Battery module, electronic equipment and battery module assembly control method thereof
By using light intensity sensors in the battery module of electronic equipment to detect the housing packaging and control the power supply of the battery module, the safety hazards caused by the battery module being charged during the assembly process are solved, and the risk of damage to precision chips is achieved is achieved.
Patent Information
- Application Number
- CN202311410309.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-27
- Publication Date
- 2025-05-06
AI Technical Summary
During the assembly process of electronic equipment, the battery module may be charged, resulting in short circuits in components or damage to precision chips, posing safety risks.
By setting a light intensity sensor in the battery module, the light intensity inside the housing is detected. When the housing is packaged, the light intensity decreases and the battery module starts to be powered, thereby avoiding the output of the battery module during the assembly process and ensuring safety.
It realizes that the battery module has no output during the assembly process, avoids the safety risks of live operation, ensures the safety of the assembly process, and reduces the risk of precision chip damage.
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Figure CN119944024A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electronic product production, and in particular to a battery module, an electronic device and a battery module assembly control method thereof. Background Art
[0002] In consumer electronic products, built-in batteries are widely used. Since batteries are used as power sources to provide electrical energy for electronic products, they usually supply power continuously. In the production process of electronic products, various components need to be assembled together. As one of the components of electronic products, the position of batteries in the assembly process of different electronic products is not fixed. For some products, the batteries cannot be connected in the last step. Due to the characteristics of batteries supplying power to the outside, some components will be charged by the batteries during the assembly process, which may cause short circuits in these charged components and damage to precision chips due to EOS (electrical overstress damage).
[0003] There are two common installation forms of existing batteries. One is that the positive and negative poles of the battery body are connected to wires, and power is achieved by welding the wires to the target; the other is that a flexible printed circuit board is connected to the battery body, and a board-to-board connector is welded on the end of the flexible printed circuit board facing away from the battery body, and power is achieved by snapping the board-to-board connector onto the target.
[0004] Currently, there is a method of adding a switch to the wire of the battery body to control the on and off of the power supply path by controlling the on and off of the switch. However, this method is not fool-proof and has the risk of omission, so there is still a safety risk of live electricity during the assembly process. Summary of the invention
[0005] The present invention provides a battery module, an electronic device and a battery module assembly control method thereof, so as to solve the problem that the electronic device has a safety risk of being electrified during the assembly process.
[0006] According to one aspect of the present invention, a battery module assembly control method for an electronic device is provided, wherein the electronic device comprises a housing and a battery module, wherein the battery module is arranged in the housing and is used to power the electronic device, and the battery module assembly control method comprises:
[0007] Acquiring the intensity of light irradiated into the interior of the housing;
[0008] Determining whether the housing is sealed according to the light intensity;
[0009] When it is detected that the shell has been sealed, the battery module is controlled to supply power to the electronic device.
[0010] In an optional embodiment of the present invention, the battery module includes a light intensity sensor, and the light intensity inside the shell is collected by the light intensity sensor.
[0011] In an optional embodiment of the present invention, the battery module assembly control method further includes:
[0012] Detecting whether the light intensity is greater than a preset light intensity;
[0013] The step of determining whether the housing is sealed according to the light intensity includes:
[0014] When it is detected that the light intensity is less than or equal to the preset light intensity, it is determined that the housing is sealed.
[0015] In an optional embodiment of the present invention, the light intensity sensor includes a photoresistor, and the battery module assembly control method further includes:
[0016] Detecting the resistance value of the photoresistor;
[0017] Accordingly, the detecting whether the light intensity is greater than a preset light intensity includes:
[0018] Detecting whether the resistance of the photoresistor is less than a preset resistance;
[0019] When it is detected that the resistance of the photoresistor is greater than or equal to the preset resistance, it is determined that the light intensity is less than or equal to the preset light intensity.
[0020] In an optional embodiment of the present invention, the detecting whether the light intensity is greater than a preset light intensity further includes:
[0021] When it is detected that the resistance of the photoresistor is less than the preset resistance, it is determined that the light intensity is greater than the preset light intensity.
[0022] In an optional embodiment of the present invention, determining whether the housing is sealed according to the light intensity further includes:
[0023] When it is detected that the light intensity is greater than the preset light intensity, it is determined that the housing is not sealed.
[0024] In an optional embodiment of the present invention, the battery module assembly control method further includes:
[0025] When it is detected that the shell is not sealed, the battery module is controlled to stop supplying power to the electronic device.
[0026] According to another aspect of the present invention, a battery module is provided, the battery module comprising:
[0027] at least one processor; and
[0028] a memory communicatively connected to the at least one processor; wherein,
[0029] The memory stores a computer program that can be executed by the at least one processor, and the computer program is executed by the at least one processor so that the at least one processor can execute the battery module assembly control method of the electronic device described in any embodiment of the present invention.
[0030] According to another aspect of the present invention, an electronic device is provided. The electronic device comprises a housing and the battery module according to any embodiment of the present invention.
[0031] According to another aspect of the present invention, a computer-readable storage medium is provided, wherein the computer-readable storage medium stores computer instructions, and the computer instructions are used to enable a processor to implement the battery module assembly control method for an electronic device described in any embodiment of the present invention when executed.
[0032] The technical solution of the embodiment of the present invention determines whether the shell is sealed by obtaining the intensity of light irradiated into the interior of the shell according to the intensity of light; when it is detected that the shell is sealed, the battery module is controlled to supply power to the electronic device. Since the battery module will supply power to the electronic device only when the shell is sealed, the battery module has no output during the assembly process. Thus, the battery module has no output during the assembly process, and can be operated without power. After the assembly is completed, the battery module outputs normally. The problem of potential safety hazards in the assembly process is solved, and the beneficial effect of safe assembly is achieved.
[0033] It should be understood that the contents described in this section are not intended to identify the key or important features of the embodiments of the present invention, nor are they intended to limit the scope of the present invention. Other features of the present invention will become easily understood through the following description. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0035] Figure 1 is a flow chart of a battery module assembly control method for an electronic device provided by an embodiment of the present invention;
[0036] Figure 2 is a circuit block diagram of a battery module for implementing a battery module assembly control method according to an embodiment of the present invention;
[0037] Figure 3 is a structural schematic diagram of a battery module for implementing a battery module assembly control method according to an embodiment of the present invention;
[0038] Figure 4 yes Figure 3 The structural diagram of the battery module;
[0039] Figure 5 It is a structural schematic diagram of a mainboard provided by an embodiment of the present invention.
[0040] Among them: 1. Battery module; 11. Battery body; 12. Battery control board; 13. Control chip; 131. Power input terminal; 132. Power output terminal; 133. Positive enable terminal; 134. Negative enable terminal; 14. Light intensity sensor; 141. Photoresistor; 15. Conductive piece; 16. Board-to-board connector; 2. Main board; 21. Internal circuit; 22. Connector socket; 221. Positive enable pin; 222. Negative enable pin. DETAILED DESCRIPTION
[0041] In order to enable those skilled in the art to better understand the scheme of the present invention, the technical scheme in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work should fall within the scope of protection of the present invention.
[0042] It should be noted that the terms "first", "second", etc. in the specification and claims of the present invention and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged where appropriate, so that the embodiments of the present invention described herein can be implemented in an order other than those illustrated or described herein. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device that includes a series of steps or units is not necessarily limited to those steps or units that are clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.
[0043] The embodiment of the present invention provides a battery module assembly control method for an electronic device, wherein the electronic device comprises a housing and a battery module, wherein the battery module is disposed in the housing and is used to power the electronic device, and the battery module needs to be installed inside the housing during production of the electronic device. This embodiment is applicable to production and assembly of electronic devices, and the battery module assembly control method can be executed by a control board of the battery module, and can be implemented in the form of hardware and / or software. Figure 1 As shown, the battery module assembly control method includes:
[0044] S110: Acquire the intensity of the light irradiated into the interior of the housing.
[0045] The light intensity inside the shell reflects the degree of illumination inside the shell. Specifically, a device capable of detecting light intensity can be arranged inside the shell to detect the light intensity inside the shell.
[0046] In an optional embodiment of the present invention, the battery module includes a light intensity sensor, and the light intensity inside the shell is collected by the light intensity sensor.
[0047] The light intensity sensor refers to a sensor that can detect the intensity of light. The light intensity sensor can be arranged inside the shell so as to detect the intensity of light inside the shell.
[0048] In some embodiments, the light intensity sensor is a photodiode sensor, which refers to a sensor that detects light signals through the photoelectric effect. It has the advantages of fast response speed, high sensitivity, and easy manufacturing. It is often used in the fields of photoelectric switches, light meters, photoelectric encoders, etc. Its working principle is: when the light beam is irradiated on the photodiode, it stimulates the flow of photoelectrons to form a current. The current size is proportional to the light intensity. By detecting the size of the current, the size of the light intensity can be determined.
[0049] In some embodiments, the light intensity sensor is a photoresistor sensor, which refers to a sensor that detects light signals by using the resistance change caused by light. It has the advantages of low cost and ease of use. It is often used in the fields of exposure control, brightness adjustment, astronomical observation, etc. Its working principle is: when light shines on the photoresistor, the resistance changes, and the resistance value is inversely proportional to the light intensity. By detecting the size of the resistance, the size of the light intensity can be determined.
[0050] In some embodiments, the light intensity sensor is a fiber optic sensor, which refers to a sensor that uses optical fibers to transmit optical signals to detect physical quantities. It has the advantages of anti-electromagnetic interference and high reliability. It is often used in the fields of temperature, pressure, displacement, etc. Its working principle is: by transmitting the optical signal to the measuring end through the optical fiber, and then converting the optical signal into an electrical signal for detection. The fiber optic sensor can select different optical fiber types according to different requirements, such as multi-mode optical fiber, single-mode optical fiber, fiber Bragg grating, etc.
[0051] S120: Determine whether the housing is sealed according to the light intensity.
[0052] When the electronic device is assembled, the housing will be sealed after the battery module and other accessories are assembled, so that the housing is airtight. At this time, the light intensity inside the housing is low. When the housing is not sealed, the ambient light can directly irradiate the inside of the housing, so that the light intensity inside the housing is high. Therefore, it can be determined whether the housing is sealed according to the light intensity.
[0053] S130: When it is detected that the shell has been sealed, control the battery module to supply power to the electronic device.
[0054] Among them, since the battery module will only supply power to the electronic device when the shell is sealed, the battery module has no output during the assembly process. Therefore, the battery module has no output during the assembly process and can be operated without power. After the assembly is completed, the battery module outputs normally to the outside, realizing the safe assembly of the electronic device.
[0055] In an optional embodiment of the present invention, the battery module assembly control method further includes: detecting whether the light intensity is greater than a preset light intensity.
[0056] The determining whether the shell is sealed according to the light intensity includes: when it is detected that the light intensity is less than or equal to a preset light intensity, determining that the shell is sealed.
[0057] The preset light intensity refers to the light intensity that the light intensity inside the shell is not greater than when the shell is sealed. Therefore, when the light intensity is less than or equal to the preset light intensity, it means that the shell has been sealed.
[0058] Based on the above embodiment, the determining whether the shell is sealed according to the light intensity further includes: when it is detected that the light intensity is greater than the preset light intensity, determining that the shell is not sealed. When the shell is not sealed, ambient light can directly irradiate the inside of the shell, so that the light intensity inside the shell is high, so when the light intensity is greater than the preset light intensity, it means that the shell is not sealed.
[0059] In an optional embodiment of the present invention, the battery module assembly control method further includes: when it is detected that the shell is not sealed, controlling the battery module to stop supplying power to the electronic device. Wherein, when the shell is not sealed, it means that the electronic device is still in the assembly process, so that the battery module has no output during the assembly process and can be operated without power, and the battery module outputs normally after the assembly is completed.
[0060] In an optional embodiment of the present invention, the light intensity sensor includes a photoresistor, and the battery module assembly control method further includes:
[0061] Detecting the resistance value of the photoresistor.
[0062] Accordingly, the detecting whether the light intensity is greater than a preset light intensity includes:
[0063] Detect whether the resistance of the photoresistor is greater than a preset resistance.
[0064] When it is detected that the resistance of the photoresistor is greater than the preset resistance, it is determined that the light intensity is less than the preset light intensity.
[0065] Among them, the photoresistor is a special resistor made of semiconductor materials such as cadmium sulfide or cadmium selenide. Its working principle is based on the internal photoelectric effect. The stronger the light, the lower the resistance. As the light intensity increases, the resistance value decreases rapidly. Therefore, the resistance value of the photoresistor can be used to determine whether the light intensity is greater than the preset light intensity.
[0066] The preset resistance value refers to the resistance value of the photoresistor when the light intensity is the preset light intensity. Since the higher the light intensity, the lower the resistance value of the photoresistor, and the smaller the light intensity, the higher the resistance value of the photoresistor, when it is detected that the resistance value of the photoresistor is greater than the preset resistance value, it means that the light intensity is less than the preset light intensity.
[0067] In an optional embodiment of the present invention, the detecting whether the light intensity is greater than a preset light intensity further includes: when it is detected that the resistance of the photoresistor is less than or equal to the preset resistance, determining that the light intensity is greater than or equal to the preset light intensity. Since the higher the light intensity, the lower the resistance of the photoresistor, and the smaller the light intensity, the higher the resistance of the photoresistor, when it is detected that the resistance of the photoresistor is less than or equal to the preset resistance, it means that the light intensity is greater than or equal to the preset light intensity.
[0068] Through the above scheme, the relationship between the light intensity and the preset light intensity can be determined by detecting the resistance value of the photoresistor, and then whether the shell is encapsulated can be determined. Finally, the output of the battery module can be controlled according to the encapsulation condition of the shell. That is, the assembly state of the electronic device can be determined according to the resistance value of the photoresistor, and then the output of the battery module can be controlled, thereby achieving the effect of safe assembly.
[0069] In an optional embodiment of the present invention, a battery module 1 is provided, such as Figure 2As shown, the battery module 1 includes at least one processor 70, and a memory 71 connected to the at least one processor 70, such as a read-only memory (ROM), a random access memory (RAM), etc., wherein the memory 71 stores a computer program that can be executed by at least one processor, and the processor 70 can perform various appropriate actions and processes according to the computer program stored in the read-only memory (ROM) or the computer program loaded from the storage unit to the random access memory (RAM). In the RAM, various programs and data required for the operation of the battery module can also be stored. The processor 70, ROM and RAM are connected to each other through a bus. The input / output (I / O) interface is also connected to the bus.
[0070] The processor 70 may be a variety of general and / or special processing components with processing and computing capabilities. Some examples of the processor 70 include, but are not limited to, a central processing unit (CPU), a graphics processing unit (GPU), various dedicated artificial intelligence (AI) computing chips, various processors running machine learning model algorithms, a digital signal processor (DSP), and any appropriate processor 70, controller, microcontroller, etc. The processor 70 performs the various methods and processes described above, such as a battery module assembly control method for an electronic device.
[0071] The battery module further includes an input device 72 and an output device 73. The processor 70, the memory 71, the input device 72 and the output device 73 may be connected via a bus or other means. Figure 2 The example of connecting through bus is taken in the following.
[0072] The input device 72 can be used to receive input digital or character information, and generate key signal input related to user settings and function control of the device / terminal / server. Specifically, the input device 72 may include an I / O interface for input. The output device 73 is used to output digital or character information or signal output related to function control. Specifically, the output device 73 may include an I / O interface for output.
[0073] In an optional embodiment of the present invention, Figure 3-Figure 5 As shown, an electronic device is provided. The electronic device includes a housing and a battery module 1 according to any embodiment of the present invention. The battery module 1 is installed inside the housing during the assembly of the electronic device.
[0074] In some embodiments, a mainboard 2 for installing a battery module 1 is provided on the electronic device, the battery module 1 includes a battery body 11 and a battery control board 12, and a control chip 13 and a light intensity sensor 14 are provided on the battery control board 12; the processor 70 and the memory 71 are integrated inside the control chip 13, the control chip 13 includes an electric energy input terminal 131, an electric energy output terminal 132 and an enable terminal, the battery body 11 is electrically connected to the electric energy input terminal 131 of the control chip 13, and the electric energy output terminal 132 of the control chip 13 is electrically connected to the mainboard 2; the light intensity sensor 14 is electrically connected to the enable terminal, and the control chip 13 is used to control the electric energy output terminal 132 to cut off the electric energy output when the light intensity of the light irradiating the light intensity sensor 14 is greater than a preset intensity, and is used to control the electric energy output terminal 132 to output electric energy when the light intensity of the light irradiating the light intensity sensor 14 is less than or equal to the preset intensity.
[0075] When assembling an electronic device, after the battery module 1 and other accessories are assembled, the shell will be encapsulated to make the shell airtight. At this time, the light intensity inside the shell is low. When the shell is not encapsulated, ambient light can directly irradiate the inside of the shell, so that the light intensity inside the shell is higher. The preset light intensity refers to the light intensity that the light intensity inside the shell is less than or equal to when the shell is encapsulated. Through the above scheme, the battery module 1 will output electrical energy to power the electronic device only when the shell is encapsulated, so during the assembly process, the battery module 1 has no output. Thereby, the battery module 1 has no output during the assembly process, and can be operated without power. After the assembly is completed, the battery module 1 outputs normally to the outside, realizing the safe assembly of the electronic device.
[0076] In an optional embodiment of the present invention, the enable terminal includes a positive enable terminal 133 and a negative enable terminal 134 , and the positive enable terminal 133 and the negative enable terminal 134 are used to form a closed enable loop with the light intensity sensor 14 when the control chip 13 is electrically connected to the mainboard 2 .
[0077] In some embodiments, the light intensity sensor 14 is a photoresistor 141 , and the photoresistor 141 is connected in series between the positive enable terminal 133 and the negative enable terminal 134 .
[0078] Exemplarily, the control chip 13 is used to control the power output terminal 132 to cut off the power output when the impedance between the positive enable terminal 133 and the negative enable terminal 134 is less than the preset impedance when a closed enable loop is formed, and control the power output terminal 132 to output power when the impedance between the positive enable terminal 133 and the negative enable terminal 134 is not less than the preset impedance. The preset impedance refers to the impedance between the positive enable terminal 133 and the negative enable terminal 134 when the light intensity is the preset light intensity. The resistance of the photoresistor 141 will affect the impedance between the positive enable terminal 133 and the negative enable terminal 134. The higher the resistance of the photoresistor 141, the greater the impedance between the positive enable terminal 133 and the negative enable terminal 134. The lower the resistance of the photoresistor 141, the smaller the impedance between the positive enable terminal 133 and the negative enable terminal 134.
[0079] Since the higher the light intensity, the lower the resistance of the photoresistor 141, and the smaller the light intensity, the higher the resistance of the photoresistor 141, when it is detected that the impedance between the positive enable terminal 133 and the negative enable terminal 134 is not less than the preset impedance, it means that the light intensity is less than or equal to the preset light intensity. At this time, the electronic device is assembled and the power output terminal 132 is controlled to output power. When it is detected that the impedance between the positive enable terminal 133 and the negative enable terminal 134 is less than the preset impedance, it means that the light intensity is greater than the preset light intensity. At this time, the electronic device is in an assembled state, and the power output terminal 132 is controlled to cut off the power output. In this way, the battery module 1 has no output during the assembly process and can be operated without power. After the assembly is completed, the battery module 1 outputs normally to the outside, and the safe assembly of the electronic device is achieved.
[0080] In an optional embodiment of the present invention, the battery module 1 is used to be mounted on the mainboard 2 through a conductive member 15. Preferably, the conductive member 15 is a flexible printed circuit board.
[0081] In some embodiments, the end of the flexible printed circuit board facing away from the control board is electrically connected to a board-to-board connector 16, and the main board 2 is provided with a connector socket 22 for the board-to-board connector 16 to be snapped in. Thus, the main board 2 and the battery module 1 are conveniently connected.
[0082] In an optional embodiment of the present invention, the main board 2 includes an internal circuit 21, and the connector socket 22 includes a positive enable pin 221 and a negative enable pin 222, and the positive enable pin 221 and the negative enable pin 222 are electrically connected through the internal circuit 21 of the main board 2; the positive enable pin 221 is used to be electrically connected to the positive enable terminal 133 when the board-to-board connector 16 and the connector socket 22 are snap-fitted, and the negative enable pin 222 is used to be electrically connected to the negative enable terminal 134 when the board-to-board connector 16 and the connector socket 22 are snap-fitted.
[0083] The specific working logic of this embodiment is described below:
[0084] When the battery module 1 is not assembled, the positive enable terminal 133 is not electrically connected to the positive enable pin 221, and the negative enable pin 222 is not electrically connected to the negative enable terminal 134, so a closed enable loop is not formed. At this time, the power output terminal 132 of the battery module 1 has no output.
[0085] When the electronic device is in the process of assembling, the battery module 1 is connected to the mainboard 2 to form a closed enabling loop. Since the housing is not encapsulated during the assembly process, the light intensity is high, so the resistance of the photoresistor 141 is low. At this time, the impedance between the positive enabling terminal 133 and the negative enabling terminal 134 is less than the preset impedance, so the control chip 13 controls the power output terminal 132 to cut off the power output. Therefore, as long as the assembly process is in progress, the battery module 1 is always controlled not to output.
[0086] When the electronic device is assembled, the shell is packaged and the inside of the shell is sealed, so the light intensity is low, the resistance of the photoresistor 141 is large, and the impedance between the positive enable terminal 133 and the negative enable terminal 134 is also large, and thus not less than the preset impedance, so the power output terminal 132 is controlled to output power.
[0087] In summary, the battery module 1 has no output during the assembly process and can be operated without power. After the assembly is completed, the battery module 1 outputs normally, which improves safety and reduces the risk of damage to precision chips. At the same time, the design becomes simpler, and there is no need to consider related protection designs, and there are few constraints on the structural shape design. It also reduces production costs and does not require the introduction of protective materials.
[0088] In some embodiments, the battery module assembly control method of the electronic device can be implemented as a computer program, which is tangibly contained in a computer readable storage medium. Figure 2 As shown, part or all of the computer program can be loaded and / or installed on the battery module 1 via the ROM and / or the communication device. When the computer program is loaded into the RAM and executed by the processor 70, one or more steps of the battery module assembly control method of the electronic device described above can be executed. Alternatively, in other embodiments, the processor 70 can be configured to execute the battery module assembly control method of the electronic device in any other appropriate manner (for example, by means of firmware).
[0089] Various embodiments of the systems and techniques described above herein can be implemented in digital electronic circuit systems, integrated circuit systems, field programmable gate arrays (FPGAs), application specific integrated circuits (ASICs), application specific standard products (ASSPs), systems on chips (SOCs), load programmable logic devices (CPLDs), computer hardware, firmware, software, and / or combinations thereof. These various embodiments may include: being implemented in one or more computer programs, which can be executed and / or interpreted on a programmable system including at least one programmable processor, which can be a dedicated or general programmable processor, which can receive data and instructions from a memory 71, at least one input device 72, and at least one output device 73, and transmit data and instructions to the memory 71, the at least one input device 72, and the at least one output device 73.
[0090] Computer programs for implementing the methods of the present invention may be written in any combination of one or more programming languages. These computer programs may be provided to a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing device, so that when the computer program is executed by the processor, the functions / operations specified in the flow chart and / or block diagram are implemented. The computer program may be executed entirely on the machine, partially on the machine, partially on the machine and partially on a remote machine as a stand-alone software package, or entirely on a remote machine or server.
[0091] In the context of the present invention, a computer-readable storage medium may be a tangible medium that may contain or store a computer program for use by or in combination with an instruction execution system, device or equipment. A computer-readable storage medium may include, but is not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, devices or equipment, or any suitable combination of the foregoing. Alternatively, a computer-readable storage medium may be a machine-readable signal medium. A more specific example of a machine-readable storage medium may include an electrical connection based on one or more lines, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable compact disk read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
[0092] It should be understood that the various forms of processes shown above can be used to reorder, add or delete steps. For example, the steps described in the present invention can be executed in parallel, sequentially or in different orders, as long as the desired results of the technical solution of the present invention can be achieved, and this document does not limit this.
[0093] The above specific implementations do not constitute a limitation on the protection scope of the present invention. It should be understood by those skilled in the art that various modifications, combinations, sub-combinations and substitutions can be made according to design requirements and other factors. Any modification, equivalent substitution and improvement made within the spirit and principle of the present invention should be included in the protection scope of the present invention.
Claims
1. A battery module assembly control method for an electronic device, characterized in that: The electronic device comprises a housing and a battery module, wherein the battery module is arranged in the housing and is used to supply power to the electronic device, and the battery module assembly control method comprises: Acquiring the intensity of light irradiated into the interior of the housing; Determining whether the housing is sealed according to the light intensity; When it is detected that the shell has been sealed, the battery module is controlled to supply power to the electronic device.
2. The method for controlling the assembly of a battery module of an electronic device according to claim 1, characterized in that: The battery module includes a light intensity sensor, and the light intensity inside the shell is collected by the light intensity sensor.
3. The method for controlling the assembly of a battery module of an electronic device according to claim 2, characterized in that: The battery module assembly control method further includes: Detecting whether the light intensity is greater than a preset light intensity; The step of determining whether the housing is sealed according to the light intensity includes: When it is detected that the light intensity is less than or equal to the preset light intensity, it is determined that the housing is sealed.
4. The method for controlling the assembly of a battery module of an electronic device according to claim 3, characterized in that: The light intensity sensor includes a photoresistor, and the battery module assembly control method further includes: Detecting the resistance value of the photoresistor; Accordingly, the detecting whether the light intensity is greater than a preset light intensity includes: Detecting whether the resistance of the photoresistor is less than a preset resistance; When it is detected that the resistance of the photoresistor is greater than or equal to the preset resistance, it is determined that the light intensity is less than or equal to the preset light intensity.
5. The method for controlling the assembly of a battery module of an electronic device according to claim 4, characterized in that: The detecting whether the light intensity is greater than a preset light intensity further includes: When it is detected that the resistance of the photoresistor is less than the preset resistance, it is determined that the light intensity is greater than the preset light intensity.
6. The method for controlling the assembly of a battery module of an electronic device according to any one of claims 3 to 5, characterized in that: The determining whether the housing is sealed according to the light intensity further comprises: When it is detected that the light intensity is greater than the preset light intensity, it is determined that the housing is not sealed.
7. The method for controlling the assembly of a battery module of an electronic device according to claim 6, characterized in that: The battery module assembly control method further includes: When it is detected that the shell is not sealed, the battery module is controlled to stop supplying power to the electronic device.
8. A battery module, characterized in that: The battery module comprises: at least one processor; and a memory communicatively connected to the at least one processor; wherein, The memory stores a computer program executable by the at least one processor, and the computer program is executed by the at least one processor so that the at least one processor can execute the battery module assembly control method of the electronic device described in any one of claims 1-7.
9. An electronic device, characterized in that: The electronic device comprises a housing and the battery module according to claim 8.
10. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores computer instructions, and the computer instructions are used to enable a processor to implement the battery module assembly control method for an electronic device according to any one of claims 1 to 7 when executed.