WO2021249485A1 - 充电方法、耳机组件、耳机、耳机盒和存储介质 - Google Patents

充电方法、耳机组件、耳机、耳机盒和存储介质 Download PDF

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Publication number
WO2021249485A1
WO2021249485A1 PCT/CN2021/099406 CN2021099406W WO2021249485A1 WO 2021249485 A1 WO2021249485 A1 WO 2021249485A1 CN 2021099406 W CN2021099406 W CN 2021099406W WO 2021249485 A1 WO2021249485 A1 WO 2021249485A1
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WO
WIPO (PCT)
Prior art keywords
earphone
charging
current value
value
temperature
Prior art date
Application number
PCT/CN2021/099406
Other languages
English (en)
French (fr)
Inventor
刘绍斌
Original Assignee
Oppo广东移动通信有限公司
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Filing date
Publication date
Application filed by Oppo广东移动通信有限公司 filed Critical Oppo广东移动通信有限公司
Publication of WO2021249485A1 publication Critical patent/WO2021249485A1/zh

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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/007Regulation of charging or discharging current or voltage
    • H02J7/0071Regulation of charging or discharging current or voltage with a programmable schedule
    • AHUMAN NECESSITIES
    • A45HAND OR TRAVELLING ARTICLES
    • A45CPURSES; LUGGAGE; HAND CARRIED BAGS
    • A45C11/00Receptacles for purposes not provided for in groups A45C1/00-A45C9/00
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/44Methods for charging or discharging
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/44Methods for charging or discharging
    • H01M10/441Methods for charging or discharging for several batteries or cells simultaneously or sequentially
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/44Methods for charging or discharging
    • H01M10/443Methods for charging or discharging in response to temperature
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0013Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries acting upon several batteries simultaneously or sequentially
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/007Regulation of charging or discharging current or voltage
    • H02J7/00712Regulation of charging or discharging current or voltage the cycle being controlled or terminated in response to electric parameters
    • H02J7/00714Regulation of charging or discharging current or voltage the cycle being controlled or terminated in response to electric parameters in response to battery charging or discharging current
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/007Regulation of charging or discharging current or voltage
    • H02J7/007188Regulation of charging or discharging current or voltage the charge cycle being controlled or terminated in response to non-electric parameters
    • H02J7/007192Regulation of charging or discharging current or voltage the charge cycle being controlled or terminated in response to non-electric parameters in response to temperature
    • H02J7/007194Regulation of charging or discharging current or voltage the charge cycle being controlled or terminated in response to non-electric parameters in response to temperature of the battery
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R1/00Details of transducers, loudspeakers or microphones
    • H04R1/10Earpieces; Attachments therefor ; Earphones; Monophonic headphones
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R1/00Details of transducers, loudspeakers or microphones
    • H04R1/10Earpieces; Attachments therefor ; Earphones; Monophonic headphones
    • H04R1/1025Accumulators or arrangements for charging
    • AHUMAN NECESSITIES
    • A45HAND OR TRAVELLING ARTICLES
    • A45CPURSES; LUGGAGE; HAND CARRIED BAGS
    • A45C11/00Receptacles for purposes not provided for in groups A45C1/00-A45C9/00
    • A45C2011/001Receptacles for purposes not provided for in groups A45C1/00-A45C9/00 for portable audio devices, e.g. headphones or MP3-players
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

Definitions

  • This application relates to the field of electronic technology, and more specifically, to a charging method, an earphone assembly, an earphone, an earphone box, and a storage medium.
  • the related technology usually collects the temperature of each earphone to set the charging current value of the earphone.
  • the embodiments of the present application provide a charging method, an earphone assembly, an earphone, an earphone box, and a storage medium.
  • the charging method of the embodiment of the present application is used for an earphone assembly, the earphone assembly includes a plurality of earphones, and the charging method includes:
  • Each of the earphones is charged according to the target current value.
  • a charging method is used for an earphone assembly, the earphone assembly includes an earphone box and a plurality of earphones, and the charging method includes:
  • Each of the earphones is charged according to the target current value.
  • the earphone assembly of the embodiment of the present application includes a first earphone and a second earphone.
  • the first earphone includes a first sensor of a first earphone shell, a first processing circuit, a first communication circuit, and a first charging circuit;
  • the second The earphone includes a second sensor, a second processing circuit, a second communication circuit, and a second charging circuit;
  • the first sensor is configured to collect a first temperature value of the first earphone;
  • the first processing circuit is configured Used to determine a first charging current value according to the first temperature value;
  • the second sensor is configured to collect a second temperature value of the second earphone;
  • the second processing circuit is configured to according to the The second temperature value determines a second charging current value;
  • the first communication circuit is configured to output the first charging current value and is configured to receive the second charging current value;
  • the first processing A circuit is configured to determine a target current value according to the first charging current value and the second charging current value;
  • the first charging circuit is
  • the earphone assembly of the embodiment of the present application includes a first earphone and a second earphone.
  • the first earphone includes a first sensor of a first earphone shell, a first communication circuit, a first processing circuit, and a first charging circuit;
  • the second The headset includes a second sensor, a second communication circuit, a second processing circuit, and a second charging circuit;
  • the first sensor is configured to collect a first temperature value of the first headset;
  • the second sensor is configured to To collect the second temperature value of the second earphone;
  • the first communication circuit is configured to output the first temperature value, and the first communication circuit is further configured to receive the second temperature value; so
  • the second communication circuit is configured to output the second temperature value, the second communication circuit is further configured to receive the first temperature value;
  • the first processing circuit is configured to output the second temperature value according to the The first temperature value and the second temperature value determine a target current value;
  • the first charging circuit is configured to charge the first earphone according to the target current value;
  • the earphone box of the embodiment of the present application is configured to charge the earphone assembly, the earphone assembly includes a first earphone and a second earphone, the earphone box includes a third sensor and a third processing circuit, and the third sensor is configured For collecting the first temperature value of the first earphone and the second temperature value of the second earphone, the third processing circuit is configured to determine according to the first temperature value and the second temperature value A target current value, where the target current value is used to charge the first earphone and the second earphone.
  • the earphone box of the embodiment of the present application is configured to charge the earphone assembly, the earphone assembly includes a first earphone and a second earphone, the earphone box includes a third sensor, a third processing circuit, and a third communication circuit.
  • the third sensor is configured to collect the first temperature value of the first earphone and the second temperature value of the second earphone, and the third processing circuit is configured to determine the first temperature value according to the first temperature value.
  • the charging current value and the second charging current value are determined according to the second temperature value; the third communication circuit is configured to transmit the first charging current value and the second charging current value to the first Earphone and the second earphone, so that the first earphone and the second earphone are configured to determine a target current value according to the first charging current value and the second charging current value, the target current The value is used to charge the first earphone and the second earphone.
  • the earphone box of the embodiment of the present application is configured to charge the earphone assembly.
  • the earphone assembly includes a first earphone and a second earphone.
  • the earphone box is characterized in that the earphone box includes a third sensor and a third communication circuit.
  • Three sensors are used to collect the first temperature value of the first earphone and the second temperature value of the second earphone; the third communication circuit is configured to compare the first temperature value and the second temperature value The value is transmitted to the first earphone and the second earphone, so that the first earphone and the second earphone are configured to determine a target current value based on the first temperature value and the second temperature value
  • the target current value is used to charge the battery of the first earphone and the battery of the second earphone.
  • the earphone component of the embodiment of the present application includes an earphone box, a plurality of earphones, and a component processor, and the component processor is used to execute the above-mentioned charging method.
  • the earphone of the embodiment of the present application includes an earphone processor, and the earphone processor is used to execute the above-mentioned charging method.
  • the earphone box of the embodiment of the present application is used for charging earphones, the earphone box includes a box processor, and the box processor is used to execute the above-mentioned charging method.
  • a non-volatile computer-readable storage medium of computer-executable instructions When the computer-executable instructions are executed by one or more processors, the processor is caused to execute the charging method described in any of the above embodiments .
  • FIG. 1 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 2 is a schematic diagram of the structure of the earphone assembly according to some embodiments of the present application.
  • FIG. 3 is a schematic diagram of a module of a headset assembly according to some embodiments of the present application.
  • FIG. 4 is a schematic diagram of a module of a headset according to some embodiments of the present application.
  • FIG. 5 is a schematic diagram of modules of the earphone box according to some embodiments of the present application.
  • FIG. 6 is a schematic diagram of the structure of the earphone assembly according to some embodiments of the present application.
  • FIG. 7 is a schematic diagram of a circuit of an earphone assembly according to some embodiments of the present application.
  • FIG. 8 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 9 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 10 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 11 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 12 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 13 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 14 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 15 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 16 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 17 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • FIG. 18 is a schematic flowchart of a charging method according to some embodiments of the present application.
  • the first feature “on” or “under” the second feature may be in direct contact with the first and second features, or the first and second features may be indirectly through an intermediary. get in touch with.
  • the "above”, “above”, and “above” of the first feature on the second feature may mean that the first feature is directly above or diagonally above the second feature, or it simply means that the level of the first feature is higher than the second feature.
  • the “below”, “below” and “below” of the second feature of the first feature may mean that the first feature is directly below or obliquely below the second feature, or it simply means that the level of the first feature is smaller than the second feature.
  • the related technology usually collects the temperature of each earphone to set the charging current value of the earphone.
  • users usually charge multiple earphones at the same time, and such a charging method can easily lead to different charging speeds of multiple earphones.
  • the charging method of the embodiment of the present application is used for an earphone assembly 1000, the earphone assembly 1000 includes a plurality of earphones 100, and the charging method includes:
  • Step S12 Obtain charging information of each earphone 100;
  • Step S14 Determine the target current value of each earphone 100 in the earphone assembly 1000 according to part or all of the acquired charging information;
  • Step S16 charge each earphone 100 according to the target current value.
  • the earphone component 1000 of the embodiment of the present application includes a plurality of earphones 100 and a component processor 1001.
  • the component processor 1001 is used to obtain charging information of each earphone 100;
  • the target current value of each earphone 100 in the earphone assembly 1000 is determined; and each earphone 100 is charged according to the target current value.
  • the earphone 100 of the embodiment of the present application includes an earphone processor 101, and the earphone processor 101 is used to obtain charging information of each earphone 100; A target current value for each earphone 100; and for charging each earphone 100 according to the target current value.
  • the earphone box 200 of the embodiment of the present application is used to charge the earphones 100.
  • the earphone box 200 includes a box processor 201, and the box processor 201 is used to obtain the charging of each earphone 100 Information; and used to determine the target current value of each earphone 100 in the earphone assembly 1000 according to part or all of the obtained charging information; and used to charge each earphone 100 according to the target current value.
  • the charging method, the earphone assembly 1000, the earphone 100, and the earphone box 200 of the embodiment of the present application charge each earphone 100 according to the target current value related to some or all of the earphones 100, that is, determine according to the charging information of some or all of the earphones 100
  • the target current value of the earphone assembly 1000 is charged for each earphone 100 according to the target current value, so that the charging current of the plurality of earphones 100 is the same, so that the charging speed of the plurality of earphones 100 is the same.
  • the related technology since the battery of the headset needs to be charged with different currents at different temperatures, the related technology usually collects the temperature of each headset to set the charging current value of the headset.
  • users usually charge multiple earphones at the same time, and such a charging method can easily lead to different charging speeds of multiple earphones.
  • the use of related technologies will cause the two earphones to charge different currents. Based on this, in the process of charging two earphones with no power at the same time, the power displayed by the two earphones will be different. In this way, it is easy for users to feel that one headset is charging faster and one headset is charging slower, and may therefore think that a slow-charging headset is damaged. In fact, the slow-charging headset may not be damaged, but the different charging speeds of the two headsets give the user an illusion. Therefore, the use of related technologies can easily lead to poor user experience.
  • the target current value of the earphone assembly 1000 is determined according to the charging information of part or all of the earphones 100, and each earphone is charged according to the target current value, so that the charging currents of multiple earphones 100 are the same.
  • the current value makes the charging speed of the multiple earphones 100 consistent. In this way, in the process of simultaneously charging multiple earphones that are out of power, the power displayed by the multiple earphones will be the same, which will not give the user the illusion of damage to the slow-charging earphones.
  • the target current value of each earphone 100 may be determined according to the acquired partial charging information, and the target current value of each earphone 100 may also be determined according to all the acquired charging information. There is no limitation here. Next, an example of determining the target current value of each earphone 100 according to all the acquired charging information is explained and described.
  • the number of earphones 100 is two. It can be understood that, in other embodiments, the number of earphones 100 may also be 2, 3, 4, or other numbers, which is not limited herein.
  • the headset 100 may be based on True Wireless Stereo (TWS) technology.
  • TWS True Wireless Stereo
  • the wireless separation of the left and right channels can be realized without cable connection between the multiple earphones 100, so that each earphone 100 can not only work with other earphones 100, but also work independently, so that the user can interact with the earphone 100.
  • the way of using is more flexible and free.
  • the headset 100 may not be based on TWS technology.
  • a plurality of earphones 100 may also be connected by cables, such as a headset and a hanging neck earphone, which is not limited here.
  • the earphone 100 may include a communication circuit, a charging circuit, and a processing circuit.
  • the communication circuit can realize data transmission between the earphone 100 itself and other earphones 100. Communication between the communication circuits can be based on Bluetooth, WIFI or other means.
  • the charging circuit can charge the headset.
  • the processing circuit can perform data processing.
  • the earphone processor 101 may include some or all of the communication circuit, the charging circuit, and the processing circuit.
  • the earphone 100 may further include an acoustic component 105, and the earphone processor 101 can control the acoustic component 105 to emit sound.
  • the number of earphones 100 is two, which are the first earphone 110 and the second earphone 120 respectively.
  • the first earphone 110 includes a first communication circuit 1021, a first charging circuit 1031, and a first processing circuit 1041.
  • the second earphone 120 includes a second communication circuit 1022, a second charging circuit 1032, and a second processing circuit 1042.
  • the first communication circuit 1021 and the second communication circuit 1022 can realize data transmission between the first earphone 110 and the second earphone 120.
  • the first charging circuit 1031 and the second charging circuit 1032 can charge the first earphone 110 and the second earphone 120, respectively.
  • the first processing circuit 1041 and the second processing circuit 1042 can perform data processing.
  • the earphone box 200 further includes a third communication circuit 202, a battery 203 and a third processing circuit 204.
  • the third communication circuit 202 and the first communication circuit 1021 can realize data transmission between the earphone box 200 and the first earphone 110.
  • the third communication circuit 202 and the second communication circuit 1022 can realize data transmission between the earphone box 200 and the second earphone 120.
  • the earphone box processor 201 may include a third communication circuit 202 and a third processing circuit 204.
  • the first earphone 110 includes a first charging port
  • the second earphone 120 includes a second charging port
  • the earphone box 200 includes a third charging port.
  • the third charging port is used to connect with the first charging port and the second charging port to transmit electric energy.
  • the first charging port includes pins PIN3 and PIN4 of the first earphone 110
  • the second charging port includes pins PIN3 and PIN4 of the second earphone 120
  • the third charging port includes an earphone box. 200 pin PIN1 and pin PIN2.
  • the third charging port may be a set of ports for charging a pair of earphones.
  • one pin PIN1 and one PIN2 form a pair of pins.
  • the third charging port may have two pairs of pins, one pair of pins is used to charge the first earphone 110, and the other pair of pins is used to charge the second earphone 120.
  • the number of earphones 100 is two, and each earphone 100 includes a communication circuit.
  • the earphone 100 obtains its own charging information, and obtains the charging information of another earphone 100 through the communication circuit, thereby obtaining each earphone 100. Charging information.
  • the number of earphones 100 is two, each earphone 100 includes a communication circuit, and the earphone box 200 further includes a third communication circuit 202.
  • the earphone 100 sends its own charging information to the earphone box 200 through the communication circuit and the third communication circuit 202, so that the earphone box 200 can obtain the charging information of each earphone 100.
  • the number of earphones 100 is two, each earphone 100 includes a communication circuit, and the earphone box 200 further includes a third communication circuit 202.
  • the earphone 100 sends its own charging information to the earphone box 200 through the communication circuit and the third communication circuit 202, and the earphone box 200 sends the charging information to other earphones 100 so that each earphone 100 can obtain the charging of each earphone 100 information.
  • step S12 The specific method for obtaining the charging information of each earphone 100 in step S12 is not limited here.
  • the charging information includes at least one of the earphone temperature value, the charging current value, the charging voltage, or other charging parameters.
  • the specific form of charging information is not limited here.
  • the earphone assembly 1000 includes an earphone box 200, and the earphone box 200 is used to charge the earphone 100.
  • the earphone box 200 is used to charge the earphone 100 when the earphone 100 is housed.
  • the earphone 100 is charged.
  • the earphone 100 is already charged, which is convenient for the user to use, and helps improve the user experience.
  • the earphone box 200 includes a battery 203, a first pin PIN1 and a second pin PIN2, and the earphone 100 includes a third pin PIN3 and a fourth pin PIN4.
  • the first pin PIN1 of the earphone box 200 is connected to the third pin PIN3 of the earphone 100
  • the second pin PIN2 of the earphone box 200 is connected to the fourth pin of the earphone 100.
  • PIN4 is connected, so that the battery 203 of the earphone box 200 can charge the earphone 100.
  • the output voltage of the battery 203 may be 5V.
  • the first pin PIN1 and the second pin PIN2 are formed on the bottom of the earphone box 200, and the third pin PIN3 and the fourth pin PIN4 are formed on the bottom of the support rod of the earphone 100.
  • the first pin PIN1 and the second pin PIN2 may be formed on the side wall or other positions of the earphone box 200, and the third pin PIN3 and the fourth pin PIN4 are formed on the earplug of the earphone 100 On the side.
  • the number of pins of the earphone box 200 can be 3, 4, or other numbers.
  • the number of pins of the earphone 100 may be 3, 4, or other numbers. There is no limitation here.
  • the charging circuit of the earphone 100 can adjust the current or voltage input from the earphone box 200 according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the charging circuit of the earphone is provided in the earphone box, and the current or voltage output to the earphone can be adjusted according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the earphone box can charge the earphone 100 through the contacts, the earphone box 200 can also charge the earphone 100 wirelessly, and the earphone 100 can also be charged through the earphone box 200.
  • the earphone 100 can be charged through a data cable without the earphone box or The earphone box only serves as a function for storing earphones.
  • the specific method of charging the earphone 100 is not limited here.
  • the component processor 1001 shown in FIG. 3 may include the headset processor 101 shown in FIGS. 4 and 7 and the box processor 201 shown in FIGS. 5 and 7.
  • the charging method of this embodiment can be executed by the earphone processor 101 and the set box processor 201.
  • the earphone processor 101 is used to obtain the charging information of each earphone 100; and used to determine the target current value of each earphone 100 in the earphone assembly 1000 according to part or all of the obtained charging information; the box processor 201 is used to The target current value is 100 charging for each earphone.
  • the earphone processor 101 sends the target current value to the set box processor 201 after determining the target current value, and the set box processor 201 adjusts the current or voltage output to the earphone according to the target current value, so that it is the earphone.
  • the charging current of 100 is the target current value.
  • the set box processor 201 is used to obtain the charging information of each earphone 100; and used to determine the target current value of each earphone 100 in the earphone assembly 1000 according to part or all of the obtained charging information; the earphone processor 101 is used for Each earphone 100 is charged according to the target current value.
  • the set box processor 201 sends the target current value to the earphone processor 101 after determining the target current value, and the earphone processor 101 adjusts the current or voltage input from the earphone box 200 according to the target current value so as to be The current charged by the earphone 100 is the target current value.
  • the component processor 1001 shown in FIG. 3 may be the earphone processor 101 shown in FIGS. 4 and 7.
  • the charging method of this embodiment may be executed only by the earphone processor 101. That is, as mentioned above, the earphone processor 101 is used to obtain the charging information of each earphone 100; and used to determine the target current value of each earphone 100 in the earphone assembly 1000 according to part or all of the obtained charging information; and It is used to charge each earphone 100 according to the target current value. Specifically, the earphone processor 101 may adjust the current or voltage input from the earphone box 200 according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the component processor 1001 shown in FIG. 3 may be the box processor 201 shown in FIGS. 5 and 7.
  • the charging method of this embodiment may be executed only by the box processor 201. That is, as mentioned above, the set box processor 201 is used to obtain the charging information of each earphone 100; and used to determine the target current value of each earphone 100 in the earphone assembly 1000 according to part or all of the obtained charging information; And for charging each earphone 100 according to the target current value. Specifically, the set box processor 201 may adjust the current or voltage output to the earphone according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the headset processor 101 may be a Bluetooth chip.
  • the charging information includes the earphone temperature value
  • step S12 includes:
  • Step S121 Obtain the earphone temperature value of each earphone 100;
  • Step S14 includes:
  • Step S141 Determine the target current value of the earphone assembly 1000 according to some or all of the acquired temperature values of the earphone.
  • the component processor 1001 is used to obtain the headphone temperature value of each headphone 100; and used to determine the target current value of the headphone component 1000 according to some or all of the obtained headphone temperature values.
  • the earphone processor 101 is used to obtain the earphone temperature value of each earphone 100; and used to determine the target current value of the earphone assembly 1000 according to some or all of the obtained earphone temperature values.
  • the box processor 201 is used to obtain the headphone temperature value of each headphone 100; and used to determine the target current value of the headphone assembly 1000 according to some or all of the obtained headphone temperature values.
  • the target current value is adapted to the earphone temperature value of each earphone 100, which can not only make the target current value meet the requirements of the battery of the earphone 100 at the current temperature, but also ensure that each earphone 100 is charged with the target current value. Safety and efficiency.
  • the earphone 100 may include a temperature detection element.
  • the earphone temperature value may be determined according to the output data of the temperature detection element.
  • the temperature detection element is, for example, a thermistor, an infrared thermometer, and the like.
  • the thermistor can be a positive temperature coefficient thermistor (Positive Temperature Coefficient, PTC) or a negative temperature coefficient thermistor (Negative Temperature Coefficient, NTC). There is no limitation here.
  • each earphone 100 may include a thermistor, and the thermistor and a fixed-value resistor may be connected in series, and the value of the thermistor may be obtained by voltage division, so as to determine the temperature of the earphone.
  • the method for determining the temperature value of the earphone is simple, and the price of the device is cheap, which can meet the temperature collection requirements of the charging method.
  • the charging current value corresponding to each earphone temperature value may be determined according to the preset relationship, and the target current value may be determined according to the multiple charging current values.
  • the preset relationship is the corresponding relationship between the temperature of the earphone and the charging current. For example, the minimum value among the charging current values is used as the target current value. In this way, the safety of charging of the earphone 100 can be ensured.
  • the target temperature may also be determined according to multiple earphone temperature values, and the current corresponding to the target temperature may be determined according to the preset relationship, and the corresponding current may be used as the target current value.
  • the target current value is adapted to the temperature of multiple earphones as universally as possible.
  • the specific method for determining the target current value based on the multiple earphone temperature values is not limited here.
  • the preset relationship is: at a temperature of 0 to 10 °C, charging with a current of 0.5C or less; at a temperature of 10 to 45 °C, charging with a current of 1C or less; at a temperature of 45 to 53 °C Under temperature, charge with current below 0.5C.
  • step S121 and step S141 can be performed by the earphone 100 or the earphone box 200.
  • data such as the earphone temperature value and the target current value can be interacted between the earphone 100 and the earphone box 200, or not between the earphone 100 and the earphone box 200.
  • the earphone 100 can collect the output data of the temperature detection element to determine the earphone temperature value, and send the earphone temperature value to the earphone box 200, so that the earphone box 200 sends the earphone temperature value to other earphones 100. In this way, the earphone 100 obtains the earphone temperature value of each earphone 100.
  • the earphone 100 can determine the target current value of the earphone assembly 1000 according to a plurality of earphone temperature values.
  • the charging circuit of the earphone 100 can adjust the current or voltage input from the earphone box 200 according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the earphone 100 may collect the output data of the temperature detection element to determine the earphone temperature value, and send the earphone temperature value to the earphone box 200, so that the earphone box 200 sends the earphone temperature value to other earphones 100 , So as to realize that the earphone 100 obtains the earphone temperature value of each earphone 100.
  • the earphone 100 can determine the target current value of the earphone assembly 1000 according to a plurality of earphone temperature values, and send the target current value to the earphone box 200.
  • the earphone box 200 can adjust the current or voltage output to the earphone 100 according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the communication circuit of the earphone 100 may send the earphone temperature value to the third communication circuit 202 of the earphone box 200 so that the earphone box 200 can obtain the earphone temperature value.
  • the earphone box 200 can determine a target current value according to a plurality of earphone temperature values, and adjust the current or voltage output to the earphone 100 according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • the communication circuit of the earphone 100 may send the earphone temperature value to the third communication circuit 202 of the earphone box 200 so that the earphone box 200 can obtain the earphone temperature value.
  • the earphone box 200 can determine the target current value according to a plurality of earphone temperature values, and send the target current value to the communication circuit of the earphone 100 through the third communication circuit 202.
  • the charging circuit of the earphone 100 can adjust the current or voltage input from the earphone box 200 according to the target current value, so that the current for charging the earphone 100 is the target current value.
  • step S121 and step S141 Please note that the above is only an example, and does not represent a restriction on the execution subject of step S121 and step S141.
  • the charging information includes a charging current value corresponding to the temperature value of the earphone, and step S12 includes:
  • Step S122 Obtain the charging current value corresponding to the earphone temperature value of each earphone 100;
  • Step S14 includes:
  • Step S142 Determine the target current value of the earphone assembly 1000 according to part or all of the obtained charging current value.
  • the component processor 1001 is used to obtain the charging current value corresponding to the earphone temperature value of each earphone 100; and used to determine the target current value of the earphone component 1000 according to part or all of the obtained charging current value.
  • the earphone processor 101 is used to obtain the charging current value corresponding to the earphone temperature value of each earphone 100; and used to determine the target current value of the earphone assembly 1000 according to part or all of the obtained charging current value.
  • the case processor 201 is used to obtain the charging current value of each earphone 100 corresponding to the earphone temperature value; and used to determine the target current value of the earphone assembly 1000 according to part or all of the obtained charging current value .
  • determining the target current value of the earphone assembly 1000 according to a part or all of the obtained charging current value can reduce the time for determining the target current value, thereby improving the efficiency of determining the target current value.
  • step S122 the earphone temperature value of each earphone 100 can be obtained, and the charging current value corresponding to each earphone temperature value can be determined according to a preset relationship.
  • the preset relationship is the corresponding relationship between the temperature of the earphone and the charging current.
  • the minimum value among the charging current values may be used as the target current value. In this way, the safety of charging of the earphone 100 can be ensured.
  • the average value of the charging current value may also be used as the target current value. In this way, the target current value can be made closer to each charging current value, so that the target current value is generally applicable to each earphone 100.
  • step S122 and step S142 can be performed by the earphone 100 or the earphone box 200.
  • data such as the ear charging current value and the target current value may be interacted between the earphone 100 and the earphone box 200, or not between the earphone 100 and the earphone box 200.
  • step S14 includes:
  • Step S143 When the difference of part or all of the obtained charging information is greater than or equal to the preset difference threshold, determine the current corresponding to each charging information to obtain multiple candidate currents;
  • Step S144 Use the minimum value among the multiple candidate currents as the target current value.
  • the component processor 1001 is configured to determine the current corresponding to each charging information to obtain multiple candidate currents when the difference in part or all of the acquired charging information is greater than or equal to the preset difference threshold; and Therefore, the minimum value among the multiple candidate currents is used as the target current value.
  • the earphone processor 101 is configured to determine the current corresponding to each charging information to obtain multiple candidate currents when the difference of part or all of the acquired charging information is greater than or equal to the preset difference threshold; and Therefore, the minimum value among the multiple candidate currents is used as the target current value.
  • the case processor 201 is configured to determine the current corresponding to each charging information to obtain multiple candidate currents when the difference in part or all of the acquired charging information is greater than or equal to the preset difference threshold; and It is used to set the minimum value among multiple candidate currents as the target current value.
  • the earphone 100 is abnormal, and the minimum value of the candidate current is used as the target current value to ensure that each earphone 100 is charged at the target current value.
  • the target current value will not exceed the current corresponding to the charging information of the earphone 100, thereby ensuring the charging safety of each earphone 100.
  • the difference between multiple candidate currents is usually also large. If the average value and mode of multiple candidate currents are used as the target current value For some earphones 100 among the plurality of earphones 100, the difference between the target current value and the candidate current of the earphone 100 is relatively large. If the target current value is used to charge the earphone 100, the safety will be lower. .
  • the minimum value of the multiple candidate currents is used as the target current value, which can avoid the occurrence of the above situation, thereby ensuring the charging safety of each earphone 100.
  • the difference between part or all of the obtained charging information may refer to the difference between the maximum value and the minimum value in part or all of the charging information.
  • the difference in part or all of the charging information may also be the variance of part or all of the charging information.
  • the difference of part or all of the charging information is greater than or equal to the preset difference threshold, which may mean that the difference between every two pieces of charging information in the part or all of the charging information is greater than or equal to the preset difference threshold.
  • the specific form of the difference in part or all of the charging information is not limited here.
  • the preset difference threshold can be a numeric value or a percentage. There is no limitation here.
  • the number of earphones 100 is two
  • the charging information includes the charging current value
  • the candidate current corresponding to the charging information is the same as the charging current value
  • the preset difference threshold is 1C.
  • the charging current value of one earphone 100 is 1C
  • the charging current value of the other earphone 100 is 3C.
  • the difference between the two is 2C, which is greater than the preset difference threshold. Therefore, 1C can be used as the target current value, and the two earphones 100 can be charged according to the target current value of 1C.
  • the number of earphones 100 is two
  • the charging information includes the earphone temperature value
  • the preset difference threshold is 1°C.
  • the earphone temperature value of one earphone 100 is 9°C, and the corresponding candidate current is 0.5C; the earphone temperature value of the other earphone 100 is 10.3°C, and the corresponding candidate current is 1C.
  • the difference between the earphone temperature values of the two earphones 100 is 1.3° C., which is greater than the preset difference threshold. Therefore, 0.5C can be used as the target current value, and the two earphones 100 can be charged according to the target current value of 0.5C.
  • step S14 includes:
  • Step S145 When the difference of part or all of the obtained charging information is less than the preset difference threshold, determine the average value of the charging information
  • Step S146 Determine the target current value according to the average value of the charging information.
  • the component processor 1001 is used to determine the average value of the charging information when the difference of part or all of the obtained charging information is less than the preset difference threshold; and used to determine the target current value according to the average value of the charging information .
  • the headset processor 101 is used to determine the average value of the charging information when the difference in part or all of the obtained charging information is less than a preset difference threshold; and used to determine the target current value according to the average value of the charging information .
  • the case processor 201 is used to determine the average value of the charging information when the difference in part or all of the obtained charging information is less than a preset difference threshold; and used to determine the target current according to the average value of the charging information value.
  • the target current value is determined according to the average value of the charging information and the preset relationship. For example, according to the preset relationship, the current corresponding to the average value is used as the target current value.
  • the number of earphones 100 is two
  • the charging information includes the charging current value
  • the candidate current corresponding to the charging information is the same as the charging current value
  • the preset difference threshold is 1C.
  • the charging current value of one earphone 100 is 1C
  • the charging current value of the other earphone 100 is 1.2C.
  • the difference between the two is 0.2C, which is less than the preset difference threshold. Therefore, the average value of 1C and 1.2C, that is, 1.1C, can be used as the target current value, and the two earphones 100 can be charged according to the target current value of 1.1C.
  • the number of earphones 100 is two
  • the charging information includes the earphone temperature value
  • the preset difference threshold is 1°C.
  • the headphone temperature value of one headphone 100 is 9.8°C
  • the headphone temperature value of the other headphone 100 is 10.3°C.
  • the difference between the two is 0.5°C, which is less than the preset difference threshold. Therefore, the current corresponding to the average value of 9.8°C and 10.3°C, that is, 10.05°C, can be used as the target current value, and the two earphones 100 can be charged according to the target current value.
  • the earphone assembly 1000 includes an earphone box 200, and the earphone box 200 is used to charge the earphone 100.
  • the charging method includes:
  • Step S151 Use the target current value determined according to part or all of the charging information as the first current
  • Step S152 Obtain the temperature of the earphone box 200
  • Step S153 Determine the second current according to the temperature of the earphone box 200;
  • Step S154 Determine the target current value for charging each earphone 100 according to the first current and the second current.
  • the component processor 1001 is configured to use the target current value determined according to part or all of the charging information as the first current; and to obtain the temperature of the earphone box 200; and to determine the first current according to the temperature of the earphone box Two currents; and a target current value for charging each earphone 100 according to the first current and the second current.
  • the earphone processor 101 is configured to use a target current value determined according to part or all of the charging information as the first current; and for obtaining the temperature of the earphone box 200; and for determining the temperature of the earphone box 200 A second current; and a target current value for charging each earphone 100 according to the first current and the second current.
  • the set box processor 201 is used to use a target current value determined according to part or all of the charging information as the first current; and used to obtain the temperature of the earphone box of the earphone box 200;
  • the second current is determined by the temperature of, and the target current value for charging each earphone 100 is determined according to the first current and the second current.
  • the first current and the second current are determined by the temperature of the earphone box and the multiple earphone temperature values respectively, thereby determining the target current value, avoiding determining the target current value only based on the temperature of the earphone box or only determining the target current value based on multiple earphone temperature values
  • the deviation produced by the target current value can improve the accuracy of the target current value.
  • the earphone box 200 may include a temperature detecting element.
  • the temperature of the earphone box may be determined according to the output data of the temperature detecting element.
  • the temperature detection element is, for example, a thermistor, an infrared thermometer, and the like.
  • the thermistor can be a positive temperature coefficient thermistor (PTC) or a negative temperature coefficient thermistor (NTC). There is no limitation here.
  • the second current may be determined according to the temperature of the earphone box and the preset relationship. For example, according to the preset relationship, the current corresponding to the temperature of the earphone box is used as the second current.
  • step S154 when the difference between the first current and the second current is less than the preset current threshold, the average value of the first current and the second current may be used as the target current value; when the difference between the first current and the second current is When the value is greater than or equal to the preset current threshold, the minimum value of the first current and the second current is used as the target current value.
  • the safety of charging can be ensured.
  • the difference between the first current and the second current is less than the preset current threshold, it can be considered that the difference between the first current and the second current is small, and the average value is used as the target current value, which will not cause safety problems, and at the same time Ensure a certain charging speed.
  • the difference is greater than or equal to the preset current threshold, it can be considered that the difference between the first current and the second current is large, which may be caused by a malfunction on the earphone side, such as damage to the temperature detection element set on the earphone, or It is caused by a fault on the earphone box side.
  • the temperature detection element installed in the earphone box is damaged, and the minimum value is used as the target current value to ensure charging safety as much as possible when it is impossible to determine which current is more reliable.
  • the earphone assembly 1000 includes an earphone box 200, and the earphone box 200 is used for accommodating a plurality of earphones 100.
  • Step S12 includes:
  • Step S123 each earphone 100 obtains its own charging information
  • Step S124 each earphone 100 sends its own charging information to the earphone box 200;
  • Step S125 the earphone box 200 sends the charging information of each earphone 100 to the other earphones 100 of the earphone assembly 1000;
  • Step S14 includes:
  • Step S146 Each earphone 100 determines a target current value according to part or all of the charging information.
  • the component processor 1001 is used for controlling each earphone 100 to obtain its own charging information; and for controlling each earphone 100 to send its own charging information to the earphone box 200; and for controlling the earphone box 200 Sending the charging information of each earphone 100 to the other earphones 100 of the earphone assembly 1000; and controlling each earphone 100 to determine the target current value according to part or all of the charging information.
  • the component processor 1001 includes an earphone processor 101 and a set box processor 201.
  • the earphone processor 101 is used to control each earphone 100 to obtain its own charging information;
  • the charging information is sent to the earphone box 200;
  • the set box processor 201 is used to control the earphone box 200 to send the charging information of each earphone 100 to the other earphones 100 of the earphone assembly 1000;
  • the earphone processor 101 is used to control each earphone 100 Determine the target current value based on part or all of the charging information.
  • the charging information of multiple earphones 100 is interacted through the earphone box 200, so that each earphone 100 can obtain the charging information of all the earphones 100, and the transfer of charging information can be more orderly and accurate based on the scheduling of the earphone box 200. Conducive to quickly determine the target current value.
  • the earphone box 200 can send the charging information of different earphones 100 sequentially, and the earphone box 200 can send the charging information of the same earphone 100 to other earphones 100 at the same time. In this way, the transmission of charging information is more orderly and accurate, which is conducive to quickly determining the target current value.
  • each earphone 100 may determine the target current value according to part or all of the charging information based on the same rule. In this way, it can be ensured that the target current value determined by each earphone 100 is the same, so that the charging speed of multiple earphones 100 is the same.
  • each earphone 100 may determine the target current value according to part or all of the charging information based on the rules in the parts of FIGS. 8-11. For details, please refer to the previous article. To avoid redundancy, I will not repeat them here.
  • the earphone assembly 1000 includes an earphone box 200, and the earphone box 200 is used for accommodating a plurality of earphones 100.
  • Step S12 includes:
  • Step S126 each earphone 100 obtains its own charging information
  • Step S127 each earphone 100 sends its own charging information to the earphone box 200;
  • Step S14 includes:
  • Step S147 the earphone box 200 determines the target current value according to part or all of the charging information.
  • the component processor 1001 is used for controlling each earphone 100 to obtain its own charging information; and for controlling each earphone 100 to send its own charging information to the earphone box 200; and for controlling the earphone box 200 Determine the target current value based on part or all of the charging information.
  • the component processor 1001 includes an earphone processor 101 and a set box processor 201.
  • the earphone processor 101 is used to control each earphone 100 to obtain its own charging information;
  • the charging information of is sent to the earphone box 200;
  • the set box processor 201 is used to control the earphone box 200 to determine the target current value according to part or all of the charging information.
  • the earphone box 200 obtains the charging information of multiple earphones 100 and determines the target current value.
  • the charging information only needs to be sent from each earphone 100 to the earphone box 200, and each earphone 100 does not need to obtain the charging information of other earphones 100, which reduces The transmission of charging information is conducive to saving transmission resources.
  • the target current value is uniformly determined by the earphone box 200, which can ensure that the target current value for charging each earphone 100 is the same, thereby ensuring that the charging speed of multiple earphones 100 is the same.
  • the earphone box 200 may determine the target current value according to part or all of the charging information based on the rules in the part of FIGS. 8-11. For details, please refer to the previous article. To avoid redundancy, I will not repeat them here.
  • step S12 includes:
  • Step S128 each earphone 100 obtains its own charging information
  • Step S129 each earphone 100 sends its own charging information to the other earphones 100 of the earphone assembly 1000; each earphone 100 receives the charging information sent by other earphones 100;
  • Step S14 includes:
  • Step S147 Each earphone 100 determines a target current value according to part or all of the charging information.
  • the earphone processor 101 is used to control the earphone 100 to obtain its own charging information; send its own charging information to other earphones 100 of the earphone assembly 1000; receive the charging information sent by other earphones 100; The charging information determines the target current value.
  • each earphone 100 may include a communication circuit, and communication between the communication circuits may be based on Bluetooth, WIFI or other means. In this way, the earphone 100 can obtain its own charging information, and obtain the charging information of another earphone 100 through the communication circuit, thereby obtaining the charging information of each earphone 100.
  • each earphone 100 may determine the target current value according to part or all of the charging information based on the rules in the parts of FIGS. 8-11. For details, please refer to the previous article. To avoid redundancy, I will not repeat them here.
  • the charging method includes:
  • Step S111 When the earphone temperature value of the earphone 100 is greater than the preset temperature threshold, the earphone 100 with the earphone temperature value greater than the preset temperature threshold initiates a connection request to other earphones 100, so that multiple earphones 100 can communicate.
  • the earphone processor 101 is configured to initiate a connection request to other earphones 100 when the earphone temperature value of the earphone 100 is greater than a preset temperature threshold, so that multiple earphones 100 can communicate.
  • the communication between the multiple earphones 100 can be established in time, so that the information interaction between the earphones 100 can be carried out in time and the target current value can be determined in time, so that the charging currents of the multiple earphones can be consistent in time.
  • the communication between the multiple earphones 100 is disconnected during charging.
  • the battery needs to be charged with different currents at different temperatures. Therefore, when the earphone temperature value of the earphone is greater than the preset temperature threshold, it can be considered that the charging current of multiple earphones is different. Therefore, it is necessary
  • the communication between the multiple earphones 100 is established in time, and the target current value is determined in time, so that the charging current of the multiple earphones is consistent.
  • the earphone 100 initiates a connection request to other earphones 100 can establish mutual communication between the earphone 100 that initiates the connection request and each earphone 100 that receives the connection request. In other words, multiple headsets 100 that have received the connection request cannot communicate directly, and need to be forwarded by the headset 100 that initiated the connection request.
  • the earphone 100 initiates a connection request to other earphones 100 can establish multi-party communication between all earphones 100. In other words, multiple headsets 100 that have received the connection request can communicate directly without forwarding through the headset 100 that initiated the connection request.
  • the specific manner in which the multiple headsets 100 communicate is not limited here.
  • the charging method includes:
  • Step S112 When the connection between the headset 100 and the forwarding terminal fails, the headset 100 that fails to connect to the forwarding terminal initiates a connection request to other headsets 100, so that multiple headsets 100 can communicate;
  • the forwarding terminal is used to receive the charging information of each earphone 100 and forward the charging information of each earphone 100 to other earphones 100.
  • the headset processor 101 is used to initiate a connection request to other headsets 100 when the headset 100 fails to connect with the forwarding terminal, so that multiple headsets 100 can communicate; wherein, the forwarding terminal is used to receive each headset. 100 own charging information, and forward each earphone 100's own charging information to other earphones 100.
  • the communication between the multiple earphones 100 can be established in time, so that the information interaction between the earphones 100 can be carried out in time and the target current value can be determined in time, so that the charging currents of the multiple earphones can be consistent in time.
  • connection between the headset 100 and the forwarding terminal fails, if you continue to try to establish a connection with the forwarding terminal, it may continue to fail, which will waste time and make it difficult to establish communication between multiple headsets 100 in time. Therefore, when the connection with the forwarding terminal fails, the connection to the forwarding terminal can be abandoned, and a connection request can be initiated to other earphones 100, so as to establish communication between multiple earphones 100 in time.
  • the connection between the headset 100 and the forwarding terminal fails means that, for each headset 100, when the connection between the headset 100 and the forwarding terminal fails, a connection request is initiated to other headsets 100, regardless of whether the other headsets 100 are connected to the forwarding terminal. The terminal connection failed.
  • the forwarding terminal may be the earphone box 200, or may be other terminals with information transceiving functions. There is no limitation here.
  • the earphone 100 initiates a connection request to other earphones 100
  • the charging method includes:
  • the earphone 100 with the earphone temperature value greater than the preset temperature threshold initiates a request for exchanging charging information to the earphone box 200 to obtain the charging information of each earphone 100.
  • the earphone processor 101 is configured to, when the earphone temperature value of the earphone 100 is greater than the preset temperature threshold, the earphone 100 with the earphone temperature value greater than the preset temperature threshold initiates a request for exchanging charging information to the earphone box 200 to obtain Charging information for each earphone 100.
  • the earphone 100 can obtain the charging information of each earphone 100 from the earphone box 200 in time, so as to determine the target current value in time, and make the charging current of multiple earphones consistent in time.
  • the earphone box 200 receives a request for exchanging charging information sent by the earphone 100, it can send the acquired charging information to the earphone 100; it can also initiate a request for acquiring charging information to other earphones 100, and when the charging information is acquired Then, the acquired charging information is sent to the earphone 100.
  • the earphone box 200 receives a request for exchanging charging information sent by the earphone 100, it can send the acquired charging information to the earphone 100; it can also initiate a request for acquiring charging information to other earphones 100, and when the charging information is acquired Then, the acquired charging information is sent to the earphone 100.
  • the earphone box 200 receives a request for exchanging charging information sent by the earphone 100, it can send the acquired charging information to the
  • the charging method of the embodiment of the present application is used for an earphone assembly 1000.
  • the earphone assembly 1000 includes an earphone box 200 and a plurality of earphones 100.
  • the earphone box 200 is used for accommodating a plurality of earphones 100.
  • the charging method includes:
  • Step S21 Obtain the temperature of the earphone box 200, where the temperature of the earphone box is related to the earphone temperature value of each earphone 100;
  • Step S22 Determine the target current value of each earphone 100 in the earphone assembly 1000 according to the temperature of the earphone box;
  • Step S23 charge each earphone 100 according to the target current value.
  • the component processor 1001 is used to obtain the temperature of the earphone box 200, and the temperature of the earphone box is related to the earphone temperature value of each earphone 100; and is used to determine each earphone component 1000 according to the temperature of the earphone box.
  • the earphone processor 101 is used to obtain the temperature of the earphone box 200, and the temperature of the earphone box is related to the earphone temperature value of each earphone 100; and for determining each earphone assembly 1000 according to the temperature of the earphone box.
  • the set box processor 201 is used to obtain the temperature of the earphone box 200, and the temperature of the earphone box is related to the earphone temperature value of each earphone 100; and for determining each earphone assembly 1000 according to the temperature of the earphone box A target current value for each earphone 100; and for charging each earphone 100 according to the target current value.
  • each earphone is charged according to the target current value associated with each earphone, that is, the target current value of the earphone assembly 1000 is determined according to the temperature of the earphone box related to the earphone temperature value of each earphone 100 and according to the target current value Each earphone 100 is charged, so that the charging current of the plurality of earphones 100 is the same, so that the charging speed of the plurality of earphones 100 is the same.
  • the target current value is determined by the temperature of the earphone box, and there is no need to provide a temperature detector for each earphone 100, which can reduce the cost.
  • the target current value is determined based on the temperature of the earphone box, there is no need to calculate multiple earphone temperature values, and the determination speed of the target current value can be improved.
  • the earphone 100 is housed in the earphone box 200, the earphone 100 is in contact with the earphone box 200, and heat transfer occurs between the earphone 100 and the earphone box 200. Therefore, the temperature of the earphone box is related to the earphone temperature value of each earphone 100. The accuracy of the target current value determined by the temperature of the box can also be guaranteed.
  • the earphone box 200 may include a temperature detecting element, and in step S21, the temperature of the earphone box may be determined according to the output data of the temperature detecting element.
  • the temperature detection element is, for example, a thermistor, an infrared thermometer, and the like.
  • the thermistor can be a positive temperature coefficient thermistor (PTC) or a negative temperature coefficient thermistor (NTC). There is no limitation here.
  • the target current value can be determined according to the temperature of the earphone box and the preset relationship. For example, according to the preset relationship, the current corresponding to the temperature of the earphone box is used as the target current value.
  • the earphone box 200 obtains the temperature of the earphone box 200, and the temperature of the earphone box is related to the earphone temperature value of each earphone 100; the target current value of each earphone 100 in the earphone assembly 1000 is determined according to the temperature of the earphone box; and Each earphone 100 is charged according to the target current value.
  • the earphone box 200 obtains the temperature of the earphone box 200 and sends the temperature of the earphone box to the earphone 100, so that the earphone 100 obtains the temperature of the earphone box, and the temperature of the earphone box is equal to the earphone temperature value of each earphone 100
  • the earphone 100 determines the target current value of each earphone 100 in the earphone assembly 1000 according to the temperature of the earphone box; the earphone 100 charges each earphone 100 according to the target current value.
  • the earphone box 200 obtains the temperature of the earphone box 200 and sends the temperature of the earphone box to the earphone 100, so that the earphone 100 obtains the temperature of the earphone box, and the temperature of the earphone box is equal to the earphone temperature value of each earphone 100
  • the earphone 100 determines the target current value of each earphone 100 in the earphone assembly 1000 according to the temperature of the earphone box, and sends the target current value to the earphone box 200
  • the earphone box 200 charges each earphone 100 according to the target current value.
  • the earphone box 200 obtains the temperature of the earphone box 200, and the temperature of the earphone box is related to the earphone temperature value of each earphone 100; the earphone box 200 determines the target of each earphone 100 in the earphone assembly 1000 according to the temperature of the earphone box Current value; the earphone box 200 sends the target current value to the earphone 100; the earphone 100 charges each earphone 100 according to the target current value.
  • step S22 when the temperature of the earphone box is greater than or equal to the preset threshold, step S22 is entered. In this way, the target current value can be determined in time, and the charging current of multiple earphones can be made consistent in time.
  • the earphone assembly 1000 of the embodiment of the present application includes a first earphone 110 and a second earphone 120.
  • the first earphone 110 includes a first sensor, a first processing circuit 1041, a first communication circuit 1021, and a first earphone.
  • the second earphone 120 includes a second earphone shell, and a second sensor, a second processing circuit 1402, a second communication circuit 1022, and a second charging circuit 1032 that are all located in the second earphone shell;
  • the first sensor can collect The first temperature value of the first earphone 110;
  • the first processing circuit 1041 can determine the first charging current value according to the first temperature value;
  • the second sensor can collect the second temperature value of the second earphone 120;
  • the second processing circuit 1402 can The second temperature value determines the second charging current value;
  • the first communication circuit 1021 can output the first charging current value and can receive the second charging current value;
  • the first processing circuit 1041 can be based on the first charging current value and the second charging current value.
  • the current value determines the target current value; the first charging circuit 1031 can charge the first earphone 110 with the target current value; the second communication circuit 1022 can output the second charging current value and receive the first charging current value; the second processing circuit 1402 can determine the target current value according to the first charging current value and the second charging current value; the second charging circuit 1032 can charge the second earphone 120 with the target current value.
  • the first earphone 110 and the second earphone 120 interact with the first charging current value and the second charging current value, and determine the target current value, and then use the target current value to charge the first earphone 110 and the second earphone 120, respectively, so that the first earphone 110 and the second earphone 120 are charged respectively.
  • the charging current of the first earphone 110 and the second earphone 120 is the same, so that the charging speed of the first earphone 110 and the second earphone 120 are the same.
  • the first processing circuit 1041 and/or the second processing circuit 1402 can determine that the smaller of the first charging current value and the second charging current value is the target current value; or, when the first charging current value and the second charging current value are When the absolute value of the difference value is less than the preset current threshold or the absolute value of the difference between the first temperature value and the second temperature value is less than the preset temperature threshold, the first processing circuit 1041 and/or the second processing circuit 1402 can determine the first The average value of the charging current value and the second charging current value is used as the target current value.
  • the first communication circuit 1021 includes a first wireless communication circuit; the second communication circuit 1022 includes a second wireless communication circuit; the first wireless communication circuit can wirelessly transmit the first charging current value and/or the second wireless communication circuit to the second wireless communication circuit.
  • the earphone assembly 1000 of the embodiment of the present application includes a first earphone 110 and a second earphone 120.
  • the first earphone 110 includes a first sensor, a first communication circuit 1021, a first processing circuit 1041, and a first earphone.
  • the charging circuit 1031; the second earphone 120 includes a second sensor, a second communication circuit 1022, a second processing circuit 1402, and a second charging circuit 1032;
  • the first sensor can collect the first temperature value of the first earphone 110;
  • the second sensor can Collect the second temperature value of the second earphone 120;
  • the first communication circuit 1021 can output the first temperature value, and the first communication circuit 1021 can also receive the second temperature value;
  • the second communication circuit 1022 can output the second temperature value,
  • the second communication circuit 1022 can also receive the first temperature value;
  • the first processing circuit 1041 can determine the target current value according to the first temperature value and the second temperature value;
  • the first charging circuit 1031 can charge the first earphone 110 according to the target current value
  • the second processing circuit 1402 can determine the target current value according to the first temperature value and the second temperature value;
  • the second charging circuit 1032 can charge the second earphone 120 according to the target current value.
  • the first earphone 110 and the second earphone 120 interact with the first temperature value and the second temperature value to determine the target current value, and then use the target current value to charge the first earphone 110 and the second earphone 120, so that the first earphone 110
  • the charging current is the same as that of the second earphone 120, so that the charging speeds of the first earphone 110 and the second earphone 120 are the same.
  • the first processing circuit 1041 can determine the target current value based on the first charging current value determined based on the first temperature value and the second charging current value determined based on the second temperature value; the second processing circuit 1402 can determine the target current value based on the first The first charging current value determined by the temperature value and the second charging current value determined based on the second temperature value determine the target current value.
  • the first processing circuit 1041 and/or the second processing circuit 1402 can determine the first charging current value and the second charging current value.
  • the smaller of the current values is the target current value; or, when the absolute value of the difference between the first charging current value and the second charging current value is less than the preset current threshold, the first processing circuit 1041 and/or the second processing circuit 1402 can determine the average value of the first charging current value and the second charging current value as the target current value.
  • the first communication circuit 1021 includes a first wireless communication circuit; the second communication circuit 1022 includes a second wireless communication circuit; the first wireless communication circuit can wirelessly transmit the first temperature value and/or the second wireless communication circuit to the second wireless communication circuit. Temperature value; or, the first communication circuit 1021 includes a first communication port; the second communication circuit 1022 includes a second communication port; the first communication port and the second communication port can transmit the first temperature value and/or the second communication port through the headset box 200 Two temperature values, the earphone box 200 is connected to the first communication port and the second communication port.
  • the earphone box 200 of the embodiment of the present application can charge the earphone assembly 1000.
  • the earphone assembly 1000 includes a first earphone 110 and a second earphone 120.
  • the earphone box 200 includes a third sensor and a third processing circuit 204.
  • the third sensor can collect the first temperature value of the first earphone 110 and the second temperature value of the second earphone 120
  • the third processing circuit 204 can determine the target current value according to the first temperature value and the second temperature value. It is used to charge the first earphone 110 and the second earphone 120.
  • the earphone box 200 collects the first temperature value and the second temperature value to determine the target current value, and the target current value is used to charge the first earphone 110 and the second earphone 120, so that the first earphone 110 and the second earphone 120 are The charging currents are the same, so that the charging speeds of the first earphone 110 and the second earphone 120 are the same.
  • the third processing circuit 204 can determine the target current value according to the first charging current value determined based on the first temperature value and the second charging current value determined based on the second temperature value.
  • the third The processing circuit 204 can determine that the smaller of the first charging current value and the second charging current value is the target current value; or, when the absolute value of the difference between the first charging current value and the second charging current value is less than the preset current threshold Or when the absolute value of the difference between the first temperature value and the second temperature value is less than the preset temperature threshold, the third processing circuit 204 can determine the average value of the first charging current value and the second charging current value as the target current value.
  • the first earphone 110 includes a first charging port and a first communication circuit 1021
  • the second earphone 120 includes a second charging port and a second communication circuit 1022
  • the earphone box 200 includes a third charging port and a third communication circuit 202
  • the third charging port is used to connect with the first charging port and the second charging port to transmit electric energy
  • the third communication circuit 202 is used to communicate with the first communication circuit 1021 and the second communication circuit 1022 to transmit the target current value.
  • the earphone box 200 of the embodiment of the present application can charge the earphone assembly 1000.
  • the earphone assembly 1000 includes a first earphone 110 and a second earphone 120.
  • the earphone box 200 includes a third sensor and a third processing circuit 204.
  • the third communication circuit 202, the third sensor can collect the first temperature value of the first earphone 110 and the second temperature value of the second earphone 120, and the third processing circuit 204 can determine the first charging current value and the second temperature value according to the first temperature value.
  • the second charging current value is determined according to the second temperature value; the third communication circuit 202 can transmit the first charging current value and the second charging current value to the first earphone 110 and the second earphone 120, so that the first earphone 110 and the second earphone
  • the second earphone 120 can determine the target current value according to the first charging current value and the second charging current value, and the target current value is used to charge the first earphone 110 and the second earphone 120.
  • the earphone box 200 collects the first temperature value and the second temperature value to determine the first charging current value and the second charging current value, and transmits both the first charging current value and the second charging current value to the first earphone 110 and
  • the second earphone 120 allows the first earphone 110 and the second earphone 120 to determine the target current value, so that the charging current of the first earphone 110 and the second earphone 120 are the same, so that the first earphone 110 and the second earphone 120 are charged The speed is consistent.
  • the first earphone 110 includes a first charging port
  • the second earphone 120 includes a second charging port
  • the earphone box 200 includes a third charging port.
  • the third charging port is used to connect to the first charging port and the second charging port. Transmission of electrical energy.
  • the earphone box 200 of the embodiment of the present application can be used to charge the earphone assembly 1000.
  • the earphone assembly 1000 includes a first earphone 110 and a second earphone 120, and is characterized in that the earphone box 200 includes a third sensor And the third communication circuit 202, the third sensor is used to collect the first temperature value of the first earphone 110 and the second temperature value of the second earphone 120; the third communication circuit 202 can transmit the first temperature value and the second temperature value Give the first earphone 110 and the second earphone 120 so that the first earphone 110 and the second earphone 120 can determine the target current value according to the first temperature value and the second temperature value, and the target current value is used for the battery of the first earphone 110 And the battery of the second earphone 120 is charged.
  • the earphone box 200 collects the first temperature value and the second temperature value, and transmits both the first temperature value and the second temperature value to the first earphone 110 and the second earphone 120, so that the first earphone 110 and the second earphone 120 determines the target current value so that the charging currents of the first earphone 110 and the second earphone 120 are the same, so that the charging speeds of the first earphone 110 and the second earphone 120 are the same.
  • the first earphone 110 includes a first charging port
  • the second earphone 120 includes a second charging port
  • the earphone box 200 includes a third charging port.
  • the third charging port is used to connect to the first charging port and the second charging port. Transmission of electrical energy.
  • the present application also provides a non-volatile computer-readable storage medium containing computer-executable instructions.
  • the processor executes the charging method of any one of the above embodiments.
  • first and second are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Therefore, the features defined with “first” and “second” may explicitly or implicitly include at least one of the features. In the description of the present application, "a plurality of” means at least two, for example two, three, unless otherwise specifically defined.

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Abstract

一种充电方法、耳机组件(1000)、耳机(100)、耳机盒(200)和存储介质。充电方法用于耳机组件(1000),耳机组件(1000)包括多个耳机(100),充电方法包括:获取每个耳机(100)的充电信息;根据获取的部分或全部充电信息确定耳机组件(1000)中每个耳机(100)的目标电流值;根据目标电流值为每个耳机(100)充电。

Description

充电方法、耳机组件、耳机、耳机盒和存储介质
优先权信息
本申请请求2020年06月12日向中国国家知识产权局提交的、专利申请号为202010535776.9的专利申请的优先权和权益,并且通过参照将其全文并入此处。
技术领域
本申请涉及电子技术领域,更具体而言,涉及一种充电方法、耳机组件、耳机、耳机盒和存储介质。
背景技术
由于耳机的电池在不同的温度下,需要采用不同的电流充电,因此,相关技术通常采集每个耳机的温度来设置该耳机的充电电流值。
发明内容
本申请实施方式提供一种充电方法、耳机组件、耳机、耳机盒和存储介质。
本申请实施方式的充电方法,用于耳机组件,所述耳机组件包括多个耳机,所述充电方法包括:
获取每个所述耳机的充电信息;
根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值;
根据所述目标电流值为每个所述耳机充电。
一种充电方法,用于耳机组件,所述耳机组件包括耳机盒和多个耳机,所述充电方法包括:
获取所述耳机盒的温度,所述耳机盒的温度与每个所述耳机的耳机温度值相关;
根据所述耳机盒的温度确定所述耳机组件中每个耳机的目标电流值;
根据所述目标电流值为每个所述耳机充电。
本申请实施方式的耳机组件包括第一耳机和第二耳机,所述第一耳机包括第一耳机壳的第一传感器、第一处理电路、第一通信电路和第一充电电路;所述第二耳机包括第二传感器、第二处理电路、第二通信电路和第二充电电路;所述第一传感器被配置用于采集所述第一耳机的第一温度值;所述第一处理电路被配置用于根据所述第一温度值确定第一充电电流值;所述第二传感器被配置用于采集所述第二耳机的第二温度值;所述第二处理电路被配置用于根据所述第二温度值确定第二充电电流值;所述第一通信电路被配置用于将所述第一充电电流值输出,并被配置用于接收所述第二充电电流值;所述第一处理电路被配置用于根据所述第一充电电流值和所述第二充电电流值确定目标电流值;所述第一充电电路被配置用于以所述目标电流值为所述第一耳机充电;所述第二通信电路被配置用于将所述第二充电电流值输出,并接收所述第一充电电流值;所述第二处理电路被配置用于根据所述第一充电电流值和所述第二充电电流值确定所述目标电流值;所述第二充电电路被配置用于以所述目标电流值为所述第二耳机充电。
本申请实施方式的耳机组件包括第一耳机和第二耳机,所述第一耳机包括第一耳机壳的第一传感器、第一通信电路、第一处理电路和第一充电电路;所述第二耳机包括第二传感器、第二通信电路、第二处理电路和第二充电电路;所述第一传感器被配置用于采集所述第一耳机的第一温度值;所述第二传感器被配置用于采集第二耳机的第二温度值;所述第一通信电路被配置用于将所述第一温度值输出,所述第一通信电路还被配置用于接收所述第二温度值;所述第二通信电路被配置用于将所述第二温度值输出,所述第二通信电路还被配置用于接收所述第一温度值;所述第一处理电路被配置用于根据所述第一温度值和所述第二温度值确定目标电流值;所述第一充电电路被配置用于根据所述目标电流值为第一耳机充电;所述第二处理电路被配置用于根据所述第一温度值和所述第二温度值确定目标电流值;所述第二充电电路被配置用于根据所述目标电流值为所述第二耳机充电。
本申请实施方式的耳机盒被配置用于为耳机组件充电,所述耳机组件包括第一耳机和第二耳机,所述耳机盒包括第三传感器和第三处理电路,所述第三传感器被配置用于采集所述第一耳机的第一温度值和所述第二耳机的第二温度值,所述第三处理电路被配置用于根据所述第一温度值和所述第二温度值确定目标电流值,所述目标电流值用于为所述第一耳机和所述第二耳机充电。
本申请实施方式的耳机盒被配置用于为耳机组件充电,所述耳机组件包括第一耳机和第二耳机,所述耳机盒包括第三传感器、第三处理电路和第三通信电路,所述第三传感器被配置用于采集所述第一耳机的第一温度值和所述第二耳机的第二温度值,所述第三处理电路被配置用于根据所述第一温度值确定第一充电电流值和根据所述第二温度值确定第二充电电流值;所述第三通信电路被配置用于将所述第一充电电流值和所述第二充电电流值传输给所述第一耳机和所述第二耳机,以使所述第一耳机和所述第二耳机被配置用于根据所述第一充电电流值和所述第二充电电流值确定目标电流值,所述目标电流值用于为所述第一耳机和所述第二耳机充电。
本申请实施方式的耳机盒被配置用于为耳机组件充电,所述耳机组件包括第一耳机和第二耳机,其特征在于,所述耳机盒包括第三传感器和第三通信电路,所述第三传感器用于采集所述第一耳机的第一温度值和所述第二耳机的第二温度值;所述第三通信电路被配置用于将所述第一温度值和所述第二温度值传输给所述第一耳机和所述第二耳机,以使所述第一耳机和所述第二耳机被配置用于根据所述第一温度值和所述第二温度值确定目标电流值,所述目标电流值用于为所述第一耳机的电池和所述第二耳机的电池充电。
本申请实施方式的耳机组件包括耳机盒、多个耳机和组件处理器,所述组件处理器用于执行上述的充电方法。
本申请实施方式的耳机包括耳机处理器,所述耳机处理器用于执行上述的充电方法。
本申请实施方式的耳机盒用于为耳机充电,所述耳机盒包括机盒处理器,所述机盒处理器用于执行上述的充电方法。
一种计算机可执行指令的非易失性计算机可读存储介质,当所述计算机可执行指令被一个或多个处理器执行时,使得所述处理器执行以上任一实施方式所述的充电方法。
本申请的实施方式的附加方面和优点将在下面的描述中部分给出,部分将从下面的描述中变得明显,或通过本申请的实施方式的实践了解到。
附图说明
本申请的上述和/或附加的方面和优点从结合下面附图对实施方式的描述中将变得明显和容易理解,其中:
图1是本申请某些实施方式的充电方法的流程示意图;
图2是本申请某些实施方式的耳机组件的结构示意图;
图3是本申请某些实施方式的耳机组件的模块示意图;
图4是本申请某些实施方式的耳机的模块示意图;
图5是本申请某些实施方式的耳机盒的模块示意图;
图6是本申请某些实施方式的耳机组件的结构示意图;
图7是本申请某些实施方式的耳机组件的电路示意图;
图8是本申请某些实施方式的充电方法的流程示意图;
图9是本申请某些实施方式的充电方法的流程示意图;
图10是本申请某些实施方式的充电方法的流程示意图;
图11是本申请某些实施方式的充电方法的流程示意图;
图12是本申请某些实施方式的充电方法的流程示意图;
图13是本申请某些实施方式的充电方法的流程示意图;
图14是本申请某些实施方式的充电方法的流程示意图;
图15是本申请某些实施方式的充电方法的流程示意图;
图16是本申请某些实施方式的充电方法的流程示意图;
图17是本申请某些实施方式的充电方法的流程示意图;
图18是本申请某些实施方式的充电方法的流程示意图。
具体实施方式
以下结合附图对本申请的实施方式作进一步说明。附图中相同或类似的标号自始至终表示相同或类似的元件或具有相同或类似功能的元件。
另外,下面结合附图描述的本申请的实施方式是示例性的,仅用于解释本申请的实施方式,而不能理解为对本申请的限制。
在本申请中,除非另有明确的规定和限定,第一特征在第二特征“上”或“下”可以是第一和第二特征直接接触,或第一和第二特征通过中间媒介间接接触。而且,第一特征在第二特征“之上”、“上方”和“上面”可以是第一特征在第二特征正上方或斜上方,或仅仅表示第一特征水平高度高于第二特征。第一特征在第二特征“之下”、“下方”和“下面”可以是第一特征在第二特征正下方或斜下方,或仅仅表示第一特征水平高度小于第二特征。
由于耳机的电池在不同的温度下,需要采用不同的电流充电,因此,相关技术通常采集每个耳机的温度来设置该耳机的充电电流值。然而,用户通常同时对多个耳机充电,这样的充电方式容易导致多个耳机的充电速度不同。
请参阅图1和图2,本申请实施方式的充电方法,用于耳机组件1000,耳机组件1000包括多个耳机100,充电方法包括:
步骤S12:获取每个耳机100的充电信息;
步骤S14:根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;
步骤S16:根据目标电流值为每个耳机100充电。
请参阅图3,本申请实施方式的耳机组件1000包括多个耳机100和组件处理器1001,组件处理器1001用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。
请参阅图4,本申请实施方式的耳机100包括耳机处理器101,耳机处理器101用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。
请参阅图5、图6和图7,本申请实施方式的耳机盒200用于为耳机100充电,耳机盒200包括机盒处理器201,机盒处理器201用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。
本申请实施方式的充电方法、耳机组件1000、耳机100和耳机盒200,根据与部分或全部耳机100相关的目标电流值为每个耳机100充电,即,根据部分或全部耳机100的充电信息确定耳机组件1000的目标电流值并根据目标电流值为每个耳机100充电,使得多个耳机100充电的电流一致,从而使得多个耳机100的充电速度一致。
可以理解,由于耳机的电池在不同的温度下,需要采用不同的电流充电,因此,相关技术通常采集每个耳机的温度来设置该耳机的充电电流值。然而,用户通常同时对多个耳机充电,这样的充电方式容易导致多个耳机的充电速度不同。
例如,当两个耳机的温度不一样时,采用相关技术会造成两个耳机充电的电流不一样。基于此,在同时为没电的两个耳机充电的过程中,两个耳机显示的电量会不一样。这样,用户容易觉得一个耳机充电较快,一个耳机充电较慢,从而可能会认为充电慢的耳机损坏。而事实上,充电慢的耳机可能并未损坏,只是两个耳机的充电速度不同给了用户错觉。所以,采用相关技术容易导致用户体验较差。
而本实施方式的充电方法,根据部分或全部耳机100的充电信息确定耳机组件1000的目标电流值,并根据目标电流值为每个耳机充电,使得多个耳机100充电的电流一致,均为目标电流值,从而使得多个耳机100的充电速度一致。这样,在同时为没电的多个耳机充电的过程中,多个耳机显示的电量会相同,不会让用户产生充电慢的耳机损坏的错觉。
具体地,可根据获取的部分充电信息确定每个耳机100的目标电流值,也可根据获取的全部充电信息确定每个耳机100的目标电流值。在此不进行限定。接下来以根据获取的全部充电信息确定每个耳机100的目标电流值为例进行解释和说明。
具体地,在本实施方式中,耳机100的数量为2个。可以理解,在其他的实施方式中,耳机100的数量也可为2个、3个、4个或其他数量,在此不进行限定。
在本实施方式中,耳机100可基于真无线立体声(True wireless Stereo,TWS)技术。如此,多个 耳机100之间无需通过线缆连接,即可实现左右声道的无线分离,从而使得每个耳机100不仅可与其他的耳机100配套工作,也可独立工作,使得用户对耳机100的使用方式更加灵活自由。可以理解,在其他的实施方式中,耳机100也可不基于TWS技术。换言之,多个耳机100之间也可通过线缆连接,例如头戴式耳机和挂脖式耳机,在此不进行限定。
耳机100可包括通信电路、充电电路和处理电路。通信电路能够实现耳机100自身与其他耳机100之间的数据传输。通信电路之间可基于蓝牙、WIFI或其他方式通信。充电电路能够为耳机充电。处理电路能够进行数据处理。请注意,耳机处理器101可包括通信电路、充电电路和处理电路中的部分电路或全部电路。在图2的示例中,耳机100还可包括声学部件105,耳机处理器101能够控制声学部件105发出声音。
请参阅图7,耳机100的数量为两个,分别为第一耳机110和第二耳机120。第一耳机110包括第一通信电路1021、第一充电电路1031和第一处理电路1041。第二耳机120包括第二通信电路1022、第二充电电路1032和第二处理电路1042。第一通信电路1021和第二通信电路1022能够实现第一耳机110和第二耳机120之间的数据传输。第一充电电路1031和第二充电电路1032能够分别为第一耳机110和第二耳机120充电。第一处理电路1041和第二处理电路1042能够进行数据处理。
在图7的示例中,耳机盒200还包括第三通信电路202、电池203和第三处理电路204。第三通信电路202和第一通信电路1021能够实现耳机盒200与第一耳机110之间的数据传输。第三通信电路202和第二通信电路1022能够实现耳机盒200与第二耳机120之间的数据传输。请注意,耳机盒处理器201可包括第三通信电路202和第三处理电路204。
第一耳机110包括第一充电端口,第二耳机120包括第二充电端口,耳机盒200包括第三充电端口,第三充电端口用于与第一充电端口和第二充电端口连接以传输电能。在图7的示例中,第一充电端口包括第一耳机110的引脚PIN3和引脚PIN4,第二充电端口包括第二耳机120的引脚PIN3和引脚PIN4,第三充电端口包括耳机盒200的引脚PIN1和引脚PIN2。
需要指出的是,第三充电端口可以是给一对耳机充电的一组端口。例如,一个引脚PIN1和一个PIN2形成一对引脚。第三充电端口可以具有两对引脚,其中一对引脚用于为第一耳机110充电,另外一对引脚用于为第二耳机120充电。
在一个例子中,耳机100的数量为2个,每个耳机100均包括通信电路,耳机100获取自身的充电信息,并通过通信电路获取另一个耳机100的充电信息,从而获取到每个耳机100的充电信息。
在另一个例子中,耳机100的数量为2个,每个耳机100均包括通信电路,耳机盒200还包括第三通信电路202。耳机100将自身的充电信息,通过通信电路和第三通信电路202发送至耳机盒200,以使耳机盒200获取到每个耳机100的充电信息。
在又一个例子中,耳机100的数量为2个,每个耳机100均包括通信电路,耳机盒200还包括第三通信电路202。耳机100将自身的充电信息,通过通信电路和第三通信电路202发送至耳机盒200,耳机盒200将充电信息发送至其他的耳机100,以使每个耳机100获取到每个耳机100的充电信息。
在此不对步骤S12中,获取每个耳机100的充电信息的具体方式进行限定。
另外,在步骤S12中,充电信息包括耳机温度值、充电电流值、充电电压或其他充电参数中的至少一种。在此不对充电信息的具体形式进行限定。
在本实施方式中,耳机组件1000包括耳机盒200,耳机盒200用于为耳机100充电。具体地,耳机盒200用于在收容耳机100的情况下为耳机100充电。如此,在耳机100收容于耳机盒200的情况下,即用户无需使用耳机100的情况下,耳机100进行充电。在用户将耳机100从耳机盒200取出时,耳机100已充了电,方便用户使用,有利于提高用户体验。
具体地,请参阅图6和图7,耳机盒200包括电池203、第一引脚PIN1和第二引脚PIN2,耳机100包括第三引脚PIN3和第四引脚PIN4。在耳机100收容于耳机盒200的情况下,耳机盒200的第一引脚PIN1与耳机100的第三引脚PIN3连通,且耳机盒200的第二引脚PIN2与耳机100的第四引脚PIN4连通,从而使得耳机盒200的电池203为耳机100充电。
进一步地,电池203的输出电压可为5V。
进一步地,在图6的示例中,第一引脚PIN1和第二引脚PIN2形成于耳机盒200的底部,第三引脚PIN3和第四引脚PIN4形成于耳机100的支撑杆的底部。可以理解,在其他的示例中,第一引脚PIN1和 第二引脚PIN2可形成于耳机盒200的侧壁或其他位置,第三引脚PIN3和第四引脚PIN4形成于耳机100的耳塞的一侧。耳机盒200的引脚数量可为3个、4个或其他数量。耳机100的引脚数量可为3个、4个或其他数量。在此不进行限定。
进一步地,在图7的示例中,耳机100的充电电路可根据目标电流值调节从耳机盒200输入的电流或电压,以使为耳机100充电的电流为目标电流值。
可以理解,在其他的示例中,例如耳机的充电电路设置在耳机盒中,可根据目标电流值调节输出至耳机的电流或电压,以使为耳机100充电的电流为目标电流值。
可以理解,耳机盒可以通过触点为耳机100充电,耳机盒200也可为耳机100无线充电,还可不通过耳机盒200为耳机100充电,例如通过数据线为耳机100充电,而没有耳机盒或者耳机盒仅作为收纳耳机的功能。通过数据线为耳机100充电,可以是通过市电为耳机100充电;可通过充电宝、电瓶等电源为耳机100充电;可通过电脑主机、电脑显示器、手机、平板电脑等电子终端的接口为耳机100充电;还可通过具备无线充电功能的电子终端为耳机100无线充电。在此不对为耳机100充电的具体方式进行限定。
请注意,在本实施方式中,图3示出的组件处理器1001,可包括图4和图7示出的耳机处理器101,以及图5和图7示出的机盒处理器201。或者说,本实施方式的充电方法,可由耳机处理器101和机盒处理器201执行。
例如,耳机处理器101用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;机盒处理器201用于根据目标电流值为每个耳机100充电。在这种情况下,耳机处理器101在确定目标电流值后将目标电流值发送给机盒处理器201,机盒处理器201根据目标电流值调节输出至耳机的电流或电压,以使为耳机100充电的电流为目标电流值。
又如,机盒处理器201用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;耳机处理器101用于根据目标电流值为每个耳机100充电。在这种情况下,机盒处理器201在确定目标电流值后将目标电流值发送给耳机处理器101,耳机处理器101根据目标电流值调节从耳机盒200输入的电流或电压,以使为耳机100充电的电流为目标电流值。
可以理解,以上仅为示例,并非对耳机处理器101和机盒处理器201执行充电方法的限制。
可以理解,在其他的一些实施方式中,图3示出的组件处理器1001,可为图4和图7示出的耳机处理器101。或者说,本实施方式的充电方法,可仅由耳机处理器101执行。也即是如前所述的,耳机处理器101用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。具体地,耳机处理器101可根据目标电流值调节从耳机盒200输入的电流或电压,以使为耳机100充电的电流为目标电流值。
在其他的另一些实施方式中,图3示出的组件处理器1001,可为图5和图7示出的机盒处理器201。或者说,本实施方式的充电方法,可仅由机盒处理器201执行。也即是如前所述的,机盒处理器201用于获取每个耳机100的充电信息;及用于根据获取的部分或全部充电信息确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。具体地,机盒处理器201可根据目标电流值调节输出至耳机的电流或电压,以使为耳机100充电的电流为目标电流值。
请注意,以上仅为示例,并非对充电方法的各步骤的执行主体进行限定。
在本实施方式中,耳机处理器101可为蓝牙芯片。
请参阅图8,在某些实施方式中,充电信息包括耳机温度值,步骤S12包括:
步骤S121:获取每个耳机100的耳机温度值;
步骤S14包括:
步骤S141:根据获取的部分或全部耳机温度值确定耳机组件1000的目标电流值。
在某些实施方式中,组件处理器1001用于获取每个耳机100的耳机温度值;及用于根据获取的部分或全部耳机温度值确定耳机组件1000的目标电流值。
在某些实施方式中,耳机处理器101用于获取每个耳机100的耳机温度值;及用于根据获取的部分或全部耳机温度值确定耳机组件1000的目标电流值。
在某些实施方式中,机盒处理器201用于获取每个耳机100的耳机温度值;及用于根据获取的部分 或全部耳机温度值确定耳机组件1000的目标电流值。
如此,目标电流值与每个耳机100的耳机温度值相适应,既能够使得目标电流值满足耳机100的电池在当前温度下的需求,又能够保证每个耳机100均采用目标电流值充电时的安全和效率。
具体地,耳机100可包括温度检测元件,在步骤S121中,可根据温度检测元件的输出数据以确定耳机温度值。温度检测元件例如为热敏电阻、红外测温器等。热敏电阻可为正温度系数热敏电阻器(Positive Temperature Coefficient,PTC)或负温度系数热敏电阻器(Negative Temperature Coefficient,NTC)。在此不进行限定。
进一步地,在本实施方式中,每个耳机100可包括热敏电阻,可串联热敏电阻和定值电阻并通过分压求得热敏电阻的值,从而确定耳机温度值。这样,确定耳机温度值的方法简单,器件的价格便宜,可满足充电方法的温度采集需求。
在步骤S141中,可根据预设关系确定每个耳机温度值对应的充电电流值,并根据多个充电电流值确定目标电流值。预设关系为耳机的温度与充电的电流之间的对应关系。例如,将充电电流值中的最小值作为目标电流值。如此,可以保证耳机100充电的安全性。
在步骤S141中,也可根据多个耳机温度值确定目标温度,并根据预设关系确定目标温度对应的电流,并将对应的电流作为目标电流值。例如,将多个耳机温度值的平均值作为目标温度。如此,使得目标电流值尽可能普遍地适应多个耳机的温度。
在此不对根据多个耳机温度值确定目标电流值的具体方式进行限定。
进一步地,示例的,预设关系为:在0~10℃的温度下,以0.5C以下的电流充电;在10~45℃的温度下,以1C以下的电流充电;在45~53℃的温度下,以0.5C以下的电流充电。
请注意,步骤S121和步骤S141,可由耳机100或耳机盒200执行。换言之,耳机温度值、目标电流值等数据可在耳机100和耳机盒200之间交互,也可不在耳机100和耳机盒200之间交互。
在一个例子中,耳机100可采集温度检测元件的输出数据以确定耳机温度值,并将该耳机温度值发送至耳机盒200,以使耳机盒200将该耳机温度值发送至其他的耳机100,从而实现耳机100获取每个耳机100的耳机温度值。耳机100可根据多个耳机温度值确定耳机组件1000的目标电流值。耳机100的充电电路可根据目标电流值调节从耳机盒200输入的电流或电压,以使为耳机100充电的电流为目标电流值。
在另一个例子中,耳机100可采集温度检测元件的输出数据以确定耳机温度值,并将该耳机温度值发送至耳机盒200,以使耳机盒200将该耳机温度值发送至其他的耳机100,从而实现耳机100获取每个耳机100的耳机温度值。耳机100可根据多个耳机温度值确定耳机组件1000的目标电流值,并将目标电流值发送至耳机盒200。耳机盒200可根据目标电流值调节输出至耳机100的电流或电压,以使为耳机100充电的电流为目标电流值。
在又一个例子中,耳机100的通信电路可将耳机温度值发送至耳机盒200的第三通信电路202,以使耳机盒200获取耳机温度值。耳机盒200可根据多个耳机温度值确定目标电流值,并根据目标电流值调节输出至耳机100的电流或电压,以使为耳机100充电的电流为目标电流值。
在再一个例子中,耳机100的通信电路可将耳机温度值发送至耳机盒200的第三通信电路202,以使耳机盒200获取耳机温度值。耳机盒200可根据多个耳机温度值确定目标电流值,并通过第三通信电路202将目标电流值发送至耳机100的通信电路。耳机100的充电电路可根据目标电流值调节从耳机盒200输入的电流或电压,以使为耳机100充电的电流为目标电流值。
请注意,以上仅为示例,并不代表对步骤S121和步骤S141的执行主体的限制。
请参阅图9,在某些实施方式中,充电信息包括与耳机温度值对应的充电电流值,步骤S12包括:
步骤S122:获取每个耳机100的与耳机温度值对应的充电电流值;
步骤S14包括:
步骤S142:根据获取的部分或全部充电电流值确定耳机组件1000的目标电流值。
在某些实施方式中,组件处理器1001用于获取每个耳机100的与耳机温度值对应的充电电流值;及用于根据获取的部分或全部充电电流值确定耳机组件1000的目标电流值。
在某些实施方式中,耳机处理器101用于获取每个耳机100的与耳机温度值对应的充电电流值;及用于根据获取的部分或全部充电电流值确定耳机组件1000的目标电流值。
在某些实施方式中,机盒处理器201用于获取每个耳机100的与耳机温度值对应的充电电流值;及用于根据获取的部分或全部充电电流值确定耳机组件1000的目标电流值。
如此,根据获取的部分或全部充电电流值确定耳机组件1000的目标电流值,可以减少确定目标电流值的时间,从而提高确定目标电流值的效率。
类似地,在步骤S122中,可获取每个耳机100的耳机温度值,并根据预设关系确定每个耳机温度值对应的充电电流值。预设关系为耳机的温度与充电的电流之间的对应关系。
在步骤S142中,可将充电电流值中的最小值作为目标电流值。如此,可以保证耳机100充电的安全性。也可将充电电流值的平均值作为目标电流值。如此,可以使得目标电流值与每个充电电流值都较为接近,从而使得目标电流值普遍适用于每个耳机100。
类似地,步骤S122和步骤S142,可由耳机100或耳机盒200执行。换言之,耳充电电流值、目标电流值等数据可在耳机100和耳机盒200之间交互,也可不在耳机100和耳机盒200之间交互。
关于此部分的解释和说明,可参照前文中关于充电信息包括耳机温度值的部分,为避免冗余,在此不再赘述。
请参阅图10,在某些实施方式中,步骤S14包括:
步骤S143:在获取的部分或全部充电信息的差异大于或等于预设差异阈值时,确定每个充电信息对应的电流以得到多个备选电流;
步骤S144:将多个备选电流中的最小值作为目标电流值。
在某些实施方式中,组件处理器1001用于在获取的部分或全部充电信息的差异大于或等于预设差异阈值时,确定每个充电信息对应的电流以得到多个备选电流;以及用于将多个备选电流中的最小值作为目标电流值。
在某些实施方式中,耳机处理器101用于在获取的部分或全部充电信息的差异大于或等于预设差异阈值时,确定每个充电信息对应的电流以得到多个备选电流;以及用于将多个备选电流中的最小值作为目标电流值。
在某些实施方式中,机盒处理器201用于在获取的部分或全部充电信息的差异大于或等于预设差异阈值时,确定每个充电信息对应的电流以得到多个备选电流;以及用于将多个备选电流中的最小值作为目标电流值。
如此,在获取的部分或全部充电信息的差异较大的情况下,可能有耳机100出现了异常,将备选电流的最小值作为目标电流值,可以保证每个耳机100采用目标电流值充电时,目标电流值均不会超过该耳机100的充电信息对应的电流,从而保证每个耳机100的充电安全。
可以理解,在获取的部分或全部充电信息的差异较大的情况下,多个备选电流的差异也通常较大,如果采用多个备选电流的平均值、众数等数值作为目标电流值,对于多个耳机100中的部分耳机100而言,目标电流值与该部分耳机100的备选电流的差值较大,如果采用目标电流值为该部分耳机100充电,会导致安全性较低。
而本实施方式中,将多个备选电流中的最小值作为目标电流值,可以避免上述情况的发生,从而保证每个耳机100的充电安全。
在本实施方式的步骤S143中,获取的部分或全部充电信息的差异,可指部分或全部充电信息中最大值与最小值之差。在其他的一些实施方式中,部分或全部充电信息的差异,也可为部分或全部充电信息的方差。在其他的另一些实施方式中,部分或全部充电信息的差异大于或等于预设差异阈值,可指部分或全部充电信息中每两个充电信息的差值均大于或等于预设差异阈值。在此不对部分或全部充电信息的差异的具体形式进行限定。
预设差异阈值可以为数值,也可为百分比。在此不进行限定。
在一个例子中,耳机100的数量为2个,充电信息包括充电电流值,充电信息对应的备选电流与充电电流值相同,预设差异阈值为1C。一个耳机100的充电电流值为1C,另一个耳机100的充电电流值为3C。两者的差值为2C,大于预设差异阈值。因此,可将1C作为目标电流值,并根据1C的目标电流值对两个耳机100充电。
在另一个例子中,耳机100的数量为2个,充电信息包括耳机温度值,预设差异阈值为1℃。一个耳机100的耳机温度值9℃,对应的备选电流为0.5C;另一个耳机100的耳机温度值10.3℃,对应的备选 电流为1C。两个耳机100的耳机温度值的差值为1.3℃,大于预设差异阈值。因此,可将0.5C作为目标电流值,并根据0.5C的目标电流值对两个耳机100充电。
请参阅图11,在某些实施方式中,步骤S14包括:
步骤S145:在获取的部分或全部充电信息的差异小于预设差异阈值时,确定充电信息的平均值;
步骤S146:根据充电信息的平均值确定目标电流值。
在某些实施方式中,组件处理器1001用于在获取的部分或全部充电信息的差异小于预设差异阈值时,确定充电信息的平均值;以及用于根据充电信息的平均值确定目标电流值。
在某些实施方式中,耳机处理器101用于在获取的部分或全部充电信息的差异小于预设差异阈值时,确定充电信息的平均值;以及用于根据充电信息的平均值确定目标电流值。
在某些实施方式中,机盒处理器201用于在获取的部分或全部充电信息的差异小于预设差异阈值时,确定充电信息的平均值;以及用于根据充电信息的平均值确定目标电流值。
如此,在获取的部分或全部充电信息的差异较小的情况下,可确定没有发生异常的耳机100,将充电信息的平均值对应的电流作为目标电流值,在保证充电安全的同时,可以提高充电速度。
具体地,在步骤S146中,根据充电信息的平均值和预设关系确定目标电流值。例如,根据预设关系,将平均值对应的电流作为目标电流值。
在一个例子中,耳机100的数量为2个,充电信息包括充电电流值,充电信息对应的备选电流与充电电流值相同,预设差异阈值为1C。一个耳机100的充电电流值为1C,另一个耳机100的充电电流值为1.2C。两者的差值为0.2C,小于预设差异阈值。因此,可将1C和1.2C的平均值,即1.1C作为目标电流值,并根据1.1C的目标电流值对两个耳机100充电。
在另一个例子中,耳机100的数量为2个,充电信息包括耳机温度值,预设差异阈值为1℃。一个耳机100的耳机温度值9.8℃,另一个耳机100的耳机温度值10.3℃。两者的差值为0.5℃,小于预设差异阈值。因此,可将9.8℃和10.3℃的平均值,即10.05℃,所对应的电流作为目标电流值,并根据该目标电流值对两个耳机100充电。
请参阅图12,在某些实施方式中,耳机组件1000包括耳机盒200,耳机盒200用于为耳机100充电,充电方法包括:
步骤S151:将根据部分或全部充电信息确定的目标电流值作为第一电流;
步骤S152:获取耳机盒200的温度;
步骤S153:根据耳机盒200的温度确定第二电流;
步骤S154:根据第一电流和第二电流确定为每个耳机100充电的目标电流值。
在某些实施方式中,组件处理器1001用于将根据部分或全部充电信息确定的目标电流值作为第一电流;及用于获取耳机盒200的温度;及用于根据耳机盒的温度确定第二电流;以及用于根据第一电流和第二电流确定为每个耳机100充电的目标电流值。
在某些实施方式中,耳机处理器101用于将根据部分或全部充电信息确定的目标电流值作为第一电流;及用于获取耳机盒200的温度;及用于根据耳机盒200的温度确定第二电流;以及用于根据第一电流和第二电流确定为每个耳机100充电的目标电流值。
在某些实施方式中,机盒处理器201用于将根据部分或全部充电信息确定的目标电流值作为第一电流;及用于获取耳机盒200的耳机盒的温度;及用于根据耳机盒的温度确定第二电流;以及用于根据第一电流和第二电流确定为每个耳机100充电的目标电流值。
如此,分别通过耳机盒的温度和多个耳机温度值确定第一电流和第二电流,从而确定目标电流值,避免了仅根据耳机盒的温度确定目标电流值或仅根据多个耳机温度值确定目标电流值所产生的偏差,可以提高目标电流值的准确性。
类似地,耳机盒200可包括温度检测元件,在步骤S152中,可根据温度检测元件的输出数据以确定耳机盒的温度。温度检测元件例如为热敏电阻、红外测温器等。热敏电阻可为正温度系数热敏电阻器(PTC)或负温度系数热敏电阻器(NTC)。在此不进行限定。
在步骤S153中,可根据耳机盒的温度和预设关系确定第二电流。例如,根据预设关系,将耳机盒的温度对应的电流作为第二电流。
在步骤S154中,可在第一电流和第二电流的差值小于预设电流阈值时,将第一电流和第二电流的平 均值作为目标电流值;在第一电流和第二电流的差值大于或等于预设电流阈值时,将第一电流和第二电流中的最小值作为目标电流值。
如此,能够保证充电的安全。可以理解,在第一电流和第二电流的差值小于预设电流阈值时,可以认为第一电流和第二电流差距较小,将平均值作为目标电流值,不会产生安全问题,同时可保证一定的充电速度。在差值大于或等于预设电流阈值时,可以认为第一电流和第二电流的差距较大,这可能是由耳机侧的故障所导致的,例如设置在耳机的温度检测元件损坏,也可能是由耳机盒侧的故障所导致的,例如设置在耳机盒的温度检测元件损坏,将最小值作为目标电流值,可以在无法确定哪一个电流更可信的情况下,尽可能保证充电安全。
请参阅图13,在某些实施方式中,耳机组件1000包括耳机盒200,耳机盒200用于收容多个耳机100,步骤S12包括:
步骤S123:每个耳机100获取自身的充电信息;
步骤S124:每个耳机100将自身的充电信息发送至耳机盒200;
步骤S125:耳机盒200将每个耳机100自身的充电信息发送至耳机组件1000的其他耳机100;
步骤S14包括:
步骤S146:每个耳机100根据部分或全部充电信息确定目标电流值。
在某些实施方式中,组件处理器1001用于控制每个耳机100获取自身的充电信息;及用于控制每个耳机100将自身的充电信息发送至耳机盒200;及用于控制耳机盒200将每个耳机100自身的充电信息发送至耳机组件1000的其他耳机100;以及用于控制每个耳机100根据部分或全部充电信息确定目标电流值。
在某些实施方式中,组件处理器1001包括耳机处理器101和机盒处理器201,耳机处理器101用于控制每个耳机100获取自身的充电信息;及用于控制每个耳机100将自身的充电信息发送至耳机盒200;机盒处理器201用于控制耳机盒200将每个耳机100自身的充电信息发送至耳机组件1000的其他耳机100;耳机处理器101用于控制每个耳机100根据部分或全部充电信息确定目标电流值。
如此,多个耳机100的充电信息通过耳机盒200交互,使得每个耳机100获取到全部耳机100的充电信息,并可以使得充电信息的传递基于耳机盒200的调度而更加有序和准确,有利于快速确定目标电流值。
可以理解,耳机盒200可依次发送不同耳机100的充电信息,耳机盒200可同时将同一个耳机100的充电信息发送至其他的耳机100。如此,使得充电信息的传输更加有序和准确,有利于快速确定目标电流值。
另外,每个耳机100可基于相同的规则根据部分或全部充电信息确定目标电流值。如此,可以保证每个耳机100确定的目标电流值相同,从而使得多个耳机100的充电速度相同。
具体地,每个耳机100可基于图8-图11部分的规则根据部分或全部充电信息确定目标电流值。详情可参前文。为避免冗余,在此不再赘述。
请参阅图14,在某些实施方式中,耳机组件1000包括耳机盒200,耳机盒200用于收容多个耳机100,步骤S12包括:
步骤S126:每个耳机100获取自身的充电信息;
步骤S127:每个耳机100将自身的充电信息发送至耳机盒200;
步骤S14包括:
步骤S147:耳机盒200根据部分或全部充电信息确定目标电流值。
在某些实施方式中,组件处理器1001用于控制每个耳机100获取自身的充电信息;及用于控制每个耳机100将自身的充电信息发送至耳机盒200;以及用于控制耳机盒200根据部分或全部充电信息确定目标电流值。
在某些实施方式中,组件处理器1001包括耳机处理器101和机盒处理器201,耳机处理器101用于控制每个耳机100获取自身的充电信息;及用于控制每个耳机100将自身的充电信息发送至耳机盒200;机盒处理器201用于控制耳机盒200根据部分或全部充电信息确定目标电流值。
如此,耳机盒200获取多个耳机100的充电信息,并确定目标电流值,充电信息只需从每个耳机100发送至耳机盒200,每个耳机100无需获取其他耳机100的充电信息,减少了充电信息的传输,有利于节 约传输资源。而且,目标电流值由耳机盒200统一确定,可以保证为每个耳机100充电的目标电流值相同,从而保证多个耳机100的充电速度相同。
在步骤S147中,耳机盒200可基于图8-图11部分的规则根据部分或全部充电信息确定目标电流值。详情可参前文。为避免冗余,在此不再赘述。
请参阅图15,在某些实施方式中,多个耳机100进行通信,步骤S12包括:
步骤S128:每个耳机100获取自身的充电信息;
步骤S129:每个耳机100将自身的充电信息发送至耳机组件1000的其他耳机100;每个耳机100接收其他耳机100发送的充电信息;
步骤S14包括:
步骤S147:每个耳机100根据部分或全部充电信息确定目标电流值。
在某些实施方式中,耳机处理器101用于控制耳机100获取自身的充电信息;将自身的充电信息发送至耳机组件1000的其他耳机100;接收其他耳机100发送的充电信息;根据部分或全部充电信息确定目标电流值。
如此,多个耳机100可直接交互充电信息,无需转发终端居中转发,可以提高信息交互的效率。如前所述,每个耳机100可均包括通信电路,通信电路之间可基于蓝牙、WIFI或其他方式通信。这样,耳机100可获取自身的充电信息,并通过通信电路获取另一个耳机100的充电信息,从而获取到每个耳机100的充电信息。
具体地,每个耳机100可基于图8-图11部分的规则根据部分或全部充电信息确定目标电流值。详情可参前文。为避免冗余,在此不再赘述。
请参阅图16,在某些实施方式中,充电方法包括:
步骤S111:在耳机100的耳机温度值大于预设温度阈值时,耳机温度值大于预设温度阈值的耳机100向其他耳机100发起连接请求,以使多个耳机100进行通信。
在某些实施方式中,耳机处理器101用于在耳机100的耳机温度值大于预设温度阈值时,向其他耳机100发起连接请求,以使多个耳机100进行通信。
如此,可以及时建立多个耳机100之间的通信,从而及时进行耳机100间的信息交互并及时确定目标电流值,以及时使得多个耳机充电的电流一致。
可以理解,在充电时多个耳机100之间的通信是断开的。而电池在不同的温度下需要采用不同的电流充电,因此,在耳机的耳机温度值大于预设温度阈值时,可认为已经出现或即将出现多个耳机的充电的电流不同的情况,因此,需要及时建立多个耳机100之间的通信,以及时确定目标电流值,以使多个耳机充电的电流一致。
请注意,由于在发起连接请求之前,耳机100之间的通信并未建立,每个耳机100无法获知其他耳机100的情况。因此,“耳机100的耳机温度值大于预设温度阈值”,是指,对于每一个耳机100而言,在耳机100自身的耳机温度值大于预设温度阈值时,向其他的耳机100发起连接请求,无需考虑其他耳机100的耳机温度值是否大于预设温度阈值。
另外,在一些实施方式中,“耳机100向其他的耳机100发起连接请求”,可在发起连接请求的耳机100与每个接收到连接请求的耳机100之间,建立双方通信。或者说,多个接收到连接请求的耳机100,无法直接通信,需要经过发起连接请求的耳机100的转发。
在另一些实施方式中,“耳机100向其他的耳机100发起连接请求”,可在全部的耳机100之间,建立多方通信。或者说,多个接收到连接请求的耳机100,可以直接通信,无需经过发起连接请求的耳机100的转发。
在此不对多个耳机100进行通信的具体方式进行限定。
请参阅图17,在某些实施方式中,充电方法包括:
步骤S112:在耳机100与转发终端连接失败时,与转发终端连接失败的耳机100向其他耳机100发起连接请求,以使多个耳机100进行通信;
其中,转发终端用于接收每个耳机100自身的充电信息,并将每个耳机100自身的充电信息转发至其他的耳机100。
在某些实施方式中,耳机处理器101用于在耳机100与转发终端连接失败时,向其他耳机100发起 连接请求,以使多个耳机100进行通信;其中,转发终端用于接收每个耳机100自身的充电信息,并将每个耳机100自身的充电信息转发至其他的耳机100。
如此,可以及时建立多个耳机100之间的通信,从而及时进行耳机100间的信息交互并及时确定目标电流值,以及时使得多个耳机充电的电流一致。
可以理解,在耳机100与转发终端连接失败时,如果继续尝试与转发终端建立连接,可能会继续失败,这样会浪费时间而导致难以及时建立多个耳机100之间的通信。因此,在与转发终端连接失败时,可放弃连接转发终端,并向其他的耳机100发起连接请求,从而及时建立多个耳机100之间的通信。
请注意,由于在发起连接请求之前,耳机100之间的通信并未建立,每个耳机100无法获知其他耳机100的情况。因此,“耳机100与转发终端连接失败”,是指,对于每一个耳机100而言,在耳机100与转发终端连接失败时,向其他的耳机100发起连接请求,无需考虑其他耳机100是否与转发终端连接失败。
另外,转发终端可为耳机盒200,也可为其他具备信息收发功能的终端。在此不进行限定。
关于“耳机100向其他的耳机100发起连接请求”的解释和说明,可参照对步骤S111的解释和说明,为避免冗余,在此不再赘述。
在某些实施方式中,充电方法包括:
在耳机100的耳机温度值大于预设温度阈值时,耳机温度值大于预设温度阈值的耳机100向耳机盒200发起交换充电信息请求,以获取每个耳机100的充电信息。
在某些实施方式中,耳机处理器101用于在耳机100的耳机温度值大于预设温度阈值时,耳机温度值大于预设温度阈值的耳机100向耳机盒200发起交换充电信息请求,以获取每个耳机100的充电信息。
如此,使得耳机100及时从耳机盒200获取每个耳机100的充电信息,从而及时确定目标电流值,以及时使得多个耳机充电的电流一致。具体地,耳机盒200在接收到耳机100发送的交换充电信息请求时,可将已获取到的充电信息发送至耳机100;也可向其他耳机100发起获取充电信息请求,并在获取到充电信息后,再将获取到的充电信息发送至耳机100。在此不进行限定。
请参阅图18,本申请实施方式的充电方法,用于耳机组件1000,耳机组件1000包括耳机盒200和多个耳机100,耳机盒200用于收容多个耳机100,充电方法包括:
步骤S21:获取耳机盒200的温度,耳机盒的温度与每个耳机100的耳机温度值相关;
步骤S22:根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;
步骤S23:根据目标电流值为每个耳机100充电。
在某些实施方式中,组件处理器1001用于获取耳机盒200的温度,耳机盒的温度与每个耳机100的耳机温度值相关;及用于根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。
在某些实施方式中,耳机处理器101用于获取耳机盒200的温度,耳机盒的温度与每个耳机100的耳机温度值相关;及用于根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。
在某些实施方式中,机盒处理器201用于获取耳机盒200的温度,耳机盒的温度与每个耳机100的耳机温度值相关;及用于根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;以及用于根据目标电流值为每个耳机100充电。
如此,根据与每个耳机相关的目标电流值为每个耳机充电,即,根据与每个耳机100的耳机温度值相关的耳机盒的温度确定耳机组件1000的目标电流值并根据目标电流值为每个耳机100充电,使得多个耳机100充电的电流一致,从而使得多个耳机100的充电速度一致。
而且,通过耳机盒的温度确定目标电流值,无需在每个耳机100设置一个温度检测器,可以降低成本。另外,由于目标电流值基于耳机盒的温度确定,因此,无需对多个耳机温度值进行计算,可以提高目标电流值的确定速度。此外,由于耳机100收容于耳机盒200时,耳机100与耳机盒200接触,耳机100与耳机盒200会发生热传递,因此,耳机盒的温度与每个耳机100的耳机温度值相关,根据耳机盒的温度确定的目标电流值的准确性也可以保证。
类似地,耳机盒200可包括温度检测元件,在步骤S21中,可根据温度检测元件的输出数据以确定耳机盒的温度。温度检测元件例如为热敏电阻、红外测温器等。热敏电阻可为正温度系数热敏电阻器(PTC) 或负温度系数热敏电阻器(NTC)。在此不进行限定。
类似地,在步骤S22中,可根据耳机盒的温度和预设关系确定目标电流值。例如,根据预设关系,将耳机盒的温度对应的电流作为目标电流值。
在一个例子中,耳机盒200获取耳机盒200的温度,耳机盒的温度与每个耳机100的耳机温度值相关;根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;并根据目标电流值为每个耳机100充电。
在另一个例子中,耳机盒200获取耳机盒200的温度并将耳机盒的温度发送至耳机100,以使耳机100获取到耳机盒的温度,耳机盒的温度与每个耳机100的耳机温度值相关;耳机100根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;耳机100并根据目标电流值为每个耳机100充电。
在又一个例子中,耳机盒200获取耳机盒200的温度并将耳机盒的温度发送至耳机100,以使耳机100获取到耳机盒的温度,耳机盒的温度与每个耳机100的耳机温度值相关;耳机100根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值,并将目标电流值发送至耳机盒200;耳机盒200根据目标电流值为每个耳机100充电。
在再一个例子中,耳机盒200获取耳机盒200的温度,耳机盒的温度与每个耳机100的耳机温度值相关;耳机盒200根据耳机盒的温度确定耳机组件1000中每个耳机100的目标电流值;耳机盒200将目标电流值发送至耳机100;耳机100根据目标电流值为每个耳机100充电。
在某些实施方式中,当耳机盒的温度大于或等于预设阈值时,进入步骤S22。如此,可以及时确定目标电流值,以及时使得多个耳机充电的电流一致。
请参阅图6和图7,本申请实施方式的耳机组件1000包括第一耳机110和第二耳机120,第一耳机110包括第一传感器、第一处理电路1041、第一通信电路1021和第一充电电路1031;第二耳机120包括第二耳机壳、以及均设于第二耳机壳的第二传感器、第二处理电路1402、第二通信电路1022和第二充电电路1032;第一传感器能够采集第一耳机110的第一温度值;第一处理电路1041能够根据第一温度值确定第一充电电流值;第二传感器能够采集第二耳机120的第二温度值;第二处理电路1402能够根据第二温度值确定第二充电电流值;第一通信电路1021能够将第一充电电流值输出,并能够接收第二充电电流值;第一处理电路1041能够根据第一充电电流值和第二充电电流值确定目标电流值;第一充电电路1031能够以目标电流值为第一耳机110充电;第二通信电路1022能够将第二充电电流值输出,并接收第一充电电流值;第二处理电路1402能够根据第一充电电流值和第二充电电流值确定目标电流值;第二充电电路1032能够以目标电流值为第二耳机120充电。
如此,第一耳机110和第二耳机120交互第一充电电流值和第二充电电流值,并确定目标电流值,进而以目标电流值分别为第一耳机110和第二耳机120充电,使得第一耳机110和第二耳机120机充电的电流一致,从而使得第一耳机110和第二耳机120的充电速度一致。
请注意,本部分其他的解释和说明可参前文,为避免冗余,在此不再赘述。
具体地,当第一充电电流值和第二充电电流值的差值绝对值大于或等于预设电流阈值或者第一温度值和第二温度值的差值绝对值大于或等于预设温度阈值时,第一处理电路1041和/或第二处理电路1402能够确定第一充电电流值和第二充电电流值中的较小者为目标电流值;或,当第一充电电流值和第二充电电流值的差值绝对值小于预设电流阈值或者第一温度值和第二温度值的差值绝对值小于预设温度阈值时,第一处理电路1041和/或第二处理电路1402能够确定第一充电电流值和第二充电电流值的平均值作为目标电流值。
具体地,第一通信电路1021包括第一无线通信电路;第二通信电路1022包括第二无线通信电路;第一无线通信电路能够与第二无线通信电路无线传输第一充电电流值和/或第二充电电流值;或,第一通信电路1021包括第一通信端口;第二通信电路1022包括第二通信端口;第一通信端口与第二通信端口能够通过耳机盒200传输第一充电电流值和/或第二充电电流值,耳机盒200连接第一通信端口和第二通信端口。
请参阅图6和图7,本申请实施方式的耳机组件1000包括第一耳机110和第二耳机120,第一耳机110包括第一传感器、第一通信电路1021、第一处理电路1041和第一充电电路1031;第二耳机120包括第二传感器、第二通信电路1022、第二处理电路1402和第二充电电路1032;第一传感器能够采集第一耳机110的第一温度值;第二传感器能够采集第二耳机120的第二温度值;第一通信电路1021能够将第 一温度值输出,第一通信电路1021还能够接收第二温度值;第二通信电路1022能够将第二温度值输出,第二通信电路1022还能够接收第一温度值;第一处理电路1041能够根据第一温度值和第二温度值确定目标电流值;第一充电电路1031能够根据目标电流值为第一耳机110充电;第二处理电路1402能够根据第一温度值和第二温度值确定目标电流值;第二充电电路1032能够根据目标电流值为第二耳机120充电。
如此,第一耳机110和第二耳机120交互第一温度值和第二温度值以确定目标电流值,进而以目标电流值分别为第一耳机110和第二耳机120充电,使得第一耳机110和第二耳机120机充电的电流一致,从而使得第一耳机110和第二耳机120的充电速度一致。
请注意,本部分其他的解释和说明可参前文,为避免冗余,在此不再赘述。
具体地,第一处理电路1041能够根据基于第一温度值确定的第一充电电流值和基于第二温度值确定的第二充电电流值确定目标电流值;第二处理电路1402能够根据基于第一温度值确定的第一充电电流值和基于第二温度值确定的第二充电电流值确定目标电流值。
当第一充电电流值和第二充电电流值的差值绝对值大于或等于预设电流阈值时,第一处理电路1041和/或第二处理电路1402能够确定第一充电电流值和第二充电电流值中的较小者为目标电流值;或,当第一充电电流值和第二充电电流值的差值绝对值小于预设电流阈值时,第一处理电路1041和/或第二处理电路1402能够确定第一充电电流值和第二充电电流值的平均值作为目标电流值。
具体地,第一通信电路1021包括第一无线通信电路;第二通信电路1022包括第二无线通信电路;第一无线通信电路能够与第二无线通信电路无线传输第一温度值和/或第二温度值;或,第一通信电路1021包括第一通信端口;第二通信电路1022包括第二通信端口;第一通信端口与第二通信端口能够通过耳机盒200传输第一温度值和/或第二温度值,耳机盒200连接第一通信端口和第二通信端口。
请参阅图6和图7,本申请实施方式的耳机盒200能够为耳机组件1000充电,耳机组件1000包括第一耳机110和第二耳机120,耳机盒200包括第三传感器和第三处理电路204,第三传感器能够采集第一耳机110的第一温度值和第二耳机120的第二温度值,第三处理电路204能够根据第一温度值和第二温度值确定目标电流值,目标电流值用于为第一耳机110和第二耳机120充电。
如此,耳机盒200采集第一温度值和第二温度值以确定目标电流值,而目标电流值用于为第一耳机110和第二耳机120充电,使得第一耳机110和第二耳机120机充电的电流一致,从而使得第一耳机110和第二耳机120的充电速度一致。
请注意,本部分其他的解释和说明可参前文,为避免冗余,在此不再赘述。
具体地,第三处理电路204能够根据基于第一温度值确定的第一充电电流值和基于第二温度值确定的第二充电电流值确定目标电流值。
当第一充电电流值和第二充电电流值的差值绝对值大于或等于预设电流阈值或者第一温度值和第二温度值的差值绝对值大于或等于预设温度阈值时,第三处理电路204能够确定第一充电电流值和第二充电电流值中的较小者为目标电流值;或者,当第一充电电流值和第二充电电流值的差值绝对值小于预设电流阈值或者第一温度值和第二温度值的差值绝对值小于预设温度阈值时,第三处理电路204能够确定第一充电电流值和第二充电电流值的平均值作为目标电流值。
具体地,第一耳机110包括第一充电端口和第一通信电路1021,第二耳机120包括第二充电端口和第二通信电路1022,耳机盒200包括第三充电端口和第三通信电路202,第三充电端口用于与第一充电端口和第二充电端口连接以传输电能;第三通信电路202用于与第一通信电路1021和第二通信电路1022通信以传输目标电流值。
请参阅图6和图7,本申请实施方式的耳机盒200能够为耳机组件1000充电,耳机组件1000包括第一耳机110和第二耳机120,耳机盒200包括第三传感器、第三处理电路204和第三通信电路202,第三传感器能够采集第一耳机110的第一温度值和第二耳机120的第二温度值,第三处理电路204能够根据第一温度值确定第一充电电流值和根据第二温度值确定第二充电电流值;第三通信电路202能够将第一充电电流值和第二充电电流值传输给第一耳机110和第二耳机120,以使第一耳机110和第二耳机120能够根据第一充电电流值和第二充电电流值确定目标电流值,目标电流值用于为第一耳机110和第二耳机120充电。
如此,耳机盒200采集第一温度值和第二温度值以确定第一充电电流值和第二充电电流值,并将第 一充电电流值和第二充电电流值均传输给第一耳机110和第二耳机120,以使第一耳机110和第二耳机120确定目标电流值,使得第一耳机110和第二耳机120机充电的电流一致,从而使得第一耳机110和第二耳机120的充电速度一致。
请注意,本部分其他的解释和说明可参前文,为避免冗余,在此不再赘述。
具体地,第一耳机110包括第一充电端口,第二耳机120包括第二充电端口,耳机盒200包括第三充电端口,第三充电端口用于与第一充电端口和第二充电端口连接以传输电能。
请参阅图6和图7,本申请实施方式的耳机盒200能够用于为耳机组件1000充电,耳机组件1000包括第一耳机110和第二耳机120,其特征在于,耳机盒200包括第三传感器和第三通信电路202,第三传感器用于采集第一耳机110的第一温度值和第二耳机120的第二温度值;第三通信电路202能够将第一温度值和第二温度值传输给第一耳机110和第二耳机120,以使第一耳机110和第二耳机120能够根据第一温度值和第二温度值确定目标电流值,目标电流值用于为第一耳机110的电池和第二耳机120的电池充电。
如此,耳机盒200采集第一温度值和第二温度值,并将第一温度值和第二温度值均传输给第一耳机110和第二耳机120,以使第一耳机110和第二耳机120确定目标电流值,使得第一耳机110和第二耳机120机充电的电流一致,从而使得第一耳机110和第二耳机120的充电速度一致。
请注意,本部分其他的解释和说明可参前文,为避免冗余,在此不再赘述。
具体地,第一耳机110包括第一充电端口,第二耳机120包括第二充电端口,耳机盒200包括第三充电端口,第三充电端口用于与第一充电端口和第二充电端口连接以传输电能。
本申请还提供一种包含计算机可执行指令的非易失性计算机可读存储介质,当计算机可执行指令被处理器执行时,使得处理器执行以上任一项实施方式的充电方法。
在本说明书的描述中,参考术语“某些实施方式”、“一个实施方式”、“一些实施方式”、“示意性实施方式”、“示例”、“具体示例”、或“一些示例”的描述意指结合所述实施方式或示例描述的具体特征、结构、材料或者特点包含于本申请的至少一个实施方式或示例中。在本说明书中,对上述术语的示意性表述不一定指的是相同的实施方式或示例。而且,描述的具体特征、结构、材料或者特点可以在任何的一个或多个实施方式或示例中以合适的方式结合。
此外,术语“第一”、“第二”仅用于描述目的,而不能理解为指示或暗示相对重要性或者隐含指明所指示的技术特征的数量。由此,限定有“第一”、“第二”的特征可以明示或者隐含地包括至少一个所述特征。在本申请的描述中,“多个”的含义是至少两个,例如两个,三个,除非另有明确具体的限定。
尽管上面已经示出和描述了本申请的实施方式,可以理解的是,上述实施方式是示例性的,不能理解为对本申请的限制,本领域的普通技术人员在本申请的范围内可以对上述实施方式进行变化、修改、替换和变型,本申请的范围由权利要求及其等同物限定。

Claims (21)

  1. 一种充电方法,用于耳机组件,其特征在于,所述耳机组件包括多个耳机,所述充电方法包括:
    获取每个所述耳机的充电信息;
    根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值;
    根据所述目标电流值为每个所述耳机充电。
  2. 根据权利要求1所述的充电方法,其特征在于,所述充电信息包括耳机温度值,所述获取每个所述耳机的充电信息,包括:
    获取每个所述耳机的所述耳机温度值;
    所述根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值,包括:
    根据获取的部分或全部所述耳机温度值确定所述耳机组件中每个耳机的目标电流值;
    或,所述充电信息包括与耳机温度值对应的充电电流值,所述获取每个所述耳机的充电信息,包括:
    获取每个所述耳机的所述与耳机温度值对应的充电电流值;
    所述根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值,包括:
    根据获取的部分或全部所述与耳机温度值对应的充电电流值确定所述耳机组件的目标电流值。
  3. 根据权利要求1所述的充电方法,其特征在于,所述根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值,包括:
    在获取的部分或全部所述充电信息的差异大于或等于预设差异阈值时,确定每个所述充电信息对应的电流以得到多个备选电流;
    将多个所述备选电流中的最小值作为所述目标电流值;
    在所述获取的部分或全部所述充电信息的差异小于预设差异阈值时,确定所述充电信息的平均值;
    根据所述充电信息的平均值确定所述目标电流值。
  4. 根据权利要求1所述的充电方法,其特征在于,所述耳机组件包括耳机盒,所述充电方法包括:
    将根据部分或全部所述充电信息确定的目标电流值作为第一电流;
    获取所述耳机盒的温度;
    根据所述耳机盒的温度确定第二电流;
    根据所述第一电流和所述第二电流确定为每个所述耳机充电的所述目标电流值。
  5. 根据权利要求1所述的充电方法,其特征在于,所述获取每个所述耳机的充电信息,包括:
    每个所述耳机获取自身的所述充电信息;
    每个所述耳机将自身的所述充电信息发送至所述耳机组件的其他耳机;
    每个所述耳机接收所述其他耳机发送的所述充电信息;
    所述根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值,包括:
    每个所述耳机根据部分或全部所述充电信息确定所述目标电流值。
  6. 根据权利要求7所述的充电方法,其特征在于,所述充电方法包括:
    在所述耳机的耳机温度值大于预设温度阈值时,所述耳机温度值大于所述预设温度阈值的所述耳机向所述其他耳机发起连接请求,以使多个所述耳机进行通信;
    或,所述充电方法包括:在所述耳机与转发终端连接失败时,与所述转发终端连接失败的所述耳机向所述其他耳机发起连接请求,以使多个所述耳机进行通信;其中,所述转发终端用于接收每个所述耳机自身的所述充电信息,并将每个所述耳机自身的所述充电信息转发至所述其他耳机。
    或,所述充电方法包括:在所述耳机的耳机温度值大于预设温度阈值时,所述耳机温度值大于所述预设温度阈值的所述耳机向所述耳机盒发起交换充电信息请求,以获取每个所述耳机的充电信息。
  7. 根据权利要求1所述的充电方法,其特征在于,所述耳机组件包括耳机盒,所述获取每个所述耳机的充电信息,包括:
    每个所述耳机获取自身的所述充电信息;
    每个所述耳机将自身的所述充电信息发送至所述耳机盒;
    所述耳机盒将每个所述耳机自身的所述充电信息发送至所述耳机组件的其他耳机;
    所述根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值,包括:
    每个所述耳机根据部分或全部所述充电信息确定所述目标电流值;
    或,所述耳机组件包括耳机盒,所述获取每个所述耳机的充电信息,包括:
    每个所述耳机获取自身的所述充电信息;
    每个所述耳机将自身的所述充电信息发送至所述耳机盒;
    所述根据获取的部分或全部所述充电信息确定所述耳机组件中每个耳机的目标电流值,包括:
    所述耳机盒根据部分或全部所述充电信息确定所述目标电流值。
  8. 一种充电方法,用于耳机组件,其特征在于,所述耳机组件包括耳机盒和多个耳机,所述充电方法包括:
    获取所述耳机盒的温度,所述耳机盒的温度与每个所述耳机的耳机温度值相关;
    根据所述耳机盒的温度确定所述耳机组件中每个耳机的目标电流值;
    根据所述目标电流值为每个所述耳机充电。
  9. 根据权利要求8所述的充电方法,其特征在于,当所述耳机盒的温度大于或等于预设阈值时,进入所述根据所述耳机盒的温度确定所述耳机组件的目标电流值的步骤。
  10. 一种耳机组件,其特征在于,所述耳机组件包括第一耳机和第二耳机,所述第一耳机包括第一传感器、第一处理电路、第一通信电路和第一充电电路;所述第二耳机包括第二传感器、第二处理电路、第二通信电路和第二充电电路;
    所述第一传感器被配置用于采集所述第一耳机的第一温度值;所述第一处理电路被配置用于根据所述第一温度值确定第一充电电流值;所述第二传感器被配置用于采集所述第二耳机的第二温度值;所述第二处理电路被配置用于根据所述第二温度值确定第二充电电流值;
    所述第一通信电路被配置用于将所述第一充电电流值输出,并被配置用于接收所述第二充电电流值;所述第一处理电路被配置用于根据所述第一充电电流值和所述第二充电电流值确定目标电流值;所述第一充电电路被配置用于以所述目标电流值为所述第一耳机充电;
    所述第二通信电路被配置用于将所述第二充电电流值输出,并接收所述第一充电电流值;所述第二处理电路被配置用于根据所述第一充电电流值和所述第二充电电流值确定所述目标电流值;所述第二充电电路被配置用于以所述目标电流值为所述第二耳机充电。
  11. 根据权利要求10所述的耳机组件,其特征在于,当所述第一充电电流值和所述第二充电电流值的差值绝对值大于或等于预设电流阈值,或者,所述第一温度值和所述第二温度值的差值绝对值大于或等于预设温度阈值时,所述第一处理电路和/或所述第二处理电路被配置用于确定所述第一充电电流值和所述第二充电电流值中的较小者为所述目标电流值;或,当所述第一充电电流值和所述第二充电电流值的差值绝对值小于所述预设电流阈值,或者,所述第一温度值和所述第二温度值的差值绝对值小于所述预设温度阈值时,所述第一处理电路和/或所述第二处理电路被配置用于确定所述第一充电电流值和所述第二充电电流值的平均值作为所述目标电流值;
    所述第一通信电路包括第一无线通信电路;所述第二通信电路包括第二无线通信电路;所述第一无线通信电路被配置用于与所述第二无线通信电路无线传输所述第一充电电流值和/或所述第二充电电流值;或,所述第一通信电路包括第一通信端口;所述第二通信电路包括第二通信端口;所述第一通信端口与所述第二通信端口被配置用于通过耳机盒传输所述第一充电电流值和/或所述第二充电电流值,所述耳机盒被配置用于连接所述第一通信端口和所述第二通信端口。
  12. 一种耳机组件,其特征在于,所述耳机组件包括第一耳机和第二耳机,所述第一耳机包括第一传感器、第一通信电路、第一处理电路和第一充电电路;所述第二耳机包括第二传感器、第二通信电路、第二处理电路和第二充电电路;
    所述第一传感器被配置用于采集所述第一耳机的第一温度值;所述第二传感器被配置用于采集第二耳机的第二温度值;
    所述第一通信电路被配置用于将所述第一温度值输出,所述第一通信电路还被配置用于接收所述第二温度值;所述第二通信电路被配置用于将所述第二温度值输出,所述第二通信电路还被配置用于接收所述第一温度值;
    所述第一处理电路被配置用于根据所述第一温度值和所述第二温度值确定目标电流值;所述第一充电电路被配置用于根据所述目标电流值为第一耳机充电;所述第二处理电路被配置用于根据所述第一温 度值和所述第二温度值确定目标电流值;所述第二充电电路被配置用于根据所述目标电流值为所述第二耳机充电。
  13. 根据权利要求12所述的耳机组件,其特征在于,所述第一处理电路被配置用于根据基于所述第一温度值确定的第一充电电流值和基于所述第二温度值确定的第二充电电流值确定目标电流值,所述第二处理电路被配置用于根据基于所述第一温度值确定的第一充电电流值和基于所述第二温度值确定第二充电电流值确定目标电流值;
    当所述第一充电电流值和所述第二充电电流值的差值绝对值大于或等于预设电流阈值时,所述第一处理电路和/或所述第二处理电路被配置用于确定所述第一充电电流值和所述第二充电电流值中的较小者为所述目标电流值;或,当所述第一充电电流值和所述第二充电电流值的差值绝对值小于所述预设电流阈值时,所述第一处理电路和/或所述第二处理电路被配置用于确定所述第一充电电流值和所述第二充电电流值的平均值作为所述目标电流值;
    所述第一通信电路包括第一无线通信电路;所述第二通信电路包括第二无线通信电路;所述第一无线通信电路被配置用于与所述第二无线通信电路无线传输所述第一温度值和/或所述第二温度值;或,所述第一通信电路包括第一通信端口;所述第二通信电路包括第二通信端口;所述第一通信端口与所述第二通信端口被配置用于通过耳机盒传输所述第一温度值和/或所述第二温度值,所述耳机盒连接所述第一通信端口和所述第二通信端口。
  14. 一种耳机盒,其特征在于,所述耳机盒被配置用于为耳机组件充电,所述耳机组件包括第一耳机和第二耳机,所述耳机盒包括第三传感器和第三处理电路,所述第三传感器被配置用于采集所述第一耳机的第一温度值和所述第二耳机的第二温度值,所述第三处理电路被配置用于根据所述第一温度值和所述第二温度值确定目标电流值,所述目标电流值用于为所述第一耳机和所述第二耳机充电。
  15. 根据权利要求14所述的耳机盒,其特征在于,所述第三处理电路被配置用于根据基于所述第一温度值确定的第一充电电流值和基于所述第二温度值确定的第二充电电流值确定目标电流值;
    当所述第一充电电流值和所述第二充电电流值的差值绝对值大于或等于预设电流阈值或者所述第一温度值和所述第二温度值的差值绝对值大于或等于预设温度阈值时,所述第三处理电路被配置用于确定所述第一充电电流值和所述第二充电电流值中的较小者为所述目标电流值;或者,当所述第一充电电流值和所述第二充电电流值的差值绝对值小于所述预设电流阈值或者所述第一温度值和所述第二温度值的差值绝对值小于所述预设温度阈值时,所述第三处理电路被配置用于确定所述第一充电电流值和所述第二充电电流值的平均值作为所述目标电流值;
    所述第一耳机包括第一充电端口和第一通信电路,所述第二耳机包括第二充电端口和第二通信电路,所述耳机盒包括第三充电端口和第三通信电路,所述第三充电端口用于与所述第一充电端口和所述第二充电端口连接以传输电能;所述第三通信电路用于与所述第一通信电路和所述第二通信电路通信以传输所述目标电流值。
  16. 一种耳机盒,其特征在于,所述耳机盒被配置用于为耳机组件充电,所述耳机组件包括第一耳机和第二耳机,所述耳机盒包括第三传感器、第三处理电路和第三通信电路,所述第三传感器被配置用于采集所述第一耳机的第一温度值和所述第二耳机的第二温度值,所述第三处理电路被配置用于根据所述第一温度值确定第一充电电流值和根据所述第二温度值确定第二充电电流值;所述第三通信电路被配置用于将所述第一充电电流值和所述第二充电电流值传输给所述第一耳机和所述第二耳机,以使所述第一耳机和所述第二耳机被配置用于根据所述第一充电电流值和所述第二充电电流值确定目标电流值,所述目标电流值用于为所述第一耳机和所述第二耳机充电。
  17. 一种耳机盒,所述耳机盒被配置用于为耳机组件充电,所述耳机组件包括第一耳机和第二耳机,其特征在于,所述耳机盒包括第三传感器和第三通信电路,所述第三传感器用于采集所述第一耳机的第一温度值和所述第二耳机的第二温度值;所述第三通信电路被配置用于将所述第一温度值和所述第二温度值传输给所述第一耳机和所述第二耳机,以使所述第一耳机和所述第二耳机被配置用于根据所述第一温度值和所述第二温度值确定目标电流值,所述目标电流值用于为所述第一耳机的电池和所述第二耳机的电池充电。
  18. 一种耳机,其特征在于,所述耳机包括耳机处理器,所述耳机处理器用于执行权利要求1-6中任一项或权利要求8-9中任一项所述的充电方法。
  19. 一种耳机盒,其特征在于,所述耳机盒用于为耳机充电,所述耳机盒包括机盒处理器,所述机盒处理器用于执行权利要求1-4中任一项或权利要求8-9中任一项所述的充电方法。
  20. 一种耳机组件,其特征在于,所述耳机组件包括耳机盒、多个耳机和组件处理器,所述组件处理器用于执行权利要求1-9中任一项所述的充电方法。
  21. 一种计算机可执行指令的非易失性计算机可读存储介质,其特征在于,当所述计算机可执行指令被一个或多个处理器执行时,使得所述处理器执行权利要求1-9中任一项所述的充电方法。
PCT/CN2021/099406 2020-06-12 2021-06-10 充电方法、耳机组件、耳机、耳机盒和存储介质 WO2021249485A1 (zh)

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