Multifunctional emergency power supply and air pump integrated intelligent system

By designing a multifunctional emergency power supply and air pump integrated intelligent system, the problems of integration and automated control of the power supply and air pump system were solved, achieving efficient power management and air pump control, and improving the stability and reliability of the system.

CN119267189BActive Publication Date: 2025-11-28FOSHAN KUROKU ELECTRONICS CO LTD
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Patent Information

Application Number
CN202411621240.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-14
Publication Date
2025-11-28
Estimated Expiration
2044-11-14

AI Technical Summary

Technical Problem

Existing power supply and air pump systems lack integrated design, resulting in difficulties in coordinating system components, inability to achieve efficient power management and air pump control, and lack of automated fault handling capabilities, leading to insufficient system stability and reliability.

Method used

A multifunctional emergency power supply and air pump integrated intelligent system was designed, including a power supply unit, a control unit, an air pump unit, and a storage unit. The system stores the startup program, power management program, air pump control program, pressure preset parameters, and fault handling program, thereby realizing the system's automated control and fault handling.

Benefits of technology

It achieves efficient management of power supply and air pump units, improves system response speed and ease of operation, enhances adaptability and fault recovery capability, reduces reliance on manual operation, and lowers maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a multifunctional emergency power supply and air pump integrated intelligent system, which comprises a power supply unit, a control unit, an air pump unit and a storage unit; the storage unit is used for storing programs and parameters of system operation, specifically comprising: a starting program; a power management program; an air pump control program; pressure preset parameters; a fault handling program; wherein the power supply unit is used for power supply for the system; the starting program is used for starting after the system is powered on, and loading the power management program and the air pump control program therein; the power management program is used for receiving external power input and supplying power for the air pump control program and other related circuits; the air pump control program is used for waiting for an operation instruction or loading the pressure preset parameters and the fault handling program; receiving power supply state information of the power management program, and performing control operation on the air pump unit according to different instructions of the control unit. The application can improve the automation and intelligent level of the system, and ensure stability and safety.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of integrated intelligent control, and more particularly, to a multifunctional emergency power supply and air pump integrated intelligent system. BACKGROUND

[0002] In the industrial and commercial fields, power management and air pump control are common technical requirements. Traditional power and air pump systems are often designed independently, which leads to complex systems, low efficiency, and difficulty in achieving automated control. These systems usually require manual operation to manage power supply and air pump working status, which not only increases the complexity of operation, but also increases the possibility of errors. In addition, when the system fails, there is a lack of effective fault handling procedures, resulting in high maintenance costs and poor system reliability.

[0003] With the development of technology, the market demand for power and air pump integrated systems that can achieve automated control, improve efficiency, and reduce maintenance costs is increasing. However, existing technical solutions often cannot meet these demands because they lack sufficient intelligence and flexibility. For example, many systems cannot automatically adjust air pump working parameters to adapt to different working conditions, nor can they automatically adjust power management strategies when power supply changes.

[0004] In the process of implementing the embodiments of the present application, the inventors found that the existing power and air pump systems lack integrated design, leading to difficulties in coordinating between system components, and failing to achieve efficient power management and air pump control. When the system faces power fluctuations or air pump failures, it lacks effective automatic handling mechanisms, resulting in insufficient system stability and reliability. In addition, existing systems rely too much on manual operation in terms of parameter setting and fault handling, lacking intelligent automatic adjustment and processing capabilities. These problems limit the practicality and efficiency of existing technology in modern industrial and commercial applications. SUMMARY

[0005] The present application provides a multifunctional emergency power supply and air pump integrated intelligent system, comprising:

[0006] a power supply unit, a control unit, an air pump unit, and a storage unit; the storage unit is used to store programs and parameters for system operation, specifically including:

[0007] a start-up program;

[0008] a power management program;

[0009] an air pump control program;

[0010] a pressure preset parameter;

[0011] a fault handling program;

[0012] The power supply unit is configured to supply power to the system; the starting program is configured to start after the system is powered on and load the power management program and the air pump control program therein; the power management program is configured to receive external power input and supply power to the air pump control program and other related circuits; the air pump control program is configured to wait for a running instruction or load the pressure preset parameters and the fault handling program; and receive power supply state information of the power management program, and perform control operation on the air pump unit according to different instructions of the control unit.

[0013] Further, the specific operation of the air pump control program waiting for a running instruction is that the air pump control program starts timing after being loaded, and if a starting instruction sent by the control unit is received within a preset time range, it is identified whether the starting instruction is correct, and if the starting instruction is correct, the control operation is waited to be performed.

[0014] Further, the specific operation of the air pump control program loading the pressure preset parameters and the fault handling program is that if the air pump control program does not receive the starting instruction within the preset time range or the starting instruction is incorrect, the pressure preset parameters and the fault handling program are loaded in sequence.

[0015] Further, the starting program, the power management program, the air pump control program, the pressure preset parameters and the fault handling program are stored in different storage areas of the storage unit, and each program and parameter has a unique identifier for distinguishing and managing.

[0016] Further, the air pump control program receives the power supply state information of the power management program, and performs control operation on the air pump unit according to different instructions of the control unit, which specifically includes:

[0017] According to the instruction type, the code is successful, and the operation type is obtained;

[0018] According to the reset parameter instruction sent by the control unit, the air pump control program resets the related parameters of the air pump unit in the corresponding storage area of the storage unit;

[0019] According to the information transmission instruction sent by the control unit, the power supply state information of the power management program is received, and the information is stored in the temporary storage area after the verification is successful;

[0020] According to the full system verification instruction sent by the control unit, the information in the temporary storage area is written into the corresponding storage area of the storage unit after the full system verification is successful.

[0021] Further, the specific operation of obtaining the operation type according to the code success and the instruction type is that: according to the corresponding instruction type of the air pump operation and parameter adjustment agreed by the protocol, the timing and control unit performs the code operation, feeds back the result of whether the code is successful to the control unit, and obtains the operation type according to the corresponding instruction type after the code is successful.

[0022] Further, the specific operation of storing the information to the temporary storage area after the check is successful is that: the air pump control program checks each group of received information, returns the result of receiving success if the check is successful, and stores the information to the temporary storage area in sequence, otherwise returns the result of receiving error.

[0023] Further, the specific operation of writing the information in the temporary storage area into the corresponding storage area of the storage unit after the whole system check is successful is that: the air pump control program checks the information stored in the temporary storage area, writes the information in the temporary storage area into the corresponding storage area of the storage unit if the check is successful, returns the result of the whole system check success, otherwise returns the result of the whole system check failure.

[0024] Further, when the air pump control program performs the control operation, if power failure occurs, the power management program and the air pump control program are loaded again through the start-up program after power-on again.

[0025] Further, the specific operation of loading the pressure preset parameter includes:

[0026] reading the pressure preset parameter from the storage unit to the temporary storage area;

[0027] initializing the pressure sensor interface and resetting the air pump related components;

[0028] setting the state register to high, and setting the state register to low after the setting is successful;

[0029] setting the state register to high when the preparation register is low, and transmitting the parameter through the data transmission channel after the preparation register is high, to complete the pressure preset parameter loading.

[0030] The multifunctional emergency power supply and air pump integrated intelligent system according to the present application has at least the following beneficial effects: the integrated design concept of the multifunctional emergency power supply and air pump integrated intelligent system according to the present application can realize efficient management of the power supply and air pump units. The power supply unit, control unit, air pump unit, and storage unit in the system work cooperatively to ensure stable power supply and accurate control of the air pump. The programs and parameters stored in the storage unit, such as the startup program, power management program, air pump control program, pressure preset parameter, and fault handling program, enable the system to automatically load the necessary programs after power-on, quickly respond to the instructions of the control unit, and improve the response speed and operation convenience of the system. In addition, the system can automatically adjust the working state of the air pump according to the preset pressure parameters and fault handling program, which can enhance the adaptive ability and fault recovery ability of the system.

[0031] The air pump control program of the system can effectively interact with the power management program to accurately control the air pump unit according to the power supply state, which not only improves the energy use efficiency but also ensures the stable operation of the air pump under various working conditions. In the case of unexpected power failure, the system can quickly restore the power management program and air pump control program through the startup program, which can reduce the system downtime and improve the reliability of the system. At the same time, the intelligent design of the system can reduce the dependence on manual operation, reduce the complexity of operation, and make the system more easy to maintain and use. These beneficial effects work together to make the system have a significant competitive advantage in industrial and commercial applications. BRIEF DESCRIPTION OF DRAWINGS

[0032] The above and other objects, features and advantages of the exemplary embodiments of the present application will be more apparent from the following detailed description taken in conjunction with the accompanying drawings, in which:

[0033] Figure 1 A schematic diagram of a multifunctional power supply and air pump device according to an embodiment of the present application;

[0034] Figure 2 A schematic diagram of a multifunctional emergency power supply and air pump integrated intelligent system according to an embodiment of the present application;

[0035] Figure 3 A schematic diagram of a multifunctional emergency power supply and air pump integrated intelligent system according to an embodiment of the present application; DETAILED DESCRIPTION

[0036] The principles and spirit of the present application will be described below with reference to several exemplary embodiments. It should be understood that these embodiments are given only to enable those skilled in the art to better understand and implement the present application, and in no way limit the scope of the present application. On the contrary, these embodiments are provided to make the present application more thorough and complete, and to fully convey the scope of the present application to those skilled in the art.

[0037] Those skilled in the art know that the embodiments of the present application can be implemented as a system, device, apparatus, method or computer program product. Therefore, the present application can be embodied in the form of a complete hardware, a complete software (including firmware, resident software, microcode, etc.), or a combination of hardware and software.

[0038] It should be noted that any number of elements in the drawings is used for illustration only and not limitation, and any naming is only for distinction and does not have any limiting meaning.

[0039] As Figure 1 shown. Figure 1 The schematic diagram of the multifunctional power supply and air pump device provided by an embodiment of the present application is an intelligent device integrating power management and air pump control, which is used to provide efficient and reliable air pump operation and power management.

[0040] It includes a digital display screen and control buttons. The display screen is used to display system status and parameters, and the control buttons are used for manual operation and setting. It also includes interfaces and indicator lights for connecting external devices and displaying system status.

[0041] After the system is powered on, the startup program automatically loads the power management program and the air pump control program. The control unit sends operation instructions to the air pump control program, and the air pump control program executes the corresponding air pump operation according to the instructions. The air pump control program can adjust the operating parameters of the air pump according to preset parameters or remote instructions. When a fault is detected, the fault handling program is automatically executed to protect the system and attempt to restore normal operation. All operation data and system status are stored in the storage unit for subsequent analysis and optimization.

[0042] Reference will be made below to Figure 2 , Figure 2 The structural schematic diagram of the multifunctional emergency power supply and air pump integrated intelligent system provided by an embodiment of the present application is shown in Figure 2 . A multifunctional emergency power supply and air pump integrated intelligent system 200 includes:

[0043] a power supply unit 201, a control unit 202, an air pump unit 203 and a storage unit 204;

[0044] The storage unit is used for storing programs and parameters for system operation, specifically including:

[0045] a startup program; a power management program; a gas pump control program; pressure preset parameters; a fault handling program;

[0046] The power supply unit is used to supply power to the system; the startup program is used to start after the system is powered on, and loads the power management program and the gas pump control program therein; the power management program is used to receive external power input and supply power to the gas pump control program and other related circuits; the gas pump control program is used to wait for a running instruction or load the pressure preset parameters and the fault handling program; and receive power supply state information of the power management program, and perform control operations on the gas pump unit according to different instructions of the control unit.

[0047] It should be noted that the system includes a power supply unit, a control unit, a gas pump unit and a storage unit, which together constitute a complete multifunctional emergency power supply and gas pump integrated intelligent system. Here, the power supply unit refers to the component that provides power to the entire system, which ensures the stable operation of the system; the control unit is responsible for issuing instructions to control the working state of the gas pump unit; the gas pump unit is the actual working component, which operates according to the instructions of the control unit; and the storage unit is used to store the programs and parameters required for system operation, such as the hard disk of a computer, which stores the operation instructions and data of the system.

[0048] Specifically, the programs stored in the storage unit include a startup program, a power management program, a gas pump control program, pressure preset parameters and a fault handling program. The startup program is the first program to run after the system is powered on, and it is responsible for loading the power management program and the gas pump control program; the power management program is responsible for managing the input of external power and providing power to the gas pump control program and other circuits; the gas pump control program controls the operation of the gas pump unit according to the instructions of the control unit. These programs and parameters have unique identifiers to facilitate system identification and management.

[0049] Preferably, the gas pump control program will start timing after loading, and wait for a startup instruction sent by the control unit within a preset time range. If a correct startup instruction is received within this time range, the gas pump control program will identify the instruction and prepare to perform control operations. If no startup instruction is received within the preset time range or the received instruction is incorrect, the gas pump control program will automatically load the pressure preset parameters and the fault handling program to ensure that the system can operate normally under preset conditions and respond to possible fault conditions in a timely manner.

[0050] In some embodiments, the specific operation of the air pump control program waiting for the running instruction is that: the air pump control program starts timing after being loaded, and if a start instruction sent by the control unit is received within a preset time range, it is identified whether the start instruction is correct, and if the start instruction is correct, it waits for the execution of the control operation.

[0051] It should be noted that the air pump control program starts timing after being loaded, and waits for a start instruction sent by the control unit within a preset time range. The preset time range here refers to a time interval set during system design, to ensure that the system can respond to the instruction of the control unit in time after power-on. The start instruction sent by the control unit refers to a signal sent by the control unit to start the air pump, which needs to be recognized and processed by the air pump control program.

[0052] Specifically, the air pump control program starts immediately after the system is powered on and starts the timing operation. Within this preset time range, the air pump control program continuously listens to the signal from the control unit. If a start instruction is received within this time, the air pump control program will first check the correctness of the instruction, which usually involves verification of the instruction format and content. If the instruction is correct, the air pump control program will enter a standby state, ready to perform subsequent control operations such as starting the air pump or adjusting its working parameters.

[0053] Preferably, if the air pump control program does not receive a start instruction within the preset time range, or the received instruction format is incorrect, the system will automatically enter a safety mode. In the safety mode, the air pump control program loads the pressure preset parameters and fault handling program to ensure that the system can run safely according to the pre-set pressure parameters and be prepared to deal with possible fault conditions.

[0054] Further, the system can also be designed with a backup control unit to take over the instruction sending task when the main control unit fails, thereby improving the reliability and fault tolerance of the system. This design ensures that the system can still run safely and stably even if the control unit fails to send instructions in time.

[0055] In some embodiments, the specific operation of the air pump control program loading the pressure preset parameters and the fault handling program is that: if the air pump control program does not receive a start instruction within a preset time range, or the start instruction is incorrect, the pressure preset parameters and the fault handling program are loaded in turn.

[0056] It is important to note that if the air pump control program does not receive a start command within a predetermined time frame or receives an incorrect start command, it will sequentially load the pressure preset parameters and the fault handling program. The pressure preset parameters here refer to the pressure values set in advance by the system according to the working requirements of the air pump, which are used to guide the air pump control program to adjust the working state of the air pump to achieve the required pressure level. The fault handling program is a set of programs for diagnosing and handling system faults, ensuring that problems can be responded to and measures taken in a timely manner.

[0057] Specifically, after failing to receive a correct start command, the air pump control program will load the pressure preset parameters in the preset logical order. These parameters usually include maximum and minimum working pressure, pressure adjustment rate, etc., which are stored in specific areas of the storage unit and read and applied by the air pump control program when needed.

[0058] More specifically, after loading the pressure preset parameters, the system will continue to execute the fault handling program, which contains a series of diagnostic tests and error handling strategies to detect and solve various problems that may occur in the air pump unit.

[0059] Preferably, during the loading of the pressure preset parameters and the fault handling program, the air pump control program will perform a series of self-checking operations to ensure the correctness of the loading. For example, the system can design a checksum or digital signature mechanism to verify whether the loaded programs and parameters are complete and have not been tampered with.

[0060] Further, the system can also provide a user interface to allow operators to manually input or adjust the pressure preset parameters when necessary, thereby increasing the flexibility and adaptability of the system. In the fault handling program, the system can also integrate a fault log recording function to record the time, type and processing results of the fault occurrence, so as to facilitate subsequent maintenance and analysis.

[0061] In some embodiments, the start program, power management program, air pump control program, pressure preset parameters and fault handling program are stored in different storage areas of the storage unit, and each program and parameter has a unique identifier to facilitate differentiation and management.

[0062] It should be noted that the startup program, the power management program, the air pump control program, the pressure preset parameter and the fault handling program are stored in different storage areas of the storage unit, and each program and parameter has a unique identifier for identification and management. Here, the storage unit refers to the hardware part of the system for saving data and programs, similar to the hard disk or memory card of a computer. The unique identifier refers to a unique code or name assigned to each program and parameter to ensure that the system can accurately identify and call them.

[0063] Specifically, the storage unit is divided into different storage areas, each area is used to store a specific program or parameter. For example, the startup program can be stored in a boot area, the power management program is stored in another area, and the air pump control program, the pressure preset parameter and the fault handling program are stored in independent areas respectively. The division of these storage areas can be realized by software or by hardware. The unique identifier of each program and parameter can be a specific file name, serial number or memory address, so that the system can quickly find and load the required program and parameter when starting or performing operations.

[0064] Preferably, the identifier of each program and parameter in the storage unit can adopt a hierarchical naming rule for easy management and maintenance. For example, the identifier of the startup program can be BOOT_001, the identifier of the power management program can be PSM_002, the identifier of the air pump control program can be PUMP_003, and so on.

[0065] Further, the system can also design an index table to record the storage location and brief description corresponding to each identifier, so that the staff can quickly find and understand the function of each program and parameter during system maintenance or upgrading.

[0066] Further, in order to improve the security of the system, the programs and parameters stored in the storage unit can also be encrypted to ensure that they cannot be tampered with or accessed without authorization. These detailed operation steps and alternatives can improve the stability and security of the system.

[0067] In some embodiments, the air pump control program receives power supply state information of the power management program, and performs control operations on the air pump unit according to different instructions of the control unit, specifically including:

[0068] According to the instruction type, the code success is obtained, and the operation type is obtained;

[0069] According to the reset parameter instruction sent by the control unit, the air pump control program resets the air pump unit related parameters in the corresponding storage area of the storage unit;

[0070] According to the information transmission instruction sent by the control unit, the power supply state information of the power management program is received, and the information is stored in the temporary storage area after the verification is successful;

[0071] According to the full-system verification instruction sent by the control unit, the information in the temporary storage area is written into the corresponding storage area of the storage unit after the full-system verification is successful.

[0072] It should be noted that the air pump control program receives the power supply state information of the power management program and performs control operations on the air pump unit according to different instructions. The power supply state information refers to the voltage, current and other parameter states of the current power supply monitored by the power management program, which is crucial to the air pump control program because it determines whether the air pump unit can work normally and how to adjust its working state. Control operation refers to the specific actions of the air pump control program on the air pump unit according to the power supply state and the instructions of the control unit, such as starting, stopping, adjusting working parameters, etc.

[0073] Specifically, after receiving the power supply state information, the air pump control program will first analyze these information to determine whether the current power supply is sufficient to support the normal work of the air pump unit. If the power supply state is normal, the air pump control program will wait for further instructions from the control unit.

[0074] More specifically, these instructions include starting the air pump, stopping the air pump, adjusting the working parameters of the air pump, etc. The air pump control program will perform corresponding operations according to the type of received instructions. For example, if a reset parameter instruction is received, the air pump control program will reset the relevant parameters of the air pump unit to the preset values in the storage unit.

[0075] Preferably, when performing control operations, the air pump control program will adopt a series of safety checks and verification mechanisms to ensure the accuracy of the operation and the stability of the system. For example, before executing the reset parameter instruction, the air pump control program can perform a system self-check to ensure that the air pump unit is in a safe state. During the execution of the information transmission instruction, the air pump control program will verify the received information, and only when the verification is successful, the information will be stored in the temporary storage area.

[0076] Further, the system can also design a backup power supply system to provide temporary power support when the main power supply is unstable, ensuring that the air pump control program can continue to perform necessary operations. These detailed operation steps and alternative solutions can improve the reliability of the system and the processing capacity of abnormal situations.

[0077] In some embodiments, the specific operation of obtaining the operation type according to the code success of the instruction type is: according to the corresponding instruction type of the air pump operation and parameter adjustment agreed by the protocol, the timing and control unit performs the code operation, feeds back the result of whether the code is successful to the control unit, and obtains the operation type according to the corresponding instruction type after the code is successful.

[0078] It should be noted that after receiving the power supply state information of the power management program, the air pump control program will perform the code operation according to the corresponding instruction type of the air pump operation and parameter adjustment agreed by the protocol. Here, the protocol agreement refers to the communication rules preset during system design, including the format of the instruction, the transmission mode, and how to parse and execute the instruction. The code operation refers to a series of communication steps between the air pump control program and the control unit, which is used to verify and synchronize the instruction information, and ensure that the understanding and execution of the instruction by both parties are consistent.

[0079] Specifically, the air pump control program will parse the instruction sent by the control unit according to the preset communication protocol. This protocol defines different instruction types, such as start instruction, stop instruction, parameter adjustment instruction, etc., as well as the specific format and execution logic of each instruction. The air pump control program will periodically send a request to the control unit to obtain the latest instruction information, and execute the corresponding operation according to the instruction. For example, if a parameter adjustment instruction is received, the air pump control program will adjust the working state of the air pump according to the new parameter value contained in the instruction.

[0080] Preferably, when performing the code operation, the air pump control program will use encryption and verification mechanisms to ensure the security and accuracy of communication. For example, a checksum or digital signature can be attached to each instruction to verify whether the instruction has been tampered with during transmission.

[0081] Further, the air pump control program can also be designed to support multiple communication protocols to adapt to different control units or be used in different working environments. After the code is successful, the air pump control program will not only execute the instruction, but also feed back the execution result to the control unit to confirm the success or failure of the operation. This design improves the reliability and fault tolerance of the system, ensuring the stable operation of the system.

[0082] In some embodiments, the specific operation of storing the information in the temporary storage area after the verification is successful is: the air pump control program verifies each group of information received, returns a successful reception result if the verification is successful, and stores it in the temporary storage area in order, otherwise returns a reception error result.

[0083] It should be noted that the air pump control program will check each set of information received after receiving the information sent by the control unit. The check here refers to the process of checking the integrity and correctness of the information to ensure that the received information has not been tampered with or damaged during transmission. If the check is successful, the air pump control program will return a successful reception result and store the information in the temporary storage area in order.

[0084] Specifically, the air pump control program will verify the received information according to the preset verification rules, such as CRC verification, MD5 verification, etc. These rules can be simple parity check or more complex hash check, depending on the security requirements of the system. If the information passes the verification, the air pump control program will confirm the validity of the information and store it in the temporary storage area, waiting for further processing or writing to the permanent storage area at the appropriate time. In this process, the air pump control program may record the reception time, serial number, and other metadata of the information to facilitate subsequent management and query.

[0085] Preferably, the air pump control program can be designed to support multiple verification algorithms to adapt to different communication environments and security requirements. For example, in situations where data transmission security requirements are high, more complex verification algorithms can be used to improve information security.

[0086] Further, the temporary storage area can be designed as a circular buffer, where old information is overwritten by newly received information when the buffer is full, effectively utilizing storage space and ensuring that the system can continuously receive new information.

[0087] Further, after the information is stored in the temporary storage area, the system can also set a timing task to periodically aggregate and analyze the information in the temporary storage area to timely discover potential problems and take appropriate measures. These detailed operation steps and alternatives can improve the flexibility and effectiveness of the system in processing information.

[0088] In some embodiments, the specific operation of writing the information in the temporary storage area to the corresponding storage area of the storage unit after the whole system verification is successful is: the air pump control program performs a total check on the information stored in the temporary storage area, and if the check is successful, writes the information in the temporary storage area to the corresponding storage area of the storage unit, returns a whole system verification success result, otherwise returns a whole system verification failure result.

[0089] It is worth noting that the gas pump control program performs a total check on the information stored in the temporary storage area. If the check is successful, the information is written to the corresponding storage area of the storage unit. Here, the total check refers to a comprehensive check of all information in the temporary storage area before it is finally written to the storage unit, to ensure the integrity and consistency of all information. The corresponding storage area of the storage unit refers to a specific area in the system for permanently storing important data, which is divided into different parts to store different types of data.

[0090] Specifically, the gas pump control program will perform a total check on all information in the temporary storage area at a set time point or after receiving a certain amount of information. This may include checksum calculation, version comparison, timestamp verification, etc. to ensure that all information is accurate. If the total check is passed, the gas pump control program will transfer the information from the temporary storage area to the corresponding storage area of the storage unit, which may involve data formatting, compression, etc. to optimize the use of storage space.

[0091] Preferably, the gas pump control program can design an intelligent verification mechanism that can dynamically adjust the strictness of verification according to the importance and urgency of information. For example, for high-priority information, a more rigorous verification algorithm can be used, while for low-priority information, a simpler verification method can be used.

[0092] Further, in order to improve the security of data, the system can perform encryption processing on the information before writing to the storage unit, to ensure the confidentiality and integrity of the data. After the information is written to the storage unit, the system can also generate a verification report to record the results of the verification and any abnormal situations, to facilitate future audit and troubleshooting. These detailed operation steps and alternatives can improve the accuracy and reliability of the system in processing information.

[0093] In some embodiments, when the gas pump control program performs control operations, if an unexpected power failure occurs, the power management program and the gas pump control program are reloaded through the startup program after power is restored.

[0094] It is worth noting that when the gas pump control program encounters an unexpected power failure during execution of control operations, the system can automatically reload the power management program and the gas pump control program through the startup program. Here, the unexpected power failure refers to an unplanned power interruption, which may cause the system to be interrupted during operation, affecting the stability and reliability of the system. Re-loading refers to the system automatically recovering to the state before power failure after power is restored, and continuing to perform the unfinished operations.

[0095] Specifically, the system design includes a handling mechanism for unexpected power outage situations. When a power outage occurs, the system will record the current state information, including the operations being performed and the progress. Once the power is restored, a startup program will be triggered, which is responsible for initializing the system and loading the necessary programs and parameters, so that the system can recover to the state before the power outage. In this process, the power management program will be loaded first to ensure the stability and safety of the power supply. Then, the air pump control program will be loaded to continue the previous operation or start the operation according to the preset parameters.

[0096] Preferably, the system can be designed with a power failure protection mechanism, such as using an uninterruptible power supply (UPS) or battery backup, to provide temporary power support when a power outage occurs, ensuring that the system has enough time to safely save the current state and perform the necessary shutdown procedures.

[0097] Further, the system can also be designed with a self-diagnosis function, which automatically checks the state of the system after reloading the power management program and the air pump control program, ensuring that all components are working properly and avoiding potential problems caused by power outages. These detailed operation steps and alternatives can improve the system's ability to respond to unexpected power outages, ensuring the stability and reliability of the system.

[0098] In some embodiments, the specific operation of loading the pressure preset parameters includes:

[0099] Reading the pressure preset parameters from the storage unit into the temporary storage area;

[0100] Initializing the pressure sensor interface and resetting the air pump related components;

[0101] Setting the status register to high, and then setting the status register to low after the setting is successful;

[0102] Setting the status register to high when the preparation register is low, and transmitting the parameters through the data transmission channel when the preparation register is high, completing the loading of the pressure preset parameters.

[0103] It should be noted that the specific operation of loading the pressure preset parameters includes reading the pressure preset parameters from the storage unit into the temporary storage area, and then performing a series of initialization operations. Here, the pressure preset parameters refer to the pressure values that the system has previously set according to the working requirements of the air pump, which are used to guide the air pump control program to adjust the working state of the air pump to achieve the required pressure level. The temporary storage area is a data staging area that temporarily saves the parameters before they are applied to the system.

[0104] Specifically, the air pump control program first reads the pressure preset parameters from the storage unit and transmits them to the temporary storage area. These parameters may include the maximum working pressure, the minimum working pressure, the adjustment rate of the working pressure, etc. Subsequently, the air pump control program initializes the pressure sensor interface to ensure that the sensor can accurately read and transmit pressure data. Then, the program resets the air pump related components to ensure that the air pump unit can work normally according to the preset parameters.

[0105] Preferably, after setting the status register to high, the air pump control program sets it to low again to complete the loading process of the pressure preset parameters. In this process, the status register serves as a control signal to indicate the working state of the air pump unit. When the preparation register is low, the status register is set to high, indicating that the system is ready to receive new parameters. When the preparation register is high, the system transmits the parameters through the data transmission channel to complete the loading of the pressure preset parameters.

[0106] Further, the system can also be designed with a parameter verification mechanism to automatically verify the validity of the parameters after loading is completed, ensuring that the air pump unit can work safely and stably according to the preset pressure parameters. These detailed operation steps and alternatives can improve the accuracy and reliability of the system in loading pressure preset parameters.

[0107] The above-mentioned embodiments of the present application have the following beneficial effects: The multifunctional emergency power supply and air pump integrated intelligent system of the present application can realize highly automated and intelligent operation process through the careful design of each unit and program. The power supply unit ensures stable power supply of the system, while the control unit is responsible for accurately managing the operation of the air pump unit, so that the system can adjust the working state of the air pump according to actual needs. The programs and parameters stored in the storage unit, such as the startup program, power management program, air pump control program, pressure preset parameters and fault handling program, enable the system to automatically load necessary programs after power-on, quickly respond to the instructions of the control unit, and improve the response speed and operation convenience of the system. In addition, the air pump control program of the system can perform accurate control operations on the air pump unit according to the power supply state information and the instructions of the control unit, including parameter reset, information transmission and full system verification, which can improve the reliability and stability of the system.

[0108] The system design also includes the processing of unexpected power failure, which can ensure that the system can quickly recover normal operation after power-on again. The air pump control program can automatically load the pressure preset parameters and fault handling program when it does not receive the startup instruction or the instruction is incorrect, which can enhance the adaptive ability and fault recovery ability of the system. The intelligent design of the system can reduce the dependence on manual operation and reduce the complexity of operation, making the system more easy to maintain and use.

[0109] Reference will now be made to Figure 3 , which shows a structural diagram of a structure 300 of an electronic device suitable for use in implementing some embodiments of the present application. The electronic device in some embodiments of the present application can include, but is not limited to, a mobile terminal such as a mobile phone, a notebook computer, a digital broadcast receiver, a PDA (Personal Digital Assistant), a PAD (Tablet PC), a PMP (Portable Multimedia Player), a car terminal (e.g., a car navigation terminal), and the like, as well as a stationary terminal such as a digital TV, a desktop computer, and the like. Figure 3 The terminal device shown is merely an example and should not impose any limitation on the functions and the range of use of embodiments of the present application.

[0110] As shown in Figure 3 , the electronic device 300 can include a processing means (e.g., a central processor, a graphic processor, etc.) 301 that can perform various appropriate actions and processes according to a program stored in a read-only memory (ROM) 302 or a program loaded into a random access memory (RAM) 303 from a storage means 308. In the RAM 303, various programs and data required for the operation of the electronic device 300 are also stored. The processing means 301, the ROM 302, and the RAM 303 are connected to each other through a bus 304. An input / output (I / O) interface 305 is also connected to the bus 304.

[0111] In general, the following means can be connected to the I / O interface 305: an input means 306 including, for example, a touch screen, a touch pad, a keyboard, a mouse, a camera, a microphone, an accelerometer, a gyroscope, and the like; an output means 307 including, for example, a liquid crystal display (LCD), a speaker, a vibrator, and the like; a storage means 308 including, for example, a magnetic tape, a hard disk, and the like; and a communication means 309. The communication means 309 can allow the electronic device 300 to communicate wirelessly or by wire with other devices to exchange data. Although Figure 3 The electronic device 300 having various means is shown, but it is understood that all of the means shown are not required to be implemented or provided. More or less means can be alternatively implemented or provided. Figure 3 Each block shown in

[0112] Further, the storage medium of the embodiments of the present application stores program instructions capable of realizing all the methods described above, wherein the program instructions can be stored in the storage medium in the form of a software product, and include a plurality of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) or a processor execute all or part of the steps of the methods described in the embodiments of the present application. And the aforementioned storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, and various media capable of storing program codes, or a computer, a server, a mobile phone, a tablet, and other terminal devices.

[0113] The above description is merely some preferred embodiments of the present application and a description of the principles of the technology used. Those skilled in the art should understand that the scope of the application involved in the embodiments of the present application is not limited to the technical solutions formed by the specific combinations of the technical features described above, and should also cover other technical solutions formed by any combinations of the technical features described above or their equivalent features without departing from the inventive concept described above. For example, the technical solutions formed by mutually replacing the above-described features and the technical features disclosed in the embodiments of the present application (but not limited to) having similar functions.

Claims

1. A multifunctional emergency power supply and air pump integrated intelligent system, characterized in that, The system comprises a power supply unit, a control unit, a gas pump unit and a storage unit; the storage unit is used for storing programs and parameters for system operation, specifically comprising: a start program; a power management program; a gas pump control program; pressure preset parameters; a fault handling program; The power supply unit is used for powering the system; the start program is used for starting after the system is powered on and loading the power management program and the gas pump control program therein; the power management program is used for receiving external power input and powering the gas pump control program and other related circuits; the gas pump control program is used for waiting for a running instruction or loading the pressure preset parameters and the fault handling program; and receiving power supply state information of the power management program and performing control operations on the gas pump unit according to different instructions of the control unit; the gas pump control program receives the power supply state information of the power management program and performs control operations on the gas pump unit according to different instructions of the control unit, specifically comprising: According to the instruction type, the code is successfully acquired, and the operation type is acquired; According to the reset parameter instruction sent by the control unit, the gas pump control program resets the related parameters of the gas pump unit in the corresponding storage area of the storage unit; According to the information transmission instruction sent by the control unit, the power supply state information of the power management program is received, and the information is stored in the temporary storage area after successful verification; According to the full-system verification instruction sent by the control unit, the information in the temporary storage area is written into the corresponding storage area of the storage unit after successful full-system verification; The specific operation of the gas pump control program waiting for a running instruction is that the gas pump control program starts timing after being loaded, and if a start instruction sent by the control unit is received within a preset time range, it is identified whether the start instruction is correct, and if the start instruction is correct, the control operation is waited to be executed; The specific operation of the gas pump control program loading the pressure preset parameters and the fault handling program is that the gas pump control program does not receive a start instruction within a preset time range, or the start instruction is incorrect, then the pressure preset parameters and the fault handling program are loaded in turn.

2. The multifunctional emergency power supply and air pump integrated intelligent system according to claim 1, characterized in that, The start program, the power management program, the gas pump control program, the pressure preset parameters and the fault handling program are stored in different storage areas of the storage unit, and each program and parameter has a unique identifier for easy identification and management.

3. The multifunctional emergency power supply and air pump integrated intelligent system according to claim 2, characterized in that, The specific operation of acquiring the operation type according to the successful code of the instruction type is that the corresponding instruction type of the gas pump operation and parameter adjustment is determined according to the protocol agreement, the code operation is performed with the control unit in a timely manner, the result of whether the code is successful is fed back to the control unit, and the operation type is acquired according to the corresponding instruction type after the code is successful.

4. The multifunctional emergency power supply and air pump integrated intelligent system according to claim 3, characterized in that, The specific operation of storing the information in the temporary storage area after successful verification is that the gas pump control program verifies each group of received information, returns a successful reception result if the verification is successful, and stores the information in the temporary storage area in order, otherwise returns an error reception result.

5. The multifunctional emergency power supply and air pump integrated intelligent system according to claim 1, characterized in that, The specific operation of writing the information in the temporary storage area into the corresponding storage area of the storage unit after the full system verification succeeds is that the air pump control program performs a total verification on the information stored in the temporary storage area, and if the verification succeeds, writes the information in the temporary storage area into the corresponding storage area of the storage unit, and returns a full system verification success result, otherwise returns a full system verification failure result.

6. The multifunctional emergency power supply and air pump integrated intelligent system according to claim 1, characterized in that, When the air pump control program performs the control operation, if an unexpected power failure occurs, after power-on again, the power management program and the air pump control program are loaded again through the start-up program.

7. The multifunctional emergency power supply and air pump integrated intelligent system according to claim 1, characterized in that, The specific operation of loading the pressure preset parameters includes: reading the pressure preset parameters from the storage unit into the temporary storage area; initializing the pressure sensor interface and resetting the air pump related components; setting the state register to high, and then setting the state register to low after the setting is successful; setting the state register to high when the preparation register is low, and transmitting the parameters through the data transmission channel after the preparation register is high, to complete the pressure preset parameter loading.

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