A solar distributed management apparatus, method, device, and medium

CN115841397BActive Publication Date: 2026-09-18GUANGDONG POWER GRID CO LTD +1
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Patent Information

Application Number
CN202211633821.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-19
Publication Date
2026-09-18
Estimated Expiration
2042-12-19

AI Technical Summary

Technical Problem

[0004]本发明提供了一种太阳能分布式管理装置、方法、设备和介质,解决了现有技术中太阳能储能电源在采集、存储和调用上管理可靠性较低的技术问题

Benefits of technology

[0039] This invention responds to management requests from external terminals through a distributed management system, generating corresponding grouping, acquisition, or invocation commands. The grouping module responds to the grouping command, acquiring the coordinates of each acquisition module, storage module, and invocation module, and then grouping them according to the management structure. It generates and stores the corresponding target code. The acquisition module responds to the acquisition command, acquiring solar energy and converting it into electrical energy. It then sends the generated storage signal to the corresponding storage module according to the target code. The invocation module responds to the invocation command, acquiring the corresponding energy storage data, generating an invocation strategy, and constructing the corresponding invocation signal. It then sends the invocation signal to the corresponding storage module according to the target code. The storage module stores the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and responds to the invocation signal by invoking the energy storage power source based on the coordinate code and IP address code. This better addresses the technical problem of low management reliability in the acquisition, storage, and invocation of solar energy storage power sources.

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Abstract

The application discloses a kind of solar distributed management device, method, equipment and medium, comprising: distributed management system responds to management request, generates corresponding grouping instruction, acquisition instruction or call instruction, grouping module responds to grouping instruction, and each acquisition module, each storage module and each call module are grouped, corresponding target code is generated and stored, acquisition module responds to acquisition instruction and collects solar energy into electric energy, and the storage signal generated is sent to corresponding storage module, call module responds to call instruction, obtains corresponding energy storage data to generate call strategy, and corresponding call signal is sent to corresponding storage module, and storage module stores electric energy as energy storage power according to the coordinate code and IP address code of storage signal, and responds to call signal according to coordinate code and IP address code to call energy storage power, to better solve the technical problem that solar energy storage power is lower in acquisition, storage and call management reliability.
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Description

Technical Field

[0001] This invention relates to the field of solar energy management technology, and in particular to a solar distributed management device, method, equipment and medium. Background Technology

[0002] Solar photovoltaic power generation can be easily deployed near electricity end users to provide solar energy resources, and is an important direction for energy development.

[0003] Different geographical locations receive sunlight at different angles, but the location of photovoltaic panels is often fixed. At the same time, with the widespread application of solar photovoltaic power generation, traditional solar energy management devices are difficult to adapt to the dispersed layout of solar energy resources, resulting in low reliability of solar energy storage power in terms of collection, storage and access. Summary of the Invention

[0004] This invention provides a solar distributed management device, method, equipment, and medium, solving the technical problem of low management reliability of solar energy storage power sources in terms of data acquisition, storage, and retrieval in the prior art. The first aspect of this invention provides a solar distributed management device, including a distributed management system, a grouping module, multiple acquisition modules, multiple retrieval modules, and multiple storage modules connected in communication.

[0005] The distributed management system is used to respond to management requests from external terminals and generate corresponding grouping instructions, acquisition instructions, or calling instructions.

[0006] The grouping module is used to respond to the grouping instruction, obtain the coordinates of each acquisition module, each storage module and each calling module and the management mechanism to group them, generate the corresponding target code and store it;

[0007] The acquisition module is used to respond to the acquisition command, acquire solar energy and convert it into electrical energy, generate a storage signal corresponding to the electrical energy, and send the storage signal to the corresponding storage module according to the target code;

[0008] The calling module is used to respond to the calling instruction, obtain the corresponding energy storage data to generate a calling strategy, construct a calling signal corresponding to the calling strategy, and send the calling signal to the corresponding storage module according to the target encoding;

[0009] The storage module is used to respond to the storage signal, store the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and respond to the call signal to call the energy storage power source according to the coordinate code and IP address code.

[0010] Optionally, the grouping module includes an encoder and a memory;

[0011] The encoder is used to respond to the grouping instruction, obtain the coordinates of each of the acquisition modules, storage modules and calling modules and the management mechanism to group them, and generate the corresponding target code;

[0012] The memory is used to store the target code.

[0013] Optionally, the acquisition module includes a light source positioning unit, a wide-area controller, and a solar energy acquisition unit;

[0014] The light source positioning unit is used to respond to the acquisition command, acquire total data on the direction of the solar light source, and send it to the wide area controller;

[0015] The wide-area controller is used to transmit the total data of the solar light source direction to the corresponding solar energy acquisition unit;

[0016] The solar energy acquisition unit is used to acquire solar energy according to the total data of the direction of the solar light source, convert it into electrical energy, generate a storage signal corresponding to the electrical energy, and send the storage signal to the corresponding storage module according to the target code.

[0017] Optionally, the light source positioning unit includes a light source subunit, a timer, a trigger, a photosensor, and a summarizing subunit;

[0018] The light source subunit is used to respond to the acquisition command by using the timer to periodically start the trigger according to a preset time threshold, thereby triggering the photosensor to acquire the direction of the solar light source.

[0019] The aggregation subunit is used to aggregate data based on the direction of the solar light source, generate total solar light source direction data, and send the total solar light source direction data to the wide area controller through the light source positioning subunit.

[0020] Optionally, the solar energy collection unit includes an interpreter, a rotating support, and a photovoltaic panel;

[0021] The interpreter is used to adjust the angle of the photovoltaic panel via the rotating bracket according to the total data of the solar light source direction.

[0022] The photovoltaic panel is used to collect solar energy at the angle and convert it into electrical energy. The interpreter generates a storage signal corresponding to the electrical energy and sends the storage signal to the corresponding storage module according to the target code.

[0023] Optionally, the calling module includes a control unit, an arithmetic unit, and a decoder;

[0024] The control unit is used to respond to the call command and obtain the energy storage data carried by the call command;

[0025] The arithmetic unit is used to perform capacitance calculation and power loss calculation using the energy storage data, and output the calculation results;

[0026] The decoder is used to decode the calculation result, output the target calculation result, and generate a calling strategy from the target calculation result fed back by the arithmetic unit through the control unit, and construct the calling signal corresponding to the calling strategy and send it to the corresponding storage module.

[0027] Optionally, the storage module includes a microprocessor, multiple energy storage stations, and a positioning unit;

[0028] The positioning unit is used to respond to the storage signal, locate all the energy storage stations, and generate corresponding coordinate codes and IP address codes;

[0029] The microprocessor is configured to store the electrical energy as energy storage power source through all the energy storage stations, and respond to the call signal to call the energy storage power source according to the coordinate code and the IP address code.

[0030] A second aspect of the present invention provides a solar distributed management method applied to a solar distributed management device, the solar distributed management device comprising a distributed management system, a grouping module, multiple acquisition modules, multiple calling modules, and multiple storage modules connected in communication; the method includes:

[0031] The distributed management system responds to management requests from external terminals, generating corresponding grouping instructions, acquisition instructions, or invocation instructions.

[0032] The grouping module responds to the grouping command, obtains the coordinates of each acquisition module, each storage module, and each calling module, and manages the management mechanism to group them, generate corresponding target codes, and store them;

[0033] The acquisition module responds to the acquisition command, acquires solar energy, converts it into electrical energy, generates a storage signal corresponding to the electrical energy, and sends the storage signal to the corresponding storage module according to the target code.

[0034] The calling module responds to the calling instruction, obtains the corresponding energy storage data to generate a calling strategy, constructs a calling signal corresponding to the calling strategy, and sends the calling signal to the corresponding storage module according to the target encoding.

[0035] The storage module responds to the storage signal, stores the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and responds to the call signal to call the energy storage power source according to the coordinate code and IP address code.

[0036] A third aspect of the present invention provides an electronic device, including a memory and a processor, wherein the memory stores a computer program, and when the computer program is executed by the processor, the processor performs the steps of the solar distributed management method as described in the second aspect of the present invention.

[0037] A fourth aspect of the present invention provides a computer-readable storage medium having a computer program stored thereon, characterized in that, when the computer program is executed, it implements the solar distributed management method as described in the second aspect of the present invention.

[0038] As can be seen from the above technical solutions, the present invention has the following advantages:

[0039] This invention responds to management requests from external terminals through a distributed management system, generating corresponding grouping, acquisition, or invocation commands. The grouping module responds to the grouping command, acquiring the coordinates of each acquisition module, storage module, and invocation module, and then grouping them according to the management structure. It generates and stores the corresponding target code. The acquisition module responds to the acquisition command, acquiring solar energy and converting it into electrical energy. It then sends the generated storage signal to the corresponding storage module according to the target code. The invocation module responds to the invocation command, acquiring the corresponding energy storage data, generating an invocation strategy, and constructing the corresponding invocation signal. It then sends the invocation signal to the corresponding storage module according to the target code. The storage module stores the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and responds to the invocation signal by invoking the energy storage power source based on the coordinate code and IP address code. This better addresses the technical problem of low management reliability in the acquisition, storage, and invocation of solar energy storage power sources. Attached Figure Description

[0040] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0041] Figure 1 This is a structural block diagram of a solar distributed management device provided in Embodiment 1 of the present invention;

[0042] Figure 2 The flowchart illustrates the steps of a distributed solar energy management method provided in Embodiment 2 of the present invention. Detailed Implementation

[0043] This invention provides a solar distributed management device, method, equipment, and medium to solve the technical problem of low management reliability of solar energy storage power sources in terms of data acquisition, storage, and retrieval in the prior art.

[0044] To make the objectives, features, and advantages of this invention more apparent and understandable, the technical solutions of the embodiments of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are only some embodiments of this invention, and not all embodiments. Based on the embodiments of this invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this invention.

[0045] Please see Figure 1 , Figure 1 This is a structural block diagram of a solar distributed management device provided in Embodiment 1 of the present invention.

[0046] The present invention provides a distributed solar energy management device, comprising a distributed management system 101, a grouping module 102, multiple acquisition modules 103, multiple calling modules 104, and multiple storage modules 105 connected by communication.

[0047] The distributed management system 101 is used to respond to management requests from external terminals and generate corresponding grouping instructions, acquisition instructions, or calling instructions.

[0048] A management request refers to a request sent by an external terminal that supports the application of a solar distributed management device to manage the solar distributed management device.

[0049] Grouping instructions refer to instructions for grouping the acquisition module, storage module, and retrieval module.

[0050] The collection command refers to the command to collect solar energy.

[0051] The call command refers to the command that invokes the energy storage power source of the solar energy conversion and storage system.

[0052] In this embodiment of the invention, when the distributed management system receives a management request sent by any external terminal that supports the application of solar distributed management devices, it parses the management request and converts it into information, reads the information to determine the content to be managed, and generates corresponding grouping instructions, acquisition instructions or calling instructions.

[0053] Understandably, based on management requests, you can generate only one of the grouping instructions, acquisition instructions, and invocation instructions, or you can generate multiple instructions simultaneously.

[0054] The grouping module 102 is used to respond to grouping instructions, obtain the coordinates of each acquisition module, each storage module and each calling module, and manage the management mechanism to group them, generate the corresponding target code and store it.

[0055] Optionally, the grouping module 102 includes an encoder and a memory;

[0056] The encoder is used to respond to grouping instructions, obtain the coordinates of each acquisition module, each storage module and each calling module, and manage the grouping to generate the corresponding target code;

[0057] Memory, used to store target codes.

[0058] In this embodiment of the invention, the encoder responds to the received grouping instruction, obtains the coordinates and management organization of each acquisition module, each storage module and each calling module, uses the coordinates to group the acquisition modules, storage modules and calling modules belonging to the same management organization, generates the corresponding target code, and stores the target code through the memory.

[0059] The acquisition module 103 is used to respond to acquisition commands, acquire solar energy and convert it into electrical energy, generate a storage signal corresponding to the electrical energy, and send the storage signal to the corresponding storage module according to the target encoding.

[0060] Optionally, the acquisition module includes a light source positioning unit, a wide area controller, and a solar energy acquisition unit;

[0061] The light source positioning unit is used to respond to the acquisition command, acquire the total data of the direction of the solar light source, and send it to the wide area controller;

[0062] A wide area controller is used to transmit the total data of the direction of the solar source to the corresponding solar energy acquisition unit;

[0063] The solar energy acquisition unit is used to collect total data of solar energy according to the direction of the solar source, convert it into electrical energy, generate a corresponding storage signal of electrical energy, and send the storage signal to the corresponding storage module according to the target code.

[0064] Signal storage refers to the storage of electrical energy converted from solar energy.

[0065] Total data on the direction of solar light source refers to the total data on the direction of solar light source collected each time.

[0066] In this embodiment of the invention, the light source positioning unit responds to the received acquisition command, acquires total data of the direction of the solar light source, and transmits the total data of the direction of the solar light source to the corresponding solar energy acquisition unit in the target code through the wide area controller. The solar energy acquisition unit acquires solar energy according to the total data of the direction of the solar light source, converts it into electrical energy, generates a corresponding storage signal, and sends it to the corresponding storage module in the target code.

[0067] In one example of the present invention, the light source positioning unit includes a light source subunit, a timer, a trigger, a photosensor, and a summarizing subunit;

[0068] The light source subunit is used to respond to the acquisition command. It triggers the trigger by using a timer to start the trigger at a preset time threshold, thereby triggering the light sensor to acquire the direction of the solar light source.

[0069] The aggregation subunit is used to aggregate data based on the direction of the solar light source, generate total data on the direction of the solar light source, and send the total data on the direction of the solar light source to the wide area controller through the light source positioning subunit.

[0070] The direction of sunlight refers to the direction in which sunlight shines directly.

[0071] In this embodiment of the invention, the light source subunit responds to the acquisition command and sends a timing signal to start the timer. According to the preset time threshold, the timer sends a start signal to the trigger. The trigger responds to the start signal and sends a trigger signal to trigger the photosensor to acquire the direction of the solar light source. The aggregation subunit summarizes all the directions of the solar light source to form the total data of the direction of the solar light source and feeds it back to the light source subunit. The light source subunit sends the total data of the direction of the solar light source to the wide area controller.

[0072] In one example of the present invention, the solar energy harvesting unit includes an interpreter, a rotating support, and a photovoltaic panel;

[0073] An interpreter is used to adjust the angle of the photovoltaic panel by rotating the support according to the total data of the direction of the solar source;

[0074] Photovoltaic panels are used to collect solar energy according to the angle and convert it into electrical energy. An interpreter generates a storage signal corresponding to the electrical energy and sends the storage signal to the corresponding storage module according to the target code.

[0075] Understandably, a solar energy collection unit can include multiple sets of photovoltaic panels.

[0076] In this embodiment of the invention, after the interpreter reads the total data of the direction of the solar source, it transmits it to the rotating bracket. The rotating bracket adjusts the angle of the photovoltaic panel according to the direction of the solar source in the total data of the direction of the solar source, so that the photovoltaic panel can collect solar energy and convert it into electrical energy at this angle, so that the collection and conversion effect of the photovoltaic panel is better. After the photovoltaic panel completes the conversion of electrical energy, the interpreter generates the corresponding storage signal and sends it to the corresponding storage module in the target code.

[0077] The calling module 104 is used to respond to the calling command, obtain the corresponding energy storage data to generate the calling strategy, construct the calling signal corresponding to the calling strategy, and send the calling signal to the corresponding storage module according to the target encoding.

[0078] Optionally, the calling module includes a control unit, an arithmetic unit, and a decoder;

[0079] The control unit is used to respond to the call command and obtain the energy storage data carried by the call command;

[0080] The arithmetic unit is used to perform capacitance and power loss calculations using energy storage data and output the calculation results.

[0081] The decoder is used to decode the calculation results, output the target calculation result, and generate a calling strategy from the target calculation result fed back by the arithmetic unit through the control unit, and construct the calling signal corresponding to the calling strategy and send it to the corresponding storage module.

[0082] Energy storage data refers to data related to the capacitance calculation and power loss calculation required for energy storage power stations.

[0083] The invocation strategy refers to the strategy for invoking the energy storage power of the energy storage station to transmit to external terminals.

[0084] Understandably, energy storage stations store energy by charging batteries with electricity converted from solar energy. When determining the call strategy corresponding to a call command, calculations need to be performed on the total capacity and power loss of the energy storage station. For example, the capacity calculation includes, but is not limited to, multiplying the battery's charging time and charging current, and the power loss calculation includes, but is not limited to, comparing the difference between the battery's rated capacity and its actual maximum capacity with the rated capacity.

[0085] In this embodiment of the invention, the control unit responds to the received call instruction, parses the call instruction and converts it into information form, obtains the corresponding energy storage data, and the arithmetic unit, which is connected to the control unit, uses the energy storage data to perform capacitance calculation and power loss calculation to generate the calculation result. The decoder performs a number system conversion on the calculation result, decodes and outputs the target calculation result, and feeds back the target calculation result output by the decoder to the control unit through the arithmetic unit. The control unit constructs a call strategy based on the target calculation result and generates a corresponding call signal based on the call strategy and sends it to the corresponding storage module in the target encoding.

[0086] The storage module 105 is used to respond to the storage signal, store electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and respond to the call signal to call the energy storage power source according to the coordinate code and IP address code.

[0087] Optionally, the storage module includes a microprocessor, multiple energy storage stations, and a positioning unit;

[0088] The positioning unit is used to respond to the storage signal, locate all the energy storage stations, and generate the corresponding coordinate code and IP address code;

[0089] The microprocessor is used to store electrical energy as energy storage power through all energy storage stations and respond to call signals to call the energy storage power according to the coordinate code and IP address code.

[0090] In this embodiment of the invention, the positioning unit responds to the storage signal to locate all associated energy storage stations and generates coordinate codes and IP address codes for each energy storage station. The microprocessor, based on the storage signal, collects and converts electrical energy from the corresponding acquisition module within the target code of all energy storage stations and stores it as an energy storage power source. When a call signal is received, the microprocessor calls the energy storage power source in the corresponding energy storage station according to the coordinate code and IP address code and transmits it to the external terminal.

[0091] In this embodiment of the invention, the distributed management system responds to management requests from external terminals, generating corresponding grouping instructions, acquisition instructions, or calling instructions. The grouping module responds to the grouping instructions, acquires the coordinates of each acquisition module, each storage module, and each calling module, and manages the grouping mechanism to generate and store the corresponding target code. The acquisition module responds to the acquisition instructions, acquires solar energy and converts it into electrical energy, and sends the generated storage signal to the corresponding storage module according to the target code. The calling module responds to the calling instructions, acquires the corresponding energy storage data, generates a calling strategy and constructs the corresponding calling signal, and sends the calling signal to the corresponding storage module according to the target code. The storage module stores the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and responds to the calling signal to call the energy storage power source according to the coordinate code and IP address code, so as to better solve the technical problem of low management reliability of solar energy storage power source in acquisition, storage, and calling.

[0092] Please see Figure 2 , Figure 2 The flowchart illustrates the steps of a distributed solar energy management method provided in Embodiment 2 of the present invention.

[0093] This invention provides a distributed solar energy management method applied to a distributed solar energy management device. The distributed solar energy management device includes a distributed management system, a grouping module, multiple acquisition modules, multiple calling modules, and multiple storage modules connected by communication. The method includes:

[0094] Step 201: Respond to the management requests from external terminals through the distributed management system and generate corresponding grouping instructions, acquisition instructions, or calling instructions;

[0095] Step 202: Respond to the grouping command through the grouping module, obtain the coordinates of each acquisition module, each storage module and each calling module, and manage the management mechanism to group them, generate the corresponding target code and store it;

[0096] Step 203: The acquisition module responds to the acquisition command, acquires solar energy and converts it into electrical energy, generates a storage signal corresponding to the electrical energy, and sends the storage signal to the corresponding storage module according to the target code;

[0097] Step 204: By calling the module to respond to the call command, obtain the corresponding energy storage data to generate the call strategy, construct the call signal corresponding to the call strategy, and send the call signal to the corresponding storage module according to the target encoding;

[0098] Step 205: The storage module responds to the storage signal, stores electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and responds to the call signal to call the energy storage power source according to the coordinate code and IP address code.

[0099] This invention also provides an electronic device, including a memory and a processor. The memory stores a computer program, and when the computer program is executed by the processor, the processor performs the steps of the solar distributed management method as described in any embodiment of this invention.

[0100] This invention also provides a computer-readable storage medium storing a computer program thereon, characterized in that the computer program, when executed, implements the solar distributed management method as described in any embodiment of this invention.

[0101] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working process of the method described above can be referred to the corresponding process in the foregoing device embodiments, and will not be repeated here.

[0102] In the several embodiments provided in this application, it should be understood that the disclosed apparatus 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 through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.

[0103] 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.

[0104] Furthermore, the functional units in the various embodiments of the present invention 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.

[0105] 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 the present invention, 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 the present invention. 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.

[0106] The above-described embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A solar distributed management device, characterized by, It includes a distributed management system for communication connections, a grouping module, multiple acquisition modules, multiple calling modules, and multiple storage modules; The distributed management system is used to respond to management requests from external terminals and generate corresponding grouping instructions, acquisition instructions, or calling instructions. The grouping module is used to respond to the grouping instruction, obtain the coordinates of each acquisition module, each storage module and each calling module and the management mechanism to group them, generate the corresponding target code and store it; The acquisition module is used to respond to the acquisition command, acquire solar energy and convert it into electrical energy, generate a storage signal corresponding to the electrical energy, and send the storage signal to the corresponding storage module according to the target code; The calling module is used to respond to the calling instruction, obtain the corresponding energy storage data to generate a calling strategy, construct a calling signal corresponding to the calling strategy, and send the calling signal to the corresponding storage module according to the target encoding; The storage module is configured to respond to the storage signal, store the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and respond to the call signal to call the energy storage power source according to the coordinate code and IP address code.

2. The solar distributed management device according to claim 1, characterized in that, The grouping module includes an encoder and a memory; The encoder is used to respond to the grouping instruction, obtain the coordinates of each of the acquisition modules, storage modules and calling modules and the management mechanism to group them, and generate the corresponding target code; The memory is used to store the target code.

3. The solar distributed management device according to claim 1, characterized in that, The acquisition module includes a light source positioning unit, a wide area controller, and a solar energy acquisition unit; The light source positioning unit is used to respond to the acquisition command, acquire total data on the direction of the solar light source, and send it to the wide area controller; The wide-area controller is used to transmit the total data of the solar light source direction to the corresponding solar energy acquisition unit; The solar energy acquisition unit is used to acquire solar energy according to the total data of the direction of the solar light source, convert it into electrical energy, generate a storage signal corresponding to the electrical energy, and send the storage signal to the corresponding storage module according to the target code.

4. The solar distributed management device according to claim 3, characterized in that, The light source positioning unit includes a light source subunit, a timer, a trigger, a photosensor, and a summarizing subunit; The light source subunit is used to respond to the acquisition command by using the timer to periodically start the trigger according to a preset time threshold, thereby triggering the photosensor to acquire the direction of the solar light source. The aggregation subunit is used to aggregate data based on the direction of the solar light source, generate total data on the direction of the solar light source, and send the total data on the direction of the solar light source to the wide area controller through the light source subunit.

5. The solar distributed management device according to claim 3, characterized in that, The solar energy acquisition unit includes an interpreter, a rotating support, and a photovoltaic panel; The interpreter is used to adjust the angle of the photovoltaic panel via the rotating bracket according to the total data of the solar light source direction. The photovoltaic panel is used to collect solar energy at the angle and convert it into electrical energy. The interpreter generates a storage signal corresponding to the electrical energy and sends the storage signal to the corresponding storage module according to the target code.

6. The solar distributed management device according to claim 1, characterized in that, The calling module includes a control unit, an arithmetic unit, and a decoder; The control unit is used to respond to the call command and obtain the energy storage data carried by the call command; The arithmetic unit is used to perform capacitance calculation and power loss calculation using the energy storage data, and output the calculation results; The decoder is used to decode the calculation result and output the target calculation result. The calculation unit feeds back the target calculation result output by the decoder to the control unit. The control unit generates a calling strategy based on the target calculation result and constructs a calling signal corresponding to the calling strategy and sends it to the corresponding storage module.

7. The solar distributed management device according to claim 1, characterized in that, The storage module includes a microprocessor, multiple energy storage stations, and a positioning unit; The positioning unit is used to respond to the storage signal, locate all the energy storage stations, and generate corresponding coordinate codes and IP address codes; The microprocessor is configured to store the electrical energy as energy storage power source through all the energy storage stations, and respond to the call signal to call the energy storage power source according to the coordinate code and the IP address code.

8. A method for distributed solar energy management, characterized in that, The method is applied to a solar distributed management device, which includes a distributed management system, a grouping module, multiple acquisition modules, multiple calling modules, and multiple storage modules connected by communication; the method includes: The distributed management system responds to management requests from external terminals, generating corresponding grouping instructions, acquisition instructions, or invocation instructions. The grouping module responds to the grouping command, obtains the coordinates of each acquisition module, each storage module, and each calling module, and manages the management mechanism to group them, generate corresponding target codes, and store them; The acquisition module responds to the acquisition command, acquires solar energy, converts it into electrical energy, generates a storage signal corresponding to the electrical energy, and sends the storage signal to the corresponding storage module according to the target code. The calling module responds to the calling instruction, obtains the corresponding energy storage data to generate a calling strategy, constructs a calling signal corresponding to the calling strategy, and sends the calling signal to the corresponding storage module according to the target encoding. The storage module responds to the storage signal, stores the electrical energy as an energy storage power source according to the coordinate code and IP address code corresponding to the storage signal, and responds to the call signal to call the energy storage power source according to the coordinate code and IP address code.

9. An electronic device, characterized in that, It includes a memory and a processor, wherein the memory stores a computer program, and when the computer program is executed by the processor, the processor performs the steps of the solar distributed management method as described in claim 8.

10. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed, it implements the solar distributed management method as described in claim 8.

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