于或等于所述预定电量时,控制所述多匝线圈通电。
在该技术方案中,通过检测移动终端的电池电量,并判断移动终端的电池电量是否小于或等于预定电量,以在判定移动终端的电池电量小于或等于预定电量时,控制多匝线圈通电,使得仅在移动终端有充电需求时,自动控制多匝线圈通电来吸引一定范围内的数据线,更贴合用户的实际需求,也避免了线圈一直通电而消耗移动终端电量,同时为实现数据自动插入智能接口提供前提保证。
在上述任一项技术方案中,优选地,所述智能接口设置在移动终端上,在吸合所述数据线接头并通过数据线对所述移动终端进行充电的情况下,所述移动终端充电完成时,发出弹离所述数据线接头的信号。
在该技术方案中,考虑到在实际的使用过程中,移动终端充电完成时需要及时拔出数据线,为此可通过移动终端充电完成时,发出弹离数据线接头的信号,以使智能接口及时弹离数据线,无需人为操作,实现了数据线的自动拔离,避免了长时间充电所存在的安全隐患,提升了用户的使用体验。
根据本发明的第二方面,提出了一种数据线插拔装置,包括:智能接口,所述智能接口外围设置有多匝线圈,在所述多匝线圈通电的情况下,所述智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线;检测模块,连接至控制模块,用于检测是否有数据线接头接近所述智能接口;所述控制模块,连接至所述多匝线圈,用于控制所述多匝线圈通电,以及在所述检测模块确定有数据线接头接近所述智能接口时,控制所述多匝线圈断电,并控制所述智能接口中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。
在该技术方案中,通过控制设置在智能接口外围的多匝线圈通电,以在智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线,并检测是否有数据线接头接近智能接口,以在确定有数据线接头接近智能 接口时,控制多匝线圈断电,并控制智能接口中的管脚产生与数据线接头磁性相反的第一磁性,以吸合数据线接头,使得可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,整个过程无需人为干预即可实现智能接口与数据线的连接,大大提升了用户的使用体验。
具体地,控制设置在智能接口外围的多匝线圈通电的方式有多种,如可通过设置一实体或虚拟按键,在检测到用户对该按键的触摸操作时触发控制多匝线圈通电,或检测是否达到触发多匝线圈通电的预设条件(预设条件的设置可根据智能接口所在设备的具体性能和设计需求进行设置,如智能接口设置在移动终端上,就可以以移动终端的剩余电量作为预设条件来触发多匝线圈通电),在达到触发多匝线圈通电的预设条件时即可控制多匝线圈通电。其中,智能接口可以是不分正反两面均可插入的接口,如Type C接口。
在上述技术方案中,优选地,所述检测模块包括接近开关。
在该技术方案中,接近开关是一种电子开关量传感器,能够准确地感应接近开关的金属检测物,接近开关包括无源接近开关、霍尔接近开关等,优选地,采用霍尔接近开关,通过霍尔接近开关检测是否有数据线接头接近智能接口具体为,当数据线的磁性接头靠近霍尔接近开关时,开关检测面上的摩尔元件因产生霍尔效应而使开关内部电路状态发生变化,由此识别附近有数据线的磁性接头存在。
在上述任一项技术方案中,优选地,所述控制模块还用于:收到弹离所述数据线接头的信号时,控制所述智能接口中的管脚产生与所述数据线接头磁性相同的第二磁性,以弹离所述数据线接头。
在该技术方案中,当收到弹离数据线接头的信号时,通过控制智能接口中的管脚产生与数据线接头磁性相同的第二磁性,以弹离数据线接头,无需人为操作,即可与数据线断开连接,自动拔出数据线,提升了用户的使用体验。
根据本发明的第三方面,还提出了一种移动终端,包括:如上述实施例中任一项所述的数据线插拔装置;其中,所述控制模块,具体用于检测 所述移动终端的电池电量,并判断所述移动终端的电池电量是否小于或等于预定电量,以在判定所述移动终端的电池电量小于或等于所述预定电量时,控制所述多匝线圈通电。
在该技术方案中,通过检测移动终端的电池电量,并判断移动终端的电池电量是否小于或等于预定电量,以在判定移动终端的电池电量小于或等于预定电量时,控制多匝线圈通电,使得仅在移动终端有充电需求时,自动控制多匝线圈通电来吸引一定范围内的数据线,更贴合用户的实际需求,也避免了线圈一直通电而消耗移动终端电量,同时为实现数据自动插入智能接口提供前提保证。
在上述实施例中,优选地,还包括:触发模块,用于在吸合所述数据线接头并通过数据线对所述移动终端进行充电的情况下,所述移动终端充电完成时,发出弹离所述数据线接头的信号。
在该技术方案中,考虑到在实际的使用过程中,移动终端充电完成时需要及时拔出数据线,为此可通过移动终端充电完成时,发出弹离数据线接头的信号,以使智能接口及时弹离数据线,无需人为操作,实现了数据线的自动拔离,避免了长时间充电所存在的安全隐患,提升了用户的使用体验。
通过以上技术方案,可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,以自动插入数据线,还可自动拔出数据线。
附图说明
图1示出了根据本发明的一个实施例的数据线插拔方法的示意流程图;
图2示出了根据本发明的实施例的数据线插拔装置的示意框图;
图3示出了根据本发明的实施例的移动终端的示意框图;
图4示出了根据本发明的另一个实施例的数据线插拔方法的示意流程图。
具体实施方式
为了能够更清楚地理解本发明的上述目的、特征和优点,下面结合附图和具体实施方式对本发明进行进一步的详细描述。需要说明的是,在不冲突的情况下,本申请的实施例及实施例中的特征可以相互组合。
在下面的描述中阐述了很多具体细节以便于充分理解本发明,但是,本发明还可以采用其他不同于在此描述的其他方式来实施,因此,本发明的保护范围并不受下面公开的具体实施例的限制。
图1示出了根据本发明的一个实施例的数据线插拔方法的示意流程图。
如图1所示,根据本发明的一个实施例的数据线插拔方法,包括:
步骤102,控制设置在智能接口外围的多匝线圈通电,以在所述智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线。
其中,智能接口可以是不分正反两面均可插入的接口,如Type C接口,Type C接口是USB(Universal Serial Bus,通用串行总线)接口的一种连接介面,不分正反两面均可插入,大小约为8.3mm×2.5mm,和其他介面一样支持USB标准的充电、数据传输、显示输出等功能。
具体地,控制设置在智能接口外围的多匝线圈通电的方式有多种,如可通过设置一实体或虚拟按键,在检测到用户对该按键的触摸操作时触发控制多匝线圈通电,或检测是否达到触发多匝线圈通电的预设条件(预设条件的设置可根据智能接口所在设备的具体性能和设计需求进行设置,如智能接口设置在移动终端上,就可以以移动终端的剩余电量作为预设条件来触发多匝线圈通电),在达到触发多匝线圈通电的预设条件时即可控制多匝线圈通电。
步骤104,检测是否有数据线接头接近所述智能接口。
本实施例中,优选地,所述检测是否有数据线接头接近所述智能接口是通过设置在所述智能接口的外围的接近开关实现的。
接近开关是一种电子开关量传感器,能够准确地感应接近开关的金属检测物,接近开关包括无源接近开关、霍尔接近开关等,优选地,采用霍尔接近开关,通过霍尔接近开关检测是否有数据线接头接近智能接口具体 为,当数据线的磁性接头靠近霍尔接近开关时,开关检测面上的摩尔元件因产生霍尔效应而使开关内部电路状态发生变化,由此识别附近有数据线的磁性接头存在。
步骤106,在确定有数据线接头接近所述智能接口时,控制所述多匝线圈断电,并控制所述智能接口中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。
具体地,可为智能接口中的管脚通电,通过控制管脚中电流的方向,使智能接口中的管脚产生与数据线接头磁性相反的第一磁性。
在该技术方案中,通过控制设置在智能接口外围的多匝线圈通电,以在智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线,并检测是否有数据线接头接近智能接口,以在确定有数据线接头接近智能接口时,控制多匝线圈断电,并控制智能接口中的管脚产生与数据线接头磁性相反的第一磁性,以吸合数据线接头,使得可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,整个过程无需人为干预即可实现智能接口与数据线的连接,大大提升了用户的使用体验。
在上述任一项技术方案中,优选地,还包括:收到弹离所述数据线接头的信号时,控制所述智能接口中的管脚产生与所述数据线接头磁性相同的第二磁性,以弹离所述数据线接头。
在该技术方案中,当收到弹离数据线接头的信号时,通过控制智能接口中的管脚产生与数据线接头磁性相同的第二磁性,以弹离数据线接头,无需人为操作,即可与数据线断开连接,自动拔出数据线,提升了用户的使用体验。
在上述任一项技术方案中,优选地,在所述智能接口设置在移动终端上的情况下,控制设置在智能接口外围的多匝线圈通电的步骤,具体包括:检测所述移动终端的电池电量,并判断所述移动终端的电池电量是否小于或等于预定电量;在判定所述移动终端的电池电量小于或等于所述预定电量时,控制所述多匝线圈通电。
在该技术方案中,通过检测移动终端的电池电量,并判断移动终端的 电池电量是否小于或等于预定电量,以在判定移动终端的电池电量小于或等于预定电量时,控制多匝线圈通电,使得仅在移动终端有充电需求时,自动控制多匝线圈通电来吸引一定范围内的数据线,更贴合用户的实际需求,也避免了线圈一直通电而消耗移动终端电量,同时为实现数据自动插入智能接口提供前提保证。
在上述任一项技术方案中,优选地,所述智能接口设置在移动终端上,在吸合所述数据线接头并通过数据线对所述移动终端进行充电的情况下,所述移动终端充电完成时,发出弹离所述数据线接头的信号。
在该技术方案中,考虑到在实际的使用过程中,移动终端充电完成时需要及时拔出数据线,为此可通过移动终端充电完成时,发出弹离数据线接头的信号,以使智能接口及时弹离数据线,无需人为操作,实现了数据线的自动拔离,避免了长时间充电所存在的安全隐患,提升了用户的使用体验。
图2示出了根据本发明的实施例的数据线插拔装置的示意框图。
如图2所示,根据本发明的实施例的数据线插拔装置200,包括:智能接口202、检测模块204和控制模块206。
其中,智能接口202,所述智能接口202外围设置有多匝线圈,在所述多匝线圈通电的情况下,所述智能接口202的周围产生磁场,吸引预定范围内的具有磁性接头的数据线。
其中,智能接口可以是不分正反两面均可插入的接口,如Type C接口,Type C接口是USB(Universal Serial Bus,通用串行总线)接口的一种连接介面,不分正反两面均可插入,大小约为8.3mm×2.5mm,和其他介面一样支持USB标准的充电、数据传输、显示输出等功能。
检测模块204,连接至控制模块206,用于检测是否有数据线接头接近所述智能接口。
在本实施例中,所述检测模块包括接近开关。接近开关是一种电子开关量传感器,能够准确地感应接近开关的金属检测物,接近开关包括无源接近开关、霍尔接近开关等,优选地,采用霍尔接近开关,通过霍尔接近开关检测是否有数据线接头接近智能接口具体为,当数据线的磁性接头靠 近霍尔接近开关时,开关检测面上的摩尔元件因产生霍尔效应而使开关内部电路状态发生变化,由此识别附近有数据线的磁性接头存在。
所述控制模块206,连接至所述多匝线圈,用于控制所述多匝线圈通电,以及在所述检测模块204确定有数据线接头接近所述智能接口时,控制所述多匝线圈断电,并控制所述智能接口202中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。
具体地,控制设置在智能接口外围的多匝线圈通电的方式有多种,如可通过设置一实体或虚拟按键,在检测到用户对该按键的触摸操作时触发控制多匝线圈通电,或检测是否达到触发多匝线圈通电的预设条件(预设条件的设置可根据智能接口所在设备的具体性能和设计需求进行设置,如智能接口设置在移动终端上,就可以以移动终端的剩余电量作为预设条件来触发多匝线圈通电),在达到触发多匝线圈通电的预设条件时即可控制多匝线圈通电。
在该技术方案中,通过控制设置在智能接口外围的多匝线圈通电,以在智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线,并检测是否有数据线接头接近智能接口,以在确定有数据线接头接近智能接口时,控制多匝线圈断电,并控制智能接口中的管脚产生与数据线接头磁性相反的第一磁性,以吸合数据线接头,使得可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,整个过程无需人为干预即可实现智能接口与数据线的连接,大大提升了用户的使用体验。
在上述任一项技术方案中,优选地,所述控制模块206还用于:收到弹离所述数据线接头的信号时,控制所述智能接口中的管脚产生与所述数据线接头磁性相同的第二磁性,以弹离所述数据线接头。
在该技术方案中,当收到弹离数据线接头的信号时,通过控制智能接口中的管脚产生与数据线接头磁性相同的第二磁性,以弹离数据线接头,无需人为操作,即可与数据线断开连接,自动拔出数据线,提升了用户的使用体验。
图3示出了根据本发明的实施例的移动终端的示意框图。
如图3所示,根据本发明的实施例的移动终端300,包括:如图2所示的数据线插拔装置200;其中,所述控制模块206,具体用于检测移动终端的电池电量,并判断所述移动终端的电池电量是否小于或等于预定电量,以在判定所述移动终端的电池电量小于或等于所述预定电量时,控制所述多匝线圈通电。
在该技术方案中,通过检测移动终端的电池电量,并判断移动终端的电池电量是否小于或等于预定电量,以在判定移动终端的电池电量小于或等于预定电量时,控制多匝线圈通电,使得仅在移动终端有充电需求时,自动控制多匝线圈通电来吸引一定范围内的数据线,更贴合用户的实际需求,也避免了线圈一直通电而消耗移动终端电量,同时为实现数据自动插入智能接口提供前提保证。
在上述实施例中,优选地,还包括:触发模块302,用于在吸合数据线接头并通过数据线对所述移动终端进行充电的情况下,所述移动终端充电完成时,发出弹离所述数据线接头的信号。
在该技术方案中,考虑到在实际的使用过程中,移动终端充电完成时需要及时拔出数据线,为此可通过移动终端充电完成时,发出弹离数据线接头的信号,以使智能接口及时弹离数据线,无需人为操作,实现了数据线的自动拔离,避免了长时间充电所存在的安全隐患,提升了用户的使用体验。
以下结合图4对本发明的技术方案作进一步说明。
在本实施例中,智能接口以移动终端的Type C接口为例进行说明。首先,让Type C数据线的外围具有金属性,能够被电磁吸引,同时数据线接头带永磁性N极(当然也可以是S极,本实施例中以N极为例进行说明而并不限定),移动终端的Type C接口外围内嵌多匝线圈,通过通电后的多匝线圈,智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线;然后,在Type C接口自动吸引到数据线时,通过移动终端上设置的接近开关(如霍尔开关)检测是否有数据线接头接近智能接口,在判定有智能接口时,控制多匝线圈断电,并控制Type C接口中的管脚产生S极磁性(具体可为Type C接口中的管脚通电,依据右手原则 控制电流方向),以吸合数据线接头,让Type C接口完成可靠接触,实现数据线自动插入;当移动终端充电完成时,控制Type C接口中的管脚产生N极磁性,以排斥数据线接头,从而实现数据线自动与Type C接口断开连接。具体地过程如图4所示,包括:
步骤402,判断移动终端中的电池电量是否小于预定电量(如1%),若是,执行步骤404;否则,返回执行步骤402。其中,预定电量可以是用户根据需求自动设置,还可以是系统自动默认设置。
步骤404,控制Type C接口外围的多匝线圈通电,以在Type C的周围产生磁场,吸引预定范围内的具有磁性接头的数据线。
步骤406,检测是否有数据线接头接近,若是,执行步骤408;否则,返回执行步骤404。
步骤408,控制多匝线圈断电,并控制Type C接口中的管脚产生S极磁性,以吸合数据线接头。
步骤410,在移动终端充电完成时,控制Type C接口中的管脚产生N极磁性,以排斥数据线接头,从而自动断开与数据线的连接。
通过上述实施例,可实现以下技术效果:
(1)、实现Type C接口的数据线的自动插拔,给用户带来便利,特别是用户在开车或者夜晚时。
(2)、为生产线的自动化测试带来便利,减少插拔时间,提高生产效率。
(3)、自动拔出数据线既节能又降低移动终端过充存在的安全隐患。
以上结合附图详细说明了本发明的技术方案,本发明的技术方案提出了一种新的数据线插拔方案,可自动吸引距离智能接口一定范围的数据线,并使智能接口自动与数据线接头吸合,以自动插入数据线,还可自动拔出数据线。
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。

Claims (10)

  1. 一种数据线插拔方法,其特征在于,包括:
    控制设置在智能接口外围的多匝线圈通电,以在所述智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线;
    检测是否有数据线接头接近所述智能接口;
    在确定有数据线接头接近所述智能接口时,控制所述多匝线圈断电,并控制所述智能接口中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。
  2. 根据权利要求1所述的数据线插拔方法,其特征在于,所述检测是否有数据线接头接近所述智能接口是通过设置在所述智能接口的外围的接近开关实现的。
  3. 根据权利要求1或2所述的数据线插拔方法,其特征在于,还包括:
    收到弹离所述数据线接头的信号时,控制所述智能接口中的管脚产生与所述数据线接头磁性相同的第二磁性,以弹离所述数据线接头。
  4. 根据权利要求3所述的数据线插拔方法,其特征在于,在所述智能接口设置在移动终端上的情况下,控制设置在智能接口外围的多匝线圈通电的步骤,具体包括:
    检测所述移动终端的电池电量,并判断所述移动终端的电池电量是否小于或等于预定电量;
    在判定所述移动终端的电池电量小于或等于所述预定电量时,控制所述多匝线圈通电。
  5. 根据权利要求3所述的数据线插拔方法,其特征在于,所述智能接口设置在移动终端上,在吸合所述数据线接头并通过数据线对所述移动终端进行充电的情况下,所述移动终端充电完成时,发出弹离所述数据线接头的信号。
  6. 一种数据线插拔装置,其特征在于,包括:
    智能接口,所述智能接口外围设置有多匝线圈,在所述多匝线圈通电 的情况下,所述智能接口的周围产生磁场,吸引预定范围内的具有磁性接头的数据线;
    检测模块,连接至控制模块,用于检测是否有数据线接头接近所述智能接口;
    所述控制模块,连接至所述多匝线圈,用于控制所述多匝线圈通电,以及在所述检测模块确定有数据线接头接近所述智能接口时,控制所述多匝线圈断电,并控制所述智能接口中的管脚产生与所述数据线接头磁性相反的第一磁性,以吸合所述数据线接头。
  7. 根据权利要求5所述的数据线插拔装置,其特征在于,所述检测模块包括接近开关。
  8. 根据权利要求6或7所述的数据线插拔装置,其特征在于,所述控制模块还用于:收到弹离所述数据线接头的信号时,控制所述智能接口中的管脚产生与所述数据线接头磁性相同的第二磁性,以弹离所述数据线接头。
  9. 一种移动终端,其特征在于,包括:
    如权利要求6至8中任一项所述的数据线插拔装置;
    其中,所述控制模块,具体用于检测移动终端的电池电量,并判断所述移动终端的电池电量是否小于或等于预定电量,以在判定所述移动终端的电池电量小于或等于所述预定电量时,控制所述多匝线圈通电。
  10. 根据权利要求9所述的移动终端,其特征在于,还包括:
    触发模块,用于在吸合数据线接头并通过数据线对所述移动终端进行充电的情况下,所述移动终端充电完成时,发出弹离所述数据线接头的信号。
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