Battery and electronic device

CN223140836UActive Publication Date: 2025-07-22LENOVO (BEIJING) LTD
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Patent Information

Application Number
CN202421529688.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-30
Publication Date
2025-07-22
Estimated Expiration
2034-06-30

AI Technical Summary

Technical Problem

In the prior art, batteries cannot be adapted to electronic devices of different structures, resulting in high complexity and difficulty in preventing stupidity.

Method used

A battery is designed, including a first functional circuit for controlling the enable state and a second functional circuit for providing time data, connected to the electronic device through a first connector to realize signal transmission and power supply, and the battery connector has multiple pins for signal transmission of different functions.

Benefits of technology

The same battery is adapted to electronic devices with different structures, reducing the complexity of the battery and the difficulty of preventing stupidity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a battery and electronic equipment. Relates to the technical field of batteries. The battery includes: a first functional circuit for controlling an enable state of the battery; the second functional circuit is used for providing time data; the first connector is used for being in signal connection and power supply connection with electronic equipment, the first connector is provided with a first pin and a second pin, a first port of the first functional circuit is connected with the first pin, the first port receives a target signal for controlling the change of the enabling state through the first connector, and the second port receives a target signal for controlling the change of the enabling state through the second connector. And a second port of the second functional circuit is connected with the second pin and is used for transmitting the time data through the first connector.
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Description

Technical Field

[0001] This application relates to the technical field of batteries, and in particular, to a battery and an electronic device. Background Art

[0002] Currently, for various mainstream electronic devices with different structures in the industry, multiple different types of batteries are required for adaptation, with high complexity, inability to share batteries, and high difficulty in preventing dead stock.

[0003] Therefore, how to reduce the complexity of the battery and use the same battery to adapt to different-structured electronic devices has become an urgent problem to be solved. Utility Model Content

[0004] The purpose of the embodiments of this application is to provide a battery.

[0005] To solve the above technical problems, the embodiments of this application provide the following technical solutions:

[0006] In a first aspect of this application, a battery is provided, including:

[0007] A first functional circuit, which is used to control the enable state of the battery;

[0008] A second functional circuit, which is used to provide time data;

[0009] A first connector, which is used for signal connection and power supply connection with the electronic device. The first connector has a first pin and a second pin.

[0010] A first port of the first functional circuit is connected to the first pin, and the first port receives a target signal for controlling the change of the enable state through the first connector.

[0011] A second port of the second functional circuit is connected to the second pin, and is used to transmit the time data through the first connector.

[0012] In some alternative embodiments of the first aspect of this application, the battery includes at least one of a clock functional circuit, a data functional circuit, and an identity recognition functional circuit;

[0013] The first connector includes at least one of a third pin, a fourth pin, and a fifth pin. The third pin corresponds to the clock functional circuit, the fourth pin corresponds to the data functional circuit, and the fifth pin corresponds to the identity recognition functional circuit.

[0014] In some alternative embodiments of the first aspect of the present application, the first pin is located at the Nth position of the first connector, the second pin is located at the Mth position of the first connector, and the positions of the first pin and the second pin are the same as the positions of two corresponding pins in the corresponding electronic device.

[0015] In some alternative embodiments of the first aspect of the present application, the first connector has nine pin positions. The first position and the second position are both positive pins, the third position is a clock function pin, the fourth position is a data function pin, the fifth position is an identification pin, the eighth position and the ninth position are both negative pins, the Nth position is the sixth position, and the Mth position is the seventh position.

[0016] In some alternative embodiments of the first aspect of the present application, the first connector has ten pin positions. The first position and the second position are both positive pins, the third position is a clock function pin, the fourth position is a data function pin, the fifth position is an identification pin, the sixth position is the first pin, the seventh position is the second pin, the eighth position is the sixth pin, and the ninth position and the tenth position are both negative pins;

[0017] Among them, the sixth pin is a non-functional pin.

[0018] The second aspect of the present application provides an electronic device, including a battery. The battery includes a first functional circuit, a second functional circuit, and a first connector. The first functional circuit is used to control the enabling state of the battery, the second functional circuit is used to provide time data, the first connector is used for signal connection and power supply connection with the electronic device. The first connector has a first pin and a second pin. The first port of the first functional circuit is connected to the first pin, and the first port receives a target signal for controlling the change of the enabling state through the first connector. The second port of the second functional circuit is connected to the second pin and is used to transmit the time data through the first connector.

[0019] In some alternative embodiments of the first aspect of the present application, it further includes:

[0020] A second connector, which is connected to the first connector;

[0021] A third functional circuit, which is used to receive signals from the battery and send signals to the battery. The third functional circuit includes a control module, and the control module is used to transmit the target signal to the battery.

[0022] In some alternative embodiments of the first aspect of the present application, the second connector includes a first corresponding pin and a second corresponding pin;

[0023] The first corresponding pin of the second connector is connected to the first pin of the first connector for signal transmission.

[0024] The second corresponding pin of the second connector is connected to the second pin of the first connector, but no signal transmission occurs.

[0025] The third functional circuit transmits the target signal to the battery through the second connector to control the change of the enabling state of the battery.

[0026] In some modified embodiments of the first aspect of the present application, the second connector includes a third corresponding pin and a fourth corresponding pin;

[0027] The third corresponding pin of the second connector is connected to the first pin of the first connector and signal transmission occurs.

[0028] The fourth corresponding pin of the second connector is connected to the second pin of the first connector, but no signal transmission occurs;

[0029] The first functional circuit receives the target signal for allowing the battery to charge and discharge from the third functional circuit through the second connector.

[0030] In some modified embodiments of the first aspect of the present application, the second connector includes a fifth corresponding pin and a sixth corresponding pin;

[0031] The fifth corresponding pin of the second connector is connected to the first pin of the first connector, and the sixth corresponding pin of the second connector is connected to the second pin of the first connector; the third functional circuit transmits the target signal for allowing the battery to charge and discharge to the battery through the second connector, and the third functional circuit receives the time data of the second functional circuit through the second connector. Description of the Drawings

[0032] By reading the following detailed description with reference to the drawings, the above and other objects, features, and advantages of the exemplary embodiments of the present application will become readily understandable. In the drawings, several embodiments of the present application are shown in an exemplary and non-limiting manner, and the same or corresponding reference numerals represent the same or corresponding parts, where:

[0033] Figure 1 Schematically shows a flowchart of the connection between a battery and an electronic device provided by the present application;

[0034] Figure 2 Schematically shows a structural diagram of a first connector provided by the present application;

[0035] Figure 3Schematically shown is a structural schematic diagram of another first connector provided by the present application;

[0036] Figure 4 Schematically shown is a circuit diagram of a battery provided by the present application;

[0037] Figure 5 Schematically shown is a flowchart of the connection between another battery provided by the present application and an electronic device;

[0038] Figure 6 Schematically shown is a schematic diagram of the connection between a battery provided by the present application and an electronic device;

[0039] Figure 7 Schematically shown is another schematic diagram of the connection between a battery provided by the present application and an electronic device;

[0040] Figure 8 Schematically shown is yet another schematic diagram of the connection between a battery provided by the present application and an electronic device;

[0041] Explanation of the reference numerals in the drawings:

[0042] Battery 1, first functional circuit 11, second functional circuit 12, first connector 13, first pin 131, second pin 132, first position 133, second position 134, third position 135, fourth position 136, fifth position 137, eighth position 138, ninth position 139, sixth pin 140, electronic device 2, second connector 21, first corresponding pin 211, second corresponding pin 212, third corresponding pin 213, fourth corresponding pin 214, fifth corresponding pin 215, sixth corresponding pin 216, third functional circuit 22. Detailed implementation manners

[0043] Hereinafter, the exemplary embodiments of the present application will be described in more detail with reference to the drawings. Although the exemplary embodiments of the present application are shown in the drawings, it should be understood that the present application can be implemented in various forms and should not be limited by the embodiments set forth herein. On the contrary, these embodiments are provided so that the present application can be more thoroughly understood and the scope of the present application can be fully conveyed to those skilled in the art.

[0044] As Figures 1 to 4 shown, the present application provides a battery 1, which may include:

[0045] A first functional circuit 11, which can be used to control the enabling state of the battery 1;

[0046] A second functional circuit 12, which can be used to provide time data;

[0047] The first connector 13 can be used for signal connection and power supply connection with the electronic device 2. The first connector 13 may have a first pin 131 and a second pin 132.

[0048] The first port of the first functional circuit 11 can be connected to the first pin 131, and the first port can be used to receive, through the first connector 13, a target signal for controlling the change of the enable state.

[0049] The second port of the second functional circuit 12 can be connected to the second pin 132 and can be used to transmit the time data through the first connector 13.

[0050] A battery 1 provided by an embodiment of the present application may include a first functional circuit 11, a second functional circuit 12, and a first connector 13. The first functional circuit 11 can be used to control the enable state of the battery 1. The second functional circuit 12 can be used to provide time data. The first connector 13 can be used to make a signal connection and a power supply connection between the battery 1 and the electronic device 2, so as to realize power supply of the battery 1 to the electronic device 2 and information interaction between the battery 1 and the electronic device 2. The first connector 13 may have a first pin 131 and a second pin 132. The first pin 131 can be used to connect to the first port of the first functional circuit 11 to receive, through the first connector 13, a target signal for changing the enable state sent by the electronic device 2, and control the enable state of the battery 1 according to the target signal for changing the enable state, so as to allow or prohibit charge and discharge operations and other functions of the battery 1. The second port of the second functional circuit 12 can be connected to the second pin 132 of the first connector 13, so that the first functional circuit 11 transmits the time data to the electronic device 2 through the first connector 13. Thus, the battery 1 defined in the present application can have the function of providing time data and the function of controlling the enable state of the battery 1. When the corresponding function of the battery 1 is needed, controlling the first pin 131 or the second pin 132 for signal transmission can be achieved, so that the same type of battery 1 can be adapted to electronic devices 2 with different structures, reducing the complexity of the battery 1 and the difficulty of preventing misplacement of the battery.

[0051] In this embodiment, the first functional circuit may include a first battery management chip, and the first battery management chip may be used to control the enabling state of Battery 1. For example, the first battery management chip may be a battery management chip of the TPS627Xx series or bq40zxx series from Texas Instruments, a battery management chip of the NCP347 series from ON Semiconductor, a battery management chip of the RAA229618 or RAJ24xx model from Renesas Electronics, etc. However, this application is not limited thereto, that is, those skilled in the art can adjust or set according to specific requirements.

[0052] The second functional circuit may include a second battery management chip. The second battery management chip may be used to provide time data. For example, the second battery management chip may be an AST1250 chip, a battery management chip of the DS3231SN model from Maxim Integrated, a battery management chip of the INS5A8900 or INS5A8804 model from Guangdong Dapu Telecom Technology Co., Ltd., a battery management chip of the RX8025-T model from Epson, etc. However, this application is not limited thereto, that is, those skilled in the art can adjust or set according to specific requirements.

[0053] The first connector may be a battery connector. The battery connector may be used to connect the battery to the electronic device. For example, the first connector may be a 9-pin or 10-pin connector from TE Connectivity, a 9-pin or 10-pin connector from ACES, a 9-pin or 10-pin connector from LEWINSH, etc. However, this application is not limited thereto, that is, those skilled in the art can adjust or set according to specific requirements.

[0054] As Figure 2 shown, in the embodiment of this application, Battery 1 may include at least one of a clock function circuit, a data function circuit, and an identity recognition function circuit;

[0055] The first connector 13 may include at least one of a third pin, a fourth pin, and a fifth pin. The third pin may correspond to the clock function circuit, the fourth pin may correspond to the data function circuit, and the fifth pin may correspond to the identity recognition function circuit.

[0056] In this embodiment, the battery 1 may include at least one of a clock function circuit, a data function circuit, and an identity recognition function circuit. The clock function circuit, the data function circuit, or the identity recognition function circuit may also be the first function circuit 11 or the second function circuit 12, that is, the first function circuit 11 or the second function circuit 12 has the functions of the corresponding clock function circuit, data function circuit, or identity recognition function circuit. The first connector 13 may also include at least one of a third pin, a fourth pin, and a fifth pin. The third pin may correspond to the clock function circuit, the fourth pin may correspond to the data function circuit, and the fifth pin may correspond to the identity recognition function circuit. Thus, the third pin may be connected to the clock function circuit, the fourth pin may be connected to the data function circuit, and the fifth pin may be connected to the identity recognition function circuit. After the electronic device 2 is connected to the first connector 13, when controlling the third pin, the fourth pin, or the fifth pin to perform signal transmission, the battery 1 may implement the clock function, the data function, or the identity recognition function.

[0057] As Figure 2 shown, in the embodiment of the present application, the first pin 131 is located at the Nth position of the first connector 13, and the second pin 132 is located at the Mth position of the first connector 13. The positions of the first pin 131 and the second pin 132 are the same as the positions of two corresponding pins in the corresponding electronic device 2.

[0058] In this embodiment, the first connector 13 may have nine pin positions. The first position 133 and the second position 134 may both be positive pins. The third position 135 may be a clock function pin. The fourth position 136 may be a data function pin. The fifth position 137 may be an identity recognition pin. The eighth position 138 and the ninth position 139 may both be negative pins. The Nth position may be the sixth position, and the Mth position may be the seventh position.

[0059] In this embodiment, as shown in Table 1, the first connector 13 may have nine pins. Among the nine pins of the first connector 13, there may be nine positions. For example, the first position 133 and the second position 134 are both positive pins. The third position 135 is a clock function pin. The fourth position 136 is a data function pin. The fifth position 137 is an identity recognition pin. The sixth position is the first pin 131. The seventh position is the second pin 132. The eighth position 138 and the ninth position 139 are both negative pins. Correspondingly, the second connector 21 connected to the first connector 13 in the electronic device 2 may also have nine pins. The nine pins are correspondingly arranged with the nine pins of the first connector 13 to facilitate the connection between the first connector 13 of the battery 1 and the second connector 21 of the electronic device 2.

[0060] Pin Position Corresponding Pin Name Pin1 P+ Pin2 P+ Pin3 CLK Pin4 DAT Pin5 ID Pin6 Enable Pin7 RTC Pin8 P- Pin9 P-

[0061] Table 1

[0062] In this embodiment, the electronic device 2 controls the battery 1 to have three different signal transmission modes. Nine pins of the first connector 13 of the battery 1 are correspondingly connected to nine pins of the second connector 21 of the electronic device 2. The electronic device 2 performs signal transmission on the pins from the first position 133 to the fifth position 137, the eighth position 138, and the ninth position 139 of the first connector 13 according to requirements.

[0063] As Figure 6 shown, in an embodiment of the present application, the electronic device 2 performs signal transmission to the first pin 131 of the first connector 13. The first connector 13 transmits the signal for controlling the enable state of the battery 1 to the first functional circuit 11 through the first pin 131. The target signals for controlling the enable state of the battery 1 include a low-voltage signal and a high-voltage signal. After receiving the low-voltage signal, the first functional circuit 11 allows the battery 1 to perform charge and discharge operations. After receiving the high-voltage signal, the first functional circuit 11 prohibits the battery 1 from performing charge and discharge operations. The electronic device 2 does not perform signal transmission to the second pin 132 of the first connector 13.

[0064] As Figure 7 shown, in another embodiment of the present application, the electronic device 2 performs signal transmission to the first pin 131 of the first connector 13. The first connector 13 transmits the signal for controlling the enable state of the battery 1 to the first functional circuit 11 through the first pin 131. The target signal for controlling the enable state of the battery 1 always remains a low-voltage signal. After receiving the low-voltage signal, the first functional circuit 11 allows the battery 1 to perform charge and discharge operations. The electronic device 2 does not perform signal transmission to the second pin 132 of the first connector 13.

[0065] As Figure 8 shown, in yet another embodiment of the present application, the electronic device 2 can perform signal transmission to the first pin 131 of the first connector 13. The first connector 13 can transmit the signal for controlling the enable state of the battery 1 to the first functional circuit 11 through the first pin 131. The target signal for controlling the enable state of the battery 1 always remains a low-voltage signal. After receiving the low-voltage signal, the first functional circuit 11 can allow the battery 1 to perform charge and discharge operations. The electronic device 2 can perform signal transmission to the second pin 132 of the first connector 13.

[0066] As Figure 3As shown, in the embodiment of the present application, the first connector 13 may also have ten pin positions. The first position 133 and the second position 134 may both be positive pins. The third position 135 may be a clock function pin. The fourth position 136 may be a data function pin. The fifth position 137 may be an identification pin. The sixth position may be the first pin 131. The seventh position may be the second pin 132. The eighth position 138 may be the sixth pin 140. The ninth position 139 and the tenth position may both be negative pins. Among them, the sixth pin 140 may be a non-functional pin.

[0067] In this embodiment, the first connector 13 may have ten pins. Among the ten pins of the first connector 13, there may be ten positions. The first position 133 and the second position 134 may both be positive pins. The third position 135 may be a clock function pin. The fourth position 136 may be a data function pin. The fifth position 137 may be an identification pin. The sixth position may be the first pin 131. The seventh position may be the second pin 132. The eighth position 138 may be the sixth pin 140. The ninth position 139 and the tenth position may both be negative pins. Correspondingly, the second connector 21 connected to the first connector 13 in the electronic device 2 may also have ten pins. The ten pins may be correspondingly arranged with the ten pins of the first connector 13 to facilitate the connection between the first connector 13 of the battery 1 and the second connector 21 of the electronic device 2.

[0068] In this embodiment, the electronic device 2 controlling the battery 1 may have three different signal transmission modes. The ten pins of the first connector 13 of the battery 1 may be correspondingly connected to the ten pins of the second connector 21 of the electronic device 2. The electronic device 2 may perform signal transmission on the pins from the first position 133 pin to the fifth position 137 pin, the ninth position 139, and the tenth position of the first connector 13 according to requirements.

[0069] In an embodiment of the present application, the electronic device 2 may transmit a signal to the first pin 131 of the first connector 13. The first connector 13 may transmit the signal for controlling the enable state of the battery 1 to the first functional circuit 11 through the first pin 131. The signal for controlling the enable state of the battery 1 includes a low voltage signal and a high voltage signal. After receiving the low voltage signal, the first functional circuit 11 may allow the battery 1 to perform charge and discharge operations. After receiving the high voltage signal, the battery 1 is prohibited from performing charge and discharge operations. The electronic device 2 does not transmit signals to the second pin 132 and the sixth pin 140 of the first connector 13.

[0070] In another embodiment of the present application, the electronic device 2 can transmit signals to the first pin 131 of the first connector 13. The first connector 13 can transmit the signal for controlling the enabling state of the battery 1 to the first functional circuit 11 through the first pin 131. The signal for controlling the enabling state of the battery 1 always remains a low-voltage signal. After receiving the low-voltage signal, the first functional circuit 11 allows the battery 1 to perform charge and discharge operations. The electronic device 2 transmits signals to the sixth pin 140 of the first connector 13, and the electronic device 2 does not transmit signals to the second pin 132 of the first connector 13.

[0071] In yet another embodiment of the present application, the electronic device 2 transmits signals to the first pin 131 of the first connector 13. The first connector 13 transmits the signal for controlling the enabling state of the battery 1 to the first functional circuit 11 through the first pin 131. The signal for controlling the enabling state of the battery 1 always remains a low-voltage signal. After receiving the low-voltage signal, the first functional circuit 11 allows the battery 1 to perform charge and discharge operations. The electronic device 2 does not transmit signals to the sixth pin 140 of the first connector 13. The electronic device 2 transmits signals to the second pin 132 of the first connector 13.

[0072] In this embodiment, the first pin 131 is an enable signal pin (Enable Pin), the second pin 132 is a real-time clock (RTC) signal pin, and the sixth pin 140 is a non-functional pin (NA).

[0073] As Figure 5 shown, on the other hand, the present application further provides an electronic device 2, which may include a battery 1. The battery 1 may include a first functional circuit 11, a second functional circuit 12, and a first connector 13. The first functional circuit is used to control the enabling state of the battery 1. The second functional circuit may be used to provide time data. The first connector 13 is used for signal connection and power supply connection with the electronic device 2. The first connector 13 has a first pin 131 and a second pin 132. The first port of the first functional circuit 11 is connected to the first pin 131. The first port is used to receive the target signal for controlling the change of the enabling state through the first connector 13. The second port of the second functional circuit 12 is connected to the second pin 132 and is used to transmit the time data through the first connector 13.

[0074] An electronic device 2 provided by an embodiment of the present application may include a battery 1. The battery 1 may include a first functional circuit 11, a second functional circuit 12, and a first connector 13. The first functional circuit 11 may be used to control the enabling state of the battery 1. The second functional circuit 12 may be used to provide time data. The first connector 13 is used to make a signal connection and a power supply connection between the battery 1 and the electronic device 2, so as to realize the power supply of the battery 1 to the electronic device 2 and the information interaction between the battery 1 and the electronic device 2. The first connector 13 has a first pin 131 and a second pin 132. The first pin 131 is used to connect to a first port of the first functional circuit 11, so as to receive a target signal of a change in the enabling state sent by the electronic device 2 through the first connector 13, and control the enabling state of the battery 1 according to the target signal of the change in the enabling state, so as to allow or prohibit the charge and discharge operations and other functions of the battery 1. A second port of the second functional circuit 12 is connected to the second pin 132 of the first connector 13, so that the first functional circuit 11 transmits time data to the electronic device 2 through the first connector 13. Thus, the electronic device 2 defined in the present application can have both the function of providing time data and the function of controlling the enabling state of the battery 1. When it is necessary to use the corresponding functional battery 1, it is only necessary to control the first pin 131 or the second pin 132 to perform signal transmission, so that the same type of battery 1 can be adapted to electronic devices 2 with different structures, reducing the complexity of the battery 1 and the difficulty of anti-fooling.

[0075] As Figure 5 shown, in an embodiment of the present application, it may further include:

[0076] A second connector 21, where the second connector 21 is connected to the first connector 13;

[0077] A third functional circuit 22, which is used to receive signals from the battery 1 and send signals to the battery 1. The third functional circuit 22 includes a control module, and the control module is used to transmit a target signal to the battery 1.

[0078] In this embodiment, the electronic device 2 includes a battery 1, a second connector 21, and a third functional circuit 22. The battery 1 is connected to the second connector 21 through a first connector 13. The second connector 21 is also connected to the third functional circuit 22. Thus, the battery 1 and the third functional circuit 22 in the electronic device 2 are connected through the first connector 13 and the second connector 21. As a result, the third functional circuit 22 in the electronic device 2 can receive signals from the battery 1 and send signals to the battery 1. The third functional circuit 22 includes a control module that sends a target signal to the first connector 13 of the battery 1 through the control module. The first connector 13 transmits the target signal to the first functional circuit. Thus, the first functional circuit allows or prohibits the charging and discharging operations of the battery 1 according to the received target signal. The target signal includes a low-voltage signal and a high-voltage signal. The low-voltage signal allows the battery 1 to perform charging and discharging operations, and the high-voltage signal prohibits the battery 1 from performing charging and discharging operations.

[0079] As Figure 6 shown, in the embodiment of the present application, the second connector 21 includes a first corresponding pin 211 and a second corresponding pin 212;

[0080] The first corresponding pin 211 of the second connector 21 is connected to the first pin 131 of the first connector 13 for signal transmission.

[0081] The second corresponding pin 212 of the second connector 21 is connected to the second pin 132 of the first connector 13, but does not perform signal transmission.

[0082] The third functional circuit 22 transmits a target signal to the battery 1 through the second connector 21 to control the change of the enabling state of the battery 1.

[0083] In this embodiment, the first connector 13 may have nine pins. Among the nine pins of the first connector 13, there may be nine positions. The first position 133 and the second position 134 may both be positive pins. The third position 135 may be a clock function pin. The fourth position 136 may be a data function pin. The fifth position 137 may be an identification pin. The sixth position may be the first pin 131. The seventh position may be the second pin 132. The eighth position 138 and the ninth position 139 may both be negative pins. Correspondingly, the second connector 21 in the electronic device 2 connected to the first connector 13 may also have nine pins. The nine pins may be correspondingly arranged with the nine pins of the first connector 13 to facilitate the connection between the first connector 13 of the battery 1 and the second connector 21 of the electronic device 2.

[0084] In this embodiment, the electronic device 2 controls the battery 1 to have three different signal transmission modes. Nine pins of the first connector 13 of the battery 1 are correspondingly connected to nine pins of the second connector 21 of the electronic device 2. The electronic device 2 performs signal transmission on the pins from the first position 133 to the fifth position 137, the eighth position 138, and the ninth position 139 of the first connector 13 according to requirements.

[0085] In an embodiment of the present application, the first corresponding pin 211 of the second connector 21 in the electronic device 2 can perform signal transmission to the first pin 131 of the first connector 13, and transmit the target signal transmitted by the third functional circuit 22 of the electronic device 2 to the first functional circuit 11 through the first pin 131 of the first connector 13. The first functional circuit 11 can control the change of the enabling state of the battery 1 according to the received target signal. The target signal includes a low-voltage signal and a high-voltage signal. The low-voltage signal allows the battery 1 to perform charge and discharge operations, and the high-voltage signal prohibits the battery 1 from performing charge and discharge operations. The electronic device 2 does not perform signal transmission to the second pin 132 of the first connector 13.

[0086] As Figure 5 shown, in the embodiment of the present application, the second connector 21 may include a third corresponding pin 213 and a fourth corresponding pin 214;

[0087] The third corresponding pin 213 of the second connector 21 can be connected to the first pin 131 of the first connector 13 and perform signal transmission.

[0088] The fourth corresponding pin 214 of the second connector 21 can be connected to the second pin 132 of the first connector 13, but does not perform signal transmission.

[0089] The third functional circuit 22 can receive the time data of the first functional circuit 11 through the second connector 21.

[0090] In another embodiment of the present application, the third corresponding pin 213 of the second connector 21 in the electronic device 2 can transmit signals to the first pin 131 of the first connector 13, and transmit the target signal transmitted by the third functional circuit 22 of the electronic device 2 to the first functional circuit 11 through the first pin 131 of the first connector 13. The first connector 13 can transmit the signal for controlling the enabling state of the battery 1 to the first functional circuit 11 through the first pin 131. The first functional circuit 11 can receive the target signal for allowing the battery 1 to charge and discharge, and can control the fourth corresponding pin 214 of the second connector 21 and the second pin 132 of the first connector 13 not to transmit signals. At this time, the electronic device 2 can further include a fourth functional circuit, and the fourth functional circuit can have the same function as the second functional circuit 12 for providing time data, so as to realize the supply of time data through the fourth functional circuit in the electronic device 2.

[0091] As Figure 8 shown, in the embodiment of the present application, the second connector 21 includes a fifth corresponding pin 215 and a sixth corresponding pin 216;

[0092] The fifth corresponding pin 215 of the second connector 21 is connected to the first pin 131 of the first connector 13, and the sixth corresponding pin 216 of the second connector 21 is connected to the second pin 132 of the first connector 13; the third functional circuit 22 transmits the target signal for allowing the battery to charge and discharge to the battery 1 through the second connector 21, and the third functional circuit 22 receives the time data of the second functional circuit 12 through the second connector 21.

[0093] In yet another embodiment of the present application, the fifth corresponding pin 215 of the second connector 21 in the electronic device 2 can transmit signals to the first pin 131 of the first connector 13, and transmit the target signal transmitted by the third functional circuit 22 of the electronic device 2 to the first functional circuit 11 through the first pin 131 of the first connector 13. The first connector 13 can transmit the signal for controlling the enabling state of the battery 1 to the first functional circuit 11 through the first pin 131. The first functional circuit 11 can receive the target signal for allowing the battery 1 to charge and discharge, and this target signal is a low-voltage signal. The first functional circuit 11 can control the sixth corresponding pin 216 of the second connector 21 and the second pin 132 of the first connector 13 to transmit signals, and the third functional circuit 22 can receive the time data of the first functional circuit 11 through the second connector 21.

[0094] In this embodiment, the first connector 13 may have ten pins. Among the ten pins of the first connector 13, there may be ten positions. Both the first position 133 and the second position 134 may be positive pins. The third position 135 may be a clock function pin. The fourth position 136 may be a data function pin. The fifth position 137 may be an identification pin. The sixth position may be the first pin 131. The seventh position may be the second pin 132. The eighth position 138 is the sixth pin 140. Both the ninth position 139 and the tenth position may be negative pins. Correspondingly, the second connector 21 connected to the first connector 13 in the electronic device 2 may also have ten pins. The ten pins may be correspondingly arranged with the ten pins of the first connector 13 to facilitate the connection between the first connector 13 of the battery 1 and the second connector 21 of the electronic device 2.

[0095] In this embodiment, the electronic device 2 controls the battery 1 to have three different signal transmission modes. The ten pins of the first connector 13 of the battery 1 are correspondingly connected to the ten pins of the second connector 21 of the electronic device 2. The electronic device 2 can perform signal transmission on the pins from the first position 133 pin to the fifth position 137 pin, the ninth position 139, and the tenth position of the first connector 13 according to requirements.

[0096] In an embodiment of the present application, the first corresponding pin 211 of the second connector 21 in the electronic device 2 can perform signal transmission to the first pin 131 of the first connector 13. The target signal transmitted by the third functional circuit 22 of the electronic device 2 can be transmitted to the first functional circuit 11 through the first pin 131 of the first connector 13. The first functional circuit 11 controls the change of the enabling state of the battery 1 according to the received target signal. The target signal includes a low voltage signal and a high voltage signal. The low voltage signal allows the battery 1 to perform charge and discharge operations, and the high voltage signal prohibits the battery 1 from performing charge and discharge operations. The electronic device 2 does not perform signal transmission to the second pin 132 and the sixth pin 140 of the first connector 13.

[0097] In another embodiment of the present application, the third corresponding pin 213 of the second connector 21 in the electronic device 2 can perform signal transmission to the first pin 131 of the first connector 13, and transmit the target signal transmitted by the third functional circuit 22 of the electronic device 2 to the first functional circuit 11 through the first pin 131 of the first connector 13. The first connector 13 can transmit the signal for controlling the enabling state of the battery 1 to the first functional circuit 11 through the first pin 131. The first functional circuit 11 can receive the target signal allowing the battery 1 to charge and discharge, and can control the fourth corresponding pin 214 of the second connector 21 and the second pin 132 of the first connector 13 not to perform signal transmission, and control the electronic device 2 to perform signal transmission to the sixth pin 140 of the first connector 13. At this time, the electronic device 2 further includes a fourth functional circuit, and the fourth functional circuit has the same function as the second functional circuit 12, and is used to provide time data, so as to realize the supply of time data through the fourth functional circuit in the electronic device 2.

[0098] In yet another embodiment of the present application, the fifth corresponding pin 215 of the second connector 21 in the electronic device 2 performs signal transmission to the first pin 131 of the first connector 13, and transmits the target signal transmitted by the third functional circuit 22 of the electronic device 2 to the first functional circuit 11 through the first pin 131 of the first connector 13. The first connector 13 transmits the signal for controlling the enabling state of the battery 1 to the first functional circuit 11 through the first pin 131. The first functional circuit 11 receives the target signal allowing the battery 1 to charge and discharge, and can control the sixth corresponding pin 216 of the second connector 21 and the second pin 132 of the first connector 13 to perform signal transmission, and control the electronic device 2 not to perform signal transmission to the sixth pin 140 of the first connector 13. The third functional circuit 22 receives the time data of the first functional circuit 11 through the second connector 21.

[0099] It can be understood that the relevant features in the above devices can be referred to each other. In addition, the "first", "second", etc. in the above embodiments are used to distinguish each embodiment, and do not represent the advantages and disadvantages of each embodiment.

[0100] In the specification provided here, a large number of specific details are described. However, it can be understood that the embodiments of the present invention can be practiced without these specific details. In some instances, well-known structures and technologies are not shown in detail so as not to obscure the understanding of this specification.

[0101] In the description of this specification, the descriptions referring to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples", etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of this application. Moreover, the specific features, structures, materials, or characteristics described may be combined in any one or more embodiments or examples in a suitable manner. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of the different embodiments or examples.

[0102] As described above, it is only the specific implementation manner of this application, but the protection scope of this application is not limited thereto. Any person skilled in the art within the technical scope disclosed in this application can easily think of changes or substitutions, which should all be covered within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the claimed rights.

Claims

1. A battery, characterized in that, Comprising: A first functional circuit for controlling the enabling state of the battery; A second functional circuit for providing time data; A first connector for signal connection and power supply connection with an electronic device, the first connector having a first pin and a second pin, A first port of the first functional circuit is connected to the first pin, and the first port is used to receive a target signal for controlling the change of the enabling state through the first connector, A second port of the second functional circuit is connected to the second pin for transmitting the time data through the first connector.

2. The battery according to claim 1, wherein The battery includes at least one of a clock functional circuit, a data functional circuit, and an identity recognition functional circuit; The first connector includes at least one of a third pin, a fourth pin, and a fifth pin, the third pin corresponding to the clock functional circuit, the fourth pin corresponding to the data functional circuit, and the fifth pin corresponding to the identity recognition functional circuit.

3. The battery according to claim 2, wherein The first pin is located at the Nth position of the first connector, the second pin is located at the Mth position of the first connector, and the positions of the first pin and the second pin are the same as the positions of two corresponding pins in the corresponding electronic device.

4. The battery according to any one of claims 1-3, wherein The first connector has nine pin positions, the first position and the second position are both positive pins, the third position is a clock functional pin, the fourth position is a data functional pin, the fifth position is an identity recognition pin, the eighth position and the ninth position are both negative pins, the Nth position is the sixth position, and the Mth position is the seventh position.

5. The battery according to any one of claims 1-3, wherein The first connector has ten pin positions, the first position and the second position are both positive pins, the third position is a clock functional pin, the fourth position is a data functional pin, the fifth position is an identity recognition pin, the sixth position is the first pin, the seventh position is the second pin, the eighth position is the sixth pin, and the ninth position and the tenth position are both negative pins; Wherein, the sixth pin is a non-functional pin.

6. An electronic device, characterized in that, Including a battery, the battery includes a first functional circuit, a second functional circuit, and a first connector, the first functional circuit is used to control the enabling state of the battery, the second functional circuit is used to provide time data, the first connector is used for signal connection and power supply connection with an electronic device, the first connector has a first pin and a second pin, a first port of the first functional circuit is connected to the first pin, and the first port receives a target signal for controlling the change of the enabling state through the first connector, and a second port of the second functional circuit is connected to the second pin for transmitting the time data through the first connector.

7. The electronic device according to claim 6, characterized in that, Further comprising: A second connector, the second connector being connected to the first connector; The third functional circuit is used to receive signals from the battery and send signals to the battery. The third functional circuit includes a control module, and the control module is used to transmit a target signal to the battery.

8. The electronic device according to claim 7, wherein the second connector includes a first corresponding pin and a second corresponding pin; the first corresponding pin of the second connector is connected to the first pin of the first connector for signal transmission, the second corresponding pin of the second connector is connected to the second pin of the first connector, but no signal transmission is performed, the third functional circuit transmits the target signal to the battery through the second connector to control the change of the enabling state of the battery.

9. The electronic device according to claim 7, wherein the second connector includes a third corresponding pin and a fourth corresponding pin; the third corresponding pin of the second connector is connected to the first pin of the first connector and signal transmission is performed, the fourth corresponding pin of the second connector is connected to the second pin of the first connector, but no signal transmission is performed; the first functional circuit receives the target signal allowing the battery to charge and discharge from the third functional circuit through the second connector.

10. The electronic device according to claim 7, wherein the second connector includes a fifth corresponding pin and a sixth corresponding pin; the fifth corresponding pin of the second connector is connected to the first pin of the first connector, and the sixth corresponding pin of the second connector is connected to the second pin of the first connector; the third functional circuit transmits the target signal allowing the battery to charge and discharge to the battery through the second connector, and the third functional circuit receives the time data of the second functional circuit through the second connector.