Energy storage intelligent lamp management interaction method, system and device and medium
By providing the main interface, lamp editing and energy storage time management functions in the energy storage intelligent lamp management system, the problem of lack of intelligent scheduling and personalized configuration in the existing technology is solved, and efficient management and energy optimization of energy storage intelligent lamps are realized.
Patent Information
- Application Number
- CN202411923442.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-05-06
AI Technical Summary
The existing energy storage smart lamp management technology lacks intelligent scheduling capabilities and personalized configuration options, making it difficult to make full use of peak and valley electricity price strategies, cannot adapt to complex electricity use environments, and cannot maximize energy saving effects.
Provide an interactive method for managing intelligent energy storage lamps. By displaying the main interface, responding to the addition of new lamps and energy storage time management controls, we create managed energy storage smart lamps, and set energy storage timetables according to application parameters to achieve intelligent energy storage management.
By providing an integrated and user-friendly interface, simplifying the management of energy storage smart lamps, flexible parameter settings and intelligent energy storage timetable creation, optimizing energy use and reducing electricity bills.
Smart Images

Figure CN119937884A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of intelligent interaction technology, and in particular to an energy storage intelligent lamp management interaction method, system and device. Background Art
[0002] As part of a modern energy management system, energy storage smart lamp management technology aims to help users save electricity bills and improve energy efficiency by optimizing electricity use. This technology can store electricity during off-peak hours for use when electricity prices are higher, thereby effectively reducing electricity costs. However, most existing technologies still provide basic functions such as simple time management and basic electricity price inquiries. Although this meets user needs to a certain extent, they usually lack intelligent scheduling capabilities and personalized configuration options. Existing technologies often fail to make full use of peak and valley electricity price strategies, that is, to flexibly adjust according to the differences in electricity prices in different time periods. Such limitations make it difficult for most existing technologies to adapt to more complex electricity usage environments and cannot provide users with maximum energy-saving effects. Summary of the invention
[0003] The present application provides an energy storage intelligent lamp management interaction method, system and device to solve one or more technical problems existing in the prior art and at least provide a beneficial option or create conditions.
[0004] On the one hand, the present application provides an energy storage intelligent lamp management interaction method, comprising the following steps: Display the main interface of energy storage intelligent lamp management; wherein the main interface of energy storage intelligent lamp management includes lamp new addition controls and energy storage time management controls; In response to a trigger instruction for adding a new control to the lamp, displaying a lamp editing sub-interface; Create a manageable energy storage smart lamp through the lamp editing sub-interface, and set corresponding application parameters for the manageable energy storage smart lamp; In response to a trigger instruction for the energy storage time management control, displaying an energy storage time management sub-interface; According to the application parameters, creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface; According to the energy storage schedule, energy storage management is performed on the manageable energy storage intelligent lamp.
[0005] Furthermore, in response to the triggering instruction of adding a new control to the lamp, displaying the lamp editing sub-interface includes: In response to a trigger instruction for adding a new control to the lamp, display a lamp template selection window corresponding to the trigger instruction for adding the new control to the lamp; wherein the lamp template selection window includes a custom lamp creation control; In response to a trigger instruction for creating a control for the custom lamp, the lamp editing sub-interface is displayed, allowing the user to customize the manageable energy storage smart lamp according to actual needs.
[0006] Furthermore, the lamp editing sub-interface includes a city selection control, a lighting parameter setting control, an energy storage parameter setting control, and an edit and save control; The step of creating a manageable energy storage smart lamp through the lamp editing sub-interface and setting corresponding application parameters for the manageable energy storage smart lamp includes: In response to a trigger instruction for the city selection control, a city selection sub-interface is displayed; wherein the city selection sub-interface includes a city selection area and a city electricity price information area; Setting the application city of the manageable energy storage smart lamp through the city selection area; The electricity price information table corresponding to the application city is displayed in the city electricity price information area; In response to a trigger instruction for the lighting parameter setting control, a lighting parameter setting window is displayed, and lighting device parameters of the manageable energy storage smart lamp are set through the lighting parameter setting window; In response to a trigger instruction for the energy storage parameter setting control, an energy storage parameter setting window is displayed, and energy storage device parameters of the manageable energy storage smart lamp are set through the energy storage parameter setting window; In response to a trigger instruction for the edit and save control, the application city and its corresponding electricity price information table, the lighting device parameters and the energy storage device parameters are saved as application parameters corresponding to the manageable energy storage smart lamp.
[0007] Further, in response to the trigger instruction of the energy storage time management control, the energy storage time management sub-interface is displayed, including: In response to a trigger instruction of the energy storage time management control, displaying an energy storage schedule template selection window corresponding to the trigger instruction of the energy storage time management control; wherein the energy storage schedule template selection window includes a custom energy storage schedule creation control; In response to a trigger instruction for creating a control for the custom energy storage schedule, the energy storage time management sub-interface is displayed, allowing the user to customize the energy storage schedule of the manageable energy storage smart lamp according to actual needs.
[0008] Further, the energy storage time management sub-interface includes an energy storage schedule creation control; The step of creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters includes: In response to a trigger instruction for the energy storage schedule creation control, an energy storage schedule creation sub-interface is displayed; wherein the energy storage schedule creation sub-interface includes a city power lighting time period setting area, a city power charging time period setting area, a battery lighting time period setting area and an energy storage schedule saving control; According to the application parameters, the mains lighting time period is set for the manageable energy storage smart lamp through the mains lighting time period setting area; the mains lighting time period refers to the time period in which the city power grid is used to power the lighting device of the manageable energy storage smart lamp; According to the application parameters, the mains charging time period is set for the manageable energy storage smart lamp through the mains charging time period setting area; the mains charging time period refers to the time period for charging the energy storage device of the manageable energy storage smart lamp using the city power grid; According to the application parameters, a battery lighting time period is set for the manageable energy storage smart lamp through the battery lighting time period setting area; the battery lighting time period refers to a time period in which the energy storage device of the manageable energy storage smart lamp is used to power the lighting device of the manageable energy storage smart lamp; In response to a trigger instruction for the energy storage schedule saving control, the mains lighting time period, the mains charging time period and the battery lighting time period are saved to obtain an energy storage schedule for the manageable energy storage intelligent lamp.
[0009] Furthermore, the energy storage time management sub-interface also includes a control for intelligently setting an energy storage schedule; The step of creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters further includes: In response to a trigger instruction for the intelligent energy storage schedule setting control, a sub-interface for intelligent energy storage schedule setting is displayed; wherein the sub-interface for intelligent energy storage schedule setting includes an intelligent energy storage schedule area and an intelligent setting saving control; The intelligent energy storage schedule area is used to display an intelligent energy storage schedule automatically generated according to the application parameters; In response to a trigger instruction for the smart setting saving control, the smart energy storage schedule is saved as the energy storage schedule of the manageable energy storage smart lamp.
[0010] Furthermore, the energy storage smart lamp management main interface also includes a lamp operation status area; the lamp operation status area is used to display the operation status of the manageable energy storage smart lamp; the lamp operation status area includes a lighting status area, an energy storage status area and a power supply status area.
[0011] On the other hand, the present application provides an energy storage intelligent lamp management interactive system, including: a main interface module, a lamp editing module, an energy storage time setting module and an energy storage management module; The main interface module is used to display the main interface of energy storage intelligent lamp management; wherein the main interface of energy storage intelligent lamp management includes lamp new addition controls and energy storage time management controls; The lamp editing module is used to display a lamp editing sub-interface in response to a trigger instruction for adding a new control to the lamp; create a manageable energy storage smart lamp through the lamp editing sub-interface, and set corresponding application parameters for the manageable energy storage smart lamp; The energy storage time setting module is used to display an energy storage time management sub-interface in response to a trigger instruction of the energy storage time management control; and to create an energy storage schedule of the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters; The energy storage management module is used to perform energy storage management on the manageable energy storage intelligent lamp according to the energy storage schedule.
[0012] On the other hand, the present application provides an energy storage intelligent lamp management interaction device, including: a processor and a memory; the memory is used to store a program; when the program is executed by the processor, the processor implements the aforementioned energy storage intelligent lamp management interaction method.
[0013] On the other hand, the present application provides a computer-readable storage medium, in which a program executable by a processor is stored. When the program executable by the processor is executed by the processor, it is used to implement the aforementioned energy storage intelligent lamp management interaction method.
[0014] The beneficial effects of the present application are as follows: the present application provides an interactive method for managing energy storage smart lamps, including: displaying the main interface for managing energy storage smart lamps; wherein the main interface for managing energy storage smart lamps includes a lamp adding control and an energy storage time management control; in response to a trigger instruction for the lamp adding control, displaying a lamp editing sub-interface; creating a manageable energy storage smart lamp through the lamp editing sub-interface, and setting corresponding application parameters for the manageable energy storage smart lamp; in response to a trigger instruction for the energy storage time management control, displaying an energy storage time management sub-interface; creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters; and performing energy storage management on the manageable energy storage smart lamp according to the energy storage schedule. The present application simplifies the management of energy storage smart lamps by providing an integrated, user-friendly interface, realizes flexible parameter settings and intelligent energy storage schedule creation, thereby optimizing energy use and reducing electricity costs. The present application also provides corresponding systems, devices, and media, the beneficial effects of which are similar to those of the method, and will not be described repeatedly here.
[0015] Other features and advantages of the present application will be described in the following description, and partly become apparent from the description, or understood by practicing the present application. The purpose and other advantages of the present application can be realized and obtained by the structures specifically pointed out in the description, claims and drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The accompanying drawings are used to provide a further understanding of the technical solution of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the technical solution of the present invention and do not constitute a limitation on the technical solution of the present invention.
[0017] Figure 1 It is a flow chart of an energy storage intelligent lamp management interaction method provided by the present application; Figure 2 This is a schematic diagram of the main interface of the energy storage intelligent lamp management provided by this application; Figure 3 This is a schematic diagram of the lamp editing sub-interface provided by this application; Figure 4 is a schematic diagram of the lamp template selection window provided by this application; Figure 5 It is a schematic diagram of the energy storage schedule creation sub-interface provided by this application; Figure 6 It is a structural diagram of an energy storage intelligent lamp management interactive system provided by this application; Figure 7 This is a structural diagram of an energy storage intelligent lamp management interactive device provided in this application. DETAILED DESCRIPTION
[0018] In order to make the purpose, technical solution and advantages of the present application more clearly understood, the present application is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0019] The present application is further described below in conjunction with the accompanying drawings and specific embodiments. The described embodiments should not be regarded as limiting the present application, and all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present application.
[0020] In the following description, reference is made to “some embodiments”, which describe a subset of all possible embodiments, but it will be understood that “some embodiments” may be the same subset or different subsets of all possible embodiments and may be combined with each other without conflict.
[0021] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which this application belongs. The terms used herein are only for the purpose of describing the embodiments of this application and are not intended to limit this application.
[0022] In response to the problems and defects in the related technologies, the embodiments of the present application propose an interactive method, system, device and medium for energy storage intelligent lamp management. By providing a main interface containing lamp addition controls and energy storage time management controls, users can easily add new lamps and set their application parameters; through the lamp editing sub-interface, users can customize the lighting and energy storage parameters of the lamps according to actual needs, and select the corresponding city to obtain accurate electricity price information; the energy storage time management sub-interface allows users to create a detailed energy storage schedule, optimize the time period allocation of city power and battery power, and make full use of the peak and valley electricity price strategy to reduce operating costs; in addition, the embodiments of the present application also support the intelligent setting of energy storage schedules, and automatically generate the optimal solution based on application parameters. These functions not only improve energy utilization efficiency, but also simplify the user's operation process, enhance the adaptability and intelligence level of the system, and thus achieve more efficient and personalized energy management.
[0023] First, the implementation steps of an energy storage intelligent lamp management interaction method provided by an embodiment of the present application will be described in detail below with reference to the accompanying drawings.
[0024] The energy storage intelligent lamp management interaction method proposed in the embodiment of the present application can be applied to a terminal, a server, or software running in a terminal or a server. The terminal can be a tablet computer, a laptop computer, a desktop computer, etc., but is not limited thereto. The server can be an independent physical server, or a server cluster or distributed system composed of multiple physical servers, or a cloud server that provides basic cloud computing services such as cloud services, cloud databases, cloud computing, cloud functions, cloud storage, network services, cloud communications, middleware services, domain name services, security services, content distribution networks, and big data and artificial intelligence platforms.
[0025] Reference Figures 1 to 3 , Figure 1 The flowchart of the energy storage intelligent lamp management interaction method provided by the present application is as follows. The implementation process of the energy storage intelligent lamp management interaction method provided by the embodiment of the present application includes but is not limited to the following steps.
[0026] Step 101, displaying the energy storage smart lamp management main interface 100.
[0027] Reference Figure 2 The energy storage smart lamp management main interface 100 includes a lamp new addition control 101 and an energy storage time management control 102 .
[0028] In step 101, a centralized entry point is provided in the main interface of the energy storage smart lamp management system, allowing users to easily access and control all functions related to energy storage smart lamps. There are two key controls on the main interface. The lamp addition control 101 allows users to add new lamps to the management system; the energy storage time management control 102 allows users to set or adjust the charging and discharging plan of the energy storage lamp. This design ensures that users can quickly locate the required functions and simplifies the operation process.
[0029] Step 102 , in response to a trigger instruction for adding a new control 101 to a lamp, displaying a lamp editing sub-interface 200 .
[0030] In step 102, refer to Figure 3 When the user clicks the lamp adding control 101, the lamp editing sub-interface 200 is displayed. The lamp editing sub-interface 200 provides the necessary interface for the user to add a new manageable energy storage smart lamp, allowing the user to input relevant information of the energy storage smart lamp. The lamp editing sub-interface 200 is the first step in creating an energy storage smart lamp instance, which guides the user to complete the initialization setting process of the energy storage smart lamp.
[0031] Step 103 : creating a manageable energy storage smart lamp through the lamp editing sub-interface 200 , and setting corresponding application parameters for the manageable energy storage smart lamp.
[0032] In step 103, users can customize various parameters of energy storage smart lamps according to actual needs, such as city selection (affecting electricity prices), lighting parameters (such as brightness, color temperature), and energy storage parameters (such as battery capacity, charging rate, etc.). By setting application parameters, it is ensured that the energy storage smart lamps can operate according to the user's specific requirements and optimize energy efficiency.
[0033] Step 104 , in response to a trigger instruction to the energy storage time management control 102 , display the energy storage time management sub-interface.
[0034] In step 104, when the user clicks the energy storage time management control 102, the energy storage time management sub-interface is displayed. The energy storage time management sub-interface provides the user with an environment specifically for planning and adjusting the energy storage schedule. The user can use the energy storage time management sub-interface to decide when to use the mains to power the lighting device of the energy storage smart lamp, when to use the mains to charge the energy storage device of the energy storage smart lamp, and when to use the energy storage device of the energy storage smart lamp to power the lighting device, thereby achieving the purpose of saving costs and improving energy utilization.
[0035] Step 105 , creating an energy storage schedule for managing the energy storage smart lamps through the energy storage time management sub-interface according to the application parameters.
[0036] In step 105, a detailed energy storage schedule is formulated according to the previously set application parameters to accurately control the operation of the energy storage smart lamps and effectively reduce the cost of electricity use.
[0037] Step 106: Perform energy storage management on the manageable energy storage smart lamps according to the energy storage schedule.
[0038] In step 106, by executing the rules set in the energy storage schedule, the charging and discharging behaviors of the energy storage smart lamps are automatically controlled, ensuring that the system operates according to the predetermined schedule, realizing intelligent management and automated operation, improving user experience and reducing maintenance costs.
[0039] In some embodiments of the present application, reference Figure 4 In step 102, in response to a trigger instruction for adding a new control 101 to a lamp, the implementation process of displaying the lamp editing sub-interface 200 includes but is not limited to the following steps.
[0040] Step 201 , in response to a triggering instruction for a newly added lamp control 101 , displaying a lamp template selection window 300 corresponding to the triggering instruction for the newly added lamp control 101 .
[0041] It should be noted that the lamp template selection window 300 includes a custom lamp creation control 301 .
[0042] In step 201, when the user clicks on the new lamp control 101, the system will pop up a special lamp template selection window 300, allowing the user to quickly select a predefined lamp configuration or type. This not only improves the user experience, but also simplifies the process of creating a new energy storage smart lamp. The lamp template selection window 300 also includes a plurality of template areas 302 to be selected, and each template area 302 to be selected is provided with a corresponding template usage control 303. In this way, the system not only simplifies the initial steps of task creation and improves efficiency, but also ensures the flexibility and adaptability of task configuration, so that the accompanying physician can make personalized adjustments according to specific circumstances. In addition to the predefined templates, the window also includes a custom lamp creation control 301, allowing the user to further customize the settings of the energy storage smart lamp to meet specific needs.
[0043] Step 202 , in response to a trigger instruction for creating a custom lamp control 301 , a lamp editing sub-interface 200 is displayed to allow the user to customize the manageable energy storage smart lamp according to actual needs.
[0044] In step 202, when the user clicks the custom lamp creation control 301, the lamp editing sub-interface 200 is displayed. Through the lamp editing sub-interface 200, the user can carefully set various parameters of the energy storage smart lamp to ensure that the energy storage smart lamp meets specific application scenarios, thereby achieving effective energy utilization and cost savings.
[0045] The above two steps together constitute an interactive process, allowing users to easily and quickly add and personalize new energy storage smart lamps, which not only ensures the simplicity of operation but also meets the user's highly customized needs for lamp configuration.
[0046] In some embodiments of the present application, reference Figure 3 The lamp editing sub-interface 200 includes a city selection control 201, a lighting parameter setting control 202, an energy storage parameter setting control 203, and an edit and save control 204. In step 103, the implementation process of creating a manageable energy storage smart lamp through the lamp editing sub-interface 200 and setting corresponding application parameters for the manageable energy storage smart lamp includes but is not limited to the following steps.
[0047] Step 301 , in response to a trigger instruction to the city selection control 201 , display a city selection sub-interface.
[0048] It should be noted that the city selection sub-interface includes a city selection area and a city electricity price information area.
[0049] In step 301, when the user clicks the city selection control 201, the city selection sub-interface is displayed, allowing the user to select the city where the energy storage smart lamp will be used. The electricity prices in different cities may be different, which directly affects the efficiency and cost of the use of the energy storage smart lamp. By providing a city selection area and a city electricity price information area, it is ensured that the user can intuitively understand the relevant electricity price information when selecting a city, helping to make effective decisions.
[0050] Step 302: Setting the applicable cities for manageable energy storage smart lamps through city selection areas.
[0051] In step 302, by selecting the city area, the user can accurately set the application city of the energy storage smart lamp according to the actual installation location, taking into account the different power policies in different places, and ensuring that the energy storage smart lamp can adapt to the use conditions of a specific area.
[0052] Step 303: Display the electricity price information table corresponding to the application city through the city electricity price information area.
[0053] In step 303, detailed electricity price information is provided through the city electricity price information area, so that users can plan the charging and discharging time of the energy storage lamp according to the difference in electricity charges in different time periods, thereby reducing electricity costs.
[0054] Step 304 , in response to a trigger instruction to the lighting parameter setting control 202 , a lighting parameter setting window is displayed, and lighting device parameters of the manageable energy storage smart lamp are set through the lighting parameter setting window.
[0055] In step 304, when the user clicks the lighting parameter setting control 202, a lighting parameter setting window is displayed, through which the user is allowed to set the lighting parameters of the energy storage smart lamp according to his or her needs to meet the lighting requirements in different scenes. Reasonable lighting parameter settings help improve energy efficiency and reduce unnecessary energy consumption.
[0056] Step 305 , in response to a trigger instruction to the energy storage parameter setting control 203 , an energy storage parameter setting window is displayed, and the energy storage device parameters of the manageable energy storage smart lamp are set through the energy storage parameter setting window.
[0057] In step 305, when the user clicks the energy storage parameter setting control 203, the energy storage parameter setting window is displayed. Through the energy storage parameter setting window, the user can set the energy storage parameters such as battery capacity and charging rate of the energy storage smart lamp to adapt to different energy storage requirements and application scenarios. Reasonable energy storage parameter configuration can help protect the battery and extend its service life.
[0058] Step 306, in response to the trigger instruction of the edit save control 204, save the application city and its corresponding electricity price information table, lighting device parameters and energy storage device parameters as application parameters corresponding to the manageable energy storage smart lamp.
[0059] In step 306, when the user clicks the edit save control 204, the system saves the application parameters corresponding to the energy storage smart lamp, ensuring that all user-defined settings are saved for subsequent use or modification. Once saved, these settings are immediately applied to the managed energy storage smart lamp, so that it starts working according to the new configuration. The user does not need to re-enter the same settings every time, which improves the efficiency of management and maintenance.
[0060] In some embodiments of the present application, in step 104, in response to a trigger instruction to the energy storage time management control 102, the implementation process of displaying the energy storage time management sub-interface includes but is not limited to the following steps.
[0061] Step 401 , in response to a trigger instruction of the energy storage time management control 102 , displaying an energy storage schedule template selection window corresponding to the trigger instruction of the energy storage time management control 102 .
[0062] It should be noted that the energy storage schedule template selection window includes a custom energy storage schedule creation control.
[0063] In step 401, when the user clicks the energy storage time management control 102, the system pops up a special energy storage schedule template selection window. Through the energy storage schedule template selection window, the user can quickly select a preset energy storage schedule template, simplifying the creation process. These templates may be based on common usage scenarios and can help users get started quickly. In addition to the preset templates, the window also includes a custom energy storage schedule creation control, which provides users with an entry so that they can customize the energy storage schedule according to their specific needs.
[0064] Step 402, in response to a trigger instruction for creating a control for a custom energy storage schedule, an energy storage time management sub-interface is displayed, allowing the user to customize the energy storage schedule of the manageable energy storage smart lamp according to actual needs.
[0065] In step 402, the energy storage time management sub-interface provides detailed setting options, allowing the user to fine-tune the behavior of the energy storage lamp in different time periods. For example, the user can set the specific time of charging and discharging, power threshold, etc.
[0066] The above two steps allow users to easily create and manage complex energy storage schedules, improving the practicality and convenience of energy storage smart lamps. Through this mechanism, users can achieve effective management and optimal allocation of energy while ensuring lighting needs.
[0067] In some embodiments of the present application, the energy storage time management sub-interface includes an energy storage schedule creation control. Figure 5 In step 105, according to the application parameters, through the energy storage time management sub-interface, the implementation process of creating an energy storage schedule for manageable energy storage smart lamps includes but is not limited to the following steps.
[0068] Step 501 : in response to a trigger instruction for an energy storage schedule creation control, display an energy storage schedule creation sub-interface 400 .
[0069] The energy storage schedule creation sub-interface 400 includes a mains lighting time period setting area 401 , a mains charging time period setting area 402 , a battery lighting time period setting area 403 and an energy storage schedule saving control 404 .
[0070] In step 501, when the user clicks the energy storage schedule creation control, the energy storage schedule creation sub-interface 400 is displayed. Through the energy storage schedule creation sub-interface 400, a user is provided with an entry to create and adjust the energy storage schedule. The energy storage schedule creation sub-interface 400 interface includes multiple areas, such as the mains lighting time period, mains charging time period, and battery lighting time period setting area 403, and an energy storage schedule saving control 404. Through the clear interface layout, the user can intuitively understand the purpose of each setting and complete the configuration of the energy storage schedule according to the guidance.
[0071] Step 502 : According to the application parameters, the mains lighting time period is set for the manageable energy storage smart lamp through the mains lighting time period setting area 401 .
[0072] It should be noted that the mains lighting time period refers to the time period during which the city power grid is used to power the lighting devices of manageable energy storage smart lamps.
[0073] In step 502, through the mains lighting time period setting area 401, the user can set the mains lighting time period according to the electricity price information of the city power grid (for example, avoiding peak hours) to reduce electricity costs. If it is during non-peak hours (such as noon or evening, depending on the electricity price policy of the specific area) and the energy storage device is insufficient, the mains electricity can be used directly to power the lighting device. The electricity price at this time is usually lower than that during peak hours, but higher than that during off-peak hours. Specifically, in the mains lighting time period setting area 401, the user first adds the date of the mains lighting, and then adds the time period of the mains lighting. The mains lighting time period setting area 401 supports adding multiple mains lighting time periods.
[0074] Step 503 , according to the application parameters, the mains charging time period is set for the manageable energy storage smart lamp through the mains charging time period setting area 402 .
[0075] It should be noted that the mains charging time period refers to the time period for charging the energy storage device of the manageable energy storage smart lamp using the city power grid.
[0076] In step 503, through the mains charging time period setting area 402, the user can choose a time period with lower electricity rates to use the city power grid to charge the energy storage device of the energy storage smart lamp, thereby saving costs and reducing carbon emissions. Therefore, when the mains electricity is in a low electricity price period (usually late at night or early in the morning), the electricity rate is lower, and the mains electricity should be used to charge the energy storage device first. In this way, electrical energy can be stored at a lower cost for use during peak hours. Specifically, in the mains charging time period setting area 402, the user first adds the date of mains charging, and then adds the time period for mains charging. The mains charging time period setting area 402 supports adding multiple mains charging time periods.
[0077] Step 504 , according to the application parameters, the battery lighting time period is set for the manageable energy storage smart lamp through the battery lighting time period setting area 403 .
[0078] It should be noted that the battery lighting time period refers to a time period during which the energy storage device of the manageable energy storage smart lamp is used to power the lighting device of the manageable energy storage smart lamp.
[0079] In step 504, the user can set the battery lighting time period through the battery lighting time period setting area 403. During the peak electricity price period (usually during daytime working hours or the peak period of residential electricity consumption at night), the electricity bill is high, and the electric energy stored in the energy storage device should be used as much as possible to meet the lighting needs. This can not only reduce the electricity bill expenditure during peak hours, but also help the power grid to smooth out the peak and support the stable operation of the power system. Specifically, in the battery lighting time period setting area 403, the user first adds the date of battery lighting, and then adds the battery lighting time period. The battery lighting time period setting area 403 supports adding multiple battery lighting time periods.
[0080] Step 505 , in response to a trigger instruction of the energy storage schedule saving control 404 , the mains lighting time period, the mains charging time period and the battery lighting time period are saved to obtain an energy storage schedule of the manageable energy storage intelligent lamp.
[0081] In step 505, in response to the trigger instruction of the energy storage schedule saving control 404, the energy storage schedule of the energy storage smart lamp is saved so that the system can automatically operate according to the predetermined plan. Once saved, the new energy storage schedule will be immediately applied to the energy storage smart lamp, so that it can work according to the newly set time period. The user does not need to re-enter the same settings every time, which improves management and maintenance efficiency. The saved energy storage schedule can be used as a reference for the user to view or modify according to actual conditions in the future.
[0082] Through the above steps, users can carefully plan the working mode of energy storage smart lamps, which not only takes into account the personalized needs of users, but also takes into account economic benefits and environmental protection, and promotes smarter and more efficient energy management methods.
[0083] In some embodiments of the present application, the energy storage time management sub-interface also includes an intelligent setting energy storage schedule control. In step 105, according to the application parameters, through the energy storage time management sub-interface, the implementation process of creating an energy storage schedule for manageable energy storage smart lamps includes but is not limited to the following steps.
[0084] Step 601, in response to a trigger instruction for the smart energy storage schedule setting control, displaying a smart energy storage schedule setting sub-interface.
[0085] It should be noted that the intelligent energy storage schedule setting sub-interface includes an intelligent energy storage schedule area and an intelligent setting save control. The intelligent energy storage schedule area is used to display the intelligent energy storage schedule automatically generated according to the application parameters.
[0086] In step 601, when the user clicks the smart setting control, the smart setting energy storage schedule sub-interface is displayed. The smart setting energy storage schedule sub-interface includes a smart energy storage schedule area and a smart setting save control. When the user clicks the smart setting control, the system automatically generates an optimized energy storage schedule based on the previously set application parameters (such as city electricity price information, lighting device parameters, and energy storage device parameters, etc.). The smart energy storage schedule area is used to intuitively display the generated schedule, including the city power lighting time period, the city power charging time period, and the battery lighting time period. This visual presentation method helps users understand and evaluate whether the strategies recommended by the system meet their needs.
[0087] Step 602 : In response to a trigger instruction for the smart setting saving control, the smart energy storage schedule is saved as an energy storage schedule for the manageable energy storage smart lamp.
[0088] In step 602, once the user confirms and clicks the smart setting save control, the generated smart energy storage schedule will be saved and immediately applied to the energy storage smart lamp. This means that the energy storage smart lamp will start working according to the new energy storage schedule without further manual intervention. The user does not need to manually enter or adjust the specific settings for each time period, saving time and energy and improving management efficiency. The saved energy storage schedule can be used as a reference for users to review in the future or make fine adjustments based on actual conditions to adapt to changing needs or environmental conditions.
[0089] In some embodiments of the present application, reference Figure 2 The energy storage smart lamp management main interface 100 also includes a lamp operation status area 103. The lamp operation status area 103 is used to display the operation status of the manageable energy storage smart lamps. The lamp operation status area 103 includes a lighting status area, an energy storage status area, and a power supply status area.
[0090] The lighting status area displays the current on / off status of the energy storage smart lamp, allowing users to confirm in real time whether the lamp is working as expected. By intuitively displaying this information, users can optimize the lighting effect, ensure that actual needs are met while avoiding unnecessary energy waste, and improve the overall energy efficiency management level.
[0091] The energy storage status area provides key information such as the remaining power percentage of energy storage devices (such as batteries). This helps users plan energy use rationally, charge in time, and adjust loads when necessary, thereby extending the service life of energy storage devices and ensuring sufficient power support at critical moments.
[0092] The power supply status area shows whether the energy storage smart lamp is currently powered by the mains or the energy storage device, and also allows users to manually switch the power supply mode. Users can choose the optimal power supply mode based on electricity price fluctuations and power supply stability, reduce operating costs and maintain lighting when the mains is interrupted, improving system reliability and emergency response capabilities.
[0093] Optionally, the lamp operation status area 103 also includes the application city area and the current electricity price peak and valley area of the energy storage smart lamp, further enriching the information available to the user. The application city area displays the name of the city where the lamp is located, and the current electricity price peak and valley area dynamically updates the electricity price level of the current period, such as peak, flat or valley. These extended information not only helps users optimize lighting effects according to actual needs and avoid unnecessary energy waste, but also allows users to choose the best power supply method according to electricity price fluctuations, reduce operating costs and maintain lighting when the city power is interrupted, improve the reliability and emergency response capabilities of the system, and thus achieve smarter and more efficient energy management.
[0094] In summary, the energy storage intelligent lamp management interaction method provided in the embodiments of the present application has the following technical effects.
[0095] The embodiments of the present application can help users to conveniently manage and set up energy storage smart lamps. Specifically, users can add new energy storage smart lamps through the intuitive main interface, and use the detailed lamp editing sub-interface to set specific application parameters for each energy storage smart lamp, including selecting the application city to obtain the corresponding electricity price information, customizing lighting and energy storage parameters, etc. At the same time, the embodiments of the present application introduces the function of customizing the creation of energy storage schedules, allowing users to flexibly arrange the time periods for mains lighting, charging, and battery lighting according to actual needs, thereby optimizing energy efficiency and reducing operating costs. In addition, the function of intelligently setting energy storage schedules is also provided, which further simplifies the user's operating process and realizes intelligent management.
[0096] In addition, the embodiments of the present application effectively improve the flexibility and management efficiency of the use of energy storage smart lamps, ensure that the energy storage smart lamps can automatically switch the power supply mode according to the preset strategy in different time periods, and help save energy. The design of the operating status area allows users to understand the working status of the lamps in real time, enhancing the transparency and controllability of the system. Overall, the embodiments of the present application provide a more personalized management platform for the application of energy storage smart lamps, which improves the user experience while also promoting the realization of energy conservation and environmental protection goals.
[0097] Secondly, refer to Figure 6 The embodiment of the present application provides an energy storage intelligent lamp management interactive system, including: a main interface module 701, a lamp editing module 702, an energy storage time setting module 703 and an energy storage management module 704.
[0098] The main interface module 701 is used to display the energy storage smart lamp management main interface 100. The energy storage smart lamp management main interface 100 includes a lamp new addition control 101 and an energy storage time management control 102.
[0099] The lamp editing module 702 is used to respond to the trigger instruction of adding a new lamp control 101 to display the lamp editing sub-interface 200; create a manageable energy storage smart lamp through the lamp editing sub-interface 200, and set corresponding application parameters for the manageable energy storage smart lamp.
[0100] The energy storage time setting module 703 is used to respond to the trigger instruction of the energy storage time management control 102, display the energy storage time management sub-interface; according to the application parameters, through the energy storage time management sub-interface, create an energy storage schedule for manageable energy storage smart lamps.
[0101] The energy storage management module 704 is used to manage the energy storage of the manageable energy storage smart lamps according to the energy storage schedule.
[0102] Furthermore, refer to Figure 7 The embodiment of the present application provides an energy storage intelligent lamp management interaction device, including: a processor and a memory. The memory is used to store a program. When the program is executed by the processor, the processor implements the aforementioned energy storage intelligent lamp management interaction method.
[0103] In addition, an embodiment of the present application provides a computer-readable storage medium, in which a program executable by a processor is stored. When the program executable by the processor is executed by the processor, it is used to implement the aforementioned energy storage intelligent lamp management interaction method.
[0104] Similarly, the contents of the above method embodiments are all applicable to system embodiments, device embodiments and medium embodiments. The functions specifically implemented by the system embodiments, device embodiments and medium embodiments are the same as those of the above method embodiments, and the beneficial effects achieved are also the same as those achieved by the above method embodiments.
[0105] In some optional embodiments, the function / operation mentioned in the block diagram may not occur in the order mentioned in the operation schematic diagram. For example, depending on the function / operation involved, the two boxes shown in succession can actually be executed substantially simultaneously or the boxes can sometimes be executed in reverse order. In addition, the embodiment presented and described in the flow chart of the application is provided by way of example, for the purpose of providing a more comprehensive understanding of the technology. The disclosed method is not limited to the operation and logic flow presented herein. The optional embodiment is expected, wherein the order of various operations is changed and the sub-operation of a part of the larger operation is wherein described is performed independently.
[0106] In addition, although the present application is described in the context of functional modules, it should be understood that, unless otherwise specified, one or more of the functions and / or features can be integrated into a single physical device and / or software module, or one or more functions and / or features can be implemented in a separate physical device or software module. It can also be understood that a detailed discussion of the actual implementation of each module is unnecessary for understanding the present application. More specifically, in view of the properties, functions and internal relationships of the various functional modules in the devices disclosed herein, the actual implementation of the module will be understood within the conventional techniques of engineers. Therefore, those skilled in the art can implement the present application as set forth in the claims using ordinary techniques. It can also be understood that the specific concepts disclosed are merely illustrative and are not intended to limit the scope of the present application, which is determined by the full scope of the attached claims and their equivalents.
[0107] If the function is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art or the part of the technical solution, can be embodied in the form of a software product. The computer software product is stored in a storage medium, including several programs to enable a computer device (which can be a personal computer, server, or network device, etc.) to perform all or part of the steps of the methods of various embodiments of the present invention. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), disk or optical disk and other media that can store program codes.
[0108] The logic and / or steps represented in the flowchart or otherwise described herein, for example, may be considered as an ordered list of executable programs for implementing the logical functions, and may be embodied in any computer-readable medium for use by a program execution system, device or apparatus (such as a computer-based system, a system including a processor, or other system that can fetch and execute a program from a program execution system, device or apparatus), or in conjunction with such program execution systems, devices or apparatuses. For purposes of this specification, a "computer-readable medium" may be any device that can contain, store, communicate, propagate or transmit a program for use by a program execution system, device or apparatus, or in conjunction with such program execution systems, devices or apparatuses.
[0109] More specific examples of computer-readable media (a non-exhaustive list) include the following: an electrical connection with one or more wires (electronic device), a portable computer disk case (magnetic device), a random access memory (RAM), a read-only memory (ROM), an erasable and programmable read-only memory (EPROM or flash memory), a fiber optic device, and a portable compact disk read-only memory (CDROM). In addition, the computer-readable medium may even be a paper or other suitable medium on which the program is printed, since the program may be obtained electronically, for example, by optically scanning the paper or other medium, followed by editing, deciphering or, if necessary, processing in a suitable manner thereof, and then stored in a computer memory.
[0110] It should be understood that the various parts of the present invention can be implemented by hardware, software, firmware or a combination thereof. In the above-mentioned embodiments, a plurality of steps or methods can be implemented by software or firmware stored in a memory and executed by a suitable program execution system. For example, if implemented by hardware, as in another embodiment, it can be implemented by any one of the following technologies known in the art or their combination: a discrete logic circuit having a logic gate circuit for implementing a logic function for a data signal, a dedicated integrated circuit having a suitable combination of logic gate circuits, a programmable gate array (PGA), a field programmable gate array (FPGA), etc.
[0111] In the above description of this specification, the description with reference to the terms "one embodiment / implementation", "another embodiment / implementation" or "certain embodiments / implementations" etc. means that the specific features, structures, materials or characteristics described in conjunction with the embodiments or examples are included in the embodiments or examples of the present invention. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.
[0112] Although the embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the claims and their equivalents.
[0113] The above is a specific description of the preferred implementation of the present invention, but the present invention is not limited to the embodiments. Those skilled in the art may make various equivalent modifications or substitutions without violating the spirit of the present invention. These equivalent modifications or substitutions are all included in the scope defined by the claims of the present invention.
Claims
1. An interactive method for managing energy storage intelligent lamps, characterized in that: The steps include: Display the main interface of energy storage intelligent lamp management; wherein the main interface of energy storage intelligent lamp management includes lamp new addition controls and energy storage time management controls; In response to a trigger instruction for adding a new control to the lamp, displaying a lamp editing sub-interface; Create a manageable energy storage smart lamp through the lamp editing sub-interface, and set corresponding application parameters for the manageable energy storage smart lamp; In response to a trigger instruction for the energy storage time management control, displaying an energy storage time management sub-interface; According to the application parameters, creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface; According to the energy storage schedule, energy storage management is performed on the manageable energy storage intelligent lamp.
2. The energy storage intelligent lamp management interaction method according to claim 1 is characterized in that: The step of displaying a lamp editing sub-interface in response to a trigger instruction for adding a new control to the lamp comprises: In response to a trigger instruction for adding a new control to the lamp, display a lamp template selection window corresponding to the trigger instruction for adding the new control to the lamp; wherein the lamp template selection window includes a custom lamp creation control; In response to a trigger instruction for creating a control for the custom lamp, the lamp editing sub-interface is displayed, allowing the user to customize the manageable energy storage smart lamp according to actual needs.
3. The energy storage intelligent lamp management interaction method according to claim 1 is characterized in that: The lamp editing sub-interface includes a city selection control, a lighting parameter setting control, an energy storage parameter setting control, and an edit and save control; The step of creating a manageable energy storage smart lamp through the lamp editing sub-interface and setting corresponding application parameters for the manageable energy storage smart lamp includes: In response to a trigger instruction for the city selection control, a city selection sub-interface is displayed; wherein the city selection sub-interface includes a city selection area and a city electricity price information area; Setting the application city of the manageable energy storage smart lamp through the city selection area; The electricity price information table corresponding to the application city is displayed in the city electricity price information area; In response to a trigger instruction for the lighting parameter setting control, a lighting parameter setting window is displayed, and lighting device parameters of the manageable energy storage smart lamp are set through the lighting parameter setting window; In response to a trigger instruction for the energy storage parameter setting control, an energy storage parameter setting window is displayed, and energy storage device parameters of the manageable energy storage smart lamp are set through the energy storage parameter setting window; In response to a trigger instruction for the edit and save control, the application city and its corresponding electricity price information table, the lighting device parameters and the energy storage device parameters are saved as application parameters corresponding to the manageable energy storage smart lamp.
4. The energy storage intelligent lamp management interaction method according to claim 1 is characterized in that: The displaying of the energy storage time management sub-interface in response to the triggering instruction of the energy storage time management control includes: In response to a trigger instruction of the energy storage time management control, displaying an energy storage schedule template selection window corresponding to the trigger instruction of the energy storage time management control; wherein the energy storage schedule template selection window includes a custom energy storage schedule creation control; In response to a trigger instruction for creating a control for the custom energy storage schedule, the energy storage time management sub-interface is displayed, allowing the user to customize the energy storage schedule of the manageable energy storage smart lamp according to actual needs.
5. The energy storage intelligent lamp management interaction method according to claim 1 is characterized in that: The energy storage time management sub-interface includes an energy storage schedule creation control; The step of creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters includes: In response to a trigger instruction for the energy storage schedule creation control, an energy storage schedule creation sub-interface is displayed; wherein the energy storage schedule creation sub-interface includes a city power lighting time period setting area, a city power charging time period setting area, a battery lighting time period setting area and an energy storage schedule saving control; According to the application parameters, the mains lighting time period is set for the manageable energy storage smart lamp through the mains lighting time period setting area; the mains lighting time period refers to the time period in which the city power grid is used to power the lighting device of the manageable energy storage smart lamp; According to the application parameters, the mains charging time period is set for the manageable energy storage smart lamp through the mains charging time period setting area; the mains charging time period refers to the time period for charging the energy storage device of the manageable energy storage smart lamp using the city power grid; According to the application parameters, a battery lighting time period is set for the manageable energy storage smart lamp through the battery lighting time period setting area; the battery lighting time period refers to a time period in which the energy storage device of the manageable energy storage smart lamp is used to power the lighting device of the manageable energy storage smart lamp; In response to a trigger instruction for the energy storage schedule saving control, the mains lighting time period, the mains charging time period and the battery lighting time period are saved to obtain an energy storage schedule for the manageable energy storage intelligent lamp.
6. The energy storage intelligent lamp management interaction method according to claim 1 is characterized in that: The energy storage time management sub-interface also includes an intelligent setting energy storage schedule control; The step of creating an energy storage schedule for the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters further includes: In response to a trigger instruction for the intelligent energy storage schedule setting control, a sub-interface for intelligent energy storage schedule setting is displayed; wherein the sub-interface for intelligent energy storage schedule setting includes an intelligent energy storage schedule area and an intelligent setting saving control; The intelligent energy storage schedule area is used to display an intelligent energy storage schedule automatically generated according to the application parameters; In response to a trigger instruction for the smart setting saving control, the smart energy storage schedule is saved as the energy storage schedule of the manageable energy storage smart lamp.
7. The energy storage intelligent lamp management interaction method according to claim 1 is characterized in that: The energy storage smart lamp management main interface also includes a lamp operation status area; the lamp operation status area is used to display the operation status of the manageable energy storage smart lamp; the lamp operation status area includes a lighting status area, an energy storage status area and a power supply status area.
8. An energy storage intelligent lamp management interactive system, characterized in that: include: Main interface module, lamp editing module, energy storage time setting module and energy storage management module; The main interface module is used to display the main interface of energy storage intelligent lamp management; wherein the main interface of energy storage intelligent lamp management includes lamp new addition controls and energy storage time management controls; The lamp editing module is used to display a lamp editing sub-interface in response to a trigger instruction for adding a new control to the lamp; create a manageable energy storage smart lamp through the lamp editing sub-interface, and set corresponding application parameters for the manageable energy storage smart lamp; The energy storage time setting module is used to display an energy storage time management sub-interface in response to a trigger instruction of the energy storage time management control; and to create an energy storage schedule of the manageable energy storage smart lamp through the energy storage time management sub-interface according to the application parameters; The energy storage management module is used to perform energy storage management on the manageable energy storage intelligent lamp according to the energy storage schedule.
9. An energy storage intelligent lamp management interactive device, characterized in that: include: Processor and memory; The memory is used to store programs; when the program is executed by the processor, the processor implements the energy storage intelligent lamp management interaction method as described in any one of claims 1 to 7.
10. A computer-readable storage medium storing a program executable by a processor, characterized in that: The program executable by the processor is used to implement the energy storage intelligent lamp management interaction method as described in any one of claims 1 to 7 when executed by the processor.