Power grid intelligent dispatching system, method, equipment and medium based on double carbon target
By calculating reference values for full combustion and carbon emissions through the power grid intelligent dispatch system, the problems of combustion rate and carbon emission control during power generation in the power grid have been solved, and intelligent dispatch and energy optimization have been realized.
Patent Information
- Application Number
- CN202310742634.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-21
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2043-06-21
AI Technical Summary
The existing power grid cannot effectively control combustion rate and carbon dioxide emissions during power generation, which affects dispatch efficiency.
A smart grid dispatching system based on dual carbon targets is adopted. Through energy information acquisition module, carbon emission acquisition module, energy data calculation module, data analysis module and energy dispatching module, the system calculates the reference value for complete combustion and the reference value for carbon emissions, and performs intelligent dispatching.
It enables control over the carbon emissions of the power grid, prevents incomplete combustion or excessive combustion speed, reduces waste of combustibles, shortens energy saturation time, and increases the charging speed of electricity.
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Figure CN116760024B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to an intelligent power grid dispatching system, method, device and medium based on the double carbon target, belonging to the technical field of power grid dispatching. BACKGROUND
[0002] Double carbon, the abbreviation of carbon peak and carbon neutral, advocates a green, environmentally friendly and low-carbon lifestyle. Accelerating the pace of reducing carbon emissions is conducive to guiding green technological innovation and improving the global competitiveness of industry and economy. China continues to promote the adjustment of industrial structure and energy structure, vigorously develops renewable energy, and accelerates the planning and construction of large-scale wind and photovoltaic base projects in deserts, gobi and desert areas, and strives to balance economic development and green transformation.
[0003] Power grid: the whole formed by various voltage substations and transmission and distribution lines in the power system, which includes three units of power transformation, power transmission and power distribution. The task of the power grid is to transport and distribute electric energy and change voltage.
[0004] In the prior art, the power grid needs to be dispatched when working, and during the power generation process, the carbon dioxide generated by power generation cannot be reduced according to the obtained power generation parameters to reduce carbon emissions. When burning to generate power, the total amount of power generation cannot be controlled and adjusted effectively by controlling the burning speed, affecting the effect of power grid dispatching. SUMMARY
[0005] In order to solve the problems existing in the prior art, the present application provides an intelligent power grid dispatching system, method, device and medium based on the double carbon target.
[0006] The technical scheme of the present application is as follows:
[0007] On the one hand, the present application provides an intelligent power grid dispatching system based on the double carbon target, comprising:
[0008] A server and an energy information acquisition module, a carbon emission acquisition module, an energy data calculation module, a data analysis module and an energy dispatching module connected with the server; the server is used for receiving and forwarding data in each module;
[0009] The energy information acquisition module is used for acquiring energy information in the power grid, and the energy information includes thermal power generation information and thermal power generation combustion information;
[0010] The energy data calculation module is used for extracting data parameters in the energy information, and calculating the sufficient combustion reference value according to the numerical information of the extracted data parameters;
[0011] The carbon emission obtaining module is configured to obtain the exhaust information of the power grid, and transmit the obtained exhaust information to the energy data calculation module, and calculate the carbon emission reference value through the energy data calculation module;
[0012] The energy data calculation module further calculates the emission standard value according to the sufficient combustion reference value and the carbon emission reference value, and the server receives the emission standard value as the control standard of the carbon emission of the power grid;
[0013] The data analysis module is configured to obtain the sufficient combustion reference value and the carbon emission reference value for analysis, and obtain the analysis result of the data parameters of the sufficient combustion and the carbon emission in a given time period;
[0014] The server transmits the analysis result to the energy dispatching module, and the energy dispatching module dispatches the power grid according to the analysis result.
[0015] As a preferred embodiment, the thermal power generation information includes energy output information and energy charging information, wherein the energy charging information includes power charging speed value, power charging time change value and power energy saturation value; the energy output information includes energy output value, output interval time and obtained energy number;
[0016] The thermal power generation combustion information includes input combustion speed value, combustion weight value, combustion temperature value, combustion smoke concentration value and dust concentration value.
[0017] As a preferred embodiment, the step of calculating the sufficient combustion reference value according to the numerical information of the extracted data parameters by the energy data calculation module is specifically:
[0018] The combustion speed value, the combustion weight value, the combustion temperature value, the combustion smoke concentration value and the dust concentration value are extracted;
[0019] The sufficient combustion reference value is calculated by the following formula:
[0020]
[0021] Wherein, CFRSCKz is the sufficient combustion reference value, RSWSDz is the input combustion speed value, RSWZLz is the combustion weight value, RSWWDz is the combustion temperature value, YWNDz is the combustion smoke concentration value, FCNDz is the dust concentration value, and K is the first balance coefficient value and K>0.
[0022] As a preferred embodiment, the exhaust information of the power grid includes exhaust empty area value, exhaust speed value, exhaust density value and exhaust time value;
[0023] The energy data calculation module specifically calculates the carbon emission reference value by the following formula:
[0024]
[0025] Wherein, TPFLCKz is the carbon emission reference value, FQPCMJz is the exhaust emission area value, PCSDz is the emission speed value, PCMDz is the emission density value, PCSJz is the emission time value, K1 is the second balance coefficient and K1>0.
[0026] As a preferred embodiment, the specific method for calculating the emission standard value by the energy data calculation module according to the sufficient combustion reference value and the carbon emission reference value is:
[0027] Obtaining the T time period to reach the power energy saturation value, obtaining the power charging speed value and the power charging time change value in the T time period, and obtaining the charging speed sequence according to the change of the power charging speed value;
[0028] Based on the power charging time change value, the duration of each charging speed in the charging speed sequence is the corresponding charging time, and the corresponding charging time sequence is obtained;
[0029] A plane rectangular coordinate system with charging time as the x-axis and charging speed as the y-axis is established, and a plurality of sample points are plotted in the plane rectangular coordinate system based on the charging speed sequence and the charging time sequence. By comparing the vertical coordinates of the sample points, the highest speed value of the vertical coordinates is obtained as the standard power charging speed value; and the horizontal coordinate of the sample point corresponding to the current highest speed value is taken as the standard power charging time value;
[0030] The sufficient combustion value and the carbon emission reference value are calculated by the data parameters of the energy information obtained when the standard power charging time value is reached, and the sufficient combustion reference value and the carbon emission reference value calculated at the current time are defined as the standard sufficient combustion reference value and the standard carbon emission reference value, respectively;
[0031] The emission standard value is calculated by the following formula:
[0032]
[0033] Wherein, PTBZz is the emission standard value, BZCFRSCKz is the standard sufficient combustion reference value, and BZTPFLCKz is the standard carbon emission reference value.
[0034] As a preferred embodiment, the method for the data analysis module to obtain the analysis result of the data parameters of the combustion sufficiency and the carbon emission in a given time period is specifically:
[0035] Obtaining a plurality of sufficient combustion reference values and a plurality of carbon emission reference values calculated in a T1 time period;
[0036] According to the obtained time points, the plurality of sufficient combustion reference values and the plurality of carbon emission reference values are sequentially arranged in time order;
[0037] respectively, and the difference between the nth1 sufficient combustion reference value and the corresponding carbon emission reference value is obtained; the obtained difference values are arranged in ascending order, and the minimum difference value is obtained; the time point of the sufficient combustion reference value and the carbon emission reference value corresponding to the minimum difference value is obtained, and the sufficient combustion reference value and the carbon emission reference value at the time point are determined as the optimal emission values; and the sufficient combustion reference value and the carbon emission reference value at the time point are taken as the analysis result.
[0038] As a preferred embodiment, the energy data calculation module is further used for:
[0039] The energy output value, output interval time and energy number in the energy output information are used to obtain the total energy output value in the T time period;
[0040] The difference between the power energy saturation value and the total energy output value in the T time period is obtained to obtain the power energy surplus value in the T time period, and the time value required to reach the power energy saturation value in the power grid is obtained according to the power energy surplus value in the T time period and sent to the server, the server sends the time value to the energy dispatching module, and the energy dispatching module controls the power charging speed of thermal power generation according to the time data.
[0041] On the other hand, the present application also provides an intelligent power grid dispatching method based on the double carbon target, comprising the following steps:
[0042] Obtain energy information in the power grid, wherein the energy information comprises thermal power generation information and thermal power generation combustion information;
[0043] Extract data parameters in the energy information, and obtain a sufficient combustion reference value according to the value information of the extracted data parameters;
[0044] Obtain waste gas information of the power grid, and calculate a carbon emission reference value according to the obtained waste gas information;
[0045] Obtain a discharge standard value according to the sufficient combustion reference value and the carbon emission reference value, and take the discharge standard value as the control standard of the carbon emission of the power grid;
[0046] Obtain the sufficient combustion reference value and the carbon emission reference value for analysis, and obtain the analysis result of the data parameters of sufficient combustion and carbon emission in a given time period;
[0047] Dispatch the power grid according to the analysis result.
[0048] In still another aspect, the present application also provides an electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements the power grid intelligent scheduling method based on the double carbon target when executing the program.
[0049] In still another aspect, the present application also provides a computer readable storage medium having a computer program stored thereon, wherein the program is executable on a processor to implement the power grid intelligent scheduling method based on the double carbon target when executed by the processor.
[0050] The present application has the following beneficial effects:
[0051] 1. The power grid intelligent scheduling system based on the double carbon target calculates the full combustion reference value and the carbon emission reference value of the energy information in the thermal power generation process of the power grid, then calculates the emission standard value to control the carbon emission of the power grid, and analyzes the data parameters of full combustion and carbon emission in the thermal power generation process to perform intelligent scheduling.
[0052] 2. The power grid intelligent scheduling system based on the double carbon target obtains the power charging speed value in a certain time period in the thermal power generation process, takes the maximum speed value as the standard power charging time, calculates the standard full combustion reference value based on the standard power charging time, and performs power grid scheduling based on the standard full combustion reference value, which can prevent insufficient combustion caused by excessive input speed or excessive weight of the burning material, reduce the waste of the burning material, adjust the input speed value and weight value, speed up the power charging speed value, and reduce the energy saturation time. BRIEF DESCRIPTION OF DRAWINGS
[0053] Figure 1 The figure is a system structure schematic diagram of the first embodiment of the present application.
[0054] Figure 2 The figure is a method flow schematic diagram of the second embodiment of the present application. DETAILED DESCRIPTION
[0055] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0056] It should be understood that the step numbers used herein are only for the convenience of description, and are not limited to the execution sequence of the steps.
[0057] It is to be understood that the terminology used in the description of the application herein is for the purpose of describing particular embodiments only and is not intended to be limiting thereof. As used in the description of the application and the appended claims, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0058] The terms "including" and "comprising" as used herein are meant to be open-ended terms that specify the presence of stated features, integers, steps, operations, elements, and / or components but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.
[0059] The term "and / or" means any combination of one or more of the associated listed items and all possible combinations thereof.
[0060] Embodiment One:
[0061] In view of the deficiencies of the prior art mentioned in the background art, the embodiment provides an intelligent power grid scheduling system based on the double carbon target, which obtains energy charging and output information in the thermal power generation process of the power grid, schedules the energy charging speed when the power storage is full, obtains the thermal power generation combustion information and carbon dioxide emission information, evaluates and analyzes the obtained information, and intelligently schedules the thermal power generation process.
[0062] With reference to Figure 1 The intelligent power grid scheduling system based on the double carbon target provided in the embodiment specifically comprises:
[0063] A server and an energy information acquisition module, a carbon emission acquisition module, an energy data calculation module, a data analysis module, and an energy scheduling module connected to the server; the server is used to receive and forward data in each module.
[0064] The energy information acquisition module is used to acquire energy information in the power grid, and the energy information includes thermal power generation information and thermal power generation combustion information.
[0065] Specifically, in the embodiment, the thermal power generation information includes energy output information and energy charging information, wherein the energy charging information includes power charging speed value, power charging time change value, and power energy saturation value; the energy output information includes energy output value, output interval time, and acquired energy number.
[0066] The thermal power generation combustion information includes input combustion speed value, combustion weight value, combustion temperature value, combustion smoke concentration value, and dust concentration value.
[0067] The energy data calculation module is configured to extract data parameters in the energy information, and calculate a sufficient combustion reference value according to numerical information of the extracted data parameters.
[0068] Specifically, in the embodiment, the energy data calculation module calculates the sufficient combustion reference value according to numerical information of the extracted data parameters, and the step specifically includes:
[0069] extracting a combustion substance speed value, a combustion substance weight value, a combustion temperature value, a combustion smoke concentration value, and a dust concentration value; setting the combustion substance speed value as RSWSDz, the combustion substance weight value as RSWZLz, the combustion temperature value as RSWWDz, the combustion smoke concentration value as YWNDz, the dust concentration value as FCNDz, and the sufficient combustion reference value as CFRSCKz; and calculating the sufficient combustion reference value.
[0070] For details, refer to the following formula:
[0071]
[0072] wherein K is a first balance coefficient value and K>0.
[0073] The carbon emission acquisition module is configured to acquire exhaust gas information of the power grid, transmit the acquired exhaust gas information to the energy data calculation module, and calculate a carbon emission reference value by the energy data calculation module.
[0074] Specifically, in the embodiment, the exhaust gas information of the power grid includes an exhaust gas emptying area value, an exhaust speed value, an exhaust density value, and an exhaust time value.
[0075] Specifically, in the embodiment, the energy calculation module sets the exhaust gas emptying area value as FQPCMJz, the exhaust speed value as PCSDz, the exhaust density value as PCMDz, the exhaust time value as PCSJz, and the carbon emission reference value as TPFLCKz, and calculates the carbon emission reference value. For details, refer to the following formula:
[0076]
[0077] wherein K1 is a second balance coefficient and K1>0.
[0078] The data analysis module is configured to acquire the sufficient combustion reference value and the carbon emission reference value for analysis, and acquire an analysis result of data parameters of combustion sufficiency and carbon emission in a given time period.
[0079] The energy data calculation module further calculates an emission standard value according to the sufficient combustion reference value and the carbon emission reference value, and the server receives the emission standard value as a control standard of carbon emission of the power grid.
[0080] Specifically, in the present embodiment, the method for obtaining the displacement standard value is specifically as follows:
[0081] The T time period reaching the power energy saturation value is obtained, the power charging speed value and the power charging time change value in the T time period are obtained, the first charging speed value is obtained according to the change of the power charging speed value, which is DLCRSDz1, the second charging speed value is DLCRSDz1, the third charging speed value is DLCRSDz3, and the nth charging speed value is DLCRSDzn, and the first charging speed value to the nth charging speed value are taken as the charging speed sequence.
[0082] The time duration of the first charging speed value is the first power charging time value, the time duration of the second charging speed value is the second power charging time value, the time duration of the third charging speed value is the third power charging time value, and the time duration of the nth charging speed value is the nth power charging time value; the first power charging time value is set as DLNYz1, the second power charging time value is DLNYz2, the third power charging time value is DLNYz3, and the nth power charging time value is DLNYzn, and the first charging time value to the nth charging time value are taken as the charging time sequence.
[0083] A plane rectangular coordinate system with the charging time as the x-axis and the charging speed as the y-axis is established, a plurality of sample points are obtained in the plane rectangular coordinate system according to the charging speed sequence, a straight line perpendicular to the y-axis is drawn from the sample points to form an intersection with the y-axis, which facilitates observation of the change curve of the charging speed with the change of the charging time and also facilitates selection of values; then the height of the intersection is judged to determine the size of the speed value, and the intersection point with the highest speed value is selected as the standard power charging speed value; a straight line perpendicular to the x-axis is drawn at the current highest speed point, and the distance between the perpendicular point of the x intersection and the origin o of the plane rectangular coordinate system is defined as the standard power charging time value. Based on the standard power charging speed value, the power charging speed obtained in real time can be adjusted to be close to or equal to the standard power charging speed value.
[0084] The sufficient combustion value and the carbon emission reference value are obtained by the data parameters of the energy information obtained when the standard power charging time value is reached, and the sufficient combustion reference value and the carbon emission reference value calculated at the current time are defined as the standard sufficient combustion reference value and the standard carbon emission reference value, respectively. Based on the standard sufficient combustion reference value, the changes of the combustion temperature value, the combustion smoke concentration value and the dust concentration value can be reduced, and the input combustion speed value and the combustion weight value can be reduced. It can prevent insufficient combustion caused by excessive input speed or excessive combustion weight, reduce waste of combustion material, adjust the input speed value and weight value, speed up the power charging speed value, and reduce the energy saturation time.
[0085] The displacement standard value is calculated by the following formula:
[0086]
[0087] Wherein, PTBZz is the displacement standard value, BZCFRSCKz is the standard full combustion reference value, and BZTPFLCKz is the standard carbon emission reference value.
[0088] The server delivers the analysis result to an energy scheduling module, and the energy scheduling module schedules the power grid according to the analysis result.
[0089] As a preferred embodiment of the present embodiment, the method for obtaining the analysis result of the data parameters of full combustion and carbon emission in a given time period is specifically as follows:
[0090] Obtain the plurality of full combustion reference values and the plurality of carbon emission reference values calculated in the T1 time period;
[0091] According to the obtained time points, sequentially arrange the plurality of full combustion reference values and the plurality of carbon emission reference values in the order of time;
[0092] Respectively, calculate the difference between the first full combustion reference value and the first carbon emission reference value, calculate the difference between the second full combustion reference value and the second carbon emission reference value, calculate the difference between the third full combustion reference value and the third carbon emission reference value, and calculate the difference between the nth1 full combustion reference value and the nth1 carbon emission reference value;
[0093] Arrange the values obtained by the difference in the order from small to large, obtain the smallest difference value, obtain the time points of the full combustion reference value and the carbon emission reference value that obtain the smallest difference value, determine that the full combustion reference value and the carbon emission reference value at the time point are the best emission values, the combustion at the time point is the most sufficient, and the carbon emission is the smallest, and take the full combustion reference value and the carbon emission reference value at the time point as the analysis result.
[0094] The server obtains the full combustion reference value and the carbon emission reference value in the analysis result and sends them to an energy scheduling module, and the energy scheduling module schedules the data parameters in the energy information in the power grid based on the full combustion reference value and the carbon emission reference value.
[0095] As a preferred embodiment of the present embodiment, the energy data calculation module is further used for:
[0096] Obtain the total energy output value in the T time period by calculating the energy output value, the output interval time, and the number of energies in the energy output information.
[0097] Set the energy output value: NYSCz; output interval time: SCJGSJz; the number of energy acquisition: HQNYSMz; the total value of energy output: NYSCZz;
[0098] Set the first energy output value: NYSCz1; the second energy output value: NYSCz2; the third energy output value: NYSCz3……The HQNYSMz energy output value: NYSCzhqnysmz;
[0099] The first energy value is obtained in the energy acquisition time interval, which is the first output interval time; the second energy value is obtained in the energy acquisition time interval, which is the second output interval time; the third energy value is obtained in the energy acquisition time interval, which is the third output interval time……The HQNYSMz energy value is obtained in the energy acquisition time interval, which is the HQNYSMz output interval time;
[0100] Set the first output interval time: SCJGSJz1; the second output interval time: SCJGSJz2; the third output interval time: SCJGSJz3……The HQNYSMz output interval time: SCJGSJzhqnysmz;
[0101] The total value of energy output in T time period is calculated, which is calculated as follows:
[0102]
[0103] The difference between the power energy saturation value and the total energy output value in the T time period is calculated to obtain the power energy surplus value in the T time period. According to the power energy surplus value in the T time period, the time value required to reach the power energy saturation value in the power grid is obtained and sent to the server. The server sends the time value to the energy dispatching module. The energy dispatching module controls the power charging speed of thermal power generation according to the time data, so that the ratio of power energy saturation value to time T is less than the ratio of total energy output value to time T.
[0104] Embodiment two:
[0105] The embodiment provides an intelligent power grid dispatching method based on the double carbon target, which comprises the following steps:
[0106] S100, acquire energy information in the power grid, the energy information includes thermal power generation information and thermal power generation combustion information; this step is used to realize the function of the energy information acquisition module in embodiment one, and will not be repeated here;
[0107] S200, extract data parameters in the energy information, and obtain a sufficient combustion reference value according to the numerical information of the extracted data parameters; this step is used to realize part of the functions of the energy data calculation module in embodiment one, and will not be repeated here;
[0108] S300, obtain waste gas information of the power grid, and calculate a carbon emission reference value according to the obtained waste gas information; this step is used to realize the functions of the carbon emission obtaining module in embodiment one, and will not be repeated here;
[0109] S400, obtain an emission standard value according to the sufficient combustion reference value and the carbon emission reference value, and take the emission standard value as a control standard of the carbon emission of the power grid; this step is used to realize another part of the functions of the energy data calculation module in embodiment one, and will not be repeated here;
[0110] S500, obtain the sufficient combustion reference value and the carbon emission reference value for analysis, and obtain an analysis result of data parameters of sufficient combustion and carbon emission in a given time period; this step is used to realize the functions of the data analysis module in embodiment one, and will not be repeated here;
[0111] S600, dispatch the power grid according to the analysis result; this step is used to realize the functions of the energy dispatching module and the server in embodiment one, and will not be repeated here.
[0112] Embodiment three:
[0113] This embodiment provides an electronic device, which includes a memory, a processor, and a computer program stored in the memory and executable on the processor, and the processor executes the program to realize the power grid intelligent dispatching method based on the double carbon target as described in any embodiment of the present application.
[0114] Embodiment four:
[0115] This embodiment provides a computer readable storage medium, which stores a computer program, and the program is executed by a processor to realize the power grid intelligent dispatching method based on the double carbon target as described in any embodiment of the present application.
[0116] In the embodiments of the present application, "at least one" means one or more, and "multiple" means two or more. The "and / or" describes the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can represent the cases of A alone, A and B together, and B alone. Wherein A and B can be singular or plural. The character " / " generally represents an "or" relationship between the front and rear associated objects. "At least one of the following" and the like means any combination of these items, including any combination of single or multiple items. For example, at least one of a, b and c can represent: a, b, c, a and b, a and c, b and c, or a and b and c, where a, b, and c can be single or multiple.
[0117] Those of ordinary skill in the art can realize that the units and algorithm steps described in the embodiments disclosed herein can be realized in electronic hardware, computer software, and a combination of electronic hardware and computer software. Whether the functions are realized in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of the present application.
[0118] Those skilled in the art can clearly understand that, for the convenience and brevity of the description, the specific working processes of the above-described system, device and unit can refer to the corresponding processes in the foregoing method embodiments, which will not be described here.
[0119] In several embodiments provided in the present application, any function realized in the form of a software function unit and sold or used as an independent product can be stored in a computer-readable storage medium. Based on such understanding, the technical solutions of the present application essentially or the parts that make contributions to the prior art or parts of the technical solutions can be embodied in the form of a software product. The computer software product is stored in a storage medium, and includes a plurality of instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in the embodiments of the present application. The foregoing storage medium includes: a U disk, a mobile hard disk, a read-only memory (Read-Only Memory; hereinafter referred to as: ROM), a random access memory (Random Access Memory; hereinafter referred to as: RAM), a magnetic disk or an optical disk, and various media that can store program codes.
[0120] The above is only an embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation based on the content of the present application specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. An intelligent power grid dispatching system based on a double carbon target, characterized in that, The system comprises: a server and an energy information acquisition module, a carbon emission acquisition module, an energy data calculation module, a data analysis module and an energy dispatching module connected with the server; the server is used for receiving and forwarding data in each module; the energy information acquisition module is used for acquiring energy information in the power grid, and the energy information comprises thermal power generation information and thermal power generation combustion information; the energy data calculation module is used for extracting data parameters in the energy information, and calculating a sufficient combustion reference value according to the numerical information of the extracted data parameters; the carbon emission acquisition module is used for acquiring waste gas information of the power grid, and transmitting the acquired waste gas information to the energy data calculation module to calculate a carbon emission reference value by the energy data calculation module; the energy data calculation module further calculates an emission standard value according to the sufficient combustion reference value and the carbon emission reference value, and the server receives the emission standard value as a control standard of carbon emission of the power grid; the data analysis module is used for acquiring the sufficient combustion reference value and the carbon emission reference value for analysis, and acquiring an analysis result of data parameters of sufficient combustion and carbon emission in a given time period; the server transmits the analysis result to the energy dispatching module, and the energy dispatching module dispatches the power grid according to the analysis result.
2. The power grid intelligent dispatching system based on the double carbon target according to claim 1, wherein: the thermal power generation information comprises energy output information and energy charging information, wherein the energy charging information comprises a power charging speed value, a power charging time change value and a power energy saturation value; and the energy output information comprises an energy output value, an output interval time and an acquired energy number; the thermal power generation combustion information comprises a combustion material speed value, a combustion material weight value, a combustion temperature value, a combustion smoke concentration value and a dust concentration value.
3. The power grid intelligent dispatching system based on the double carbon target according to claim 2, characterized in that, The step of calculating the sufficient combustion reference value according to the numerical information of the extracted data parameters by the energy data calculation module comprises: extracting the combustion material speed value, the combustion material weight value, the combustion temperature value, the combustion smoke concentration value and the dust concentration value; calculating the sufficient combustion reference value by the following formula: CFRSCKz = RSWSDz + RSWZLz + RSWWDz + YWNDz + FCNDz + K, wherein, CFRSCKz is the sufficient combustion reference value, RSWSDz is the combustion material speed value, RSWZLz is the combustion material weight value, RSWWDz is the combustion temperature value, YWNDz is the combustion smoke concentration value, FCNDz is the dust concentration value, and K is a first balance coefficient value and K>0.
4. The power grid intelligent dispatching system based on the double carbon target according to claim 3, wherein: the waste gas information of the power grid comprises a waste gas emptying area value, an exhaust speed value, an exhaust density value and an exhaust time value; the energy data calculation module calculates the carbon emission reference value by the following formula:
5. The power grid intelligent dispatching system based on the double carbon target according to claim 4, characterized in that, TPFLCKz = FQPCMJz + PCSDz + PCMDz + PCSJz + K1, wherein, TPFLCKz is the carbon emission reference value, FQPCMJz is the waste gas emptying area value, PCSDz is the exhaust speed value, PCMDz is the exhaust density value, PCSJz is the exhaust time value, and K1 is a second balance coefficient and K1>0. The specific method of calculating the emission standard value according to the sufficient combustion reference value and the carbon emission reference value by the energy data calculation module comprises: The T time period reaching the power energy saturation value is obtained, the power charging speed value and the power charging time change value in the T time period are obtained, and the charging speed sequence is obtained according to the change of the power charging speed value; The duration of each charging speed in the charging speed sequence is obtained as the corresponding charging time based on the power charging time change value, and a corresponding charging time sequence is obtained; A plane rectangular coordinate system with the charging time as the x-axis and the charging speed as the y-axis is established, a plurality of sample points are plotted in the plane rectangular coordinate system based on the charging speed sequence and the charging time sequence, the highest speed value of the longitudinal coordinates of the sample points is obtained as the standard power charging speed value by comparing the longitudinal coordinates of the sample points, and the horizontal coordinate of the sample point corresponding to the current highest speed value is taken as the standard power charging time value; The sufficient combustion value and the carbon emission reference value are calculated by the data parameters of the energy information obtained when the standard power charging time value is reached, and the sufficient combustion reference value and the carbon emission reference value calculated at the current time are defined as the standard sufficient combustion reference value and the standard carbon emission reference value, respectively; The emission standard value is calculated by the following formula: Wherein, PTBZz is the emission standard value, BZCFRSCKz is the standard sufficient combustion reference value, and BZTPFLCKz is the standard carbon emission reference value.
6. The power grid intelligent dispatching system based on the double carbon target according to claim 4, characterized in that, The method for obtaining the analysis result of the data parameters of the combustion sufficient and carbon emission in a given time period by the data analysis module is specifically: A plurality of sufficient combustion reference values and a plurality of carbon emission reference values are obtained in a T1 time period; The plurality of sufficient combustion reference values and the plurality of carbon emission reference values are sequentially arranged in order of time according to the obtained time points; The nth1 sufficient combustion reference value and the carbon emission reference value corresponding to the sequence are respectively subtracted, the values obtained by the subtraction are arranged in order from small to large, the smallest subtraction value is obtained, the time points of the sufficient combustion reference value and the carbon emission reference value that obtain the smallest subtraction value are obtained, and it is determined that the sufficient combustion reference value and the carbon emission reference value at the time point are the best emission values, and the sufficient combustion reference value and the carbon emission reference value at the time point are taken as the analysis result.
7. The power grid intelligent dispatching system based on the double carbon target according to claim 4, characterized in that, The energy data calculation module is also used to: The energy output value, the output interval time and the energy number in the energy output information are obtained, and the total energy output value in the T time period is obtained; The power energy surplus value in the T time period is obtained by subtracting the power energy saturation value and the total energy output value in the T time period, the time value required to reach the power energy saturation value in the power grid is obtained based on the power energy surplus value in the T time period and is sent to the server, the server sends the time value to the energy dispatching module, and the energy dispatching module controls the power charging speed of the thermal power generation according to the time value.
8. A power grid intelligent dispatching method based on a double carbon target, characterized in that, The method comprises the following steps: Obtain energy information in the power grid, the energy information comprising thermal power generation information and thermal power generation combustion information; Extract data parameters from the energy information, and calculate the sufficient combustion reference value based on the numerical information of the extracted data parameters; Obtain waste gas information of the power grid, and calculate the carbon emission reference value based on the obtained waste gas information; The emission standard value is calculated by the following formula: Wherein, PTBZz is the emission standard value, BZCFRSCKz is the standard sufficient combustion reference value, and BZTPFLCKz is the standard carbon emission reference value. The standard value of the emission is obtained according to the full combustion reference value and the carbon emission reference value, and the standard value of the emission is taken as the control standard of the carbon emission of the power grid; The full combustion reference value and the carbon emission reference value are obtained for analysis, and an analysis result of data parameters of full combustion and carbon emission in a given time period is obtained; The power grid is dispatched according to the analysis result.
9. An electronic device comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, characterized in that, The processor executes the program to realize the power grid intelligent dispatching method based on the double carbon target in claim 8.
10. A computer-readable storage medium having stored thereon a computer program, characterized in that, The program is executed by the processor to realize the power grid intelligent dispatching method based on the double carbon target in claim 8.
Citation Information
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