Dual supply state adaptive electrode protection control method and related devices
By acquiring power supply status information, determining protection parameters, and generating control commands, the electrode output status is adjusted, solving the problem of insufficient continuity of electrode protection control when the power supply status changes, and realizing stable and continuous electrode protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ANHUI WEBER NEW ENERGY EQUIP CO LTD
- Filing Date
- 2026-02-09
- Publication Date
- 2026-06-12
AI Technical Summary
In existing technologies, electrode protection control methods lack an adaptive mechanism, resulting in insufficient continuity of protection control when the power supply state changes, which affects the stability and reliability of the electrodes.
By acquiring the power supply execution status information of the target electrode, the protection parameters and target protection parameters are determined, the protection deviation information is calculated, and the electrode protection control command is generated to adjust the output status of the electrode to adapt to the mains power supply status or the standby power supply status.
It achieves continuous protection control under different power supply conditions, improves the continuity and stability of electrode protection, and ensures that the electrode can continuously output protection when the power supply condition changes.
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Figure CN122203147A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electrode protection for water-using equipment, and more particularly to an electrode protection control method, device, electronic device, and storage medium that are adaptive to dual power supply states. Background Technology
[0002] In applications involving electrode protection, it is typically necessary to control the output state of the target electrode to achieve the desired protective effect, thereby ensuring the safety and reliability of the protected object during long-term operation. Existing electrode protection control methods often rely on an external power supply to provide operating energy to the target electrode and adjust its output state when the target electrode is powered to achieve the corresponding protection function.
[0003] However, in practical applications, the target electrode may be in different power supply states, such as mains power supply or standby power supply. Existing technologies lack a unified adaptive processing mechanism for electrode protection control under different power supply states. They often fail to specifically determine the protection parameters and corresponding target protection parameters of the target electrode based on changes in the power supply state. This results in the protection control of the target electrode being difficult to execute continuously when the power supply state changes, thus affecting the stability of the protection effect.
[0004] To address the aforementioned issues, there is an urgent need for an electrode protection control method that can adapt to different power supply execution states. This method should be able to determine protection deviation information based on the corresponding protection parameter information and the target protection parameter information, whether the target electrode is in a mains power supply state or a standby power supply state. Furthermore, it should generate electrode protection control commands based on the protection deviation information to adjust the output state of the target electrode, thereby achieving continuous protection control of the target electrode under different power supply states and solving the problem of insufficient continuity of electrode protection when the power supply state changes in the existing technology. Summary of the Invention
[0005] This invention provides an electrode protection control method with dual power supply states that is adaptive, in order to solve the problem of insufficient continuity of electrode protection when the power supply state changes in the prior art.
[0006] In a first aspect, the present invention provides an electrode protection control method with dual power supply state adaptive control, the method comprising the following steps: Obtain the power supply execution status information of the current target electrode, including the mains power supply status or the backup power supply status; Based on the mains power supply status or standby power supply status, determine the current protection parameter information of the target electrode and the corresponding target protection parameter information; Based on the current protection parameter information of the target electrode and the corresponding target protection parameter information, the protection deviation information is determined; Based on the protection deviation information, the electrode protection control command is determined; Based on the electrode protection and control command, the output state of the target electrode is adjusted.
[0007] Optionally, obtaining the current power supply execution status information of the target electrode includes: During the preset detection time slot, at least one of the following is detected in real time: mains power presence signal, backup power output signal and / or power supply valid signal; Based on the detection results, it is determined whether the target electrode is currently under mains power supply or standby power supply.
[0008] Optionally, determining the current protection parameter information of the target electrode and the corresponding target protection parameter information based on the mains power supply status or standby power supply status includes: Based on the mains power supply status or the backup power supply status, determine the current target operating status of the target electrode; Based on the target operating state, the corresponding protection parameter information is determined, and the corresponding target protection parameter information is matched in the preset mapping relationship database.
[0009] Optionally, determining the protection deviation information based on the current protection parameter information of the target electrode and the corresponding target protection parameter information includes: The protection parameter information and the corresponding target protection parameter information are compared and calculated to obtain the comparison result; The results are compared and processed to determine the deviation, thus obtaining the protection deviation information.
[0010] Optionally, determining the electrode protection control command based on the protection deviation information includes: Based on the protection deviation information, the correction amount information of the current target electrode is determined; Based on the correction information, determine the control strategy and / or control level; Based on the aforementioned control strategy and / or control level, an electrode protection control command is generated.
[0011] Optionally, adjusting the output state of the target electrode based on the electrode protection control command includes: Based on the electrode protection and control command, determine the state control parameters used to adjust the output state of the target electrode; Based on the state control parameters, determine the output adjustment mode and / or output adjustment range of the target electrode; Based on the output adjustment method and / or output adjustment range, the output state of the target electrode is adjusted so that the protection parameter information of the target electrode approaches the state corresponding to the target protection parameter information.
[0012] Secondly, the present invention also provides an electrode protection control device with dual power supply state adaptive capability, the electrode protection control device with dual power supply state adaptive capability comprising: The first acquisition module is used to acquire the power supply execution status information of the current target electrode, the power supply execution status information including mains power supply status or backup power supply status; The first determining module is used to determine the protection parameter information of the current target electrode and the corresponding target protection parameter information based on the mains power supply status and the backup power supply status. The second determining module is used to determine protection deviation information based on the current protection parameter information of the target electrode and the corresponding target protection parameter information; The third determining module is used to determine the electrode protection control command based on the protection deviation information; The output module is used to adjust the output state of the target electrode based on the electrode protection control command.
[0013] Thirdly, the present invention provides an electronic device, comprising: a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the computer program to implement the steps of the dual power supply state adaptive electrode protection control method provided by the present invention.
[0014] Fourthly, the present invention provides a computer-readable storage medium storing a computer program, which, when executed by a processor, implements the steps of the dual-power supply state adaptive electrode protection control method provided by the invention.
[0015] This invention acquires the current power supply execution status information of a target electrode, including mains power supply status or standby power supply status. Based on the mains power supply status or standby power supply status, it determines the current protection parameter information of the target electrode and the corresponding target protection parameter information. Based on the current protection parameter information of the target electrode and the corresponding target protection parameter information, it determines protection deviation information. Based on the protection deviation information, it determines electrode protection control commands. Based on the electrode protection control commands, it adjusts the output status of the target electrode. Through the above method steps, continuous protection control of the target electrode can be achieved in both mains power supply status and standby power supply status, improving the continuity and stability of electrode protection. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a flowchart of an electrode protection control method with dual power supply state adaptive according to an embodiment of the present invention; Figure 2 This is a schematic diagram of another dual-power supply state adaptive electrode protection control device provided in an embodiment of the present invention; Figure 3 This is a schematic diagram of the structure of an electronic device provided in an embodiment of the present invention. Detailed Implementation
[0018] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0019] like Figure 1 As shown, Figure 1 This is a flowchart of an electrode protection control method with dual power supply state adaptive capability provided by an embodiment of the present invention. The electrode protection control method with dual power supply state adaptive capability includes the following steps: 101. Obtain the current power supply execution status information of the target electrode.
[0020] In this embodiment of the invention, the above-mentioned dual-power supply state adaptive electrode protection control method can be applied to a dual-power supply state adaptive electrode protection control platform. The dual-power supply state adaptive electrode protection control platform has functions such as electrode protection data processing, electrode protection data transmission and reception, and electrode protection data memory storage. It can be built based on a server or server cluster. The server or server cluster can be an electronic device with electrode protection data processing capabilities.
[0021] The aforementioned target electrode can refer to the electrode object controlled by the aforementioned dual-power supply state adaptive electrode protection control platform, which is used to output corresponding protection functions during the electrode protection process.
[0022] The aforementioned target electrode can be an electronic anode, which obtains working power through mains power or backup power supply, and outputs the corresponding protection status under the control of the aforementioned dual power supply adaptive electrode protection control platform, so as to form a continuous electrode protection effect on the protected object.
[0023] By treating the target electrode as the unified control object of the aforementioned dual-power supply state adaptive electrode protection control platform, the electrode protection control process can remain consistent under different power supply execution states, thereby facilitating continuous and stable electrode protection control.
[0024] The aforementioned power supply execution status information may include, but is not limited to, mains power supply status or backup power supply status, which are used to characterize the current actual power source status of the target electrode, that is, to indicate which power supply path is currently providing working power to the target electrode.
[0025] Generally speaking, the aforementioned dual-power supply state adaptive electrode protection control platform can identify the actual power supply conditions of the current target electrode by acquiring the aforementioned power supply execution status information, and thus provide a status basis for determining subsequent protection parameter information and target protection parameter information.
[0026] 102. Based on the mains power supply status or standby power supply status, determine the protection parameter information of the current target electrode and the corresponding target protection parameter information.
[0027] In this embodiment of the invention, the aforementioned mains power supply state refers to the power supply state in which the working power of the target electrode is provided by the mains power side. In the mains power supply state, the mains power, after appropriate processing, provides working power to the target electrode and its related control units, enabling the target electrode to continuously perform electrode protection functions under normal power supply conditions.
[0028] The aforementioned backup power supply status refers to the power supply status in which the backup power supply unit provides working power to the target electrode when the mains power is unavailable.
[0029] The aforementioned backup power supply unit can be a rechargeable battery. When the mains power is disconnected, the backup power supply unit continues to provide working power to the target electrode and its control-related units to maintain the continuous operation of the target electrode.
[0030] By setting a backup power supply state, the aforementioned dual-power supply adaptive electrode protection control platform can maintain the protection output of the target electrode even when the mains power is disconnected, thus avoiding electrode protection interruption.
[0031] The aforementioned protection parameter information can be used to characterize the current protection working state of the target electrode, such as reflecting the actual output state of the target electrode during the electrode protection process, and describing the current state level of the electrode protection effect.
[0032] The aforementioned dual-power supply adaptive electrode protection control platform enables the electrode protection control process to perceive the current protection status by determining the aforementioned protection parameter information, thus providing a basis for subsequent deviation calculation.
[0033] The aforementioned target protection parameter information can be used to characterize the target protection state that the target electrode is expected to achieve under the current power supply execution state.
[0034] The aforementioned target protection parameter information can be determined by the aforementioned dual-power supply state adaptive electrode protection control platform based on the mains power supply state or the backup power supply state, thereby enabling the protection target to have corresponding adaptability under different power supply conditions.
[0035] By setting target protection parameter information, the aforementioned dual-power supply state adaptive electrode protection control platform can provide a clear control reference benchmark for the electrode protection control process.
[0036] In one possible embodiment, after obtaining the power supply execution status information, the aforementioned dual-power supply state adaptive electrode protection control platform determines the protection parameter information of the current target electrode and the corresponding target protection parameter information based on the mains power supply status or the backup power supply status. The protection parameter information reflects the current protection operating status of the target electrode, and the target protection parameter information characterizes the expected protection target state under the current power supply status.
[0037] 103. Based on the protection parameter information of the current target electrode and the corresponding target protection parameter information, determine the protection deviation information.
[0038] In this embodiment of the invention, the aforementioned protection deviation information can be obtained by the dual-power supply state adaptive electrode protection control platform by comparing the aforementioned protection parameter information with the target protection parameter information. This information is used to characterize the degree of deviation of the current protection state from the target protection state. It can be used to indicate whether the output state of the target electrode needs adjustment and serves as a basis for subsequent control decisions.
[0039] In one possible embodiment, the aforementioned dual-power supply state adaptive electrode protection control platform compares and calculates the protection parameter information with the target protection parameter information to obtain the comparison result, and generates protection deviation information based on the comparison result.
[0040] 104. Determine electrode protection control commands based on protection deviation information.
[0041] In this embodiment of the invention, the aforementioned electrode protection control command can be a control command generated by the dual-power supply state adaptive electrode protection control platform based on protection deviation information, used to instruct how to adjust the output state of the target electrode. For example, it can correspond to different control strategies and / or control levels to guide the output state of the target electrode to change towards the target protection state.
[0042] In one possible embodiment, the aforementioned dual-power supply state adaptive electrode protection control platform determines the correction data of the target electrode based on the protection deviation information, and generates electrode protection control commands based on the correction data.
[0043] The aforementioned electrode protection control commands can be used to indicate the direction and degree of adjustment of the target electrode output state, thus providing a clear control basis for the electrode protection control process. 105. Adjust the output state of the target electrode based on the electrode protection control command.
[0044] In this embodiment of the invention, the aforementioned dual-power supply state adaptive electrode protection control platform adjusts the output state of the target electrode based on the electrode protection regulation command, so that the protection parameter information of the target electrode approaches the state corresponding to the target protection parameter information.
[0045] By performing the above adjustment process in both mains power supply and standby power supply states, the target electrode can continuously output protection when the power supply state changes, thereby improving the continuity and stability of electrode protection control.
[0046] In this embodiment of the invention, the power supply execution status information of the current target electrode is obtained, including mains power supply status or standby power supply status. Based on the mains power supply status or standby power supply status, the protection parameter information of the current target electrode and the corresponding target protection parameter information are determined. Based on the protection parameter information of the current target electrode and the corresponding target protection parameter information, protection deviation information is determined. Based on the protection deviation information, electrode protection control commands are determined. Based on the electrode protection control commands, the output status of the target electrode is adjusted. Through the above method steps, continuous protection control of the target electrode under mains power supply status or standby power supply status can be achieved, improving the continuity and stability of electrode protection.
[0047] Optionally, in the step of obtaining the current power supply execution status information of the target electrode, at least one of the mains power presence signal, backup power output signal and / or power supply validity signal can be detected in real time during a preset detection time slot; based on the detection results, it can be determined whether the current target electrode is in mains power supply state or backup power supply state.
[0048] In this embodiment of the invention, the aforementioned preset detection time slot can be the time window used by the dual-power-state adaptive electrode protection control platform to perform power supply status detection, thereby limiting the detection cycle and frequency of power supply-related signals. Alternatively, the aforementioned preset detection time slot can be a fixed-duration periodic detection time slot, i.e., a detection time slot triggered when the power supply status changes, to avoid misjudgment of the power supply status due to transient fluctuations.
[0049] The aforementioned mains power presence signal can be used to characterize whether the mains power side has the conditions to provide working power to the target electrode. When the mains power presence signal is detected to be valid, the aforementioned dual power supply state adaptive electrode protection control platform determines that the mains power side is in an available state and uses it as an important basis for determining the power supply execution state.
[0050] The aforementioned backup power output signal is used to characterize whether the backup power supply unit is outputting working power to the target electrode-related control unit. When a valid backup power output signal is detected, the aforementioned dual-power supply state adaptive electrode protection control platform determines that the backup power supply unit is in the output state and uses this as the basis for determining the backup power supply state.
[0051] The aforementioned valid power supply signal is used to characterize whether the target electrode has currently obtained the effective power supply conditions required for its normal operation. This valid power supply signal can reflect whether electrical energy is actually available in the target electrode's power supply path, and is used to further verify the presence of mains power or the output signal of the backup power supply.
[0052] In one possible embodiment, the aforementioned dual-power supply state adaptive electrode protection control platform detects at least one of the mains power presence signal, backup power output signal, and / or power supply validity signal in real time during the aforementioned preset detection time slot, and comprehensively determines whether the current target electrode is in mains power supply state or backup power supply state based on the detection results, thereby providing accurate power supply execution status information for subsequent electrode protection control processes.
[0053] By using the above methods and steps, the impact of transient changes in power supply status on power supply execution status identification can be reduced, and the accuracy and stability of power supply status determination can be improved. This is beneficial for the above-mentioned dual power supply status adaptive electrode protection control platform to maintain the continuous execution of the electrode protection control process during the switching between mains power supply status and backup power supply status.
[0054] Optionally, the step of determining the protection parameter information of the current target electrode and the corresponding target protection parameter information based on the mains power supply status or the backup power supply status further includes determining the target operating status of the current target electrode based on the mains power supply status or the backup power supply status; determining the corresponding protection parameter information based on the target operating status; and matching the corresponding target protection parameter information in a preset mapping relationship database.
[0055] In this embodiment of the invention, the target operating state may refer to the state information used to characterize the operating mode adopted by the target electrode under the current power supply conditions, or it may be an operating state identifier mapped from the mains power supply state or the backup power supply state, used as an intermediate state description in the parameter determination process.
[0056] It is understandable that the aforementioned target operating state can be determined by parsing the power supply execution status information and combining it with preset state rules. For example, when the target electrode is in a mains power supply state, the target operating state can correspond to the operating state under mains power supply conditions; when the target electrode is in a standby power supply state, the target operating state can correspond to the operating state under standby power supply conditions, thus enabling the subsequent parameter determination process to be based on the target operating state rather than directly based on the power supply state.
[0057] The aforementioned protection parameter information may refer to parameter information used to characterize the current protection working state of the target electrode, or it may be a set of operating parameters generated corresponding to the target operating state, used to reflect the actual protection output state of the target electrode under the current operating conditions.
[0058] It is understandable that the aforementioned protection parameter information can be determined based on the target operating state and used in the calculation of protection deviation information. For example, when the target operating state corresponds to mains power supply conditions, the protection parameter information can reflect the protection output state of the target electrode under normal power supply conditions; when the target operating state corresponds to standby power supply conditions, the protection parameter information can reflect the protection output state of the target electrode under standby power supply conditions.
[0059] The aforementioned preset mapping relationship database can refer to a data structure used to store the correspondence between target operating states and target protection parameter information, or it can be a set of state and parameter mapping relationships pre-established by the control system to support the rapid determination of the corresponding target protection parameter information under different target operating states. Generally speaking, the preset mapping relationship database can store the association between multiple target operating states and corresponding target protection parameter information. Once a target operating state is determined, the target protection parameter information corresponding to that target operating state can be found in the aforementioned preset mapping relationship database.
[0060] In one possible embodiment, the aforementioned dual-power supply state adaptive electrode protection control platform searches for and determines the target protection parameter information corresponding to the target operating state in a preset mapping relationship database according to the current target operating state. For example, once the target operating state is determined, the target protection parameter information corresponding to the target operating state can be directly obtained by performing a matching operation in the preset mapping relationship database, without having to set up independent parameter determination processes for different power supply states.
[0061] Optionally, the step of determining the protection deviation information based on the protection parameter information of the current target electrode and the corresponding target protection parameter information may further include comparing and calculating the protection parameter information and the corresponding target protection parameter information to obtain the comparison result; and performing deviation judgment processing on the comparison result to obtain the protection deviation information.
[0062] In this embodiment of the invention, the above comparison calculation may refer to the calculation process of comparing the protection parameter information of the current target electrode with the corresponding target protection parameter information, or it may be a parameter difference analysis process executed by the control platform to determine the difference between the current protection state and the target protection state.
[0063] For example, when there are differences between the protection parameter information and the target protection parameter information in corresponding items, a calculation result reflecting the difference can be obtained by comparison calculation; when the two are consistent in corresponding items, the comparison calculation result can reflect that the current protection state is close to the target protection state.
[0064] The comparison results mentioned above can refer to intermediate results obtained from the comparison calculations, or they can be result data used to characterize the differences between the protection parameter information and the target protection parameter information, serving as input for subsequent deviation determination processing. These comparison results can reflect whether there is a deviation between the two and the basic characteristics of that deviation.
[0065] In one possible embodiment, the aforementioned dual-power supply state adaptive electrode protection control platform can determine and process the deviation between the current protection state and the target protection state based on the comparison results. Specifically, when the comparison results indicate a significant difference between the current protection state and the target protection state, corresponding protection deviation information can be generated through deviation determination processing; when the comparison results indicate a small difference, deviation determination processing can generate protection deviation information indicating a small deviation or no need for adjustment.
[0066] In this embodiment, the aforementioned dual-power supply state adaptive electrode protection control platform compares the protection parameter information of the current target electrode with the corresponding target protection parameter information to obtain a comparison result characterizing the difference between the two. Based on the comparison result, deviation judgment processing is performed to generate protection deviation information, thereby transforming the deviation between the current protection state and the target protection state into a control basis that can be used for subsequent regulation. By setting the comparison calculation and deviation judgment processing in layers, the generation process of protection deviation information has a clear logical structure, which is conducive to improving the accuracy and stability of protection state judgment and providing a reliable basis for determining subsequent electrode protection regulation commands.
[0067] Optionally, the step of determining the electrode protection control command based on the protection deviation information may further include determining the correction amount information of the current target electrode based on the protection deviation information; determining the control strategy and / or control level based on the correction amount information; and generating the electrode protection control command according to the control strategy and / or control level.
[0068] In this embodiment of the invention, the aforementioned correction information may refer to quantified or semi-quantized information characterizing the degree of adjustment required for the target electrode output state, or it may be adjustment requirement description information converted from protection deviation information, used to indicate the correction direction and magnitude required for the current protection state relative to the target protection state. For example, when the protection deviation information characterizes a large deviation between the current protection state and the target protection state, the correction information can be used to characterize a large adjustment requirement; when the protection deviation information characterizes a small deviation, the correction information can be used to characterize a small adjustment requirement.
[0069] Specifically, in this embodiment, when determining the correction amount information, the aforementioned dual-power supply state adaptive electrode protection control platform can combine the protection deviation information and the current operating state of the target electrode to determine the correction amount information associated with the target electrode output current or equivalent protection output intensity, so that the control process can adapt to the operating requirements under different power supply conditions.
[0070] The aforementioned control strategy can refer to control rules describing the adjustment mode of the target electrode output state, or it can be a pre-set control logic by the aforementioned dual-power supply state adaptive electrode protection control platform, used to guide the target electrode to adopt different adjustment modes under different correction information conditions. The aforementioned control strategy can be determined based on the correction information.
[0071] For example, when the correction information indicates a large demand for adjustment, the control strategy can correspond to a more aggressive adjustment approach; when the correction information indicates a small demand for adjustment, the control strategy can correspond to a more gradual adjustment approach.
[0072] The aforementioned control levels can refer to control grades representing different levels of control intensity, or they can be discrete control levels set by the control platform to provide a hierarchical description of the control strategy. These control levels can be correlated with correction information. Generally, different control levels correspond to different degrees of output adjustment intensity, allowing the output state of the target electrode to be selected among multiple control levels.
[0073] The aforementioned electrode protection control commands can refer to control command information generated by the dual-power supply state adaptive electrode protection control platform, or they can be control signals used to drive the adjustment of the target electrode's output state, converting the control strategy and / or control level into executable control actions. These electrode protection control commands can be generated based on the control strategy and / or control level. For example, once the control strategy or control level is determined, generating the corresponding electrode protection control commands can directly guide the target electrode to adjust its output state according to the aforementioned control method.
[0074] Optionally, the step of adjusting the output state of the target electrode based on the electrode protection control command further includes determining a state control parameter for adjusting the output state of the target electrode based on the electrode protection control command; determining the output adjustment method and / or output adjustment range of the target electrode based on the state control parameter; and adjusting the output state of the target electrode based on the output adjustment method and / or output adjustment range so that the protection parameter information of the target electrode approaches the state corresponding to the target protection parameter information.
[0075] In this embodiment of the invention, the aforementioned state control parameters may refer to control parameter information describing the adjustment requirements of the target electrode output state, or they may be a set of execution parameters obtained by parsing electrode protection and control commands, used as the direct control basis for the output state adjustment process. These state control parameters can be used to correlate the output adjustment mode and the output adjustment amplitude. Generally, these state control parameters can be used to characterize whether the current output state needs to be maintained, enhanced, or weakened, thereby providing a basis for determining the subsequent adjustment mode and amplitude.
[0076] The aforementioned output adjustment method can refer to the adjustment form of the target electrode output state, or it can be an adjustment execution method determined by the corresponding state control parameters, used to describe how the target electrode output state changes.
[0077] The aforementioned output adjustment range can refer to the degree to which the output state of the target electrode changes during a single adjustment process, or it can be adjustment amount information determined by the state control parameters, used to describe the strength of the output state adjustment.
[0078] The aforementioned output state refers to the working output state of the target electrode during the electrode protection process, which reflects the state performance of the target electrode in applying a protective effect to the protected object.
[0079] Generally, during the output state adjustment process, the protection parameter information of the target electrode gradually changes towards the state corresponding to the target protection parameter information. By adjusting the output state multiple times, the difference between the protection parameter information and the target protection parameter information can be gradually reduced, and the output state can be considered to be approaching the target state.
[0080] In one possible embodiment, the aforementioned dual-power-state adaptive electrode protection control platform can also adjust the charging control strategy based on power supply execution status information when the target electrode is in standby power supply state. When the mains power supply state is detected to be restored, the aforementioned dual-power-state adaptive electrode protection control platform can control the standby power supply unit to enter the charging state and adapt and adjust the electrode protection control strategy during the charging process.
[0081] Specifically, during the charging process, the aforementioned dual-power supply state adaptive electrode protection control platform can constrain the output adjustment mode and / or output adjustment range based on the charging state, so that the target electrode can maintain basic protection functions while avoiding the impact of the charging process on the power supply stability.
[0082] By coordinating the charging control process with the electrode protection regulation process, the target electrode can still stably perform protection control during the restoration of mains power and charging process, thereby improving the overall reliability of the system in scenarios with multiple power supply states.
[0083] In another possible embodiment, when the aforementioned dual-power supply state adaptive electrode protection control platform detects that the target electrode has switched from the backup power supply state to the mains power supply state, it can also detect the charging status of the backup power supply unit and perform charging control and full-charge protection processing based on the detection results.
[0084] Specifically, the aforementioned dual-power-supply adaptive electrode protection control platform detects the charging detection signal of the backup power supply unit under mains power supply conditions. This charging detection signal can be used to characterize whether the backup power supply unit is in the charging process. By detecting the charging detection signal, the platform can monitor the charging status of the backup power supply unit in real time.
[0085] Furthermore, when the backup power supply unit is detected to be charging, the charging completion status of the backup power supply unit can be determined. This charging completion status can be obtained by judging the trend of charging status changes, and is used to characterize whether the backup power supply unit has reached the expected charging state.
[0086] For example, when the backup power supply unit is charging, if its charging status remains in the state corresponding to the preset completion condition, it can be determined that the backup power supply unit is fully charged; if the charging status does not meet the above completion condition, it can be determined that the backup power supply unit is still in the charging process.
[0087] In this embodiment, after determining that the backup power supply unit is fully charged, the aforementioned dual power supply state adaptive electrode protection control platform can control the backup power supply unit to stop charging or switch to a charging maintenance state to prevent the backup power supply unit from continuing to charge while fully charged, thereby reducing the risk of overcharging.
[0088] During the charging detection and full-charge determination process, the aforementioned dual-power supply state adaptive electrode protection control platform can also coordinately adjust the electrode protection regulation strategy, so that the target electrode adopts an appropriate output regulation mode and / or output regulation amplitude during the charging and full-charge stages, thereby ensuring the safe charging of the backup power supply unit while maintaining the basic protection function of the target electrode.
[0089] like Figure 2 As shown, this embodiment of the invention also provides an electrode protection control device 200 with dual power supply state adaptive capability, which includes: The first acquisition module 201 is used to acquire the power supply execution status information of the current target electrode, the power supply execution status information including mains power supply status or backup power supply status; The first determining module 202 is used to determine the protection parameter information of the current target electrode and the corresponding target protection parameter information based on the mains power supply status and the backup power supply status. The second determining module 203 is used to determine protection deviation information based on the current protection parameter information of the target electrode and the corresponding target protection parameter information; The third determining module 204 is used to determine the electrode protection control command based on the protection deviation information; The output module 205 is used to adjust the output state of the target electrode based on the electrode protection control command.
[0090] Optionally, the first acquisition module 201 mentioned above includes: The first acquisition submodule is used to detect at least one of the following in real time during a preset detection time slot: mains power presence signal, backup power output signal, and / or power supply validity signal; The second acquisition submodule is used to determine whether the current target electrode is in a mains power supply state or a standby power supply state based on the detection results.
[0091] Optionally, the first determining module 202 mentioned above includes: The first determining submodule is used to determine the current target operating state of the target electrode based on the mains power supply state or the backup power supply state. The second determining submodule is used to determine the corresponding protection parameter information based on the target operating state, and to match the corresponding target protection parameter information in a preset mapping relationship database.
[0092] Optionally, the second determining module 203 mentioned above includes: The third determining submodule is used to compare and calculate the protection parameter information and the corresponding target protection parameter information to obtain the comparison result. The fourth determination submodule is used to compare the results and perform deviation judgment processing to obtain protection deviation information.
[0093] Optionally, the third determining module 204 mentioned above includes: The fifth determining submodule is used to determine the correction amount information of the current target electrode based on the protection deviation information; The sixth determining submodule is used to determine the control strategy and / or control level based on the correction amount information; The seventh determining submodule is used to generate electrode protection control commands based on the control strategy and / or control level.
[0094] Optionally, the output module 205 mentioned above includes: The first output submodule is used to determine the state control parameters for adjusting the output state of the target electrode based on the electrode protection and control command. The second output submodule is used to determine the output adjustment mode and / or output adjustment range of the target electrode according to the state control parameters. The third output submodule is used to adjust the output state of the target electrode based on the output adjustment method and / or output adjustment amplitude, so that the protection parameter information of the target electrode approaches the state corresponding to the target protection parameter information.
[0095] like Figure 3 As shown, this embodiment of the invention also provides an electronic device 300, including a processor, which can execute any of the above-described dual-power supply state adaptive electrode protection control methods.
[0096] Specifically, it includes a processor 301 and a memory 302, as well as a computer program stored in the memory 302 and capable of running on the processor 301, which executes an electrode protection control method that adapts to dual power supply states, wherein: The processor 301 executes the calculator program for the dual-power supply state adaptive electrode protection control method stored in the memory 302, and performs the following steps: Obtain the power supply execution status information of the current target electrode, including the mains power supply status or the backup power supply status; Based on the mains power supply status or standby power supply status, determine the current protection parameter information of the target electrode and the corresponding target protection parameter information; Based on the current protection parameter information of the target electrode and the corresponding target protection parameter information, the protection deviation information is determined; Based on the protection deviation information, the electrode protection control command is determined; Based on the electrode protection and control command, the output state of the target electrode is adjusted.
[0097] Optionally, the processor 301 performs the step of obtaining the current target electrode's power supply execution status information, including: During the preset detection time slot, at least one of the following is detected in real time: mains power presence signal, backup power output signal and / or power supply valid signal; Based on the detection results, it is determined whether the target electrode is currently under mains power supply or standby power supply.
[0098] Optionally, the processor 301 executes the step of determining the current protection parameter information of the target electrode and the corresponding target protection parameter information based on the mains power supply status or standby power supply status, including: Based on the mains power supply status or the backup power supply status, determine the current target operating status of the target electrode; Based on the target operating state, the corresponding protection parameter information is determined, and the corresponding target protection parameter information is matched in the preset mapping relationship database.
[0099] Optionally, the processor 301 executes the protection parameter information based on the current target electrode and the corresponding target protection parameter information to determine the protection deviation information, including: The protection parameter information and the corresponding target protection parameter information are compared and calculated to obtain the comparison result; The results are compared and processed to determine the deviation, thus obtaining the protection deviation information.
[0100] Optionally, the processor 301 executes the electrode protection control command determined based on the protection deviation information, including: Based on the protection deviation information, the correction amount information of the current target electrode is determined; Based on the correction information, determine the control strategy and / or control level; Based on the aforementioned control strategy and / or control level, an electrode protection control command is generated.
[0101] Optionally, the processor 301 executes the electrode protection control instruction to adjust the output state of the target electrode, including: Based on the electrode protection and control command, determine the state control parameters used to adjust the output state of the target electrode; Based on the state control parameters, determine the output adjustment mode and / or output adjustment range of the target electrode; Based on the output adjustment method and / or output adjustment range, the output state of the target electrode is adjusted so that the protection parameter information of the target electrode approaches the state corresponding to the target protection parameter information.
[0102] This invention also provides a computer-readable storage medium storing a computer program. When the computer program is executed by a processor, it implements the various processes of the dual-power supply state adaptive electrode protection control method or the application-side dual-power supply state adaptive electrode protection control method provided in this invention, and achieves the same technical effect. To avoid repetition, it will not be described again here.
[0103] Those skilled in the art will understand that implementing all or part of the processes in the above embodiments can be done by a computer program instructing related hardware, and can be stored in a computer-readable storage medium. When executed, the program can include the processes of the embodiments of the above methods. The storage medium can be a magnetic disk, optical disk, read-only memory (ROM), or random access memory (RAM), etc.
[0104] The above description discloses only preferred embodiments of the present invention and should not be construed as limiting the scope of the present invention. Therefore, equivalent variations made in accordance with the claims of the present invention are still within the scope of the present invention.
Claims
1. A dual-power supply state adaptive electrode protection control method, characterized in that, include: Obtain the power supply execution status information of the current target electrode, including the mains power supply status or the backup power supply status; Based on the mains power supply status or standby power supply status, determine the current protection parameter information of the target electrode and the corresponding target protection parameter information; Based on the current protection parameter information of the target electrode and the corresponding target protection parameter information, the protection deviation information is determined; Based on the protection deviation information, the electrode protection control command is determined; Based on the electrode protection and control command, the output state of the target electrode is adjusted.
2. The electrode protection control method with dual power supply state adaptive as described in claim 1, characterized in that, The step of obtaining the current power supply execution status information of the target electrode includes: During the preset detection time slot, at least one of the following is detected in real time: mains power presence signal, backup power output signal and / or power supply valid signal; Based on the detection results, it is determined whether the target electrode is currently under mains power supply or standby power supply.
3. The electrode protection control method with dual power supply state adaptive as described in claim 1, characterized in that, The process of determining the current protection parameter information of the target electrode and the corresponding target protection parameter information based on the mains power supply status or standby power supply status includes: Based on the mains power supply status or the backup power supply status, determine the current target operating status of the target electrode; Based on the target operating state, the corresponding protection parameter information is determined, and the corresponding target protection parameter information is matched in the preset mapping relationship database.
4. The electrode protection control method with dual power supply state adaptive as described in claim 1, characterized in that, The determination of protection deviation information based on the current protection parameter information of the target electrode and the corresponding target protection parameter information includes: The protection parameter information and the corresponding target protection parameter information are compared and calculated to obtain the comparison result; The results are compared and processed to determine the deviation, thus obtaining the protection deviation information.
5. The electrode protection control method with dual power supply state adaptive as described in claim 1, characterized in that, The step of determining the electrode protection control command based on the protection deviation information includes: Based on the protection deviation information, the correction amount information of the current target electrode is determined; Based on the correction information, determine the control strategy and / or control level; Based on the aforementioned control strategy and / or control level, an electrode protection control command is generated.
6. The electrode protection control method with dual power supply state adaptive as described in claim 1, characterized in that, The adjustment of the output state of the target electrode based on the electrode protection control command includes: Based on the electrode protection and control command, determine the state control parameters used to adjust the output state of the target electrode; Based on the state control parameters, determine the output adjustment mode and / or output adjustment range of the target electrode; Based on the output adjustment method and / or output adjustment range, the output state of the target electrode is adjusted so that the protection parameter information of the target electrode approaches the state corresponding to the target protection parameter information.
7. A dual-power supply state adaptive electrode protection control device, characterized in that, include: The first acquisition module is used to acquire the power supply execution status information of the current target electrode, the power supply execution status information including mains power supply status or backup power supply status; The first determining module is used to determine the protection parameter information of the current target electrode and the corresponding target protection parameter information based on the mains power supply status and the backup power supply status. The second determining module is used to determine protection deviation information based on the current protection parameter information of the target electrode and the corresponding target protection parameter information; The third determining module is used to determine the electrode protection control command based on the protection deviation information; The output module is used to adjust the output state of the target electrode based on the electrode protection control command.
8. The electrode protection control device with dual power supply state adaptive as described in claim 7, characterized in that, The first determining module includes: The first determining submodule is used to determine the current target operating state of the target electrode based on the mains power supply state or the backup power supply state. The second determining submodule is used to determine the corresponding protection parameter information based on the target operating state, and to match the corresponding target protection parameter information in a preset mapping relationship database.
9. An electronic device, characterized in that, include: A memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor, when executing the computer program, implements the steps of the dual-power supply state adaptive electrode protection control method as described in any one of claims 1 to 6.
10. 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 steps of the dual-power supply state adaptive electrode protection control method as described in any one of claims 1 to 6.