State display method and device of energy storage system, equipment and program product
By generating the topological structure diagram of the energy storage system and controlling the movement of the energy mark, the problem of difficulty in obtaining the real-time operating status of the energy storage system in the prior art is solved, and efficient and reliable control and management of the system is realized.
Patent Information
- Application Number
- CN202510529863.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-25
AI Technical Summary
In the prior art, it is difficult to quickly and effectively obtain the real-time operating status of the energy storage system, which affects the reliable control and management of the system.
By determining the connection relationship between node equipment of the energy storage system, a topological structure diagram is generated, the operating mode is obtained to determine the power transmission direction, and the energy mark is controlled to move on the branches between connected nodes in the topological structure diagram to achieve real-time state display.
Real-time dynamic display of power transmission is achieved without detecting the power transmission direction of each node, which is convenient and quickly obtains the real-time operating status of the energy storage system, and is conducive to more reliable control and management.
Smart Images

Figure CN120074029A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of energy storage systems, and in particular, to a method, device, equipment, and program product for displaying the state of an energy storage system. Background Art
[0002] An energy storage system is a system used to store and release energy, usually used to balance the demand for energy supply and load, support grid stability, or provide support for independent power sources. A typical photovoltaic energy storage system usually includes an energy storage module, a power conversion module, a renewable module, a power grid, and a load module. The entire energy storage system is monitored and controlled through an energy management system (EMS) to optimize the storage and release of energy and ensure the efficient operation of the system. The thermal management system and the communication system are also important components of the energy storage system, responsible for maintaining the operating temperature of the battery and realizing data exchange and remote control between the system and the power grid or users, respectively.
[0003] Through the energy management system, the energy storage system can be controlled to automatically perform energy management according to the set conditions, enabling the energy storage system to operate efficiently and economically. However, during the operation of the energy storage system, it is difficult for staff to quickly and effectively obtain the real-time operating status of the energy storage system, which is not conducive to more reliable control and management of the energy storage system. Summary of the Invention
[0004] In view of this, embodiments of the present application provide a method, device, equipment, and program product for displaying the state of an energy storage system to solve the problem in the prior art that it is difficult to quickly and effectively obtain the real-time operating status of the energy storage system, which is not conducive to more reliable control and management of the energy storage system.
[0005] The first aspect of the embodiments of the present application provides a method for displaying the state of an energy storage system, the method including: Determine the connection relationship of the node devices of the energy storage system, and generate a topological structure diagram of the energy storage system according to the connection relationship of the node devices; Obtain the operating mode of the energy storage system, and determine the power transmission direction of the first branch set in the topological structure diagram according to the operating mode; Collect the power transmission direction of the second branch set in the topological structure diagram, where the second branch set is the branch set other than the first branch set in the topological structure diagram; According to the power transmission direction of the first branch set and the power transmission direction of the second branch set, control the way of moving the energy identifier on the branch between two adjacent nodes in the topological structure diagram for real-time status display.
[0006] In combination with the first aspect, in the first possible implementation manner of the first aspect, the operating modes include a grid - priority mode, a energy - storage - priority mode, and a load - priority mode; the topological structure diagram includes a renewable node, an energy - storage node, a grid node, a power - conversion node, and a load node; Determining the power transfer direction of the first branch set in the topological structure diagram according to the operating mode includes: When the operating mode is the grid - priority mode, determining the power transfer direction of the branch between the grid node and the power - conversion node in the topological structure diagram, and the branch between the power - conversion node and the load node according to the grid - priority mode; When the operating mode is the energy - storage - priority mode, determining the power transfer direction of the branch between the energy - storage node and the power - conversion node in the topological structure diagram, and the branch between the power - conversion node and the load node according to the energy - storage - priority mode; When the operating mode is the load - priority mode, determining the power transfer direction of the branch between the power - conversion node and the load node in the topological structure diagram according to the load - priority mode.
[0007] In combination with the first aspect, in the second possible implementation manner of the first aspect, before controlling the energy identifier to move on the branch between two adjacent nodes in the topological structure diagram according to the power transfer direction of the first branch set and the power transfer direction of the second branch set for real - time status display, the method further includes: Collecting the transmitted power between two adjacent nodes in the topological structure diagram; Determining the moving speed of the energy identifier on the branch between two adjacent nodes in the topological structure diagram according to the corresponding relationship between the predicted transmitted power and the speed; Controlling the energy identifier to move on the branch between two adjacent nodes in the topological structure diagram according to the power transfer direction of the first branch set and the power transfer direction of the second branch set for real - time status display includes: Controlling the energy identifier to move on the branch between two adjacent nodes in the topological structure diagram for real - time status display according to the power transfer direction of the first branch set and the power transfer direction of the second branch set, in combination with the moving speed of the energy identifier on each branch.
[0008] In combination with the second possible implementation manner of the first aspect, in the third possible implementation manner of the first aspect, determining the moving speed of the energy identifier on the branch between two adjacent nodes in the topological structure diagram according to the corresponding relationship between the predicted transmitted power and the speed includes: When the electric energy of the first branch for determining the moving speed of the energy identifier comes from more than two branches, set more than two channels for displaying the energy identifier in the first branch; Determine the moving speed of the energy identifier in the more than two channels according to the preset corresponding relationship between the transmission power and the speed.
[0009] Combined with the third possible implementation manner of the first aspect, in the fourth possible implementation manner of the first aspect, determining the moving speed of the energy identifier in the more than two channels according to the predicted corresponding relationship between the transmission power and the speed includes: Determine the total speed of the first branch according to the preset corresponding relationship between the transmission power and the speed; Determine the moving speed of the energy identifier in the more than two channels according to the power ratio of the more than two branches of the power source of the electric energy of the first branch and in combination with the total speed.
[0010] Combined with the fourth possible implementation manner of the first aspect, in the fifth possible implementation manner of the first aspect, after determining the moving speed of the energy identifier in the more than two channels according to the power ratio of the more than two branches of the power source of the electric energy of the first branch and in combination with the total speed, the method further includes: Determine the appearance of the energy identifier in the more than two channels according to the appearance of the energy identifiers of the more than two branches of the power source of the electric energy of the first branch.
[0011] Combined with any one of the first aspect to the fifth possible implementation manner of the first aspect, in the sixth possible implementation manner of the first aspect, after determining the connection relationship of the node devices of the energy storage system and generating the topology structure diagram of the energy storage system according to the connection relationship of the node devices, the method further includes: Receive a time setting instruction, where the time setting instruction includes a time range for displaying energy changes; Determine the energy transfer amount between two adjacent nodes in the topology structure diagram according to the time range; Display the energy transfer amount on the branch between two adjacent nodes in the topology structure diagram.
[0012] A second aspect of the embodiments of the present application provides a state display device for an energy storage system, and the device includes: A topology structure diagram generation unit, configured to determine the connection relationship of the node devices of the energy storage system and generate the topology structure diagram of the energy storage system according to the connection relationship of the node devices; A first direction determination unit, configured to obtain the operation mode of the energy storage system and determine the power transmission direction of the first branch set in the topology structure diagram according to the operation mode; A second direction determination unit, configured to collect the power transmission direction of a second branch set in the topological structure diagram, where the second branch set is a branch set in the topological structure diagram other than the first branch set; A real-time status display unit, configured to perform real-time status display by controlling the moving manner of an energy identifier on a branch between two connected nodes in the topological structure diagram according to the power transmission direction of the first branch set and the power transmission direction of the second branch set.
[0013] A third aspect of the embodiments of the present application provides a status display device for an energy storage system, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the status display device for the energy storage system implements the method according to any one of the first aspects.
[0014] A fourth aspect of the embodiments of the present application provides a computer program product, which, when running on a computer, causes the computer to execute the method according to the first aspect or its various implementation manners.
[0015] A fifth aspect of the embodiments of the present application provides a computer-readable storage medium, where the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of the method according to any one of the first aspects are implemented.
[0016] A sixth aspect of the embodiments of the present application provides a chip, configured to implement the methods according to the various implementation manners in the first aspect. Specifically, the above chip includes: a processor, configured to call and run a computer program from a memory, so that a device installed with the above chip executes the method according to the first aspect or its various implementation manners.
[0017] The beneficial effects of the embodiments of the present application compared with the prior art are as follows: By determining the connection relationship of the node devices of the energy storage system, the topological structure diagram of the energy storage system is determined according to the connection relationship. The operation mode of the energy storage system is obtained, and according to the operation mode, the power transmission direction of the first branch set in the New Year's greeting structure diagram is determined, and the power transmission direction of the second branch set other than the first branch set in the topological structure diagram is determined. Based on the power transmission directions of the first branch set and the second branch set, the energy identifier is controlled to move on the branch between two connected nodes in the topological structure diagram, and the real-time dynamic display of power transmission can be realized without detecting the power transmission direction of each node, so that the staff can conveniently and quickly obtain the real-time operation status of the energy storage system, which is beneficial to more reliable control and management of the energy storage system. Description of the Drawings
[0018] To more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0019] Figure 1 is a schematic flow chart of the implementation of a method for displaying the state of an energy storage system provided by an embodiment of the present application; Figure 2 is a schematic diagram of a topology structure provided by an embodiment of the present application; Figure 3 is a schematic diagram of power transmission provided by an embodiment of the present application; Figure 4 is a schematic diagram of power transmission provided by an embodiment of the present application; Figure 5 is a schematic diagram of power transmission provided by an embodiment of the present application; Figure 6 is a schematic diagram of energy transfer within a time range provided by an embodiment of the present application; Figure 7 is a schematic diagram of a device for displaying the state of an energy storage system provided by an embodiment of the present application; Figure 8 is a schematic diagram of a device for displaying the state of an energy storage system provided by an embodiment of the present application. Detailed Embodiments
[0020] In the following description, specific details such as specific system structures and technologies are presented for the purpose of illustration rather than limitation, so as to thoroughly understand the embodiments of the present application. However, those skilled in the art should clearly understand that the present application can also be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, circuits, and methods are omitted to avoid unnecessary details from interfering with the description of the present application.
[0021] To illustrate the technical solutions described in the present application, the following will be described through specific embodiments.
[0022] An energy storage system is a solution for energy stability and availability. By storing energy and releasing it when needed, it can be used to regulate the imbalance between energy supply and demand, maintain grid stability, or provide energy support for an independent power supply system that does not rely on the grid. A typical photovoltaic energy storage system consists of several key components: an energy storage module, a power conversion module, a renewable module, a power grid, and a load module. The entire system is monitored and regulated by an energy management system (EMS) to ensure the optimization of energy storage and release, thereby achieving the efficient operation of the system.
[0023] The Energy Management System (EMS) can automatically manage the energy flow of the energy storage system according to preset conditions, ensuring the high efficiency and economy of the system operation. However, the energy storage system faces a challenge in actual operation: it is difficult for the staff to quickly and accurately obtain the real-time operation status of the system, which affects the reliable and precise control and management of the energy storage system.
[0024] Based on this, the embodiments of this application propose an energy management method for an energy storage system, as Figure 1 shown, this method includes: In S101, determine the connection relationship of the node devices of the energy storage system, and generate a topological structure diagram of the energy storage system according to the connection relationship of the node devices.
[0025] The node devices in the energy storage system in the embodiments of this application may include energy storage modules, power conversion modules, renewable modules, power grids, and load modules.
[0026] Among them, the energy storage module is the core part of the energy storage system, usually including energy storage components such as batteries, including lithium-ion batteries, lead-acid batteries, etc. The energy storage module is responsible for storing electrical energy for use when needed. The energy storage module can obtain energy from the power grid, solar photovoltaic (PV) systems, or other renewable energy sources, and release energy during peak power demand or unstable grid power supply.
[0027] The power conversion module usually includes an inverter and a rectifier. The inverter is used to convert direct current (DC) into alternating current (AC) for use by the power grid or AC loads. The rectifier is used to convert alternating current into direct current for battery charging or directly powering DC devices. The power conversion module ensures that the energy storage system can flexibly manage DC and AC energy.
[0028] The renewable module is used to provide renewable energy, including solar photovoltaic systems or wind power generation systems, etc. The renewable module can provide renewable energy for the energy storage system, reduce dependence on the traditional power grid, and reduce energy costs.
[0029] The power grid is one of the external energy sources of the energy storage system. It provides power for the energy storage system and can also be the recipient of the energy released by the energy storage system. The energy storage system can buy and sell energy through the power grid, realize the utilization of peak-valley electricity price differences, or provide support when the power grid is unstable.
[0030] The load module includes household loads and backup loads. Household loads are electrical appliances used in the home, such as air conditioners, televisions, refrigerators, etc. Household loads require a stable power supply. The energy storage system can intelligently distribute energy according to the needs of household loads to ensure the stable and efficient use of household electricity. Backup loads usually refer to critical equipment that needs to continue to be powered when the grid power supply is interrupted, including emergency lighting, medical equipment, or security systems. The energy storage system can provide necessary power for these backup loads when the grid power fails to ensure the continuity of critical operations.
[0031] The embodiment of this application receives the setting instructions of the staff, determines the node devices included in the energy storage system, and the connection relationships between the node devices. Nodes can be created accordingly according to the node devices included in the setting instructions. For example, renewable nodes are created according to the renewable module, energy storage nodes are created according to the energy storage module, grid nodes are created according to the grid, power conversion nodes are created according to the power conversion module, and load nodes are created according to the load module.
[0032] After creating nodes according to the node devices, determine the branches between the nodes according to the connection relationships between the various node devices.
[0033] For example Figure 2 As shown, in the topological structure diagram determined according to the node devices, determine the branches between the energy storage node and the power conversion node, between the renewable node and the power conversion node, between the renewable node and the power conversion node, and between the load node and the power conversion node according to the connection relationships between the node devices, to obtain the topological structure diagram of the energy storage system. The branches between the nodes in the topological structure diagram can be drawn by the way of drawing Bezier curves.
[0034] In S102, obtain the operating mode of the energy storage system, and determine the power transmission direction of the first branch set in the topological structure diagram according to the operating mode.
[0035] After creating the topological structure diagram of the energy storage system, it is possible to monitor the control instructions of the energy storage system and determine the power transmission direction of the first branch set in the topological structure diagram according to the mode control instructions of the energy storage system.
[0036] Among them, the first branch set includes one or more than two branches. The first branch set is the branch for which the power transmission direction can be determined according to the operating mode. A branch is the connection relationship between any two connected nodes.
[0037] Among them, when the operation mode is the grid - priority mode, electric energy is preferentially provided by the grid. At this time, the transmission direction of the first branch set in the topological structure diagram can be determined. The first branch set includes the branches between the grid node and the power conversion node, and the branches between the power conversion node and the load node. For example, power is transmitted from the grid node to the power conversion node, and power is transmitted from the power conversion node to the load node.
[0038] When the operation mode is the energy - storage - priority mode, that is, energy is preferentially supplied by the energy - storage module, the power transmission direction of the branches between the energy - storage node and the power - conversion node, and the branches between the power - conversion node and the load node in the topological structure diagram can be determined according to the energy - storage - priority mode. For example, according to the energy - storage - priority mode and in combination with the SOC (state of charge of the battery) in the energy - storage module, it can be determined whether the energy - storage module transmits power to the power - conversion node. For example, when the energy - storage module is within a predetermined range of battery states, power is transmitted from the energy - storage node to the power - conversion node.
[0039] When the operation mode is the load - priority mode, that is, it is ensured that a stable power supply can be provided to the load preferentially, the power transmission direction of the branches between the power - conversion node and the load node in the topological structure diagram is determined according to the load - priority mode.
[0040] In S103, the power transmission direction of the second branch set in the topological structure diagram is collected. The second branch set is the branch set other than the first branch set in the topological structure diagram.
[0041] After the first branch set is determined, the second branch set is the remaining other branches in the topological structure diagram. For the power transmission direction of other branches, a power - transmission - direction detection device, including devices such as current transformers or Hall sensors, can be used to quickly detect the power transmission direction of the branches.
[0042] For example, when the operation mode is the grid - priority mode, the renewable node may transmit power to the power - conversion node, and the energy - storage node may transmit power to the power - conversion node; or, there is no power transmission between the renewable node and the power - conversion node, and the energy - storage node may transmit power to the power - conversion node; or, the power - conversion node may transmit power to the renewable node, and the power - conversion node transmits power to the energy - storage node; or, there is no power transmission between the renewable node and the power - conversion node, and the power - conversion node transmits power to the energy - storage node. The power direction of the second branch set can be detected by sensing devices such as current sensors.
[0043] In S104, according to the power transmission direction of the first branch set and the power transmission direction of the second branch set, the way the energy identifier moves on the branches between two adjacent nodes in the topological structure diagram is controlled for real - time status display.
[0044] According to the power transmission directions of the first branch set and the second branch set, the power transmission directions of all branches in the topological structure diagram can be determined. Energy identifiers can be generated on the branches between any two connected nodes in the topological structure diagram, and the movement of the energy identifiers can be controlled in accordance with the determined power transmission directions, so as to characterize the flow direction of electric energy, enabling the staff to view the flow direction of electric energy in the energy storage system in real time, improving the convenience for the staff to obtain the operating state of the energy storage system, and being conducive to more reliable control and management of the energy storage system.
[0045] Among them, the energy identifier can be an identifier such as a particle, a small ball or a small arrow, which is used to represent the transmitted electric energy.
[0046] In possible optimization methods, embodiments of the present application can also collect the transmission power between any two connected nodes in the topological structure diagram. For example, the transmission power of a branch can be determined according to the current and voltage transmitted on the branch and the formula P = UI. According to the pre-set corresponding relationship between the transmission power and the speed, the movement speed of the energy identifier on each branch is determined, and the movement of the energy identifier on the branch is controlled according to the movement speed, so that the staff can more intuitively understand the current operating state and determine the relative relationship of the transmission powers of each branch. For example Figure 3 As shown, in the load priority mode, the transmission power between the power conversion node and the load node is 3 times the transmission power between the energy storage node and the power conversion node, and the transmission power between the renewable node and the load node is 2 times the transmission power between the energy storage node and the power conversion node. Relative to the movement speed of the energy identifier between the energy storage node and the power conversion node, the movement of the energy identifier between the power conversion node and the load node can be controlled at 3 times the movement speed (indicated by three arrows in the figure), and the movement of the energy identifier between the power conversion node and the renewable node can be controlled at 2 times the movement speed (indicated by two arrows in the figure).
[0047] The corresponding relationship between the reference transmission power and the reference speed can be set. By comparing the relative relationship between the transmission power of the branch and the reference power, the movement speed of the energy identifier of the branch can be calculated.
[0048] For example, if the reference power is p0, the reference speed is v0, and the detected transmission power of the branch is p1, then the movement speed of the energy identifier of the branch can be determined according to the ratio relationship: p0 / p1 = v0 / v1, and v1 = v0*p1 / p0.
[0049] Alternatively, the number of energy identifiers transmitted per unit time can also be determined according to the magnitude of the transmission power. If all the energy identifiers move at the same speed, the relative magnitude of the transmission power can be represented by the number of energy identifiers moving on the branch.
[0050] To optimize the visualization of the electric energy transmission path, in an embodiment of the present application, for a certain branch, such as when the electric energy of the first branch comes from more than two branches, more than two channels can be set on the first branch, and the electric energy obtained from different branches can be displayed through the more than two channels. Among them, for the energy identifiers in the more than two channels, the moving speed of the energy identifiers in each channel can be determined according to the magnitude of the electric energy of different branches, or the number of energy identifiers transmitted per unit time can be determined.
[0051] For example Figure 4 As shown, in the load priority mode, the power conversion node and the renewable node supply electric energy to the load. It is detected that the first power supplied by the energy storage node is x1, and the second power supplied by the renewable node is x2. The ratio of the first power to the second power can be determined as x1 / x2. According to the transmission power between the power conversion node and the load, the total speed v3 can be determined accordingly. Then, according to the ratio relationship of the transmission power, the moving speed of the energy identifiers in each channel can be determined accordingly, or the number of energy identifiers that need to move per unit time can be determined. Alternatively, the moving speeds of the energy identifiers from more than two branches can also be directly used as the moving speeds of the energy identifiers in the more than two channels of the merged branch.
[0052] In a possible implementation manner, to further enhance the intuitiveness of each power transmission process, in an embodiment of the present application, the energy identifiers in each channel can also be corresponding to the energy identifiers of each branch in more than two branches. For example Figure 5 As shown, the energy identifier of the first channel between the merged power conversion node and the load node is a triangle, and the energy identifier of the branch between the energy storage node and the power conversion node before merging is a triangle. The energy identifier of the second channel between the merged power conversion node and the load node is a circle, and the energy identifier of the branch between the renewable node and the power conversion node before merging is a circle. Moreover, the moving speed of the triangular energy identifier before merging is the same as the moving speed of the triangular energy identifier after merging, and the moving speed of the circular energy identifier before merging is the same as the moving speed of the circular energy identifier after merging. Alternatively, it can also be expressed that the number of triangular energy identifiers moving in the branch before merging is the same as the number of triangular energy identifiers moving in the first channel after merging, and the number of circular energy identifiers moving in the branch before merging is the same as the number of circular energy identifiers moving in the first channel after merging.
[0053] To further improve the convenience of display, the embodiments of the present application can also receive a time setting instruction for setting the time range for displaying energy changes. The energy transfer amount between two connected nodes in the topological structure diagram is determined through this time range, and the energy transfer amount within this time period range is displayed in the topological structure diagram. For example Figure 6 In the energy transfer schematic diagram of the shown time range, the size of the transferred energy can be represented by the size of the rectangular frame, or the size of the energy can also be displayed by numbers in the rectangular frame. The transfer direction of the energy is represented by the moving direction of the rectangular frame or the arrow direction of the rectangular frame. Thus, it enables the staff to conveniently view the statistical data of the energy.
[0054] It should be understood that the magnitudes of the sequence numbers of the steps in the above embodiments do not mean the order of execution. The execution order of each process should be determined according to its function and internal logic, and should not constitute any limitation to the implementation process of the embodiments of the present application.
[0055] Figure 7 Schematic diagram of a state display device for an energy storage system provided by an embodiment of the present application. The device includes: A topological structure diagram generation unit 701, configured to determine the connection relationship of the node devices of the energy storage system, and generate a topological structure diagram of the energy storage system according to the connection relationship of the node devices; A first direction determination unit 702, configured to obtain the operation mode of the energy storage system, and determine the power transmission direction of the first branch set in the topological structure diagram according to the operation mode; A second direction determination unit 703, configured to collect the power transmission direction of the second branch set in the topological structure diagram, where the second branch set is the branch set other than the first branch set in the topological structure diagram; A real-time state display unit 704, configured to perform real-time state display by controlling the moving manner of the energy identifier on the branch between two connected nodes in the topological structure diagram according to the power transmission direction of the first branch set and the power transmission direction of the second branch set.
[0056] Figure 7 The state display device of the energy storage system shown corresponds to Figure 1 The state display method of the energy storage system shown.
[0057] Figure 8 Schematic diagram of a state display device for an energy storage system provided by an embodiment of the present application. As Figure 8As shown, the state display device 8 of the energy storage system of this embodiment includes: a processor 80, a memory 81, and a computer program 82 stored in the memory 81 and executable on the processor 80, such as a state display program of the energy storage system. When the processor 80 executes the computer program 82, the steps in the above-mentioned embodiments of the state display method of each energy storage system are implemented. Alternatively, when the processor 80 executes the computer program 82, the functions of each module / unit in the above-mentioned device embodiments are implemented.
[0058] Exemplarily, the computer program 82 can be divided into one or more modules / units. The one or more modules / units are stored in the memory 81 and executed by the processor 80 to complete this application. The one or more modules / units can be a series of computer program instruction segments capable of performing specific functions, and these instruction segments are used to describe the execution process of the computer program 82 in the state display device 8 of the energy storage system.
[0059] The state display device 8 of the energy storage system can be a computing device such as a desktop computer, a notebook, a palm computer, and a cloud server. The state display device of the energy storage system may include, but is not limited to, a processor 80 and a memory 81. Those skilled in the art can understand that Figure 8 This is only an example of the state display device 8 of the energy storage system, and does not constitute a limitation on the state display device 8 of the energy storage system. It may include more or fewer components than those shown in the figure, or combine certain components, or different components. For example, the state display device of the energy storage system may further include input / output devices, network access devices, buses, etc.
[0060] The so-called processor 80 may be a central processing unit (CPU), or may also be other general-purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor may be a microprocessor, or the processor may also be any conventional processor, etc.
[0061] The memory 81 may be an internal storage unit of the state display device 8 of the energy storage system, such as the hard disk or memory of the state display device 8 of the energy storage system. The memory 81 may also be an external storage device of the state display device 8 of the energy storage system, such as a plug-in hard disk, a Smart Media Card (SMC), a Secure Digital (SD) card, a Flash Card, etc. equipped on the state display device 8 of the energy storage system. Further, the memory 81 may also include both the internal storage unit and the external storage device of the state display device 8 of the energy storage system. The memory 81 is used to store the computer program and other programs and data required by the state display device of the energy storage system. The memory 81 may also be used to temporarily store the data that has been output or will be output.
[0062] Those skilled in the art can clearly understand that for the convenience and brevity of description, only the above-mentioned division of each functional unit and module is used as an example. In actual applications, the above functions can be allocated to different functional units and modules according to needs, that is, the internal structure of the device is divided into different functional units or modules to complete all or part of the functions described above. Each functional unit and module in the embodiment can be integrated into a processing unit, or each unit can exist physically alone, or two or more units can be integrated into one unit. The above-mentioned integrated unit can be implemented in the form of hardware or in the form of a software functional unit. In addition, the specific names of each functional unit and module are only for the convenience of mutual distinction and do not limit the protection scope of the present application. The specific working processes of the units and modules in the above system can refer to the corresponding processes in the foregoing method embodiments and will not be elaborated herein.
[0063] In the above embodiments, each embodiment is described with emphasis. For the parts not detailed or recorded in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.
[0064] Those of ordinary skill in the art can realize that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be implemented by electronic hardware, or by the combination of computer software and electronic hardware. Whether these functions are executed in hardware or software depends on the specific application and design constraints of the technical solution. Professional technicians can use different methods to implement the described functions for each specific application, but such implementation should not be considered to exceed the scope of the present application.
[0065] In the embodiments provided in this application, it should be understood that the disclosed device / terminal device and method can be implemented in other ways. For example, the device / terminal device embodiments described above are merely illustrative. For example, the division of the modules or units is only a logical function division. In actual implementation, there may be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed coupling or direct coupling or communication connection between each other can be through some interfaces. The indirect coupling or communication connection of the device or unit can be in electrical, mechanical or other forms.
[0066] The units described as separate components may or may not be physically separated. The components displayed as units may or may not be physical units, that is, they can be located in one place, or they can be distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0067] In addition, each functional unit in various embodiments of this application can be integrated in a processing unit, or each unit can exist physically alone, or two or more units can be integrated in one unit. The above integrated unit can be implemented in the form of hardware or in the form of a software functional unit.
[0068] If the integrated module / unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on such an understanding, all or part of the processes in the above embodiment methods of this application can also be completed by hardware related to computer program instructions. The computer program can be stored in a computer-readable storage medium. When the computer program is executed by a processor, the steps of the above various method embodiments can be implemented. Among them, the computer program includes computer program code, and the computer program code can be in source code form, object code form, executable file or some intermediate form, etc. The computer-readable medium can include: any entity or device that can carry the computer program code, recording medium, USB flash drive, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), electrical carrier signal, telecommunication signal, and software distribution medium, etc. It should be noted that the content included in the computer-readable medium can be appropriately increased or decreased according to the requirements of legislation and patent practice in the jurisdiction. For example, in some jurisdictions, according to legislation and patent practice, the computer-readable medium does not include electrical carrier signals and telecommunication signals.
[0069] In addition, an embodiment of the present application also provides a computer program product which, when running on a computer, causes the computer to execute the methods in the above implementation manners.
[0070] The above-described embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements 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 application, and should all be included in the protection scope of the present application.
Claims
1. A method for displaying the status of an energy storage system, characterized in that: The method comprises: Determine a connection relationship between node devices of the energy storage system, and generate a topological structure diagram of the energy storage system according to the connection relationship between the node devices; Acquire an operation mode of the energy storage system, and determine a power transmission direction of a first branch set in the topology diagram according to the operation mode; Collecting a power transmission direction of a second branch set in the topological structure diagram, where the second branch set is a branch set other than the first branch set in the topological structure diagram; According to the power transmission direction of the first branch set and the power transmission direction of the second branch set, the energy identifier is controlled to move on the branch between two connected nodes in the topology diagram to display the real-time status.
2. The method according to claim 1, characterized in that The operation modes include a grid priority mode, an energy storage priority mode and a load priority mode; the topological structure diagram includes a renewable node, an energy storage node, a grid node, a power conversion node and a load node; Determining a power transmission direction of a first branch set in the topology diagram according to the operation mode includes: When the operation mode is a grid priority mode, determining the power transmission direction of the branch between the grid node and the power conversion node in the topology diagram and the branch between the power conversion node and the load node according to the grid priority mode; When the operation mode is an energy storage priority mode, determining the power transmission direction of a branch between an energy storage node and a power conversion node in the topology diagram, and a branch between the power conversion node and the load node according to the energy storage priority mode; When the operation mode is a load priority mode, the power transmission direction of the branch between the power conversion node and the load node in the topology diagram is determined according to the load priority mode.
3. The method according to claim 1, characterized in that: Before performing real-time status display by controlling the energy identifier to move on a branch between two connected nodes in the topology diagram according to the power transmission direction of the first branch set and the power transmission direction of the second branch set, the method further includes: Collecting the transmission power between two connected nodes in the topological structure diagram; Determine the moving speed of the energy marker on the branch between two connected nodes in the topology diagram according to the corresponding relationship between the predicted transmission power and the speed; According to the power transmission direction of the first branch set and the power transmission direction of the second branch set, controlling the energy identifier to move on the branch between two connected nodes in the topology diagram to display the real-time status, including: According to the power transmission direction of the first branch set and the power transmission direction of the second branch set, combined with the moving speed of the energy identifier on each branch, the way the energy identifier moves on the branch between two connected nodes in the topology diagram is controlled to display the real-time status.
4. The method according to claim 3, characterized in that Determining the moving speed of the energy marker on a branch between two connected nodes in the topology diagram according to the corresponding relationship between the predicted transmission power and the speed includes: When the electric energy of the first branch whose moving speed of the energy identifier is to be determined comes from more than two branches, more than two channels for displaying the energy identifier are set in the first branch; According to a preset correspondence relationship between transmission power and speed, the moving speed of the energy identifier in the more than two channels is determined.
5. The method according to claim 4, characterized in that Determining the moving speed of the energy identifier in the two or more channels according to the corresponding relationship between the predicted transmission power and the speed includes: Determining the total speed of the first branch according to a preset correspondence relationship between transmission power and speed; The moving speed of the energy identifiers in the two or more channels is determined according to the power ratio of the two or more branches of the electric energy source of the first branch in combination with the total speed.
6. The method according to claim 5, characterized in that After determining the moving speed of the energy identifiers in the two or more channels according to the power ratio of the two or more branches of the electric energy source of the first branch in combination with the total speed, the method further includes: According to the appearances of the energy identifiers of the two or more branches of the electric energy source of the first branch, the appearances of the energy identifiers in the two or more channels are determined accordingly.
7. The method according to any one of claims 1 to 6, characterized in that: After determining the connection relationship of the node devices of the energy storage system and generating a topological structure diagram of the energy storage system according to the connection relationship of the node devices, the method further includes: receiving a time setting instruction, wherein the time setting instruction includes a time range for displaying energy changes; Determine the amount of energy transfer between two connected nodes in the topological structure diagram according to the time range; The energy transfer amount is displayed on a branch between two connected nodes in the topological structure diagram.
8. A state display device for an energy storage system, characterized in that: The device comprises: A topology diagram generating unit, used to determine the connection relationship of the node devices of the energy storage system, and generate a topology diagram of the energy storage system according to the connection relationship of the node devices; A first direction determining unit, configured to obtain an operation mode of the energy storage system, and determine a power transmission direction of a first branch set in the topological structure diagram according to the operation mode; A second direction determining unit, configured to collect a power transmission direction of a second branch set in the topological structure diagram, wherein the second branch set is a branch set other than the first branch set in the topological structure diagram; A real-time status display unit is used to control the way in which the energy identifier moves on the branch between two connected nodes in the topology diagram according to the power transmission direction of the first branch set and the power transmission direction of the second branch set to display the real-time status.
9. A state display device for an energy storage system, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that: When the processor executes the computer program, the state display device of the energy storage system implements the method according to any one of claims 1 to 7.
10. A computer program product comprising computer program instructions, characterized in that When the computer program is executed, the method according to any one of claims 1 to 7 is performed.
Citation Information
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