Photovoltaic generating capacity display method, device and system and medium
By acquiring power generation management data of photovoltaic power generation areas through login credentials of smart mobile devices and communication links with minimal latency, the problem of data timeliness when photovoltaic power generation areas are widely distributed and management personnel are scattered is solved, thus achieving efficient management of photovoltaic power generation areas.
Patent Information
- Application Number
- CN202510903644.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-01
- Publication Date
- 2025-11-25
AI Technical Summary
Given the wide geographical distribution of photovoltaic power generation areas and the dispersed management personnel, how to promptly grasp the power generation situation in each area is an urgent problem to be solved.
The system obtains login credentials for management personnel through the human-computer interaction interface of smart mobile devices, determines the photovoltaic power generation area under their responsibility, and acquires power generation management data in real time through a minimal delay communication link. The data is displayed using an arc-shaped fill strip and a digital display area, and supports forward and backward trigger controls for easy data viewing.
It enables timely data acquisition and management of photovoltaic power generation areas, improves the timeliness of data acquisition, and facilitates the management of photovoltaic power generation areas by managers.
Smart Images

Figure CN121012192A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of photovoltaic technology, specifically to a method, device, system, and medium for displaying photovoltaic power generation. Background Technology
[0002] Current photovoltaic (PV) power generation management typically employs on-site management, meaning that the current PV power generation status is managed within the PV power generation area. However, when PV power generation areas are geographically dispersed and management personnel are scattered, how to promptly grasp the current power generation status of these areas is a technical problem that urgently needs to be addressed within the industry. Summary of the Invention
[0003] The present invention provides a method, apparatus, system and medium for displaying photovoltaic power generation, in order to solve one or more technical problems existing in the prior art, and at least provide a beneficial option or create conditions.
[0004] This invention provides a method for displaying photovoltaic power generation, comprising: displaying a login window in the human-computer interaction interface of a smart mobile device, and obtaining login credentials information of the administrator through the login window; The corresponding photovoltaic power generation area is determined based on the login credentials information, and the photovoltaic power generation area is recorded as the target photovoltaic power generation area. The management interface is displayed in the human-computer interaction interface; the minimum delay communication link between the smart mobile device and the target photovoltaic power generation area is determined according to the location information of the target photovoltaic power generation area, and the communication link is recorded as the target communication link. Access the data management server of the target photovoltaic power generation area through the target communication link, and obtain the power generation management data corresponding to the target photovoltaic power generation area in real time from the data management server; update the display information in the display controls of the current management interface through the power generation management data.
[0005] Furthermore, determining the minimum latency communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area specifically includes: acquiring the location information of the target photovoltaic power generation area, determining the communication grid of the target photovoltaic power generation area based on the location information, and designating the communication grid as the first communication grid; acquiring the location information of the smart mobile device, determining the communication grid of the smart mobile device based on the location information, and designating the communication grid as the second communication grid; obtaining multiple communication links from a pre-set communication link database based on the first and second communication grids; and performing latency tests on the multiple communication links on the smart mobile device, and determining the communication link with the minimum latency through screening.
[0006] Furthermore, the power generation management data includes: current power generation and total installed capacity. The display control includes a ratio display control, which is equipped with an arc-shaped fill band and a digital display area. The ratio value is obtained by dividing the current power generation by the total installed capacity. The digital display area displays the ratio value as a percentage. The arc-shaped fill band is filled with a pre-set color according to the ratio value.
[0007] Furthermore, the power generation management data also includes: cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and total number of inverters; the display control also includes: a basic numerical display control, which is used to display the current power generation, total installed capacity, cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and total number of inverters in numerical form.
[0008] Furthermore, based on the distance between the smart mobile device and the target photovoltaic power generation area, the power generation management data corresponding to the target photovoltaic power generation area is sorted, with the power generation management data corresponding to the target photovoltaic power generation area that is closer to the smart mobile device placed first. The management interface is equipped with forward trigger controls and backward trigger controls. When the forward trigger control is triggered, the previously sorted power generation management data is used to update the display information in the display controls of the current management interface. When the backward trigger control is triggered, the subsequently sorted power generation management data is used to update the display information in the display controls of the current management interface.
[0009] On the other hand, a photovoltaic power generation display device is provided, comprising: a processor and a memory, wherein the memory is used to store a computer-readable program; when the computer-readable program is executed by the processor, the processor causes the processor to implement the photovoltaic power generation display method as described in any of the above technical solutions. On the other hand, a photovoltaic power generation display system is provided, including: a first display module, a first determination module, a second display module, a second determination module, an acquisition module, and an update module; The first display module is used to: display a login window in the human-computer interaction interface of a smart mobile device, and obtain the login credentials information of the administrator through the login window; The first determining module is used to: determine the corresponding photovoltaic power generation area under its responsibility based on the login credentials information, and record the photovoltaic power generation area as the target photovoltaic power generation area; The second display module is used to: display the management interface in the human-computer interaction interface; The second determining module is used to: determine the minimum delay communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area, and record the communication link as the target communication link; The acquisition module is used to: access the data management server of the target photovoltaic power generation area through the target communication link, and obtain the power generation management data corresponding to the target photovoltaic power generation area in real time from the data management server; The update module is used to update the display information in the display controls of the current management interface using the power generation management data.
[0010] Furthermore, in the second determining module, determining the minimum latency communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area specifically includes: acquiring the location information of the target photovoltaic power generation area, determining the communication grid of the target photovoltaic power generation area based on the location information, and recording the communication grid as the first communication grid; acquiring the location information of the smart mobile device, determining the communication grid of the smart mobile device based on the location information, and recording the communication grid as the second communication grid; obtaining multiple communication links from a pre-set communication link database based on the first and second communication grids; and performing latency tests on the multiple communication links respectively on the smart mobile device, and determining the communication link with the minimum latency through screening.
[0011] Furthermore, the power generation management data includes: current power generation and total installed capacity. The display control includes a ratio display control, which is equipped with an arc-shaped fill band and a digital display area. The ratio value is obtained by dividing the current power generation by the total installed capacity. The digital display area displays the ratio value as a percentage. The arc-shaped fill band is filled with a pre-set color according to the ratio value.
[0012] On the other hand, a computer-readable storage medium is provided, wherein a processor-executable program is stored, which, when executed by a processor, is used to implement the photovoltaic power generation display method as described in any of the above technical solutions.
[0013] The present invention has at least the following beneficial effects: The method of the present invention determines the photovoltaic power generation area under the management of the administrator through login credential information, and determines the grid of smart mobile devices and photovoltaic power generation areas through location information. Furthermore, multiple communication links between smart mobile devices and photovoltaic power generation areas are determined through these grids. The smart mobile device selects the communication link with the least latency from these communication links as the target communication link. Finally, the power generation management data of the target photovoltaic power generation area is obtained through the target communication link. Because the target communication link has the least latency, the acquisition of the entire power generation management data has better timeliness, improving the timeliness of data acquisition for the photovoltaic power generation area and facilitating the management of the photovoltaic power generation area by the administrator. The present invention also provides corresponding devices, systems, and media, the beneficial effects of which are similar to those of the method, and will not be repeated here. Attached Figure Description
[0014] The accompanying drawings are provided to further understand the technical solutions of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the technical solutions of the present invention, and do not constitute a limitation on the technical solutions of the present invention.
[0015] Figure 1 This is a flowchart of the steps involved in displaying photovoltaic power generation. Figure 2 This is a schematic diagram of the structure of a photovoltaic power generation display device; Figure 3 This is a schematic diagram of the system connection structure of the photovoltaic power generation display system; Figure 4 This is a schematic diagram of the management interface structure. Detailed Implementation
[0016] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0017] It should be noted that although functional modules are divided in the system diagram and the logical order is shown in the flowchart, in some cases, the steps shown or described may be performed in a different order than the module division in the system or the order in the flowchart. The terms "first," "second," etc., in the specification, claims, and the aforementioned drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence.
[0018] refer to Figure 1 and Figure 4 , Figure 1 This is a flowchart of the steps involved in displaying photovoltaic power generation. Figure 4This is a schematic diagram of the management interface structure.
[0019] The main purpose of this invention is to facilitate managers' timely understanding of the power generation status of the photovoltaic power generation areas under their responsibility. To achieve this technical objective, this application discloses a photovoltaic power generation display method, which can be run by a software program. The software program, when running, includes the following steps: Step 1: Display a login window in the human-computer interaction interface of the smart mobile device, and obtain the login credentials information of the administrator through the login window.
[0020] The software program relies on a smart mobile device to run, wherein, in some further specific embodiments, the smart mobile device is a smartphone.
[0021] Managers use smart mobile devices to obtain power generation information for the photovoltaic power generation areas under their responsibility. The software program controls the smart mobile device, displaying a login window on its human-computer interface (phone screen). This login window includes account and password input controls. Managers enter their assigned management account through the account input control and their assigned management password through the password input control. The software program retrieves the management account and password entered by the manager through the login window. These management account and password can be considered the manager's login credentials.
[0022] Step 2: Determine the corresponding photovoltaic power generation area based on the login credentials information, and record the photovoltaic power generation area as the target photovoltaic power generation area.
[0023] The software program verifies the login credentials. If the verification is successful, the administrator's identity and the photovoltaic power generation area under their jurisdiction can be determined. For ease of description, the photovoltaic power generation area under the administrator's jurisdiction is referred to as the target photovoltaic power generation area. It should be noted that an administrator can have multiple photovoltaic power generation areas under their jurisdiction, for example, three.
[0024] Step 3: Display the management interface in the human-computer interaction interface.
[0025] To enable managers to promptly understand the status of the photovoltaic power generation areas under their jurisdiction, the software program displays a management interface on the human-computer interaction interface of a smart mobile device after the target photovoltaic power generation area is identified. This management interface is equipped with various display controls that can display the power generation management data of the target photovoltaic power generation area, allowing managers to easily view this data.
[0026] Step 4: Determine the minimum delay communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area, and record the communication link as the target communication link.
[0027] To obtain power generation management data from the target photovoltaic power generation area at the fastest possible speed, the software program selects the communication link with the shortest latency between the smart mobile device and the target photovoltaic power generation area. For ease of description, this communication link is referred to as the target communication link.
[0028] In some further specific embodiments, determining the minimum latency communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area specifically includes: the software program determining the location information of the target photovoltaic power generation area through a location information table pre-stored on the local device. Simultaneously, since the location of the target photovoltaic power generation area is fixed in advance, the communication grid of the target photovoltaic power generation area is also determined when establishing the communication network. Therefore, the software program can determine the communication grid corresponding to the target photovoltaic power generation area through a communication grid data file pre-recorded on the local device. For ease of description, this communication grid is referred to as the first communication grid.
[0029] The software program determines the location information of the smart mobile device by accessing its positioning module. It then determines the communication grid of the smart mobile device using a pre-recorded communication grid data file on the local device. For ease of description, this communication grid is referred to as the second communication grid.
[0030] Because the communication links for each photovoltaic power generation area have been planned in advance and stored in the communication link database, the software program can find multiple planned communication links in the database through the first and second communication grids. To ensure optimal access to power generation management data for each photovoltaic power generation area, a grid-based approach is used when planning the network connections for each area. Furthermore, by expanding bandwidth, establishing link backups, and purchasing acceleration services, multiple communication links exist between the grids, all of which are pre-recorded in the communication link database.
[0031] The software program obtains multiple communication links that can connect to the first and second communication grids from the communication link database. To find the communication link with the minimum latency among these links, the software program also performs latency tests on each of the multiple communication links using a smart mobile device. This testing process allows for the selection and determination of the communication link with the minimum latency. For ease of description, the communication link with the minimum latency is denoted as the target communication link.
[0032] Step 5: Access the data management server of the target photovoltaic power generation area through the target communication link, and obtain the power generation management data corresponding to the target photovoltaic power generation area in real time from the data management server.
[0033] Once the software program identifies the target communication link, it can obtain power generation management data for the target photovoltaic power generation area through that link. Specifically, the software program uses a smart mobile device to access the data management server of the target photovoltaic power generation area via the target communication link. The power generation management data is then obtained from the data management server.
[0034] Step 6: Update the display information in the display controls of the current management interface using the power generation management data.
[0035] After obtaining the power generation management data, the software program can use this data to update the current management interface. The current management interface has various display controls, and the software program inputs the power generation management data into the corresponding display controls. These controls provide a readable presentation of the power generation management data, allowing managers to clearly understand the current power generation status of the target photovoltaic power generation area.
[0036] This invention uses login credentials to determine the photovoltaic (PV) power generation area under the management of an administrator, and uses location information to determine the grid of smart mobile devices and PV power generation areas. Multiple communication links between smart mobile devices and PV power generation areas are then identified using these grids. The smart mobile device selects the communication link with the shortest latency as the target communication link. Finally, power generation management data for the target PV power generation area is acquired through this target communication link. Because this target communication link has the shortest latency, the acquisition of power generation management data is timely, improving the timeliness of data acquisition for the PV power generation area and facilitating management by administrators.
[0037] To facilitate management personnel's viewing of power generation management data, in some further specific embodiments, the display control includes a ratio display control. The ratio display control has two UI formats for displaying the input data. These two UI formats include: an arc-shaped fill band and a numerical display area. The arc-shaped fill band is curved in shape and displays data by filling it with color. The numerical display area, on the other hand, converts the input data into numerical form using natural language processing and displays the data in numerical format.
[0038] The software program divides the current power generation by the total installed capacity to obtain a ratio. This ratio is then used as input data into the digital display area and the curved fill band.
[0039] The digital display area displays the ratio value as a percentage; the arc-shaped fill band fills the area with a pre-set color according to the ratio value.
[0040] By visualizing power generation management data, managers can easily view the ratio of current power generation to total installed capacity. This allows managers to better understand the current power generation status of the target photovoltaic power generation area.
[0041] To enable managers to have a more comprehensive understanding of the target photovoltaic power generation area, in some further specific embodiments, the display control also includes: a basic numerical display control. The power generation management data also includes: cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and the total number of inverters.
[0042] The basic numerical display control converts input data into numerical form using natural language processing and then displays the data in numerical form. After parsing the power generation management data, the software program obtains the cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and the total number of inverters. These figures are then input into the basic numerical display control. The control converts the input data to display the current power generation, total installed capacity, cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and the total number of inverters in numerical form.
[0043] When a manager oversees numerous target photovoltaic (PV) power generation areas, to facilitate data viewing for these areas, in some specific embodiments, the software program sorts the power generation management data corresponding to the target PV power generation areas based on the distance between the smart mobile device and the target PV power generation area. The sorting criterion is based on the distance between the smart mobile device and the target PV power generation area. Specifically, power generation management data corresponding to target PV power generation areas closer to the smart mobile device is listed first, and power generation management data corresponding to target PV power generation areas farther away is listed last. This sequential sorting forms a power generation management data sequence.
[0044] To facilitate viewing by administrators, forward and backward trigger controls are provided on the management interface.
[0045] When managers need to view nearby target photovoltaic power generation areas, they can trigger the forward trigger control. Once the software confirms that the forward trigger control has been triggered, it will update the display information in the current management interface's display controls with the previously sorted power generation management data.
[0046] When managers need to view a distant target photovoltaic power generation area, they can trigger the back button. Once the software confirms that the back button has been triggered, it will update the display information in the current management interface with the next sorted power generation management data.
[0047] On the other hand, reference Figure 2 , Figure 2 This is a schematic diagram of the structure of a photovoltaic power generation display device.
[0048] An ambient air system control and interaction device is provided, comprising: a processor and a memory; wherein the memory is used to store a computer-readable program. When the computer-readable program is executed by the processor, the processor causes the processor to implement the photovoltaic power generation display method as described in any of the above technical solutions.
[0049] Those skilled in the art will understand that all or some of the steps and systems in the methods disclosed above can be implemented as software, firmware, hardware, and suitable combinations thereof. Some or all of the physical components can be implemented as software executed by a processor, such as a central processing unit, digital signal processor, or microprocessor, or as hardware, or as an integrated circuit, such as an application-specific integrated circuit. Such software can be distributed on a computer-readable medium, which can include computer storage media (or non-transitory media) and communication media (or transient media). As is known to those skilled in the art, the term computer storage media includes volatile and non-volatile, removable and non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules, or other data). Computer storage media includes, but is not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disc (DVD) or other optical disc storage, magnetic cartridges, magnetic tape, disk storage or other magnetic storage devices, or any other medium that can be used to store desired information and is accessible to a computer. As is known to those skilled in the art, communication media typically contain computer-readable instructions, data structures, program modules, or other data in modulated data signals such as carrier waves or other transmission mechanisms, and may include any information delivery medium.
[0050] On the other hand, reference Figure 3 , Figure 3This is a schematic diagram of the system connection structure of the photovoltaic power generation display system.
[0051] A photovoltaic power generation display system is provided, comprising: a first display module, a first determination module, a second display module, a second determination module, an acquisition module, and an update module.
[0052] The first display module is used to: display a login window in the human-computer interaction interface of a smart mobile device, and obtain the login credentials information of the administrator through the login window.
[0053] Managers use smart mobile devices to obtain power generation information related to the photovoltaic power generation areas under their responsibility. The first display module controls the smart mobile device to display a login window on its human-computer interaction interface (phone screen). The login window has account input controls and password input controls. Managers enter their assigned management account through the account input control and their assigned management password through the password input control. The software program obtains the management account and password entered by the manager through the login window. The management account and password can be considered as the manager's login credentials.
[0054] The first determining module is used to: determine the corresponding photovoltaic power generation area under its responsibility based on the login credentials information, and record the photovoltaic power generation area as the target photovoltaic power generation area.
[0055] The first determination module verifies the login credentials. If the verification is successful, the administrator's identity and the photovoltaic power generation area under their jurisdiction can be determined. For ease of description, the photovoltaic power generation area under the jurisdiction of the determined administrator is denoted as the target photovoltaic power generation area. It should be noted that an administrator can have multiple photovoltaic power generation areas under their jurisdiction, for example, three.
[0056] The second display module is used to display the management interface in the human-computer interaction interface.
[0057] To ensure managers can promptly understand the status of their assigned photovoltaic power generation areas, the second display module, after identifying the target photovoltaic power generation area, displays a management interface on the human-computer interaction interface of a smart mobile device. This management interface includes various display controls that can show the power generation management data for the target photovoltaic power generation area, facilitating managers' access to this data.
[0058] The second determining module is used to: determine the minimum delay communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area, and record the communication link as the target communication link.
[0059] To obtain power generation management data from the target photovoltaic power generation area at the fastest possible speed, the second determining module selects the communication link with the minimum latency between the smart mobile device and the target photovoltaic power generation area. For ease of description, this communication link is referred to as the target communication link.
[0060] In some further specific embodiments, determining the minimum latency communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area specifically includes: the second determining module determining the location information of the target photovoltaic power generation area through a location information table pre-stored on the local device. Simultaneously, since the location of the target photovoltaic power generation area is fixed in advance, the communication grid of the target photovoltaic power generation area is also determined when establishing the communication network. Therefore, the software program can determine the communication grid corresponding to the target photovoltaic power generation area through a communication grid data file pre-recorded on the local device. For ease of description, this communication grid is referred to as the first communication grid.
[0061] The second determining module determines the location information of the smart mobile device by accessing the positioning module on the smart mobile device. It then determines the communication grid of the smart mobile device using a communication grid data file pre-recorded on the local device. For ease of description, this communication grid is referred to as the second communication grid.
[0062] Because the communication links for each photovoltaic power generation area have been planned in advance and stored in the communication link database, the software program can find multiple planned communication links in the database through the first and second communication grids. To ensure optimal access to power generation management data for each photovoltaic power generation area, a grid-based approach is used when planning the network connections for each area. Furthermore, by expanding bandwidth, establishing link backups, and purchasing acceleration services, multiple communication links exist between the grids, all of which are pre-recorded in the communication link database.
[0063] The second determining module obtains multiple communication links that can connect the first and second communication grids from the communication link database. To find the communication link with the minimum latency among these multiple links, the second determining module also performs latency tests on each of the multiple communication links using a smart mobile device. This testing process allows for the selection and determination of the communication link with the minimum latency. For ease of description, the communication link with the minimum latency is denoted as the target communication link.
[0064] The acquisition module is used to: access the data management server of the target photovoltaic power generation area through the target communication link, and obtain the power generation management data corresponding to the target photovoltaic power generation area in real time from the data management server.
[0065] Once the acquisition module has identified the target communication link, it can obtain power generation management data for the target photovoltaic power generation area through that link. Specifically, the acquisition module uses a smart mobile device to access the data management server of the target photovoltaic power generation area via the target communication link. The power generation management data is then obtained from the data management server.
[0066] The update module is used to update the display information in the display controls of the current management interface using the power generation management data.
[0067] After obtaining the power generation management data, the update module can use this data to update the current management interface. The current management interface has various display controls; the update module inputs the power generation management data into the corresponding display controls. These controls provide a readable presentation of the power generation management data, allowing managers to clearly understand the current power generation status of the target photovoltaic power generation area.
[0068] To facilitate management personnel's viewing of power generation management data, in some further specific embodiments, the display control includes a ratio display control. The ratio display control has two UI formats for displaying the input data. These two UI formats include: an arc-shaped fill band and a numerical display area. The arc-shaped fill band is curved in shape and displays data by filling it with color. The numerical display area, on the other hand, converts the input data into numerical form using natural language processing and displays the data in numerical format.
[0069] Specifically, the current power generation is divided by the total installed capacity to obtain a proportional value. This proportional value is then used as input data and displayed in the digital display area and the curved fill band.
[0070] The digital display area displays the ratio value as a percentage; the arc-shaped fill band fills the area with a pre-set color according to the ratio value.
[0071] By visualizing power generation management data, managers can easily view the ratio of current power generation to total installed capacity. This allows managers to better understand the current power generation status of the target photovoltaic power generation area.
[0072] On the other hand, a computer-readable storage medium is provided, wherein a processor-executable program is stored, which, when executed by a processor, is used to implement the photovoltaic power generation display method as described in any of the above specific embodiments.
[0073] This application also discloses a computer program product, including a computer program or computer instructions, which are stored in a computer-readable storage medium. The processor of the computer device reads the computer program or computer instructions from the computer-readable storage medium and executes the computer program or computer instructions, causing the computer device to perform the photovoltaic power generation display method as described in any of the preceding embodiments.
[0074] The terms “first,” “second,” “third,” “fourth,” etc. (if present) in the specification and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatuses.
[0075] It should be understood that in this application, "at least one (item)" means one or more, and "more than" means two or more. "And / or" is used to describe the relationship between related objects, indicating that three relationships can exist. For example, "A and / or B" can represent three cases: only A exists, only B exists, and both A and B exist simultaneously, where A and B can be singular or plural. The character " / " generally indicates that the preceding and following related objects are in an "or" relationship. "At least one (item) of the following" or similar expressions refer to any combination of these items, including any combination of single or plural items. For example, at least one (item) of a, b, or c can represent: a, b, c, "a and b", "a and c", "b and c", or "a and b and c", where a, b, and c can be single or multiple.
[0076] In the several embodiments provided in this application, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be indirect coupling or communication connection through some interfaces, apparatuses, or units, and may be electrical, mechanical, or other forms.
[0077] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0078] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.
[0079] If the integrated unit is implemented as 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 this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0080] Although the description of this application has been quite detailed and particularly focused on several of the described embodiments, it is not intended to limit itself to any of these details or embodiments or any particular embodiment. Rather, it should be considered as effectively covering the intended scope of this application by referring to the appended claims and taking into account the prior art, which provides for a broad possible interpretation of these claims. Furthermore, the foregoing description of this application with respect to embodiments foreseeable by the inventors is intended to provide a useful description, and non-substantial modifications to this application that have not yet been foreseen may still represent equivalent modifications.
Claims
1. A method for displaying photovoltaic power generation, characterized in that, include: A login window is displayed in the human-computer interaction interface of a smart mobile device, and the login credentials of the administrator are obtained through the login window; The corresponding photovoltaic power generation area is determined based on the login credentials information, and the photovoltaic power generation area is recorded as the target photovoltaic power generation area. Display the management interface through the human-computer interaction interface; Based on the location information of the target photovoltaic power generation area, determine the communication link with the minimum delay between the smart mobile device and the target photovoltaic power generation area, and record the communication link as the target communication link. Access the data management server of the target photovoltaic power generation area through the target communication link, and obtain the power generation management data corresponding to the target photovoltaic power generation area in real time from the data management server; update the display information in the display controls of the current management interface through the power generation management data.
2. The photovoltaic power generation display method according to claim 1, characterized in that, Determining the minimum latency communication link between a smart mobile device and a target photovoltaic power generation area based on the location information of the target photovoltaic power generation area specifically includes: acquiring the location information of the target photovoltaic power generation area, determining the communication grid of the target photovoltaic power generation area based on the location information, and designating the communication grid as the first communication grid; acquiring the location information of the smart mobile device, determining the communication grid of the smart mobile device based on the location information, and designating the communication grid as the second communication grid; obtaining multiple communication links from a pre-set communication link database based on the first and second communication grids; and performing latency tests on the multiple communication links on the smart mobile device, and determining the communication link with the minimum latency through screening.
3. The photovoltaic power generation display method according to claim 1, characterized in that, The power generation management data includes: current power generation and total installed capacity. The display control includes a ratio display control, which is equipped with an arc-shaped fill band and a digital display area. The ratio value is obtained by dividing the current power generation by the total installed capacity. The digital display area displays the ratio value as a percentage. The arc-shaped fill band is filled with a preset color according to the ratio value.
4. The photovoltaic power generation display method according to claim 1, characterized in that, The power generation management data also includes: cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and total number of inverters; the display control also includes: a basic numerical display control, which is used to display the current power generation, total installed capacity, cumulative power generation, total power generation for the current month, total power generation for the current day, grid connection point, total power generation for the previous month, total power generation for yesterday, and total number of inverters in numerical form.
5. The photovoltaic power generation display method according to claim 1, characterized in that, Based on the distance between the smart mobile device and the target photovoltaic power generation area, the power generation management data corresponding to the target photovoltaic power generation area is sorted, with the power generation management data corresponding to the target photovoltaic power generation area that is closer to the smart mobile device placed first. The management interface is equipped with forward trigger controls and backward trigger controls. When the forward trigger control is triggered, the previously sorted power generation management data is used to update the display information in the display controls of the current management interface. When the backward trigger control is triggered, the subsequently sorted power generation management data is used to update the display information in the display controls of the current management interface.
6. A photovoltaic power generation display device, characterized in that, include: processor; Memory, used to store computer-readable programs; When the computer-readable program is executed by the processor, the processor causes the processor to implement the photovoltaic power generation display method as described in any one of claims 1-5.
7. A photovoltaic power generation display system, characterized in that, include: The module comprises a first display module, a first determination module, a second display module, a second determination module, an acquisition module, and an update module; The first display module is used to: display a login window in the human-computer interaction interface of a smart mobile device, and obtain the login credentials information of the administrator through the login window; The first determining module is used to: determine the corresponding photovoltaic power generation area under its responsibility based on the login credentials information, and record the photovoltaic power generation area as the target photovoltaic power generation area; The second display module is used to: display the management interface in the human-computer interaction interface; The second determining module is used to: determine the minimum delay communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area, and record the communication link as the target communication link; The acquisition module is used to: access the data management server of the target photovoltaic power generation area through the target communication link, and obtain the power generation management data corresponding to the target photovoltaic power generation area in real time from the data management server; The update module is used to update the display information in the display controls of the current management interface using the power generation management data.
8. A photovoltaic power generation display system according to claim 7, characterized in that, In the second determining module, determining the minimum latency communication link between the smart mobile device and the target photovoltaic power generation area based on the location information of the target photovoltaic power generation area specifically includes: acquiring the location information of the target photovoltaic power generation area, determining the communication grid of the target photovoltaic power generation area based on the location information, and recording the communication grid as the first communication grid; acquiring the location information of the smart mobile device, determining the communication grid of the smart mobile device based on the location information, and recording the communication grid as the second communication grid; obtaining multiple communication links from a pre-set communication link database based on the first and second communication grids; and performing latency tests on the multiple communication links respectively on the smart mobile device, and determining the communication link with the minimum latency through screening.
9. A photovoltaic power generation display system according to claim 7, characterized in that, The power generation management data includes: current power generation and total installed capacity. The display control includes a ratio display control, which is equipped with an arc-shaped fill band and a digital display area. The ratio value is obtained by dividing the current power generation by the total installed capacity. The digital display area displays the ratio value as a percentage. The arc-shaped fill band is filled with a preset color according to the ratio value.
10. A computer-readable storage medium, characterized in that, It contains a processor-executable program, which, when executed by the processor, is used to implement the photovoltaic power generation display method as described in any one of claims 1 to 5.