Flexible load regulation and control method based on power load management system and related device thereof
By classifying and managing flexible loads in the power load management system and selecting appropriate control modes, the problem of poor control performance in the existing system has been solved, and precise and safe load control has been achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- JIANGMEN POWER SUPPLY BUREAU OF GUANGDONG POWER GRID CO LTD
- Filing Date
- 2025-12-08
- Publication Date
- 2026-04-21
AI Technical Summary
The existing power load management system lacks a scientific and flexible load classification management mechanism, making it difficult to implement differentiated regulation for different types of loads, resulting in poor regulation effectiveness.
The flexible load control method based on the power load management system receives load control requests, filters out target loads, and selects appropriate control modes according to load type, including system-to-terminal control, system-to-system control, and system-to-manual control, and generates a control effect evaluation report.
It enables the classified management of flexible loads, improves the accuracy and safety of regulation, and ensures the stable operation of the power grid and the safety of users' electricity consumption.
Smart Images

Figure CN121906516A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of power technology, and in particular to a flexible load control method and related devices based on a power load management system. Background Technology
[0002] Traditional power load control mainly relies on rigid regulation methods, such as orderly power consumption, combined with remote control of user power supply technologies. Flexible power loads, as load resources capable of energy interaction with the power grid and possessing flexible characteristics, are an important means of alleviating supply-demand imbalances through their scheduling and regulation.
[0003] In related technologies, there is a lack of scientific classification and management mechanisms for flexible load management, making it difficult to implement differentiated control for different types of loads and adapt to the diverse access needs of load resources, resulting in difficulties in achieving precise control. In particular, when facing different types of loads such as continuously adjustable loads, aggregated loads, and transferable loads, existing systems often adopt a uniform control mode, leading to poor control effects. Summary of the Invention
[0004] To address or partially address the problems existing in related technologies, this application provides a flexible load control method and related devices based on a power load management system, which can realize flexible load classification management and improve the accuracy and safety of control.
[0005] The first aspect of this application provides a flexible load control method based on a power load management system, comprising: receiving load control requests, the load control requests including target control power or target control electricity; based on the load control requests, selecting target loads from a preset flexible load resource pool, and selecting a matching control mode from at least three preset control modes to perform load control according to the preset load type of the target load; wherein the preset load types include continuously adjustable loads, aggregated loads, and transferable loads; the preset control modes include system-to-terminal control mode, system-to-system control mode, and system-to-manual control mode; acquiring the execution result data of the load control, and generating a control effect evaluation report based on the execution result data.
[0006] In conjunction with the first aspect, one possible implementation of the first aspect further includes: when the target load is a continuously adjustable load, determining the preset control mode as the system-to-terminal control mode, wherein the system-to-terminal control mode includes: the novel power load management system generating a control command for the target load; sending the control command to an intelligent control terminal bound to the target load; the intelligent control terminal parsing the control command and performing an adjustment operation on the target load.
[0007] In conjunction with the first aspect, in one possible implementation of the first aspect, the intelligent control terminal parses the control command and performs an adjustment operation on the target load, including: the intelligent control terminal decomposes the control command into at least one device-level control strategy based on edge computing capabilities; the device-level control strategy includes host start / stop control, power limit adjustment, or operating parameter setting adjustment; based on a preset local communication interface, the control command corresponding to the device-level control strategy is sent to the control unit of the target load; and the adjustment operation is performed on the target load according to the control command corresponding to the device-level control strategy.
[0008] In conjunction with the first aspect, in one possible implementation of the first aspect, the local communication interface includes at least one of an RS-485 bus interface, a controller area network bus interface, an Ethernet interface, and an infrared communication interface.
[0009] In conjunction with the first aspect, one possible implementation of the first aspect further includes: when the target load is an aggregated load, determining the preset control mode as the system-to-system control mode, wherein the system-to-system control mode includes: the new power load management system establishing a communication connection with the control platform to which the aggregated load resource belongs through a preset safety isolation device and a standard data interface; issuing a coordinated control command to the control platform; based on the coordinated control command, the control platform performing load control on the target load and feeding back the control execution status to the new power load management system.
[0010] In conjunction with the first aspect, one possible implementation of the first aspect further includes: when the target load is a transferable load, determining the preset control mode as the system-to-manual control mode; wherein the system-to-manual control mode includes: the new power load management system generating a load control plan, the load control plan including control indicators and control time limits; transmitting the load control plan to designated control personnel of the target load; within the control time limit, the designated control personnel control the target load according to the control indicators.
[0011] In conjunction with the first aspect, in one possible implementation of the first aspect, the step of acquiring the execution result data of the load regulation and generating a control effect evaluation report based on the execution result data includes: when the preset regulation mode is the system-to-terminal regulation mode, acquiring real-time operating data and operation receipts from the intelligent regulation terminal; when the preset regulation mode is the system-to-system regulation mode, receiving regulation result data from the control platform; when the preset regulation mode is the system-to-manual regulation mode, receiving load curve data before and after regulation of the target load collected by the monitoring unit associated with the target load.
[0012] A second aspect of this application provides a flexible load control device based on a power load management system, comprising: a receiving module for receiving load control requests, the load control requests including target control power or target control electricity; a processing module for selecting target loads from a preset flexible load resource pool based on the load control requests, and selecting a matching control mode from at least three preset control modes to execute load control according to the preset load type of the target load; wherein the preset load type includes continuously adjustable loads, aggregated loads, and transferable loads; the preset control modes include system-to-terminal control mode, system-to-system control mode, and system-to-manual control mode; and a generation module for acquiring the execution result data of the load control, and generating a control effect evaluation report based on the execution result data.
[0013] A third aspect of this application provides an electronic device, comprising: Processor; and A memory that stores executable code, which, when executed by the processor, causes the processor to perform the method described above.
[0014] A fourth aspect of this application provides a computer-readable storage medium having executable code stored thereon, which, when executed by a processor of an electronic device, causes the processor to perform the method described above.
[0015] The technical solution provided in this application may include the following beneficial effects: This application discloses a flexible load control method and related apparatus based on a power load management system, comprising: receiving load control requests, the load control requests including target control power or target control electricity; based on the load control requests, selecting target loads from a preset flexible load resource pool, and selecting a matching control mode from at least three preset control modes to execute load control according to the preset load type of the target load; wherein, the preset load types include continuously adjustable loads, aggregated loads, and transferable loads; the preset control modes include system-to-terminal control mode, system-to-system control mode, and system-to-manual control mode; acquiring load control execution result data, and generating a control effect evaluation report based on the execution result data, which can realize flexible load classification management and improve the accuracy and security of control.
[0016] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description
[0017] The above and other objects, features and advantages of this application will become more apparent from the more detailed description of exemplary embodiments thereof in conjunction with the accompanying drawings, wherein the same reference numerals generally represent the same components in the exemplary embodiments thereof.
[0018] Figure 1 This is a schematic flowchart illustrating a flexible load control method based on a power load management system, as shown in an embodiment of this application. Figure 2 This is a schematic diagram of the structure of a flexible load control device based on a power load management system, as shown in the embodiments of this application; Figure 3 This is a schematic diagram of the structure of an electronic device shown in an embodiment of this application. Detailed Implementation
[0019] Embodiments of this application will now be described in more detail with reference to the accompanying drawings. While embodiments of this application are shown in the drawings, it should be understood that this application may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to make this application more thorough and complete, and to fully convey the scope of this application to those skilled in the art.
[0020] The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The singular forms “a” and “the” as used in this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more of the associated listed items.
[0021] It should be understood that although the terms "first," "second," "third," etc., may be used in this application to describe various information, this information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, without departing from the scope of this application, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0022] In related technologies, flexible loads, as load resources capable of energy interaction with the power grid and possessing flexible characteristics, are crucial for alleviating supply-demand imbalances through scheduling and regulation. Existing technologies for flexible load management suffer from the following problems: First, the lack of a scientific classification and management mechanism makes it difficult to implement differentiated regulation for different types of loads; second, the single communication architecture cannot adapt to the diverse access needs of load resources; and third, the lack of flexibility in regulation strategies makes precise control difficult. Especially when facing different types of loads, such as continuously adjustable loads, aggregated loads, and transferable loads, existing systems often adopt a uniform regulation mode, resulting in poor regulation effectiveness.
[0023] To address the aforementioned issues, this application provides a flexible load control method and related apparatus based on a power load management system, which enables flexible load classification management and improves control accuracy and security.
[0024] The technical solutions of the embodiments of this application are described in detail below with reference to the accompanying drawings.
[0025] Figure 1 This is a schematic flowchart illustrating a flexible load control method based on a power load management system, as shown in an embodiment of this application.
[0026] See Figure 1 A flexible load control method based on a power load management system includes: S110: Receives load control requests, which include target control power or target control electricity.
[0027] Specifically, load regulation demand refers to the amount of electricity or power adjustment required by the power grid to balance the supply and demand gap. It is used to determine the scale of regulation, including target regulation electricity or target regulation power. When the power grid experiences a load gap, it can receive regulation demand and automatically analyze the amount of electricity or power that needs to be adjusted.
[0028] S120: Based on load regulation requirements, target loads are selected from a preset flexible load resource pool, and load regulation is performed by selecting a matching regulation mode from at least three preset regulation modes according to the preset load type of the target load; wherein, the preset load types include continuously adjustable loads, aggregated loads, and transferable loads; the preset regulation modes include system-to-terminal regulation mode, system-to-system regulation mode, and system-to-manual regulation mode.
[0029] Specifically, the flexible load resource pool refers to a set of loads that have completed equipment information registration and are ready for control, enabling rapid screening of available controllable resources. Preset load type classifications are based on equipment regulation characteristics; for example, continuously adjustable loads support real-time power adjustment, while transferable loads require manual intervention to adjust production plans. This classification provides a basis for mode selection. Preset control modes include different command transmission paths. For example, in the system-to-terminal mode, equipment operating parameters are directly controlled via smart terminals; in the system-to-system mode, collaborative control is achieved through inter-platform data interaction. This design ensures that the control method matches the load characteristics.
[0030] Specifically, within the flexible load resource pool, priority is given to selecting load devices that are currently adjustable and meet the control range, such as selecting air conditioning groups that are in operation. Based on the load type field in the device registration information, if it is a continuously adjustable type, the system initiates the terminal mode and sends a power adjustment command to the bound smart terminal; if it is an aggregated charging pile group, it interacts with the charging management platform through the system-to-system mode; for transferable loads that require adjustments to the production plan, a manual control task is generated and assigned to designated personnel.
[0031] In one possible implementation, the method further includes: when the target load is a continuously adjustable load, determining the preset control mode as the system-to-terminal control mode, which includes: the new power load management system generating control commands for the target load; sending the control commands to the intelligent control terminal bound to the target load; the intelligent control terminal parsing the control commands and performing adjustment operations on the target load.
[0032] Specifically, the new power load management system can generate control commands for target loads and send them to intelligent control terminals. Intelligent control terminals are hardware devices with edge computing capabilities. In the system's terminal control mode, after receiving control commands from the master station, the intelligent control terminal uses its built-in edge computing unit to decompose the commands into fine-grained operations that the device can execute. For example, when receiving a command to reduce air conditioning load, the terminal can decompose it into specific operations such as adjusting the temperature setpoint and limiting the compressor's operating frequency. Through real-time and precise control of continuously adjustable loads, such as in air conditioning load adjustment scenarios, the system can dynamically adjust equipment operating parameters according to grid demand without affecting user comfort.
[0033] In one possible implementation, the intelligent control terminal parses the control commands and performs adjustment operations on the target load, including: the intelligent control terminal decomposes the control commands into at least one device-level control strategy based on edge computing capabilities; the device-level control strategy includes host start / stop control, power limit adjustment, or operating parameter setting adjustment; based on a preset local communication interface, the control commands corresponding to the device-level control strategies are sent to the control unit of the target load; and the adjustment operation is performed on the target load according to the control commands corresponding to the device-level control strategies.
[0034] Specifically, device-level control strategies refer to the operating rules for controlled devices, such as adjusting the start / stop status of the host, setting power thresholds, or modifying operating parameters to achieve load regulation. Their role is to transform macro-control requirements into operating instructions that the device can recognize. The local communication interface refers to the physical connection channel between the terminal device and the controlled load, which enables control instructions to be adapted to the communication protocols of different devices.
[0035] Specifically, when the intelligent control terminal receives the control command from the main station, it first decomposes and processes the command through its built-in edge computing module. For example, in an air conditioning load control scenario, the total power voltage drop command issued by the main station is decomposed into temperature setpoint adjustment strategies for multiple air conditioners. Subsequently, the terminal selects the corresponding communication method based on the interface type of the target load. If the air conditioning unit is equipped with an RS-485 interface, the temperature adjustment command is transmitted to the air conditioning control motherboard through this bus. For older air conditioning equipment that supports infrared remote control, the terminal can call the infrared transmitting module to send a specially coded adjustment signal. After the command transmission is completed, the air conditioning equipment gradually adjusts its operating parameters according to the preset adjustment range. At the same time, the terminal continuously monitors current changes to verify the execution effect. Localized command processing reduces network dependence and ensures rapid response capabilities in emergency situations.
[0036] In one possible implementation, the local communication interface includes at least one of an RS-485 bus interface, a controller area network bus interface, an Ethernet interface, and an infrared communication interface.
[0037] Specifically, the RS-485 bus interface refers to a serial communication interface conforming to the RS-485 electrical standard; the Controller Area Network (CLAN) bus interface refers to a fieldbus interface based on the CAN protocol; the Ethernet interface refers to a network communication interface conforming to the IEEE 802.3 standard; and the infrared communication interface refers to an interface for wireless data transmission based on infrared light waves. When the intelligent control terminal executes device-level control strategies, the corresponding local communication method is selected according to the physical interface type of the target load. For example, in the air conditioning unit control scenario, the power limit adjustment command is transmitted to the air conditioning control board through the RS-485 bus interface; in the electric vehicle charging pile control scenario, the operating parameter setting command is sent to the charging pile main control unit through the Ethernet interface; in the industrial equipment control scenario, the host start / stop command is sent to the production line PLC controller through the CLAN bus interface; and in the renovation scenario of old equipment where cabling cannot be laid, the temperature setting adjustment command is sent to the equipment through the infrared communication interface. By matching the physical interface characteristics of the target load, the optimal communication method is selected, which not only ensures the real-time transmission of control commands but also avoids increased renovation costs due to interface incompatibility.
[0038] In one possible implementation, when the target load is an aggregated load, the preset control mode is determined to be a system-to-system control mode. The system-to-system control mode includes: the new power load management system establishing a communication connection with the control platform to which the aggregated load resource belongs through a preset safety isolation device and a standard data interface; issuing coordinated control instructions to the control platform; and based on the coordinated control instructions, the control platform performs load control on the target load and feeds back the control execution status to the new power load management system.
[0039] Specifically, the security isolation device refers to the hardware equipment used to ensure the security of data transmission between the new power load management system and the external control platform. Examples include a one-way optical shutter. The standard data interface refers to a predefined universal communication protocol interface, and the collaborative control command refers to a control signal containing load adjustment target parameters and execution time windows. In aggregated load control scenarios, the new power load management system first establishes a secure communication link with the third-party control platform through the security isolation device. For example, when it is necessary to adjust the power of a charging pile cluster, the power load management system sends a collaborative control command containing the total power limit and execution period to the charging pile operation platform via the IEC60870-5-104 protocol. After receiving the command, the control platform decomposes the total power index to each charging pile device according to its internal scheduling strategy and adjusts the charging power through the local controller. During the control process, the control platform collects the operating status data of each charging pile in real time, encrypts the data, and transmits it back to the power load management system through the standard interface. By introducing the security isolation device and the standard data interface, system conflicts that may be caused by direct control of user equipment are avoided, effectively reducing the security risks of cross-system communication and improving the reliability of load adjustment command execution.
[0040] In one possible implementation, the method further includes: when the target load is a transferable load, determining the preset control mode as the system-to-manual control mode; wherein, the system-to-manual control mode includes: the new power load management system generating a load control plan, the load control plan including control indicators and control time limits; transmitting the load control plan to the designated control personnel of the target load; within the control time limit, the designated control personnel control the target load according to the control indicators.
[0041] Specifically, transferable loads refer to load resources whose operating status can be adjusted within different time periods. The system's manual control mode refers to a method of load regulation achieved through a combination of manual operation and system commands, such as an online notification platform or an offline work order system. A load regulation plan refers to an operational scheme that includes specific control objectives and time requirements. When the power grid experiences regulation needs, the load management system first identifies the operating characteristics and current status of transferable loads and generates a plan containing specific control indicators and time constraints. This plan is transmitted to the designated operator's terminal on the user side through a preset communication channel, such as a mobile application push notification or a pop-up window on an enterprise energy management platform. After receiving the plan, the operator adjusts the equipment start-up and shutdown sequence or operating parameters according to the production plan, for example, shifting the operating time of a production line from peak electricity consumption periods to off-peak periods. During the execution of the plan, the system continuously monitors load change data. If the preset indicators are not met within the time limit, an early warning mechanism is triggered to remind the operator to supplement control measures. After execution, the system automatically collects the load curve differences before and after regulation and generates execution effect evaluation data.
[0042] S130: Obtain the execution result data of load regulation and generate a control effect evaluation report based on the execution result data.
[0043] Specifically, during the control process, the system collects data such as equipment operating status and command execution feedback in real time, and finally generates an effect evaluation report containing indicators such as actual control amount and response speed. By automatically matching the control mode, the system improves the coordination and control efficiency of multiple types of load resources, ensuring the safe operation of the power grid while maintaining the power safety of users. The generation of the evaluation report also provides data support for the subsequent optimization of control strategies.
[0044] In one possible implementation, acquiring the execution result data of load regulation and generating a control effect evaluation report based on the execution result data includes: when the preset regulation mode is system-to-terminal regulation mode, acquiring real-time operating data and operation receipts from the intelligent regulation terminal; when the preset regulation mode is system-to-system regulation mode, receiving regulation result data from the control platform; when the preset regulation mode is system-to-manual regulation mode, receiving load curve data before and after regulation of the target load collected by the monitoring unit associated with the target load.
[0045] Specifically, in the system-to-terminal control mode, the intelligent control terminal continuously collects the operating parameters of the controlled equipment through the local communication interface, and records the issued control commands and execution time nodes, forming a real-time operation data packet containing equipment status and operation records. In the system-to-system control scenario, the control platform encapsulates the actual control amount, execution time deviation, and abnormal event codes of the aggregated load into a control result data message, which is then transmitted back to the power load management system through a secure channel. For the manual control mode, smart meters or dedicated monitoring terminals installed at the load access point record power data at fixed sampling intervals, generating a complete load curve dataset containing the time periods before and after control. After processing by the evaluation algorithm of the power load management system, the above three types of data generate a multi-dimensional evaluation report containing execution deviation rate, response timeliness, and target achievement degree.
[0046] This application discloses a flexible load control method and related apparatus based on a power load management system, comprising: receiving load control requests, the load control requests including target control power or target control electricity; based on the load control requests, selecting target loads from a preset flexible load resource pool, and selecting a matching control mode from at least three preset control modes to execute load control according to the preset load type of the target load; wherein, the preset load types include continuously adjustable loads, aggregated loads, and transferable loads; the preset control modes include system-to-terminal control mode, system-to-system control mode, and system-to-manual control mode; acquiring load control execution result data, and generating a control effect evaluation report based on the execution result data, which can realize flexible load classification management and improve the accuracy and security of control.
[0047] Corresponding to the aforementioned application function implementation method embodiments, this application also provides a flexible load control device, electronic device, and corresponding embodiments based on a power load management system.
[0048] Figure 2 This is a schematic diagram of the structure of a flexible load control device based on a power load management system, as shown in an embodiment of this application.
[0049] See Figure 2 A flexible load control device 200 based on a power load management system includes: The receiving module 210 is used to receive load control requirements, which include target control power or target control electricity.
[0050] The processing module 220 is used to select target loads from a preset flexible load resource pool based on load control requirements, and select a matching control mode from at least three preset control modes to perform load control according to the preset load type of the target load; wherein, the preset load types include continuously adjustable loads, aggregated loads and transferable loads; the preset control modes include system-to-terminal control mode, system-to-system control mode and system-to-manual control mode.
[0051] The generation module 230 is used to acquire the execution result data of load regulation and generate a control effect evaluation report based on the execution result data.
[0052] In one possible implementation, the processing module 220 is further configured to determine the preset control mode as the system-to-terminal control mode when the target load is a continuously adjustable load. The system-to-terminal control mode includes: the new power load management system generating control commands for the target load; sending the control commands to the intelligent control terminal bound to the target load; the intelligent control terminal parsing the control commands and performing adjustment operations on the target load.
[0053] In one possible implementation, the processing module 220 is further configured to, based on edge computing capabilities, decompose the control instructions into at least one device-level control strategy; the device-level control strategy includes host start / stop control, power limit adjustment, or operating parameter setting adjustment; based on a preset local communication interface, send the control instructions corresponding to the device-level control strategy to the control unit of the target load; and perform adjustment operations on the target load according to the control instructions corresponding to the device-level control strategy.
[0054] In one possible implementation, the processing module 220 is also used for a local communication interface including at least one of an RS-485 bus interface, a controller area network bus interface, an Ethernet interface, and an infrared communication interface.
[0055] In one possible implementation, the processing module 220 is further configured to determine the preset control mode as a system-to-system control mode when the target load is an aggregated load. The system-to-system control mode includes: the new power load management system establishing a communication connection with the control platform to which the aggregated load resource belongs through a preset safety isolation device and a standard data interface; issuing coordinated control instructions to the control platform; and, based on the coordinated control instructions, the control platform performing load control on the target load and feeding back the control execution status to the new power load management system.
[0056] In one possible implementation, the processing module 220 is further configured to determine the preset control mode as the system-to-manual control mode when the target load is a transferable load; wherein the system-to-manual control mode includes: the new power load management system generating a load control plan, the load control plan including control indicators and control time limits; transmitting the load control plan to the designated control personnel of the target load; and within the control time limit, the designated control personnel control the target load according to the control indicators.
[0057] In one possible implementation, the generation module 230 is further configured to: acquire real-time operating data and operation receipts from the intelligent control terminal when the preset control mode is system-to-terminal control mode; receive control result data from the control platform when the preset control mode is system-to-system control mode; and receive load curve data before and after control of the target load collected by the monitoring unit associated with the target load when the preset control mode is system-to-manual control mode.
[0058] This application discloses a flexible load control device based on a power load management system, comprising: a receiving module for receiving load control requests, including target control power or target control electricity; a processing module for selecting target loads from a preset flexible load resource pool based on the load control requests, and selecting a matching control mode from at least three preset control modes to execute load control according to the preset load type of the target load; wherein the preset load types include continuously adjustable loads, aggregated loads, and transferable loads; and the preset control modes include system-to-terminal control mode, system-to-system control mode, and system-to-manual control mode; and a generation module for acquiring load control execution result data and generating a control effect evaluation report based on the execution result data, which enables flexible load classification management and improves control accuracy and security.
[0059] Regarding the apparatus in the above embodiments, the specific manner in which each module performs its operation has been described in detail in the embodiments related to the method, and will not be elaborated further here.
[0060] This application also provides an electronic device. Figure 3This is a schematic diagram of the hardware structure of an embodiment of the electronic device of this application. The electronic device includes a memory 310 and at least one processor 320. The memory 310 is electrically connected to the at least one processor 320. The memory 310 stores instructions. The at least one processor 320 calls the instructions in the memory 310, causing the electronic device to execute the flexible load control method based on the power load management system according to any of the foregoing embodiments of this application.
[0061] Specifically, the processor 320 may include a central processing unit (CPU), an application-specific integrated circuit (ASIC), or one or more integrated circuits that can be configured to implement the embodiments of this application.
[0062] Memory 310 may include a large-capacity memory 310 for data or instructions. For example, and not limitingly, memory 310 may include a hard disk drive (HDD), a floppy disk drive, flash memory, optical disk, magneto-optical disk, magnetic tape, or a Universal Serial Bus (USB) drive, or a combination of two or more of these. Where appropriate, memory 310 may include removable or non-removable (or fixed) media. Where appropriate, memory 310 may be internal or external to the integrated gateway disaster recovery device. In a particular embodiment, memory 310 is non-volatile solid-state memory. In a particular embodiment, memory 310 includes read-only memory (ROM). Where appropriate, the ROM may be a mask-programmed ROM, a programmable ROM (PROM), an erasable PROM (EPROM), an electrically erasable PROM (EEPROM), an electrically rewritable ROM (EAROM), or flash memory, or a combination of two or more of these.
[0063] In one example, the control device may also include a communication interface 330 and a bus 340. The processor 320, memory 310, and communication interface 330 are connected via the bus 340 and communicate with each other.
[0064] The communication interface 330 is mainly used to realize communication between various modules, devices, units and / or equipment in the embodiments of this application.
[0065] Bus 340 includes hardware, software, or both, that couples components of an online data traffic metering device together. For example, and not limitingly, the bus may include an Accelerated Graphics Port (AGP) or other graphics bus, an Enhanced Industry Standard Architecture (EISA) bus, a Front Side Bus (FSB), HyperTransport (HT) interconnect, an Industry Standard Architecture (ISA) bus, an Infinite Bandwidth Interconnect, a Low Pin Count (LPC) bus, a Memory 310 bus, a Microchannel Architecture (MCA) bus, a Peripheral Component Interconnect (PCI) bus, a PCI-Express (PCI-X) bus, a Serial Advanced Technology Attachment (SATA) bus, a Video Electronics Standards Association Local (VLB) bus, or other suitable buses, or combinations of two or more of these. Where appropriate, bus 340 may include one or more buses. Although specific buses are described and illustrated in embodiments of this application, any suitable bus or interconnect is contemplated herein.
[0066] Furthermore, in conjunction with the flexible load control method based on the power load management system in the above embodiments, this application embodiment can provide a computer-readable storage medium for implementation. This computer-readable storage medium stores instructions that, when executed by a processor, implement any of the flexible load control methods based on the power load management system in the above embodiments.
[0067] This application is not limited to the specific configurations and processes described above and shown in the figures. For the sake of brevity, detailed descriptions of known methods are omitted here. In the above embodiments, several specific steps are described and shown as examples. However, the method process of this application is not limited to the specific steps described and shown. Those skilled in the art can make various changes, modifications, and additions, or change the order of steps, after understanding the spirit of this application.
[0068] The functional blocks shown in the above block diagram can be implemented as hardware, software, firmware, or a combination thereof. When implemented in hardware, they can be, for example, electronic circuits, application-specific integrated circuits (ASICs), appropriate firmware, plug-ins, function cards, etc. When implemented in software, the elements of this application are programs or code segments used to perform the required tasks. Programs or code segments can be stored on a machine-readable medium or transmitted over a transmission medium or communication link via data signals carried on a carrier wave. "Machine-readable medium" can include any medium capable of storing or transmitting information. Examples of machine-readable media include electronic circuits, semiconductor memory devices, ROM, flash memory, erasable ROM (EROM), floppy disks, CD-ROMs, optical disks, hard disks, fiber optic media, radio frequency (RF) links, etc. Code segments can be downloaded via computer networks such as the Internet, intranets, etc.
[0069] It should also be noted that the exemplary embodiments mentioned in this application describe methods or systems based on a series of steps or apparatus. However, this application is not limited to the order of the above steps; that is, the steps can be performed in the order mentioned in the embodiments, or in a different order, or several steps can be performed simultaneously.
[0070] Alternatively, this application also provides a computer program product capable of implementing some or all of the steps of the methods in the above embodiments. The computer program product includes a computer program / instruction that, when executed by a processor, implements some or all of the steps of the methods in the above embodiments.
[0071] The above are merely specific embodiments of this application. Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems, modules, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here. It should be understood that the protection scope of this application is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this application, and these modifications or substitutions should all be covered within the protection scope of this application.
Claims
1. A flexible load control method based on a power load management system, characterized in that, include: Receive load regulation requests, wherein the load regulation requests include target regulation power or target regulation electricity; Based on the load regulation requirements, target loads are selected from a preset flexible load resource pool, and load regulation is performed by selecting a matching regulation mode from at least three preset regulation modes according to the preset load type of the target load; wherein, the preset load type includes continuously adjustable load, aggregated load and transferable load; the preset regulation mode includes system-to-terminal regulation mode, system-to-system regulation mode and system-to-manual regulation mode. Obtain the execution result data of the load regulation, and generate a control effect evaluation report based on the execution result data.
2. The method according to claim 1, characterized in that, Also includes: When the target load is a continuously adjustable load, the preset control mode is determined to be the system-to-terminal control mode, which includes: The novel power load management system generates control commands for the target load; The control command is sent to the intelligent control terminal bound to the target load; The intelligent control terminal parses the control commands and performs adjustment operations on the target load.
3. The method according to claim 2, characterized in that, The intelligent control terminal parses the control command and performs adjustment operations on the target load, including: The intelligent control terminal, based on edge computing capabilities, decomposes the control commands into at least one device-level control strategy; the device-level control strategy includes host start / stop control, power limit adjustment, or operating parameter setting adjustment; Based on a preset local communication interface, the control commands corresponding to the device-level control strategy are sent to the control unit of the target load; The target load is adjusted according to the control command corresponding to the device-level control strategy.
4. The method according to claim 3, characterized in that, The local communication interface includes at least one of an RS-485 bus interface, a controller area network bus interface, an Ethernet interface, and an infrared communication interface.
5. The method according to claim 2, characterized in that, Also includes: When the target load is an aggregated load, the preset control mode is determined to be the system-to-system control mode, wherein the system-to-system control mode includes: The new power load management system establishes a communication connection with the control platform to which the aggregated load resources belong through a preset security isolation device and a standard data interface; The coordinated control command is sent to the control platform; Based on the coordinated control instructions, the control platform performs load control on the target load and feeds back the control execution status to the new power load management system.
6. The method according to claim 1, characterized in that, Also includes: When the target load is a transferable load, the preset control mode is determined to be the system's manual control mode; wherein, the system's manual control mode includes: The new power load management system generates load control plans, which include control indicators and control time limits. The load control plan is transmitted to the designated control personnel of the target load; Within the specified control period, the designated control personnel control the target load according to the control indicators.
7. The method according to claim 1, characterized in that, The step of acquiring the execution result data of the load regulation and generating a control effect evaluation report based on the execution result data includes: When the preset control mode is the system control mode for the terminal, real-time operating data and operation receipts are obtained from the intelligent control terminal. When the preset control mode is the system-to-system control mode, control result data is received from the control platform; When the preset control mode is the system's manual control mode, the system receives load curve data before and after the control of the target load collected by the monitoring unit associated with the target load.
8. A flexible load control device based on a power load management system, characterized in that, include: A receiving module is used to receive load regulation requests, which include target regulation power or target regulation electricity. The processing module is used to select target loads from a preset flexible load resource pool based on the load control requirements, and select a matching control mode from at least three preset control modes to perform load control according to the preset load type of the target load; wherein, the preset load type includes continuously adjustable load, aggregated load and transferable load; the preset control mode includes system-to-terminal control mode, system-to-system control mode and system-to-manual control mode; The generation module is used to acquire the execution result data of the load regulation and generate a control effect evaluation report based on the execution result data.
9. An electronic device, characterized in that, include: processor; as well as A memory having executable code stored thereon, which, when executed by the processor, causes the processor to perform the method as described in any one of claims 1-7.
10. A computer-readable storage medium, characterized in that, It stores executable code that, when executed by a processor of an electronic device, causes the processor to perform the method as described in any one of claims 1-7.