A panoramic model construction and display method and interface for energy storage monitoring system
By collecting and classifying power equipment information and using the substation container model to display and monitor power data, the problem of difficult data management in the CIM model is solved, and the integrated processing of power data and the precise adjustment of equipment status are achieved.
Patent Information
- Application Number
- CN202211071317.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-02
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2042-09-02
AI Technical Summary
In existing technologies, CIM models are unable to effectively manage and integrate massive amounts of power data, resulting in difficulties in data utilization and comprehensive processing of different equipment, and making it difficult to collect and monitor the operating status of multiple types of equipment.
A panoramic model construction method for the energy storage monitoring system is adopted. By collecting basic information and topological information of regional power equipment, equipment classification is performed with reference to the substation container model, and power data is displayed and monitored through human-computer interaction.
It realizes accurate integrated processing of power data, supports comprehensive application of power systems, and improves the efficiency of power equipment management and the diversification of state adjustment.
Smart Images

Figure CN115580009B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of power systems, and more specifically, to a method and interface for constructing and displaying a panoramic model of an energy storage monitoring system. Background Art
[0002] At present, the Common Information Model (CIM) is often used in power systems to describe and manage resources and objects related to power operation. It can achieve effective integration of different energy management systems and information integration of various links in the power system, such as transmission, generation, distribution, and transformation.
[0003] However, existing technologies still struggle to effectively manage and aggregate data from diverse devices using CIM models, given the massive amounts of power data. Consequently, CIM models present data management challenges, making it difficult to effectively utilize or integrate data from diverse devices, and making it difficult to collect and monitor the operating status of diverse equipment.
[0004] In response to the above problems, the present invention provides a method and interface for constructing and displaying a panoramic model of an energy storage monitoring system. Summary of the Invention
[0005] To address the deficiencies in the prior art, the present invention provides a method and interface for constructing and displaying a panoramic model of an energy storage monitoring system. This method collects various information about regional power equipment and classifies and arranges the equipment through a substation container model to achieve different modes of power data display and human-computer interaction.
[0006] The present invention adopts the following technical solution. In its first aspect, the present invention relates to a method for constructing and displaying a panoramic model of an energy storage monitoring system, comprising the following steps: Step 1: Collecting basic information, topology information, and operational information of regional power equipment in the SCADA system; Step 2: Referring to a pre-designed substation container model, configuring power equipment in different containers based on this basic information; Step 3: Defining digital quantities, analog quantities, cumulative quantities, mixed quantities, and output information for different containers to enable display and monitoring of the aforementioned data through human-computer interaction.
[0007] Preferably, the basic information of the power equipment includes at least the type of power equipment, equipment model, equipment ID, equipment name, and equipment description; the topology information of the power equipment includes at least the connection method, voltage level, operation status, and power responsibility area of the power equipment; the operation information of the power equipment includes at least the measurement data and measurement type collected in real time by the power equipment, as well as the fault type, fault label, and fault time of the power equipment.
[0008] Preferably, the pre-designed substation container model includes a voltage level container and an energy storage supply container; wherein, the voltage level container is used to arrange the generator equipment in the substation; the energy storage supply container is used to arrange the energy storage equipment in the substation.
[0009] Preferably, the energy storage supply container further includes a coordination control sub-container, a reactive power compensation sub-container, a control grid connection sub-container and an energy storage battery sub-container.
[0010] Preferably, the energy storage battery sub-container is used to arrange the energy storage converter equipment and the battery management equipment; and the battery management equipment is divided into three levels based on the battery pack, battery cluster and battery cell.
[0011] Preferably, the measurement data and measurement processing data of all devices inside the substation container model are displayed and queried based on each container, each subcontainer, and each level in the subcontainer.
[0012] Preferably, the measurement data are digital quantities and analog quantities directly collected by all devices in the container; the measurement processing data are the cumulative quantity, mixed quantity and output information calculated based on the measurement data of the same container.
[0013] Preferably, the cumulative amount is obtained by accumulating similar measurement data of different devices in the same container at the same time, or by accumulating similar measurement data of the same device at different times; the mixed amount is obtained after calculation and processing of different types of measurement data of different devices in the same container.
[0014] Preferably, after processing the accumulated amount and the mixed amount, output information of the container is obtained.
[0015] The second aspect of the present invention relates to a panoramic model construction and display interface for an energy storage monitoring system. The interface is implemented based on a computer system and is used to implement the steps in the method of the first aspect of the present invention, as well as the human-computer interaction methods involved in the method steps.
[0016] The present invention offers a significant advantage over existing technologies in that, compared to existing technologies, the method and interface for constructing and displaying a panoramic model of an energy storage monitoring system collects information about regional power equipment and categorizes and organizes these equipment using a substation container model, enabling diverse power data display and human-computer interaction. This method accurately captures integrated processing methods for power data, providing effective support for its comprehensive application.
[0017] The beneficial effects of the present invention also include:
[0018] 1. The present method achieves a reasonable division of a large number of different types of equipment by dividing them into containers, and enables comprehensive management and control of all equipment within each container based on multiple different levels. This makes the management and control of power equipment more specific and effective, and also increases the diversity of power system status adjustment.
[0019] 2. The present invention realizes the calculation of cumulative amount and mixed amount based on the container as a unit, which makes it possible to fully exclude the influence of equipment in other containers during the internal adjustment of each container, and accurately realize the calculation, display and adjustment of the overall information of the container according to the division of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the steps of a method for constructing and displaying a panoramic model of an energy storage monitoring system according to the present invention. DETAILED DESCRIPTION
[0021] To make the objectives, technical solutions, and advantages of the present invention more clear, the technical solutions of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. The embodiments described in this application are only part of the embodiments of the present invention, not all of them. Based on the spirit of the present invention, other embodiments obtained by ordinary technicians in this field without making creative efforts are all within the scope of protection of the present invention.
[0022] Figure 1 This is a schematic diagram of the steps of the method for constructing and displaying a panoramic model of an energy storage monitoring system according to the present invention. Figure 1 As shown, the first aspect of the present invention relates to a method for constructing and displaying a panoramic model of an energy storage monitoring system, and the method includes steps 1 to 3.
[0023] Step 1: Collect basic information, topology information, and operation information of regional power equipment in the SCADA system.
[0024] It is understandable that, in the prior art, the relevant data of power equipment can be generated from a variety of different sources and can also include a variety of different forms. At present, among the distributed systems that have been implemented for collecting the relevant data of power equipment, and the multiple systems that can collect, monitor, store and process massive amounts of data, the SCADA (Supervisory Control And Data Acquisition) system is the most widely used, which can monitor the equipment on site and reliably realize the functions of data collection, equipment control, measurement, parameter adjustment and various signal alarms. Therefore, in the present invention, the SCADA system is used as the basis to realize the collection of the relevant data of power equipment.
[0025] In addition, the regional power equipment in the present invention can be based on substations of various levels, and all equipment connected and operating under the substation can be regarded as equipment in the same area. On this basis, the present invention can use the substation as a unit in accordance with the method described below to realize the monitoring and control adjustment of the entire substation status, and can also use containers of different levels under the substation to realize the adjustment of a single function or a single device. Furthermore, for multiple substations of the same company in the same area or multiple different areas, the present invention can also realize simpler supervision and control based on the cumulative amount, mixed amount and output information of the substation. It should be noted that the method in the present invention constructs a panoramic equipment model by collecting information on all power equipment in the current area.
[0026] Preferably, the basic information of the power equipment includes at least the type of power equipment, equipment model, equipment ID, equipment name, and equipment description; the topology information of the power equipment includes at least the connection method, voltage level, operation status, and power responsibility area of the power equipment; the operation information of the power equipment includes at least the measurement data and measurement type collected in real time by the power equipment, as well as the fault type, fault label, and fault time of the power equipment.
[0027] It is understood that the basic information of the power equipment in the present invention may include inherent information set when the power equipment is not in operation or for subsequent operation in the power grid, such as the device name, ID, description, and device model, etc. Of course, depending on the actual application of the device, it is not limited to the information mentioned above.
[0028] In addition, the topology information of power equipment includes information about the network location and connection method collected from the power system network where the equipment is connected. This information can include the identity information of upstream and downstream devices connected to the current power equipment, as well as the connection relationship and connection method between the power equipment in the specified period and other power equipment. By using the topology information of each power equipment, the method of the present invention can fully map the topology of the devices in the entire regional power system. In addition, the topology information can also include the connection method between devices, such as the type of power transmission network used for communication, the voltage level of the line between two power equipment, whether the equipment is in a truly operational state, etc. It is important to note that for power systems, the failure of one device often triggers a chain reaction among multiple devices. In order to accurately implement the maintenance and repair of a specific power business, responsibility areas are divided for different devices so that the same operation and maintenance personnel or operation and maintenance system can monitor and properly maintain all devices within a responsibility area. Therefore, the reasonable division of responsibility areas for different power equipment can make it easier for operation and maintenance personnel to repair faults.
[0029] The operational information of power equipment referred to in this invention primarily refers to the useful parameters continuously monitored and collected by the power equipment during operation, from different lines or data collection points within the power system. For example, this measured data may include real-time line current and voltage information collected by voltage and current sensors, as well as active and reactive power on a particular line, switching information of a particular switch, and setting information for line protection devices. Furthermore, since some power protection devices can provide automatic protection for the lines themselves, the method of this invention also collects this information for future use when these devices issue fault alarms.
[0030] Step 2: referring to a pre-designed substation container model, and configuring the power equipment in different containers based on the basic information.
[0031] With existing technologies, it is difficult to reasonably track and calculate massive amounts of power equipment data, output effective control information in real time, and instruct the entire substation level to adjust the status by simply using a SCADA system or other system. Similarly, it is also difficult to perform separate regulation for the entire power grid area or a certain level under the substation in existing technologies. This is because existing technologies do not establish a reasonable allocation model for different devices, and therefore cannot, based on a reasonable allocation method, perform comprehensive calculations on different data between all devices belonging to the same division unit and obtain the desired results.
[0032] With the improvement of the present invention, the interactive method can realize the reasonable adjustment and division of the levels to which different equipment belongs, and effectively divide all power equipment into reasonable areas based on companies or users. In one embodiment of the present invention, the first level can be the company that needs to test the power equipment, and the container corresponding to this level contains all the power equipment under this company. The second level can be the test area of a certain power system under this company. This area can be divided according to the usual administrative areas, or according to the distribution of the locations of equipment such as substations. In addition, it can also be divided according to the need for overall testing. Under this area, it may include related equipment for each link such as transmission, generation, transformation, distribution, and use, and of course it may also include multiple types of equipment in only one link.
[0033] Furthermore, at the third level, the equipment can be divided based on the substation. For example, the present invention can include all equipment in a substation into a container, and perform comprehensive analysis and calculations on the operating data of all equipment in the container to obtain the final result.
[0034] Furthermore, at the fourth level, the principle for dividing all equipment within a substation can be implemented based on the substation's self-generation capacity and its power transmission capacity. For example, in one embodiment of the present invention, all equipment within the substation that receives power from the power generation side, converts voltage levels, and transmits and outputs power can be counted in one container, while all energy storage-related equipment within the substation can be counted in another container.
[0035] More importantly, at the fourth level, equipment can also be divided according to voltage levels. For example, if a line switch is used in a 10kV power line, it can be assigned to a container corresponding to 10kV. If another switch in the same substation is used at 35kV, it will be assigned to a different container.
[0036] In this way, the present invention can summarize the status of all switchgear or all related equipment at the same voltage level, and adjust the operating status of the power system according to the voltage level.
[0037] Preferably, the pre-designed substation container model includes a voltage level container and an energy storage supply container; wherein, the voltage level container is used to arrange the generator set equipment in the substation; and the energy storage supply container is used to arrange the energy storage equipment in the substation.
[0038] As mentioned above, the substation container model previously mentioned in the present invention is implemented based on the idea of dividing different levels mentioned above. In one embodiment, the model includes at least a voltage level container and an energy storage supply container. In other words, the voltage level container can be used to realize the division of containers according to the voltage state of the equipment in the substation during the power transformation process. For example, when the substation is a 10kV substation, almost all of its subordinate equipment except the energy storage equipment can be divided into the 10kV container. Therefore, when the voltage instability problem of the substation is detected, the source of the fault can be found based on this container.
[0039] In addition, the energy storage supply container includes various energy storage devices, such as the coordination controller, static VAR compensator, grid connection point equipment, energy storage converter, energy storage battery pack, etc. mentioned in the present invention.
[0040] Preferably, the energy storage supply container also includes a coordination control sub-container, a reactive power compensation sub-container, a grid connection control sub-container, and an energy storage battery sub-container. It is understood that due to the different application types of the energy storage devices described above, the devices within the energy storage supply container can also be further subdivided in the present invention. During this division process, the container can be divided into multiple sub-containers based on the actual energy storage function. For example, the coordination control sub-container can be configured with an energy storage coordination controller, etc.
[0041] Preferably, battery management equipment is divided into three levels based on battery packs, battery clusters, and battery cells. The present invention takes into account that the energy storage battery is the most prone to failure and the device that most needs adjustment. Therefore, in order to more reasonably monitor the status of the energy storage battery and enable the cascade utilization of waste batteries, the present invention further divides the equipment in the energy storage battery sub-container into three levels: battery packs, battery clusters, and battery cells. This classification ensures that even if there is only a single battery cell failure in the energy storage battery, this problem can be accurately and real-timely identified through human-computer interaction, and a reasonable response can be achieved.
[0042] Step 3: Define the digital quantity, analog quantity, cumulative quantity, mixed quantity and output information of different containers to display and monitor the above data through human-computer interaction.
[0043] After dividing all power equipment into containers, the present invention can collect and display information on a container-by-container basis, and process data on a container-by-container basis to obtain reasonable output results. These output results can be applied to the regulation and control of the power system. Since the present invention reasonably divides power equipment and can continuously calculate relevant data in real time based on these divisions, both automated power systems and experts in the power industry can more intuitively obtain the operating status of the power system through the data information obtained through these processes, thereby quickly and accurately responding to operational failures and operational risks of the power system and adjusting the power system to a stable state.
[0044] Preferably, the measurement data and measurement processing data of all devices inside the substation container model are displayed and queried based on each container, each subcontainer, and each level in the subcontainer.
[0045] It is understandable that each container in the substation container model of the present invention can be used as a whole to support interface-based information display, information query, editing, modification, and addition and deletion operations, etc. Therefore, when a container of any level is used as the object for editing or display, experts in this field can obtain relevant information about this entire container. For example, in the prior art, although the charge and discharge status of all energy storage batteries in an energy storage power station can be collected, specially defined tools are still required to calculate the charge and discharge power of all energy storage batteries. However, through the containerization method of the present invention, not only can the charge and discharge status of batteries at each level be conveniently collected, but also the total power information of all batteries under each container or each sub-container can be collected. In the display process, this information can also be displayed and edited in units of containers, and does not need to be output simultaneously, which increases the amount of calculation while reducing the calculation speed.
[0046] Preferably, the measurement data consists of digital and analog quantities directly collected by all devices within the container; the measured and processed data consists of cumulative quantities, mixed quantities, and output information calculated based on the measurement data from the same container. Digital quantities in the present invention primarily include switching quantities and constant value information of the power system, while analog quantities can include real-time current, voltage, power, and other information. Furthermore, the present invention can calculate cumulative and mixed quantities based on the actual conditions of each container, and synthesize these to generate output information.
[0047] Preferably, the cumulative amount is obtained by summing up the same type of measurement data from different devices in the same container at the same time, or by summing up the same type of measurement data from the same device at different times; the mixed amount is obtained by processing different types of measurement data from different devices in the same container. After processing the cumulative amount and mixed amount, the output information of the container is obtained.
[0048] It's understandable that, due to the rational division of containers, the cumulative and mixed quantities calculated here can have practical value and significance depending on how the containers are divided. For example, the cumulative quantity method can be used to obtain the sum of the charge and discharge power of all cells in a battery cluster. Therefore, if the energy storage power provided by a battery cluster experiences an anomaly, the fault can be recovered by promptly adjusting the energy storage allocation method in the battery management system. For another example, the mixed quantity method can be used to compare the difference between the power allocated by the coordination controller and the power command received by the grid connection point, thereby determining whether there is an operational anomaly in the coordination control device.
[0049] The second aspect of the present invention relates to a panoramic model construction and display interface for an energy storage monitoring system. The interface is implemented based on a computer system and is used to implement the steps of the method in the first aspect of the present invention, as well as the human-computer interaction methods involved in the method steps.
[0050] The interface of the second aspect of the present invention can be implemented based on the method of the first aspect. Using computer interface programming, the present invention can display the container division, information collection, and other functions implemented in the first aspect within a human-computer interface. This allows industry experts to achieve universal control of a container or all devices within a hierarchy by interacting with the human-computer interface.
[0051] It should be noted that in the prior art, experts can usually only make intuitive judgments about faults in a container. Since their computing power is far inferior to that of automated computer equipment, it is difficult to locate the fault inside a container and it is also difficult to provide a reasonable adjustment method. However, due to the use of the method in the present invention, when an expert determines that a container has a fault, an overall indicator in the container can be indicated through an interactive interface, such as the precise adjustment of a certain cumulative amount or a certain mixed amount. The adjustment between multiple devices in the container can be based on the computer's automation method, receiving the expert's instructions and automatically adjusting multiple different devices to reasonable indicators. At the same time, this adjustment will not affect the status of other devices outside the container at all.
[0052] In the present invention, a corresponding human-computer interaction device can be used to implement the above-mentioned human-computer interaction interface. In order to realize the various functions in the method provided in the above-mentioned embodiment of the present application, the human-computer interaction device includes a hardware structure and / or software module corresponding to the execution of each function. It should be easy for those skilled in the art to appreciate that, in combination with the algorithm steps of each example described in the embodiments disclosed herein, the present application can be implemented in the form of hardware or a combination of hardware and computer software. Whether a function is executed in the form of hardware or computer software driving hardware depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered to be beyond the scope of this application.
[0053] The embodiment of the present application can divide the functional modules of the human-computer interaction device according to the above method example. For example, each functional module can be divided according to each function, or two or more functions can be integrated into one processing module. The above-mentioned integrated module can be implemented in the form of hardware or in the form of software functional modules. It should be noted that the division of modules in the embodiment of the present application is schematic and is only a logical function division. There may be other division methods in actual implementation.
[0054] The device includes at least one processor, a bus system and at least one communication interface.
[0055] The processor can be a central processing unit (CPU), and can also be replaced by a field programmable gate array (FPGA), an application-specific integrated circuit (ASIC) or other hardware, or the FPGA or other hardware can be used together with the CPU as a processor.
[0056] The memory may be a read-only memory (ROM) or other type of static storage device that can store static information and instructions, a random access memory (RAM) or other type of dynamic storage device that can store information and instructions, or an electrically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disc storage, an optical disc storage (including a compact disc, laser disc, optical disc, digital versatile disc, Blu-ray disc, etc.), a magnetic disk storage medium or other magnetic storage device, or any other medium that can be used to carry or store desired program code in the form of instructions or data structures and can be accessed by a computer, but is not limited to these. The memory may exist independently and be connected to the processor via a bus. The memory may also be integrated with the processor.
[0057] The hard disk can be a mechanical disk or a solid-state drive (SSD). The interface card can be a host bus adapter (HBA), a redundant array of independent disks (RID), an expander card, or a network interface controller (NIC), etc., which is not limited in the embodiments of the present invention. The interface card in the hard disk module communicates with the hard disk. The storage node communicates with the interface card of the hard disk module to access the hard disk in the hard disk module.
[0058] The interface of the hard disk can be Serial Attached Small Computer System Interface (SAS), Serial Advanced Technology Attachment (SATA), or Peripheral Component Interconnect express (PCIe).
[0059] In the above embodiments, all or part of the embodiments can be implemented by software, hardware, firmware, or any combination thereof. When implemented using a software program, all or part of the embodiments can be implemented in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, all or part of the processes or functions described in the embodiments of the present application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via a wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) method. The computer-readable storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server or data center that includes one or more media integrated therein. The available media may be magnetic media (eg, floppy disks, hard disks, magnetic tapes), optical media (eg, DVDs), or semiconductor media (eg, solid state disks (SSDs)).
[0060] The computer program instructions for performing the operations of the present disclosure may be assembly instructions, instruction set architecture (ISA) instructions, machine instructions, machine-dependent instructions, microcode, firmware instructions, state setting data, or source code or object code written in any combination of one or more programming languages, including object-oriented programming languages such as Smalltalk, C++, and conventional procedural programming languages such as "C" language or similar programming languages. Computer-readable program instructions may be executed entirely on a user's computer, partially on a user's computer, as an independent software package, partially on a user's computer, partially on a remote computer, or entirely on a remote computer or server. In the case of a remote computer, the remote computer may be connected to the user's computer via any type of network, including a local area network (LAN) or a wide area network (WAN), or may be connected to an external computer (e.g., utilizing an Internet service provider to connect via the Internet). In some embodiments, an electronic circuit, such as a programmable logic circuit, a field programmable gate array (FPGA), or a programmable logic array (PLA), may be personalized by utilizing the state information of the computer-readable program instructions. The electronic circuit may execute the computer-readable program instructions, thereby realizing various aspects of the present disclosure.
[0061] Computer-readable program instructions may also be loaded onto a computer, other programmable data processing apparatus, or other device so that a series of operational steps are performed on the computer, other programmable data processing apparatus, or other device to produce a computer-implemented process, thereby causing the instructions executed on the computer, other programmable data processing apparatus, or other device to implement the functions / actions specified in one or more blocks in the flowchart and / or block diagram.
[0062] The present invention offers a significant advantage over existing technologies in that, compared to existing technologies, the method and interface for constructing and displaying a panoramic model of an energy storage monitoring system collects information about regional power equipment and categorizes and organizes these equipment using a substation container model, enabling diverse power data display and human-computer interaction. This method accurately captures integrated processing methods for power data, providing effective support for its comprehensive application.
[0063] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, ordinary technicians in the field should understand that the specific implementation methods of the present invention can still be modified or replaced by equivalents. Any modification or equivalent replacement that does not depart from the spirit and scope of the present invention should be covered by the scope of protection of the claims of the present invention.
Claims
1. A method for constructing and displaying a panoramic model of an energy storage monitoring system, characterized in that: The method comprises the following steps: Step 1: Collect basic information, topology information, and operation information of regional power equipment in the SCADA system; Step 2, referring to a pre-designed substation container model, and configuring the power equipment in different containers based on the basic information; In the substation container model, the first level is the division of the company where the power equipment is tested, the second level is the test area of a power system under the company, the third level is the basis for dividing equipment based on substation units, and the fourth level considers the substation's self-generation capacity and the substation's power transmission capacity for division, or divides according to the voltage level of the equipment; Step 3: defining the digital quantity, analog quantity, cumulative quantity, mixed quantity and output information of the different containers, so as to realize the display and monitoring of the above data through human-computer interaction; The cumulative amount is obtained by accumulating similar measurement data of different devices in the same container at the same time, or by accumulating similar measurement data of the same device at different times; The mixing amount is obtained after calculating and processing different types of measurement data of different devices in the same container; After processing the accumulated amount and the mixed amount, output information of the container is obtained; When a container is determined to have failed, the interactive interface indicates the precise adjustment of a certain cumulative amount or a certain mixed amount in the container; Multiple devices in the container receive expert instructions based on computer automation and automatically adjust multiple different devices to reasonable indicators without affecting the status of other devices outside the container.
2. A method for constructing and displaying a panoramic model of an energy storage monitoring system according to claim 1, characterized in that: The basic information of the power equipment includes at least the type, model, ID, name and description of the power equipment; The topology information of the power equipment includes at least the connection mode, voltage level, operation status, and power responsibility area of the power equipment; The operation information of the electric power equipment at least includes measurement data and measurement type collected in real time by the electric power equipment, as well as the fault type, fault label, and fault time of the electric power equipment.
3. A method for constructing and displaying a panoramic model of an energy storage monitoring system according to claim 2, characterized in that: The pre-designed substation container model includes a voltage level container and an energy storage supply container; Wherein, the voltage level container is used to arrange the generator set equipment in the substation; The energy storage supply container is used to arrange energy storage equipment in the substation.
4. A method for constructing and displaying a panoramic model of an energy storage monitoring system according to claim 3, characterized in that: The energy storage supply container also includes a coordination control sub-container, a reactive power compensation sub-container, a control grid connection sub-container and an energy storage battery sub-container.
5. A method for constructing and displaying a panoramic model of an energy storage monitoring system according to claim 4, characterized in that: The energy storage battery sub-container is used to arrange energy storage and current conversion equipment and battery management equipment; and The battery management equipment is divided into three levels based on battery packs, battery clusters, and battery cells.
6. A method for constructing and displaying a panoramic model of an energy storage monitoring system according to claim 5, characterized in that: Based on each container, each sub-container, and each level in the sub-container in the substation container model, the measurement data and measurement processing data of all devices inside the sub-container are displayed and queried.
7. A method for constructing and displaying a panoramic model of an energy storage monitoring system according to claim 6, characterized in that: The measurement data are digital and analog quantities directly collected by all devices in the container; The measurement processing data is the cumulative amount, mixed amount and output information calculated based on the measurement data of the same container.
8. A panoramic model construction and display interface for an energy storage monitoring system, characterized by: The interface is implemented based on a computer system and is used to implement the steps in the method according to any one of claims 1 to 7, as well as the human-computer interaction methods involved in the method steps.
Citation Information
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