Battery replacement starting method, system and device, electronic equipment and readable storage medium

By providing a battery swapping initiation intermediate page via mobile communication or near-field communication when the terminal of the battery swapping station detects abnormal network signals, the problem of battery swapping failure caused by abnormal network signals is solved, enabling smooth battery swapping under abnormal conditions and improving user experience.

CN122437852APending Publication Date: 2026-07-21ZHEJIANG XIAOJU GREEN ENERGY TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHEJIANG XIAOJU GREEN ENERGY TECHNOLOGY CO LTD
Filing Date
2025-01-13
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing battery swapping stations cannot quickly initiate battery swapping operations when network signals are abnormal, resulting in a decline in user experience.

Method used

When an abnormal network signal is detected, the battery swapping startup intermediate page is displayed, providing mobile communication or near-field communication methods. The battery swapping request is sent to the server through the corresponding communication control, and the battery swapping cabinet is controlled to perform the battery swapping.

Benefits of technology

It enables battery swapping operations to be completed smoothly even in the event of abnormal network signal, improving the user's battery swapping experience and success rate, and avoiding additional facilities and complexity.

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Abstract

Embodiments of the present application disclose a battery replacement starting method, system and device, electronic equipment and a readable storage medium. The method comprises receiving a starting instruction; in response to receiving the starting instruction, detecting a network signal state; in response to network signal anomaly, displaying a battery replacement starting intermediate page, which is a mobile communication starting page or a near field communication starting page; in response to a communication control corresponding to the battery replacement starting intermediate page being triggered, sending a battery replacement request to a server based on the corresponding communication mode, so that the server controls a battery replacement cabinet to replace a battery for a battery replacement device based on battery replacement information in the battery replacement request, wherein the battery replacement information comprises a battery replacement station identifier, a battery replacement device identifier and a battery replacement device position. Thus, the above method can realize battery replacement starting when the network signal is abnormal.
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Description

Technical Field

[0001] This invention relates to the field of battery swapping station technology, and specifically to a battery swapping startup method, system, device, electronic device, and readable storage medium. Background Technology

[0002] With the increasing demand for battery replacement in vehicles and other devices, the supply of battery swapping stations is also expanding rapidly. These stations are located in diverse areas, ranging from city centers to remote suburbs, and from developed cities to remote towns. Currently, battery swapping operations are typically achieved through network communication between the terminal on the swapping device and the swapping station. However, in situations with poor network conditions or network instability, rapid battery swapping may be impossible. Summary of the Invention

[0003] In view of this, the purpose of this invention is to provide a battery swapping startup method, system, device, electronic device, and readable storage medium to enable battery swapping startup when the network signal is abnormal.

[0004] In a first aspect, embodiments of the present invention aim to provide a battery swapping start-up method, the method comprising:

[0005] Receive startup command;

[0006] Upon receiving a start command, the network signal status is checked;

[0007] In response to network signal abnormality, the battery swapping startup intermediate page is displayed, which is either the mobile communication startup page or the near-field communication startup page.

[0008] In response to the triggering of the communication control corresponding to the battery swapping start-up intermediate page, a battery swapping request is sent to the server based on the corresponding communication method, so that the server controls the battery swapping cabinet to swap batteries for the battery swapping equipment based on the battery swapping information in the battery swapping request. The battery swapping information includes the battery swapping station identifier, the battery swapping equipment identifier, and the location of the battery swapping equipment.

[0009] Furthermore, the display of the battery swap startup intermediate page includes:

[0010] Detect the status of communication signals;

[0011] In response to a normal communication signal, the mobile communication startup page is displayed to send a battery swap request based on mobile communication;

[0012] In response to a communication signal anomaly, a near-field communication startup page is displayed to send a battery swapping request based on near-field communication.

[0013] Furthermore, the detection of the communication signal status includes:

[0014] Display a switching prompt message, which is used to prompt the user to switch to the battery swapping start mode;

[0015] In response to the switching of the battery swapping start-up mode, the status of the communication signal is detected.

[0016] Furthermore, the communication control corresponding to the mobile communication launch page includes an SMS control, and the step of sending a battery swap request to the server based on the corresponding communication method in response to the triggering of the communication control corresponding to the battery swap launch intermediate page includes:

[0017] In response to the SMS control being triggered, the system redirects to the message sending page, which includes a message filling area and a message sending control.

[0018] The SMS content is filled into the information filling area according to the pre-set filling rules;

[0019] In response to the message sending control being triggered, a text message including the text message content is sent to the server.

[0020] Furthermore, the communication control corresponding to the mobile communication launch page includes a telephone control, and the step of sending a battery swap request to the server based on the corresponding communication method in response to the triggering of the communication control corresponding to the battery swap launch intermediate page includes:

[0021] In response to the triggering of the telephone control, the user is redirected to a telephone dialing page, which includes call content and call sending controls.

[0022] In response to the call sending control being triggered, a telephone communication connection is established with the server;

[0023] The call content is sent to the server based on the telephone communication connection.

[0024] Furthermore, the step of responding to the triggering of the communication control corresponding to the battery swap initiation intermediate page and sending a battery swap request to the server based on the corresponding communication method includes:

[0025] In response to the triggering of the communication control in the near-field communication startup page, a near-field communication connection is established with the battery swapping cabinet;

[0026] The battery swapping cabinet sends a battery swapping request to the battery swapping cabinet based on the near-field communication connection, so that the battery swapping cabinet sends the battery swapping request to the server.

[0027] Furthermore, the method also includes:

[0028] In response to the successful verification of the battery swapping information in the battery swapping request, the system receives and displays the battery swapping initiation result corresponding to the battery swapping request. The verification of the battery swapping information includes security verification and functional verification.

[0029] Secondly, embodiments of the present invention aim to provide a battery swapping startup system, the system including a terminal, a battery swapping cabinet, a server, and battery swapping equipment;

[0030] The terminal is configured to receive a startup command, and in response to receiving the startup command, detect the network signal status; in response to an abnormal network signal, display a battery swapping startup intermediate page, which is either a mobile communication startup page or a near-field communication startup page; and in response to the communication control corresponding to the battery swapping startup intermediate page being triggered, send a battery swapping request to the server based on the corresponding communication method.

[0031] The server is configured to, in response to receiving a battery swapping request, control the battery swapping cabinet to swap batteries for the battery swapping device based on the battery swapping information in the battery swapping request. The battery swapping information includes the battery swapping station identifier, the battery swapping device identifier, and the location of the battery swapping device.

[0032] The battery swapping cabinet is configured to be controlled to swap batteries for the battery swapping equipment.

[0033] Thirdly, embodiments of the present invention aim to provide a battery swapping start-up device, the device comprising:

[0034] The detection unit is used to receive the start command; in response to receiving the start command, it detects the network signal status.

[0035] A startup unit is used to display a battery swapping startup intermediate page in response to a network signal anomaly. The battery swapping startup intermediate page is either a mobile communication startup page or a near-field communication startup page.

[0036] The processing unit is configured to respond to the triggering of the communication control corresponding to the battery swapping start-up intermediate page, and send a battery swapping request to the server based on the corresponding communication method, so that the server controls the battery swapping cabinet to swap batteries for the battery swapping equipment based on the battery swapping information in the battery swapping request. The battery swapping information includes the battery swapping station identifier, the battery swapping equipment identifier, and the location of the battery swapping equipment.

[0037] Fourthly, embodiments of the present invention aim to provide a computer program product, the computer program product including a computer program / instruction, which, when executed by a processor, implements the method described in any of the preceding claims.

[0038] Fifthly, embodiments of the present invention aim to provide an electronic device, including a memory and a processor, the memory being used to store one or more computer program instructions, wherein the one or more computer program instructions are executed by the processor to implement the method as described in any of the preceding claims.

[0039] Sixthly, embodiments of the present invention aim to provide a computer-readable storage medium storing a computer program that, when executed by a processor, implements the method described in any of the preceding claims.

[0040] The technical solution of this embodiment displays a battery swapping initiation intermediate page upon receiving a start command and detecting a network signal anomaly. The corresponding communication control on the intermediate page is triggered, sending a battery swapping request to the server based on the corresponding communication method. This allows the server to control the battery swapping cabinet to swap batteries for the equipment based on the battery swapping information in the request, ensuring battery swapping can still be initiated even with network signal anomalies, thus improving the user's battery swapping experience. Furthermore, by displaying a mobile communication initiation page or a near-field communication initiation page, different battery swapping initiation methods can be provided to users when the network signal is abnormal, thereby increasing the success rate of battery swapping and further enhancing the user's battery swapping experience. Attached Figure Description

[0041] The above and other objects, features and advantages of the present invention will become clearer from the following description of embodiments of the invention with reference to the accompanying drawings, in which:

[0042] Figure 1 This is a schematic diagram of the battery swapping start system according to an embodiment of the present invention;

[0043] Figure 2 This is a flowchart of the battery swapping start-up method according to an embodiment of the present invention;

[0044] Figure 3 This is a flowchart of the display of the battery swapping startup intermediate page according to an embodiment of the present invention;

[0045] Figure 4 This is a flowchart illustrating the detection of communication signal status according to an embodiment of the present invention;

[0046] Figure 5 This is a flowchart illustrating the process of initiating battery swapping via mobile communication according to an embodiment of the present invention;

[0047] Figure 6 This is a flowchart illustrating the process of initiating battery swapping via near-field communication according to an embodiment of the present invention;

[0048] Figure 7 This is an overall flowchart of the battery swapping startup process according to an embodiment of the present invention;

[0049] Figure 8 This is a schematic diagram of the battery swapping startup switching page according to an embodiment of the present invention;

[0050] Figure 9 This is a schematic diagram of the mobile communication startup page according to an embodiment of the present invention;

[0051] Figure 10This is a schematic diagram of the information sending page according to an embodiment of the present invention;

[0052] Figure 11 This is a schematic diagram of a telephone dialing page according to an embodiment of the present invention;

[0053] Figure 12 This is a schematic diagram of the near-field communication startup page according to an embodiment of the present invention;

[0054] Figure 13 This is a schematic diagram of the battery swapping start-up device according to an embodiment of the present invention;

[0055] Figure 14 This is a schematic diagram of an electronic device according to an embodiment of the present invention. Detailed Implementation

[0056] The present application is described below based on embodiments, but it is not limited to these embodiments. In the detailed description of the present application below, certain specific details are described in detail. Those skilled in the art can fully understand the present application without these details. To avoid obscuring the substance of the present application, well-known methods, processes, flows, elements, and circuits are not described in detail.

[0057] Furthermore, those skilled in the art should understand that the accompanying drawings provided herein are for illustrative purposes only and are not necessarily drawn to scale.

[0058] Unless the context explicitly requires it, words such as "including" or "contains" throughout the application should be interpreted as including rather than exclusive or exhaustive; that is, meaning "including but not limited to".

[0059] In the description of this application, it should be understood that the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, in the description of this application, unless otherwise stated, "a plurality of" means two or more.

[0060] It should be noted that the vehicle-side or user-related data involved in this embodiment are all determined with the user's authorization, in order to provide convenience to users while protecting their privacy and thereby improving the user experience. Furthermore, this application acquires, collects, stores, uses, processes, transmits, provides, and presents data in accordance with relevant laws and regulations, without infringing on the privacy of others, and without violating public order and good morals.

[0061] Since existing battery swapping operations are typically implemented through network communication between the terminal on the battery swapping device side and the server on the battery swapping station side, network signal anomalies such as poor network conditions or network instability can affect the smooth execution of battery swapping startup. Therefore, this invention aims to provide a battery swapping startup method to enable battery swapping startup under network signal anomalies, avoiding the inability to successfully perform battery swapping due to network signal abnormalities, thereby improving the user's battery swapping experience.

[0062] In this embodiment, a battery swapping start method for replacing a vehicle battery is used as an example for explanation. However, it should be understood that the battery swapping start method in this embodiment can also be applied to other devices that require battery swapping, such as electric two-wheelers, and the application scenarios of this method are not limited here.

[0063] Figure 1 This is a schematic diagram of a battery swapping start system according to an embodiment of the present invention. Figure 1 As shown, the battery swapping startup system in this embodiment includes a server 1, a terminal 2, a battery swapping cabinet 3, and battery swapping equipment 4. The server 1 communicates with the terminal 2 and the battery swapping cabinet 3 via a network, thereby enabling information and data exchange. It should be understood that when a battery swapping station includes multiple battery swapping cabinets and multiple users need to swap batteries, multiple terminals and multiple battery swapping cabinets will communicate with the server. Figure 1 The image shows only a certain number of terminals and battery swapping cabinets, but this does not mean that the number of terminals and battery swapping cabinets is limited.

[0064] Server 1 should be understood as a device that provides data management, database, and communication facilities for providing battery swapping management services. For example, Server 1 can refer to a single physical server with associated communication, data storage, and database facilities, or it can refer to a networked or aggregated collection of processors, associated networks, and storage devices, operating software and one or more database systems and application software that support the services provided by the server. The server can be a monolithic server or a distributed server spanning multiple computers or computer data centers, or it can be various types of cloud servers. In some embodiments, each server may include hardware, software, or embedded logical components for performing suitable functions supported or implemented by the server, or a combination of two or more such components.

[0065] Terminal 2 is a communication terminal capable of running computer programs. These communication terminals can be mobile phones, tablets, PDAs, wearable devices, vehicle-mounted terminals, or other terminal devices. Terminal 2 has a communication module, including at least one communication module, which can be a communication circuit for communication such as WLAN, GPRS, 2G / 3G / 4G / 5G remote communication, Bluetooth / NFC near-field communication, etc. Terminal 2 also has a display device and an input device. The display device can be a liquid crystal display, an LED display, or a projection device. The input device can include, for example, a touchscreen, buttons, pressure sensors, etc. Terminal 2 receives the user's battery swapping command through the input device and interacts with relevant personnel through the display device.

[0066] During battery swapping startup, the user issues a battery swapping startup command through the battery swapping application (including an APP or mini-program) on the corresponding terminal 2. Upon receiving the startup command, terminal 2 checks the current network signal status. If the network signal is normal, it sends a battery swapping request to server 1 via network communication connection. Alternatively, if the network signal is abnormal, it displays a battery swapping startup intermediate page corresponding to different communication methods to the user, guiding them to select a communication method other than network communication connection, such as mobile communication connection or near-field communication connection, to send a battery swapping request to server 1. After receiving the battery swapping request from terminal 2, server 1 controls the battery swapping cabinet 3 to swap the battery for the battery swapping device 4 based on the battery swapping information in the request. Therefore, this embodiment, by displaying a battery swapping startup intermediate page corresponding to different communication methods to the user when the network signal is abnormal and providing different communication methods for sending battery swapping requests, enables battery swapping startup even in cases of abnormal network signal, overcoming the inability to successfully perform battery swapping due to abnormal network signal, thereby improving the user's battery swapping experience.

[0067] Figure 2 This is a flowchart of the battery swapping start-up method according to an embodiment of the present invention. Figure 2 As shown, the battery swapping start method in this embodiment is applied to the terminal and is implemented through the following methods.

[0068] In step S210, a start command is received.

[0069] In this embodiment, to facilitate battery swapping for users, the battery swapping application on the terminal is usually equipped with a battery swapping start control. After the user triggers the battery swapping start control by clicking, swiping or other input methods, the user can send a start command to the terminal.

[0070] Optionally, in this embodiment, the status of the battery swapping equipment is detected before displaying the battery swapping start control to the user. Taking a vehicle as an example, the terminal will only display the triggerable battery swapping start control after the battery swapping cabinet detects that the vehicle has entered and stopped through the barrier gate or other detection device. This ensures that the vehicle battery swapping is carried out in a safe and reliable environment, guarantees the operability of battery swapping, and improves battery swapping efficiency and safety.

[0071] In step S220, in response to receiving the start command, the network signal status is detected.

[0072] In this embodiment, after receiving the start command issued by the user, the terminal automatically detects the network signal status and determines the appropriate communication connection method to initiate a battery swapping request to the server based on the network signal status.

[0073] Optionally, in this embodiment, the network signal status is determined by performing network status diagnosis on the terminal. The network signal status can be determined by the downlink bandwidth of the network. When the downlink bandwidth is greater than a preset bandwidth threshold, the network signal is determined to be normal; when the downlink bandwidth is less than or equal to the preset bandwidth threshold, the network signal is determined to be abnormal. The bandwidth threshold can be set according to specific application scenarios, and the specific value of the bandwidth threshold is not limited here.

[0074] In step S230, in response to a network signal abnormality, the battery swapping startup intermediate page is displayed. The battery swapping startup intermediate page can be either the mobile communication startup page or the near-field communication startup page.

[0075] In this embodiment, the purpose of displaying the battery swapping startup intermediate page is to show the user the available communication connection methods for the terminal. Optionally, the battery swapping startup intermediate page can display communication controls corresponding to different communication methods simultaneously, or it can display only the communication controls corresponding to a single communication method.

[0076] Furthermore, considering that there may be multiple communication connection methods under the same communication method, and that different communication methods may have technical differences when used, the battery swapping startup intermediate page in this embodiment only displays the communication control corresponding to a single communication method.

[0077] Optionally, when the available communication methods of the terminal include network communication connection, mobile communication connection, and near-field communication connection, the battery swapping startup intermediate page in this embodiment is either the mobile communication startup page corresponding to the mobile communication connection or the near-field communication startup page corresponding to the near-field communication connection. However, it should be understood that the communication method types and the display methods of the battery swapping startup intermediate pages corresponding to the communication methods given in this embodiment are only examples and are not intended to limit the scope of the invention.

[0078] Alternatively, in this embodiment, when starting the battery swap, a suitable communication method will be selected from different communication methods based on a preset priority order to ensure that the communication connection during the battery swap start is carried out smoothly and orderly.

[0079] Optionally, in this embodiment, when determining the communication method for initiating battery swapping, the preset priority order from high to low is network communication, mobile communication, and near-field communication. That is, when network communication is available, battery swapping is initiated via network communication; when network communication is unavailable, battery swapping is initiated via mobile communication; and when both network and mobile communication are unavailable, battery swapping is initiated via near-field communication. Therefore, this embodiment can promptly provide a suitable communication method to initiate battery swapping when network communication is unavailable, thereby ensuring the smooth execution of battery swapping initiation, improving the success rate of battery swapping initiation, and enhancing the user's battery swapping experience.

[0080] Figure 3 This is a flowchart illustrating the display of the intermediate page for battery swapping startup, according to an embodiment of the present invention. Figure 3 As shown, the method for displaying the battery swapping startup intermediate page in this embodiment includes the following methods.

[0081] In step S310, the status of the communication signal is detected.

[0082] Optionally, in this embodiment, the communication signal status can be automatically detected after an abnormal network signal is detected; alternatively, after an abnormal network signal is detected, the user can be prompted whether to switch to the battery swapping start mode first, and then the user's choice can be made to determine whether to detect the communication signal status. In other words, in this embodiment, the timing of detecting the communication signal status can be either after an abnormal network signal is detected, or after an abnormal network signal is detected and the user confirms switching to the battery swapping start mode.

[0083] Furthermore, in this embodiment, the timing for detecting the communication signal status can be determined based on the degree of anomaly in the network signal. Correspondingly, when detecting the communication signal status, this embodiment first determines the degree of anomaly in the network signal, and then determines the timing for detecting the communication signal status based on the degree of anomaly in the network signal.

[0084] Specifically, in this embodiment, two bandwidth thresholds can be preset, including a first bandwidth threshold and a second bandwidth threshold, with the first bandwidth threshold being greater than the second bandwidth threshold. Further, when the downlink bandwidth is greater than the first bandwidth threshold, the network signal is determined to be normal; when the downlink bandwidth is less than or equal to the first bandwidth threshold, or when the terminal and server cannot establish a communication link, the network signal is determined to be abnormal. Furthermore, when the downlink bandwidth is greater than the second bandwidth threshold but less than or equal to the first bandwidth threshold, or when the terminal and server cannot establish a communication link, the network signal is determined to be weak. When the downlink bandwidth is less than or equal to the second bandwidth threshold, the network signal is determined to be interrupted. Therefore, this embodiment determines the state of the network signal and the degree of abnormality by setting different bandwidth thresholds. This facilitates the subsequent targeted recommendation of battery swapping start-up methods based on different network signal conditions, significantly improving the success rate of battery swapping start-up without affecting the user's battery swapping experience.

[0085] Furthermore, in this embodiment, when a network signal interruption is determined, the communication signal status is automatically detected. And when a weak network signal is determined, it is achieved through methods such as... Figure 4 The method shown begins the detection of the communication signal status, specifically including the following methods.

[0086] In step S410, a switching prompt message is displayed to indicate the switch to the battery swapping start mode.

[0087] In this embodiment, users can promptly understand the current network status and choose whether to switch the battery swapping startup mode by viewing the switching prompt information. Optionally, this embodiment will display a switching control while displaying the switching prompt information, so that users can easily switch the battery swapping startup mode from network communication connection to mobile communication connection by triggering the switching control.

[0088] In step S420, it is determined whether the user has switched to the battery swapping start mode.

[0089] In this embodiment, the user can confirm whether to switch the battery swapping startup mode to mobile communication mode by triggering the switching control. If the user refuses to switch the battery swapping startup mode, step S430 will continue to be executed in this embodiment. Conversely, if the user selects to switch the battery swapping startup mode, step S440 will continue to be executed in this embodiment.

[0090] In step S430, in response to the refusal to switch to the battery swapping start-up mode, wait for a network response.

[0091] In this embodiment, after the user refuses to switch the battery swapping startup mode, the terminal will continue to wait for the network response, and automatically establish a network communication connection with the server after the network signal returns to normal, so as to send a battery swapping request to the server through the network communication connection.

[0092] In step S440, in response to the switching of the battery swapping start-up mode, the status of the communication signal is detected.

[0093] In this embodiment, after the user selects to switch the battery swapping start-up method, the terminal begins to detect the communication signal status. Therefore, this embodiment can determine the timing of detecting the communication signal status based on the degree of network signal anomaly. Simultaneously, by sending a switching prompt message to the user in weak network conditions, the user can quickly learn about the available battery swapping start-up methods and choose to switch methods or continue using the original method according to their needs, thereby meeting the battery swapping needs of different users and further improving the battery swapping experience.

[0094] In step S320, it is determined whether the communication signal is normal.

[0095] In this embodiment, if the communication signal is normal, it means that the battery swapping can be started via mobile communication, and step S330 is executed; otherwise, step S340 is executed.

[0096] In step S330, in response to normal communication signal, a mobile communication startup page is displayed to send a battery swap request based on mobile communication.

[0097] Optionally, the mobile communication methods in this embodiment include SMS and / or telephone. Correspondingly, the mobile communication launch page includes an SMS control and / or a telephone control. Users can trigger the SMS control to select sending a battery swap request via SMS, or they can trigger the telephone control to select sending a battery swap request via telephone. Therefore, by providing users with a mobile communication connection method when the network signal is abnormal but the communication signal is normal, this embodiment facilitates users in initiating battery swaps by sending a battery swap request using a mobile communication connection method when the network signal is abnormal, thereby improving the battery swap success rate and enhancing the user's battery swap experience.

[0098] In step S340, in response to a communication signal anomaly, a near-field communication startup page is displayed to send a battery swapping request based on near-field communication.

[0099] Optionally, Bluetooth is used as the near-field communication method in this embodiment. When both network and communication signals are abnormal, a near-field communication startup page corresponding to the Bluetooth connection will be displayed, allowing users to send battery swap requests via the communication controls on the startup page. Therefore, by providing a near-field communication connection method when both network and communication signals are abnormal, this embodiment facilitates users in initiating battery swaps by sending battery swap requests using the near-field communication connection method, thereby improving the success rate of battery swaps and enhancing the user's battery swapping experience.

[0100] In step S240, in response to the communication control corresponding to the battery swapping start intermediate page being triggered, a battery swapping request is sent to the server based on the corresponding communication method, so that the server controls the battery swapping cabinet to swap batteries for the battery swapping equipment based on the battery swapping information in the battery swapping request. The battery swapping information includes battery swapping station identifier, battery swapping equipment identifier, and battery swapping equipment location and other battery swapping related information.

[0101] In this embodiment, after the user triggers the communication control on the battery swap startup intermediate page, it indicates that the user has confirmed switching the terminal network communication connection to a mobile communication connection or a near-field communication connection. At this time, the terminal sends a battery swap request through the mobile communication connection or the near-field communication connection.

[0102] It should be understood that when a terminal sends a battery swap request via a mobile communication connection, it directly sends the request to the server through the mobile communication connection between the terminal and the server. However, when a terminal sends a battery swap request via a near-field communication (NFC) connection, it first sends the request to the battery swapping cabinet through the NFC connection between the terminal and the cabinet. The cabinet then forwards the request to the server, ensuring that the server receives the battery swap request from the terminal's corresponding battery swapping device. Therefore, by switching the terminal's network communication connection to either a mobile communication connection or a NFC connection when network communication is unavailable, a suitable communication method can be provided to initiate battery swapping in a timely manner, ensuring smooth execution of the battery swapping process, improving the success rate of battery swapping initiation, and enhancing the user's battery swapping experience.

[0103] Furthermore, after receiving a battery swap request, the server sends the battery swap initiation result to the terminal. The terminal receives and displays the battery swap initiation result corresponding to the request, allowing users to intuitively understand the battery swap initiation result and improving the user's battery swap experience.

[0104] Optionally, to improve battery swapping efficiency, in this embodiment, after receiving a battery swapping request, the server will verify the battery swapping information in the request, and after the verification information in the request passes the verification, the server will send the verification result corresponding to the battery swapping request to the terminal, so that the terminal can receive and display the battery swapping start result corresponding to the request.

[0105] Optionally, the verification of battery swapping information in this embodiment includes security verification and functional verification. Security verification verifies the authenticity of the battery swapping information and the identity of the battery swapping equipment. Functional verification verifies the compatibility between the battery swapping equipment and the battery swapping cabinet.

[0106] Specifically, to facilitate rapid battery swapping, both the battery swapping initiation command and the battery swapping request in this embodiment include battery swapping information. When a user sends the battery swapping initiation command or request, to improve data security, various information items in the battery swapping information (such as the battery swapping station identifier, battery swapping equipment identifier, and battery swapping equipment location) are assembled and encrypted. Therefore, during security verification, this embodiment can determine the authenticity of the battery swapping request based on information such as the encryption format of the battery swapping information and the location of the battery swapping equipment. For example, if the encryption format of the battery swapping information is the same as the preset encryption format, the location of the battery swapping equipment is the actual location, and the distance between the battery swapping station corresponding to the battery swapping station identifier and the location of the battery swapping equipment is less than a preset distance value, the corresponding battery swapping request is determined to be authentic and compliant with security standards, and thus passes the security verification.

[0107] During functional verification, this embodiment can determine the compatibility between the battery swapping station and the battery swapping equipment based on the station identifier, the location of the battery swapping equipment, and the identifier of the battery swapping equipment. For example, if the battery swapping station and the battery swapping equipment are compatible and there are available batteries in the battery swapping station, the corresponding battery swapping request functional verification is considered successful. Therefore, by performing security and functional verification on the battery swapping request using the above method, battery swapping can be initiated under network anomalies while improving the compatibility between the battery swapping station and the battery swapping equipment, as well as the security of the battery swapping initiation process.

[0108] The technical solution of this embodiment displays a battery swapping initiation intermediate page upon receiving a start command and detecting a network signal anomaly. The corresponding communication control on the intermediate page is triggered, sending a battery swapping request to the server based on the corresponding communication method. This allows the server to control the battery swapping cabinet to swap batteries for the swapping equipment based on the battery swapping information in the request. This provides users with different battery swapping initiation methods even when the network signal is abnormal, ensuring that battery swapping can still be initiated, thereby improving the success rate and enhancing the user's battery swapping experience. Furthermore, since this embodiment can achieve smooth battery swapping initiation even when the network signal is abnormal without adding extra facilities, it avoids increasing costs for the swapping stations and does not require changing drivers' battery swapping habits, thus avoiding increased complexity. This further enhances the user's battery swapping experience without increasing costs and ensuring the revenue of battery swapping station merchants.

[0109] The following sections will introduce the battery swapping initiation methods under mobile communication and near-field communication, as well as the overall process of battery swapping initiation.

[0110] Figure 5 This is a flowchart illustrating the process of initiating battery swapping via mobile communication, according to an embodiment of the present invention. Figure 5 As shown, in this embodiment, battery swapping is initiated based on mobile communication through the following method.

[0111] In step S510, the battery swapping information is assembled and encrypted.

[0112] In this embodiment, after receiving the user's battery swap start command, the terminal will assemble the battery swap related information in the battery swap start command, such as the battery swap station identifier, battery swap equipment identifier, and battery swap equipment location, determine the corresponding battery swap information, and encrypt the assembled battery swap information.

[0113] In step S520, the mobile communication startup page is displayed.

[0114] In this embodiment, the terminal displays a mobile communication startup page, prompting the user to switch the terminal's communication method from network communication connection to mobile communication connection.

[0115] In step S530, it is determined whether the user's mobile communication connection after switching is via SMS or telephone.

[0116] In this embodiment, the triggering status of the SMS and telephone controls in the mobile communication startup page is detected to determine whether the user's switched mobile communication connection is SMS or telephone. Specifically, when the user triggers the SMS control, it indicates that the user has chosen SMS as the new communication connection method, and step S540-1 is executed. When the user triggers the telephone control, it indicates that the user has chosen telephone as the new communication connection method, and step S550-1 is executed.

[0117] In step S540-1, in response to the SMS control being triggered, the user is redirected to the message sending page.

[0118] In this embodiment, after the user triggers the SMS control, the terminal display page will automatically redirect to the message sending page. The message sending page includes a message filling area and a message sending control.

[0119] In step S540-2, a text message is sent to the server.

[0120] In this embodiment, after the terminal displays the message sending page, it fills the message content in the message filling area of ​​the message sending page according to the pre-set filling rules; and in response to the message sending control in the message sending page being triggered, it sends a message including the message content to the server.

[0121] In step S550-1, in response to the phone control being triggered, the user is redirected to the phone dialing page, which includes the call content and the call sending control.

[0122] In this embodiment, after the user triggers the phone control, the terminal display page will automatically redirect to the phone dialing page. The phone dialing page includes the call content and a call sending control.

[0123] In step S550-2, the call content is sent to the server.

[0124] In this embodiment, after displaying the phone dialing page, the terminal detects the trigger status of the call sending control. Upon detecting that the user has triggered the call sending control, the terminal establishes a phone communication connection with the server in response to the triggering of the call sending control. Afterward, the user reads the call content displayed on the phone dialing page, and the terminal sends the call content to the server based on the phone communication connection.

[0125] In step S560, the server receives the battery swap request and performs a security verification on the battery swap information in the request.

[0126] In this embodiment, the battery swapping information in the battery swapping request is the same as the battery swapping information in the user-sent start command. The security verification method for the battery swapping information can be found in the foregoing description and will not be repeated here.

[0127] Optionally, the server in this embodiment is configured with an SMS server and a telephone server. When a terminal sends a battery swap request via SMS, the SMS server automatically receives the request. Similarly, when a terminal sends a battery swap request via telephone, the telephone server automatically receives the request. Thus, by receiving battery swap requests from terminals via SMS or telephone through the SMS server and telephone server respectively, the server can process requests according to their sending method, improving processing efficiency and ultimately enhancing the user's battery swapping experience.

[0128] In step S570, it is determined whether the safety and compliance are met.

[0129] In this embodiment, if it is determined that the battery swapping information in the battery swapping request is safe and compliant, step S580 is executed. Otherwise, step S5B0 is executed.

[0130] In step S580, the server performs a functional verification of the battery swapping information.

[0131] In this embodiment, the method for verifying the battery swapping information function can refer to the foregoing content, and will not be repeated here.

[0132] In step S590, it is determined whether to initiate battery swapping.

[0133] In this embodiment, if the function verification in the battery swapping request passes, it is determined that battery swapping will be initiated, and step S5A0 is executed. If the function verification in the battery swapping request fails, it is determined that battery swapping will not be initiated, and step S5B0 is executed.

[0134] In step S5A0, the server controls the battery swapping cabinet to start the battery swapping process, so that the battery swapping cabinet can perform battery swapping for the battery swapping equipment corresponding to the terminal.

[0135] In step S5B0, the server sends the battery swap start result to the terminal via SMS or telephone to reply to the user with the battery swap start result.

[0136] In this embodiment, when the battery swapping cabinet starts swapping batteries for the corresponding battery swapping device of the terminal, the server replies to the user via SMS or telephone with a successful battery swapping result. However, if the battery swapping information security is non-compliant or the function verification fails, the server will reply to the user via SMS or telephone with a failed battery swapping result.

[0137] Therefore, this embodiment achieves battery swapping startup under mobile communication mode through the above method, enabling users to start battery swapping through mobile communication connection between terminal and server in the event of abnormal network signal, ensuring user battery swapping efficiency and improving user battery swapping experience.

[0138] Figure 6 This is a flowchart illustrating the process of initiating battery swapping via near-field communication according to an embodiment of the present invention. Figure 6 As shown, in this embodiment, battery swapping is initiated based on mobile communication through the following method.

[0139] In step S610, the battery swapping information is assembled and encrypted.

[0140] In this embodiment, after receiving the user's battery swap start command, the terminal will assemble the battery swap related information in the battery swap start command, such as the battery swap station identifier, battery swap equipment identifier, and battery swap equipment location, determine the corresponding battery swap information, and encrypt the assembled battery swap information.

[0141] In step S620, the near-field communication startup page is displayed.

[0142] In this embodiment, the terminal prompts the user to switch the terminal's communication mode from network communication connection to near-field communication connection by displaying a near-field communication startup page.

[0143] In step S630, in response to the communication control in the near-field communication startup page being triggered, a near-field communication connection is established with the battery swapping cabinet.

[0144] In this embodiment, the terminal determines that the user has switched the communication mode from network communication connection to near-field communication connection by detecting the trigger status of the communication control in the near-field communication startup page. Specifically, after the user triggers the communication control, it indicates that the user has confirmed the switch from network communication connection to near-field communication connection, at which point the terminal establishes a near-field communication connection with the battery swapping cabinet. After establishing the near-field communication connection with the battery swapping cabinet, the terminal automatically sends the battery swapping request to the battery swapping cabinet.

[0145] Optionally, the battery swapping cabinet in this embodiment is equipped with a PLC (Programmable Logic Controller) control cabinet. The terminal connects to the PLC control cabinet via near-field communication, such as Bluetooth, thereby establishing a near-field communication connection between the terminal and the battery swapping cabinet.

[0146] In step S640, the battery swapping cabinet sends a battery swapping request to the server.

[0147] In this embodiment, after receiving a battery swapping request from the terminal, the battery swapping cabinet automatically sends the request to the server. Optionally, when a PLC control cabinet is configured in the battery swapping cabinet, the battery swapping cabinet can send the battery swapping request to the server backend through the wired network in the PLC control cabinet based on the IoT (Internet of Things) channel.

[0148] In step S650, the server receives the battery swap request and performs a security verification on the battery swap information in the request.

[0149] In this embodiment, the battery swapping information in the battery swapping request is the same as the battery swapping information in the user-sent start command. The security verification method for the battery swapping information can be found in the foregoing description and will not be repeated here.

[0150] In step S660, it is determined whether the safety and compliance are met.

[0151] In this embodiment, if it is determined that the battery swapping information in the battery swapping request is secure and compliant, step S670 is executed. Otherwise, step S6A0 is executed.

[0152] In step S670, the server performs a functional verification on the battery swapping information.

[0153] In this embodiment, the method for verifying the battery swapping information function can refer to the foregoing content, and will not be repeated here.

[0154] In step S680, it is determined whether to initiate battery swapping.

[0155] In this embodiment, if the function verification in the battery swapping request passes, it is determined that battery swapping will be initiated, and step S690 is executed. If the function verification in the battery swapping request fails, it is determined that battery swapping will not be initiated, and step S6A0 is executed.

[0156] In step S690, the server controls the battery swapping cabinet to start the battery swapping process, so that the battery swapping cabinet can perform battery swapping for the battery swapping equipment corresponding to the terminal.

[0157] In step S6A0, the battery swapping cabinet sends the battery swapping start result to the terminal via near-field communication to reply to the user with the battery swapping start result.

[0158] In this embodiment, when the battery swapping cabinet starts swapping batteries for the terminal's corresponding battery swapping device, the server replies to the user with a successful battery swapping result via near-field communication (such as Bluetooth). However, if the battery swapping information security is non-compliant or the function verification fails, the server will reply to the user with a battery swapping failure result.

[0159] Therefore, this embodiment achieves battery swapping startup via near-field communication using the above method, enabling users to start battery swapping through near-field communication between the terminal and the battery swapping cabinet even in the event of abnormal network signal, thus ensuring battery swapping efficiency and improving the user's battery swapping experience.

[0160] Figure 7 This is an overall flowchart of the battery swapping startup process according to an embodiment of the present invention. Figure 7 As shown, in this embodiment, battery swapping startup is achieved through the following method.

[0161] In step S710, a start command is sent.

[0162] The battery swapping cabinet identifies when a vehicle enters and detects when the vehicle has come to a complete stop; the terminal receives the user's "start battery swapping" command.

[0163] The terminal performs network status diagnosis to obtain network signal status;

[0164] In step S720, it is determined whether the network signal is normal.

[0165] In this embodiment, when the network is good, the terminal sends a battery swapping request to the user via network communication and receives the battery swapping initiation result in step S7C0. When the network is weak, step S730 continues. When the network is down, step S760 continues.

[0166] In step S730, the battery swapping start-up switching page is displayed.

[0167] Optionally, the battery swapping start-up switching page in this embodiment is as follows: Figure 8 As shown in the diagram, the battery swapping startup switching page 8 includes a switching prompt message 81 and a switching control 82. The switching prompt message 81 prompts the user whether to switch the battery swapping startup mode, changing the terminal's communication method from the current network communication connection to a mobile communication connection. The switching control 82 receives user input. The user triggers the switching control 82 through clicking, swiping, or other operations and confirms the switch to a mobile communication connection.

[0168] Furthermore, the switching control 82 in this embodiment is set with an effective operation time. Only when the user triggers the switching control 82 within the effective operation time can the terminal's communication mode be switched from the current network communication connection to the mobile communication connection. At the same time, the battery swapping start-up switching page 8 in this embodiment also displays a countdown control 83 to prompt the user with the remaining operation time for the switching operation, thereby improving the user's communication mode switching experience.

[0169] In step S740, it is determined whether the user has switched communication methods.

[0170] In this embodiment, if the user refuses to switch, proceed to step S750. If the user confirms the switch, proceed to step S760.

[0171] In step S750, wait for a network response until the network returns to normal.

[0172] In step S760, the mobile communication signal status is obtained.

[0173] In this embodiment, if mobile communication is available, proceed to step S770. Otherwise, proceed to step S790.

[0174] In step S770, battery swapping information is obtained, and the user is redirected to the mobile communication startup page.

[0175] Optionally, the mobile communication startup page in this embodiment is as follows: Figure 9 As shown in the diagram, the mobile communication launch page 9 includes a mobile communication prompt message 91, an SMS control 92, and a telephone control 93. The mobile communication prompt message 91 prompts the user to choose between sending an SMS message or making a phone call to request a battery swap. The SMS control 92 receives user input and triggers the sending of a battery swap request via SMS. The telephone control 93 receives user input and triggers the sending of a battery swap request via telephone.

[0176] In step S780, a battery swapping request is sent based on the mobile communication method selected by the user.

[0177] In this embodiment, the method of sending a battery swapping request based on mobile communication has been described above and will not be repeated here.

[0178] Meanwhile, when a user triggers a battery swap request via SMS, the terminal's display page will jump from the mobile communication startup page to a page like... Figure 10The information sending page shown includes an information filling area 101 and an information sending control 102. The information filling area 101 is used to fill in the SMS content, which can be automatically filled according to pre-set filling rules. For example, the SMS content may include recipient information, as well as the SMS body containing information such as battery swapping information and communication switching instructions corresponding to the battery swapping request sent via SMS. The information sending control 102 is used to receive user operations and trigger the sending of an SMS containing the SMS content to the server.

[0179] When a user triggers a battery swap request via telephone, the terminal's display page will jump from the mobile communication startup page to a page like this. Figure 11 The diagram shows a phone dialing page. This page includes a call sending control 111 and call content 112. The call sending control 111 receives user input and triggers a call to the server. The call content 112 is automatically filled according to pre-set rules; for example, the call content may include battery swapping information and communication switching instructions for switching the battery swapping request corresponding to the phone call. After the terminal establishes a call with the server, the user can read the call content, allowing the server to control the battery swapping cabinet to swap batteries for the equipment.

[0180] In step S790, battery swapping information is obtained, and the user is redirected to the near-field communication startup page.

[0181] Optionally, the near-field communication startup page in this embodiment is as follows: Figure 12 As shown in the diagram. The near-field communication (NFC) startup page 12 includes a switching prompt message 121 and a switching control 122. The switching prompt message 121 prompts the user whether to switch the battery swapping startup mode, changing the terminal's communication mode from the current network communication connection to the NFC connection. The switching control 122 receives the user's operation and confirms the switch.

[0182] In step S7A0, the terminal sends the battery swapping request to the battery swapping cabinet.

[0183] In step S7B0, the battery swapping cabinet sends the battery swapping request to the server.

[0184] In this embodiment, after receiving a battery swapping request, the server performs security and functional verification on the battery swapping information in the request, and sends the battery swapping initiation result to the terminal after the verification is completed. Furthermore, the specific method by which the terminal sends a battery swapping request to the battery swapping cabinet and then to the server using near-field communication has been described above and will not be repeated here.

[0185] In step S7C0, the terminal receives and displays the battery swap start result.

[0186] Therefore, in this embodiment, when a startup command is received or a network signal abnormality is detected, a mobile communication startup page or a near-field communication startup page is displayed to guide the user to switch the terminal's communication network connection to a mobile communication connection or a near-field communication connection. After the user switches the communication connection method, a battery swapping request is sent to the server based on the new communication connection method. This allows the user to still start the battery swapping even when the network signal is abnormal, thereby improving the success rate of battery swapping startup, ensuring the user's battery swapping efficiency, and enhancing the user's battery swapping experience.

[0187] Figure 13 This is a schematic diagram of a battery swapping start-up device according to an embodiment of the present invention. Figure 13 As shown, the battery swapping startup device in this embodiment includes a detection unit 131, a startup unit 132, and a processing unit 133. The detection unit 131 receives a startup command and, in response to receiving the startup command, detects the network signal status. The startup unit 132 displays a battery swapping startup intermediate page in response to a network signal anomaly; this intermediate page can be a mobile communication startup page or a near-field communication startup page. The processing unit 133, in response to the communication control corresponding to the battery swapping startup intermediate page being triggered, sends a battery swapping request to the server based on the corresponding communication method. This allows the server to control the battery swapping cabinet to swap batteries for the battery swapping equipment based on the battery swapping information in the request. The battery swapping information includes the battery swapping station identifier, the battery swapping equipment identifier, and the location of the battery swapping equipment.

[0188] Optionally, the activation unit 132 in this embodiment is further configured to detect the communication signal status; in response to a normal communication signal, display a mobile communication activation page to send a battery swapping request based on mobile communication; in response to an abnormal communication signal, display a near-field communication activation page to send a battery swapping request based on near-field communication. Further, when detecting the communication signal status, the activation unit 132 is also configured to display a switching prompt message, which prompts the user to switch the battery swapping activation mode; in response to the switching of the battery swapping activation mode, the communication signal status is detected.

[0189] Furthermore, in this embodiment, the startup unit 132 is also used to receive and display the battery startup result corresponding to the battery swap request in response to the battery swap information verification passing. The battery swap information verification includes security verification and functional verification.

[0190] Optionally, the communication controls corresponding to the mobile communication launch page in this embodiment include SMS controls and / or telephone controls. When sending a battery swap request, the processing unit 133 in this embodiment is further configured to, in response to the triggering of the SMS control, jump to an information sending page, which includes an information filling area and an information sending control; fill the information filling area with SMS content according to a pre-set filling rule; and, in response to the triggering of the information sending control, send an SMS message including the SMS content to the server. Simultaneously, the processing unit 133 is also configured to, in response to the triggering of the telephone control, jump to a telephone dialing page, which includes call content and a call sending control; and, in response to the triggering of the call sending control, establish a telephone communication connection with the server; and, based on the telephone communication connection, send the call content to the server.

[0191] Furthermore, the processing unit 133 in this embodiment is also used to establish a near-field communication connection with the battery swapping cabinet in response to the triggering of the communication control in the near-field communication startup page; and to send a battery swapping request to the battery swapping cabinet based on the near-field communication connection, so that the battery swapping cabinet sends a battery swapping request to the server.

[0192] Figure 14 This is a schematic diagram of an electronic device according to an embodiment of the present invention. (For example...) Figure 14 As shown, Figure 14 The illustrated electronic device is a general-purpose data processing device, comprising a general-purpose computer hardware architecture, including at least a processor 141 and a memory 142. The processor 141 and memory 142 are connected via a bus 143. The memory 142 is adapted to store instructions or programs executable by the processor 141. The processor 141 can be a standalone microprocessor or a collection of one or more microprocessors. Thus, the processor 141 executes the instructions stored in the memory 142, thereby performing the method flow of the embodiments of the present invention as described above to process data and control other devices. The bus 143 connects the aforementioned components together, and also connects these components to a display controller 144, a display device, and an input / output (I / O) device 145. The input / output (I / O) device 145 can be a mouse, keyboard, modem, network interface, touch input device, motion-sensing input device, printer, and other devices known in the art. Typically, the input / output device 145 is connected to the system via an input / output (I / O) controller 146.

[0193] Those skilled in the art will understand that embodiments of this application can be provided as methods, apparatus (devices), or computer program products. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program product embodied on one or more computer-readable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0194] This application is described with reference to flowchart illustrations of methods, apparatus (devices), and computer program products according to embodiments of this application. It should be understood that each step in the flowchart can be implemented by computer program instructions.

[0195] These computer program instructions may be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including an instruction means, the implementation process of which is described in the instruction means. Figure 1 The function specified in one or more processes.

[0196] These computer program instructions may also be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing device to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing device, produce instructions for implementing processes. Figure 1 A device for a function specified in one or more processes.

[0197] Another embodiment of the present invention relates to a non-volatile storage medium for storing a computer-readable program for use by a computer to execute some or all of the above-described method embodiments.

[0198] That is, those skilled in the art will understand that all or part of the steps in the methods of the above embodiments can be implemented by a program specifying the relevant hardware. This program is stored in a storage medium and includes several instructions to cause a device (which may be a microcontroller, chip, etc.) or processor to execute all or part of the steps of the methods described in the embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as a USB flash drive, a portable hard drive, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.

[0199] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A battery swapping start-up method, characterized in that, The method includes: Receive startup command; Upon receiving a start command, the network signal status is checked; In response to network signal abnormality, the battery swapping startup intermediate page is displayed, which is either the mobile communication startup page or the near-field communication startup page. In response to the triggering of the communication control corresponding to the battery swapping start-up intermediate page, a battery swapping request is sent to the server based on the corresponding communication method, so that the server controls the battery swapping cabinet to swap batteries for the battery swapping equipment based on the battery swapping information in the battery swapping request. The battery swapping information includes the battery swapping station identifier, the battery swapping equipment identifier, and the location of the battery swapping equipment.

2. The method according to claim 1, characterized in that, The display page for starting the battery swap includes: Detect the status of communication signals; In response to a normal communication signal, the mobile communication startup page is displayed to send a battery swap request based on mobile communication; In response to a communication signal anomaly, a near-field communication startup page is displayed to send a battery swapping request based on near-field communication.

3. The method according to claim 2, characterized in that, The detection of the communication signal status includes: Display a switching prompt message, which is used to prompt the user to switch to the battery swapping start mode; In response to the switching of the battery swapping start-up mode, the status of the communication signal is detected.

4. The method according to claim 2, characterized in that, The communication control corresponding to the mobile communication launch page includes an SMS control. The step of sending a battery swap request to the server based on the corresponding communication method in response to the triggering of the communication control corresponding to the battery swap launch intermediate page includes: In response to the SMS control being triggered, the system redirects to the message sending page, which includes a message filling area and a message sending control. The SMS content is filled into the information filling area according to the pre-set filling rules; In response to the message sending control being triggered, a text message including the text message content is sent to the server.

5. The method according to claim 2, characterized in that, The communication control corresponding to the mobile communication launch page includes a telephone control. The step of sending a battery swap request to the server based on the corresponding communication method in response to the triggering of the communication control corresponding to the battery swap launch intermediate page includes: In response to the triggering of the telephone control, the user is redirected to a telephone dialing page, which includes call content and call sending controls. In response to the call sending control being triggered, a telephone communication connection is established with the server; The call content is sent to the server based on the telephone communication connection.

6. The method according to claim 2, characterized in that, The step of sending a battery swap request to the server based on the corresponding communication method in response to the triggering of the communication control corresponding to the battery swap startup intermediate page includes: In response to the triggering of the communication control in the near-field communication startup page, a near-field communication connection is established with the battery swapping cabinet; The battery swapping cabinet sends a battery swapping request to the battery swapping cabinet based on the near-field communication connection, so that the battery swapping cabinet sends the battery swapping request to the server.

7. The method according to claim 1, characterized in that, The method further includes: In response to the successful verification of the battery swapping information in the battery swapping request, the system receives and displays the battery swapping initiation result corresponding to the battery swapping request. The verification of the battery swapping information includes security verification and functional verification.

8. A battery swapping start system, characterized in that, The system includes a terminal, a battery swapping cabinet, a server, and battery swapping equipment; The terminal is configured to receive a startup command, and in response to receiving the startup command, detect the network signal status; in response to an abnormal network signal, display a battery swapping startup intermediate page, which is either a mobile communication startup page or a near-field communication startup page; and in response to the communication control corresponding to the battery swapping startup intermediate page being triggered, send a battery swapping request to the server based on the corresponding communication method. The server is configured to, in response to receiving a battery swapping request, control the battery swapping cabinet to swap batteries for the battery swapping device based on the battery swapping information in the battery swapping request. The battery swapping information includes the battery swapping station identifier, the battery swapping device identifier, and the location of the battery swapping device. The battery swapping cabinet is configured to be controlled to swap batteries for the battery swapping equipment.

9. A battery swapping start-up device, characterized in that, The device includes: The detection unit is used to receive the start command; in response to receiving the start command, it detects the network signal status. A startup unit is used to display a battery swapping startup intermediate page in response to a network signal anomaly. The battery swapping startup intermediate page is either a mobile communication startup page or a near-field communication startup page. The processing unit is configured to respond to the triggering of the communication control corresponding to the battery swapping start-up intermediate page, and send a battery swapping request to the server based on the corresponding communication method, so that the server controls the battery swapping cabinet to swap batteries for the battery swapping equipment based on the battery swapping information in the battery swapping request. The battery swapping information includes the battery swapping station identifier, the battery swapping equipment identifier, and the location of the battery swapping equipment.

10. A computer program product, characterized in that, The computer program product includes a computer program / instruction that, when executed by a processor, implements the method of any one of claims 1-7.

11. An electronic device comprising a memory and a processor, characterized in that, The memory is used to store one or more computer program instructions, wherein the one or more computer program instructions are executed by the processor to implement the method of any one of claims 1-7.

12. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that, when executed by a processor, implements the method of any one of claims 1-7.