Carbon footprint distribution method and device for coke and semicoke products
By obtaining coking quenching information and determining coking quenching process and application materials, identifying symbiotic products and calculating their carbon footprint allocation coefficients, the problem of poor carbon footprint accounting accuracy of coking and semicoke products in the prior art is solved, and a more accurate and flexible carbon footprint calculation is achieved.
Patent Information
- Application Number
- CN202411977419.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-05-23
AI Technical Summary
The lack of standardized methods in the prior art to perform carbon footprint accounting for coke and semicoke products, resulting in poor accuracy of carbon footprint accounting results.
A method and device for carbon footprint distribution of coke and semicoke products is proposed. By obtaining coking quenching information, coking quenching process and application materials are determined, symbiotic products are identified, and process process data is processed through preset optional distribution methods to determine the carbon footprint distribution coefficient of the symbiotic products, thereby calculating the carbon footprint of the symbiotic products.
The precise distribution of carbon footprints of coke and semi-coke products is achieved, the accuracy and applicability of carbon footprint calculations are improved, and the specific needs of users are adapted to different allocation requirements.
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Figure CN120031233A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of environmental protection technology, for example, to a method and device for allocating carbon footprints of coke and semi-coke products.
[0002] technology
[0003] Coke and semi-coke products are both important products in the coal processing process. Among them, coke is a solid fuel that is hard, porous and has a high calorific value. Semi-coke products, also known as lignite, are a product between coal and coke. They contain both coal and coke components. Coke and lignite are one of the important raw materials in the steel production process. At the same time, the coking process is also a key link in carbon emissions. The carbon footprint of coke products has a great impact on the carbon footprint of downstream steel products. In addition to the main product coke, the coke production process also generates a variety of by-products such as coke powder, tar, crude benzene, coke oven gas, dry quenching waste heat and power, steam, etc. How to scientifically allocate the carbon footprint of products in a multi-product system is the key to affecting the accuracy of the carbon footprint accounting results of coke products.
[0004] In the relevant technology, there is no corresponding standard for allocating the carbon footprint of by-products in the carbon footprint accounting process of coke and semi-coke products, resulting in poor accuracy of the current carbon footprint accounting results of coke and lignite. Summary of the invention
[0005] The present application aims to provide a method and device for allocating carbon footprint of coke and semi-coke products.
[0006] According to one aspect of the present application, a method for allocating carbon footprints of coke and semi-coke products is provided, comprising:
[0007] Obtain the coking and quenching information of the user who needs allocation;
[0008] According to the coking and quenching information, determine the corresponding coking and quenching process and application materials;
[0009] Determine the corresponding co-products according to the coking and quenching process and applied materials;
[0010] Obtain process data corresponding to the co-product under a preset optional allocation method, and process the process data according to the allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and determine the carbon footprint of the co-product based on the carbon footprint allocation coefficient.
[0011] According to one aspect of the present application, a carbon footprint distribution device for coke and semi-coke products is provided, comprising:
[0012] An information acquisition module is used to obtain the coking and quenching information of the user with allocation requirements;
[0013] A process material determination module is used to determine the corresponding coking and quenching process and application materials according to the coking and quenching information;
[0014] A co-product determination module is used to determine the corresponding co-products according to the coking and quenching process and application materials;
[0015] The coefficient determination module is used to obtain the process data corresponding to the symbiotic product under the preset optional allocation method, and process the process data according to the allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, and determine the carbon footprint of the symbiotic product based on the carbon footprint allocation coefficient.
[0016] According to one aspect of the present application, an electronic device is provided, the electronic device comprising: a processor; and a memory storing a computer program, wherein when the computer program is executed by the processor, the processor executes the method as described above.
[0017] According to one aspect of the present application, a non-transitory computer-readable medium is provided, on which readable instructions are stored. When the instructions are executed by a processor, the processor executes the method as described above.
[0018] It should be understood that the foregoing general description and the following detailed description are exemplary only and are not restrictive of the present application.
[0019] Beneficial effects:
[0020] Through the above-mentioned embodiments provided by the present application, by obtaining the coking and quenching information of the user with allocation requirements, and determining the specific coking and quenching process and application materials accordingly, it is possible to accurately identify each link and material involved in the production process. After determining the coking and quenching process and application materials, the symbiotic products are further identified, and by obtaining the process data under the preset optional allocation method, these data are processed according to a specific allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, thereby calculating the carbon footprint of the symbiotic product. This flexibility enables the present application to adapt to the specific needs of users with different allocation requirements, and improves the practicality and applicability of carbon footprint calculations. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without exceeding the scope of protection required by the present application.
[0022] Figure 1 A flow chart of a method for allocating carbon footprints of coke and semi-coke products provided in an embodiment of the present application;
[0023] Figure 2 A table of alternative processes for extending alternative allocation methods provided in embodiments of the present application;
[0024] Figure 3 A block diagram of a device for allocating carbon footprints of coke and semi-coke products provided in an embodiment of the present application;
[0025] Figure 4 A schematic diagram of the structure of an electronic device provided in an embodiment of the present application. DETAILED DESCRIPTION
[0026] Example embodiments will now be described more fully with reference to the accompanying drawings. However, example embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this application will be comprehensive and complete and will fully convey the concepts of the example embodiments to those skilled in the art. The same reference numerals in the figures represent the same or similar parts, and thus their repeated description will be omitted.
[0027] In addition, described feature, structure or characteristic can be combined in one or more embodiments in any suitable manner. In the following description, many specific details are provided to provide a full understanding of the embodiments of the present application. However, those skilled in the art will appreciate that the technical scheme of the present application can be put into practice without one or more of the specific details, or other methods, components, devices, steps, etc. can be adopted. In other cases, known methods, devices, realizations or operations are not shown or described in detail to avoid blurring the various aspects of the application.
[0028] The block diagrams shown in the accompanying drawings are merely functional entities and do not necessarily correspond to physically independent entities. That is, these functional entities may be implemented in software form, or in one or more hardware modules or integrated circuits, or in different networks and / or processor devices and / or microcontroller devices.
[0029] The flowcharts shown in the accompanying drawings are only exemplary and do not necessarily include all the contents and operations / steps, nor must they be executed in the order described. For example, some operations / steps can be decomposed, and some operations / steps can be combined or partially combined, so the actual execution order may change according to actual conditions.
[0030] It should be understood that although the terms first, second, third, etc. may be used herein to describe various components, these components should not be limited by these terms. These terms are used to distinguish one component from another component. Therefore, the first component discussed below can be referred to as the second component without departing from the teachings of the concepts of the present application. As used herein, the term "and / or" includes any one of the associated listed items and all combinations of one or more.
[0031] For specific implementation methods, please refer to the following embodiments.
[0032] Figure 1 This is a flow chart of the carbon footprint allocation method for coke and semi-coke products provided in the embodiment of the present application. The method of this embodiment can be applied to a carbon footprint allocation server. Figure 1 As shown, the method includes: step S10, step S11, step S12 and step S13.
[0033] In step S10, the coking and quenching information of the user with allocation requirements is obtained.
[0034] In this application, the user who needs to allocate carbon footprints may be a user who needs to allocate carbon footprints, and the user may generally correspond to an enterprise. The coking and quenching information may be used to indicate the raw materials, auxiliary materials, material usage, and related information of various products used by the enterprise corresponding to the user who needs to allocate carbon footprints in the coking and quenching process.
[0035] In some implementations, users with allocation requirements can send coking and quenching information to the carbon footprint accounting server by logging into an app or a web page.
[0036] In step S11, the corresponding coking and quenching process and application materials are determined according to the coking and quenching information.
[0037] In the present application, the coking renewal information may include the coking quenching process, that is, the production process corresponding to various products in the coking quenching process, and may also include application materials, that is, the raw materials, auxiliary materials and other information in step S10. Therefore, the coking quenching process and application materials can be directly extracted from the coking quenching information.
[0038] In step S12, the corresponding co-products are determined according to the coking and quenching process and the applied materials.
[0039] In the present application, the co-products may be other products produced simultaneously in the same coking and quenching process in addition to the desired main product, such as coke, such as coke oven gas, tar, and crude benzene.
[0040] A co-product determination model may be pre-set, the coking and quenching process and application materials may be input into the co-product determination model, and the corresponding co-product may be output.
[0041] In some implementations, the coking quenching information may include a symbiotic product that needs to be carbon footprint allocated and sent by a user with allocation requirements. In this case, the symbiotic product may be used as a symbiotic product for subsequent use.
[0042] In step S13, the process data corresponding to the symbiotic product under the preset optional allocation method is obtained, and the process data is processed according to the allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, and the carbon footprint of the symbiotic product is determined according to the carbon footprint allocation coefficient.
[0043] In this application, multiple optional allocation methods can be pre-set, and these optional allocation methods allocate carbon footprints from different angles. Since different optional allocation methods correspond to different angles, it is necessary to obtain the process data corresponding to the co-products at different angles. These process data can include the amount of materials used, the amount of various products generated (including the final desired products and co-products), etc.
[0044] In some implementations, the optional allocation methods correspond to different calculation or processing methods. The corresponding calculation or processing methods can be used to process the process data to calculate the carbon footprint allocation coefficient corresponding to the symbiotic product, where the carbon footprint allocation coefficient can be used to represent the proportion of the symbiotic product in the total product in the process of calculating the carbon footprint of the entire life cycle, and then further calculate the carbon footprint of the symbiotic product based on the proportion.
[0045] In other implementations, the user who needs allocation can select the optional allocation method he needs for calculation.
[0046] This application can accurately identify each link and material involved in the production process by obtaining the coking and quenching information of users with allocation requirements and determining the specific coking and quenching processes and applied materials accordingly. After determining the coking and quenching processes and applied materials, the symbiotic products are further identified, and by obtaining the process data under the preset optional allocation method, these data are processed according to a specific allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, thereby calculating the carbon footprint of the symbiotic product. This flexibility enables this application to adapt to the specific needs of users with different allocation requirements, and improves the practicality and applicability of carbon footprint calculations.
[0047] According to some embodiments, the coking and quenching usage of the application material can be obtained; the relevant product data corresponding to the coking and quenching process can be determined according to the coking and quenching procedure and the coking and quenching usage; the coking and quenching data in the coking and quenching process can be extracted from the coking and quenching information; and the symbiotic products can be determined based on the relevant product data and the coking and quenching data.
[0048] In the present application, different application materials may be used in different coking and quenching processes, that is, the corresponding coking and quenching usage methods, and the products obtained under different usage methods may be different.
[0049] According to some implementations, the coking and quenching usage methods can be pre-set according to the actual usage of different application materials at present, and stored for direct access. Then, the relevant product data generated under the coking and quenching process can be found according to the coking and quenching usage methods. The coking and quenching information can include the actual coking and quenching data sent by the user with allocation requirements. The predicted relevant product data and the actual coking and quenching data can be processed using the preset data alignment method to directly obtain the corresponding symbiotic products.
[0050] This application can more accurately determine the relevant product data generated in the coking and quenching process by analyzing the coking and quenching process and the use of applied materials, which helps to identify and maximize the use of by-products or co-products in the coking process, thereby improving the overall resource utilization efficiency. By extracting and analyzing coking and quenching data, companies can better understand the material flow and energy conversion in their production process, and then optimize the production process.
[0051] According to some embodiments, the enterprise type and target product corresponding to the user with allocation demand can be determined based on the coking and quenching information; the cause of data error can be selected based on the enterprise type; based on the cause of data error, a preset association analysis model can be determined; the actual coking and quenching information can be determined based on relevant product data, coking and quenching data and the association analysis model; and the symbiotic product can be determined based on the target product and the actual coking information.
[0052] In the present application, the coking quenching information may include the enterprise type and the target product, wherein the target product is the product that the enterprise ultimately wants to obtain. The enterprise type may include steel smelting enterprises, chemical enterprises, energy enterprises, etc. Different enterprise types may have different definitions of symbiotic products. For example, for enterprise A, product a is a symbiotic product, but for enterprise B, product a may need to perform some operations, or even product a may be the target product.
[0053] In addition, the enterprise type may also involve the equipment involved in different processes, coking and quenching methods, etc., so that there is a data misalignment between the coking and quenching data actually detected by different enterprise types and the related product data predicted by logic, that is, different data error causes. An association analysis model corresponding to different data error causes can be pre-set. The model can process the predicted data and the detected data based on the data error causes brought by the enterprise type to achieve alignment, obtain the reagent data, and the actual coking and quenching information. Based on this, the target product can be proposed from the actual coking and quenching information to obtain the symbiotic product.
[0054] This application can more accurately identify symbiotic products by comprehensively considering coking quenching information, enterprise type, data error causes, and association analysis models. This comprehensive analysis method is more reliable than single data analysis or empirical judgment, helps reduce misjudgments and missed judgments, and improves the identification accuracy of symbiotic products. By introducing a targeted association analysis model, the analysis and processing capabilities of coking quenching data and related product data are improved.
[0055] According to some embodiments, optional allocation methods and process data can be obtained; it is determined whether the coking quenching information contains an allocation method selection signal; if an allocation method selection signal is contained, a target allocation method is selected from the optional allocation methods, and the process data is processed according to the target allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and the carbon footprint of the co-product is determined according to the carbon footprint allocation coefficient; if an allocation method selection signal is not contained, a target allocation method is selected from the optional allocation methods according to a preset allocation method selection condition, and the process data is processed according to the target allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and the carbon footprint of the co-product is determined according to the carbon footprint allocation coefficient.
[0056] In the present application, the allocation method selection condition can be set in advance. In some implementations, it can be a random selection from a variety of optional allocation methods, or it can be a non-repetitive method to select the optional allocation method in turn, that is, to eliminate the optional allocation method used last time and select another adjacent optional allocation method. It can also be selected according to the type of enterprise, that is, to obtain the optional allocation method with the most selections for the same type of enterprise within two years before the current moment. In other implementations, the allocation method selection condition can also be a corresponding calculation according to each optional allocation method, and finally all are displayed to the user.
[0057] According to the example embodiment, the optional allocation methods and process data are first obtained, and the allocation method selection signal is extracted from the coking and quenching information. If the signal can be successfully extracted, it means that the user has actively selected the allocation method. At this time, the allocation method selected by the user can be selected from the optional allocation methods as the target allocation method, and then the process data is processed according to the target allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and the carbon footprint of the co-product is determined based on the carbon footprint allocation coefficient.
[0058] If the signal is not extracted, the conditions can be selected according to the preset allocation method, and the target allocation method can be selected from the optional allocation methods. Then, the process data can be processed according to the target allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and then the carbon footprint of the co-product can be determined according to the carbon footprint allocation coefficient.
[0059] This application obtains the process data corresponding to the co-products under the preset optional allocation method, and intelligently selects the target allocation method according to whether the coking and quenching information contains an allocation method selection signal. This technology can more accurately calculate the carbon footprint allocation coefficient of the co-products. This application allows for flexible selection of allocation methods based on the specific circumstances of the coking and quenching information. If the information contains a clear allocation method selection signal, the allocation method corresponding to the signal is directly used; if not, the allocation method selection condition is selected according to the preset allocation method selection conditions, so that this application can adapt to different production scenarios and needs, enhancing its flexibility and applicability.
[0060] According to some embodiments, the optional allocation methods include a physical allocation method, and the physical allocation method can be obtained; based on the physical allocation method, the characteristics of the data to be processed are determined; the process data of the symbiotic product corresponding to the characteristics of the data to be processed are obtained; the process data is processed according to the physical allocation method to determine the heat of the symbiotic product; the heat is processed according to the physical allocation method to determine the carbon footprint allocation coefficient; and the carbon footprint of the symbiotic product is determined according to the carbon footprint allocation coefficient.
[0061] In this application, the physical allocation method is to allocate the carbon footprint of products according to the physical properties of each product (such as mass, volume, element content, etc.). The characteristics of the data to be processed may correspond to physical properties.
[0062] In some implementations, the lower calorific value Q of carbon-containing products / by-products (co-products), such as coke, coke powder, tar, crude benzene, coke oven gas, etc., is first determined according to a laboratory test method. i If there is no test value during laboratory testing, the default value used in the public data can be queried and used instead of the lower calorific value for calculation; for carbon-free co-products, such as ammonium sulfate, the truncation method is used, that is, there is no need to test or query its lower calorific value, ignore the product, and test and allocate other products.
[0063] The physical distribution of carbon-containing co-products is as follows:
[0064]
[0065]
[0066] Among them, T i is the heat of the co-product, M i is the output, K i is the physical distribution coefficient, that is, the carbon footprint distribution coefficient under the physical distribution method. Among them, the process data includes T i and M i .
[0067] Based on this, the carbon footprint allocation coefficient of each symbiotic product can be calculated, and then the carbon footprint of the symbiotic product can be calculated based on the carbon footprint allocation coefficient and the total heat consumption of the symbiotic product.
[0068] This application uses a physical allocation method to accurately allocate carbon footprints based on the resources (such as heat) actually consumed by the symbiotic products during the production process. This allocation method based on actual consumption is more accurate than traditional average allocation or proportional allocation, and can more truly reflect the environmental impact of symbiotic products. By obtaining process data corresponding to the physical allocation method and processing it according to the physical allocation method, the calculation process can be more targeted and avoid waste of resources.
[0069] According to some embodiments, the optional allocation methods include an economic allocation method, and the economic allocation method can be obtained; based on the economic allocation method, the process data corresponding to the economic characteristics of the symbiotic product is obtained; based on the economic allocation method, the process data within a preset time period is processed to determine the weighted average value; based on the economic allocation method, the weighted average value and the process data are processed to determine the economic value of the symbiotic product; based on the economic allocation method, the economic value is processed to determine the carbon footprint allocation coefficient; and the carbon footprint of the symbiotic product is determined based on the carbon footprint allocation coefficient.
[0070] In this application, the economic allocation method is a method of allocating product carbon footprints based on the economic value of each product.
[0071] According to an example embodiment, the economic allocation is:
[0072]
[0073]
[0074]
[0075] in, is the weighted average value, p i is the sales price of symbiotic product i in the past three years, m i is the sales quantity / weight of co-product i, P j is the sum of the economic values of various products, M j is the economic value of symbiotic product j, K j is the economic allocation coefficient, that is, the carbon footprint allocation coefficient under the economic allocation method. The process data of economic characteristics includes p i 、m i and M j .
[0076] The carbon footprint allocation coefficient can be determined in the above manner, and then the carbon footprint of the symbiotic product can be calculated based on the carbon footprint allocation coefficient and the total heat consumption of the symbiotic product.
[0077] This application can more accurately reflect the economic value of symbiotic products in the production process by obtaining process data corresponding to the economic characteristics of symbiotic products and processing these data based on the economic allocation method. This allocation method based on economic value makes the allocation of carbon footprint more scientific and can more accurately reflect the contribution of each symbiotic product to the overall carbon emissions. Using the economic allocation method to determine the carbon footprint allocation coefficient can ensure the fairness of the carbon footprint allocation of each symbiotic product.
[0078] According to some embodiments, the optional allocation method includes an extended alternative allocation method, which can obtain the actual use of the symbiotic product; based on the extended alternative allocation method, the process data corresponding to the actual use is obtained; based on the process data, the corresponding alternative environmental load is determined, and the carbon footprint allocation coefficient corresponding to the symbiotic product is determined to be empty; based on the pre-calculated carbon footprint of the alternative environmental load, the carbon footprint of the symbiotic product is determined.
[0079] In this application, the extended alternative allocation method is to deduct the corresponding environmental load according to the actual use of the co-products. For the co-products of the coking and quenching processes, reference can be made to Figure 2 The table shown in the figure is used for corresponding extended substitution. The replaceable environmental load in the table is the process that can be used to replace the co-product. For example, in the coking process, the co-product produced: coke oven gas, can be replaced by the production process of coal, heavy oil, and light oil; in the coke quenching process, the co-product produced: dry coke quenching waste heat electricity, can be replaced by the power generation process.
[0080] Based on this, the process data corresponding to the actual use under the extended substitution mode can be obtained, and then the alternative environmental load can be found based on the process data. The carbon footprint of the product corresponding to the alternative environmental load is the carbon footprint of the symbiotic product, and there is no need to calculate the distribution coefficient. In some implementations, the carbon footprint of the symbiotic product is subtracted from the total heat consumption of the symbiotic product to obtain the carbon footprint of the main product.
[0081] This application first obtains the actual use of the symbiotic product to ensure the pertinence and accuracy of subsequent analysis. Based on the extended alternative allocation method, the process data under the actual use is obtained. This step can comprehensively cover all key links involved in the production process of the symbiotic product. By deeply analyzing these process data and determining the corresponding alternative environmental loads, this step reveals that the production of symbiotic products can be converted into specific impacts on the environment, providing a scientific basis for subsequent carbon footprint allocation. Based on the alternative environmental load and the extended alternative allocation method, the carbon footprint allocation coefficient corresponding to the symbiotic product is accurately determined, and the carbon footprint of the symbiotic product is calculated based on the coefficient, which improves the accuracy and reliability of the carbon footprint calculation.
[0082] The following describes an apparatus embodiment of the present application, which can be used to execute the method embodiment of the present application. For details not disclosed in the apparatus embodiment of the present application, reference can be made to the method embodiment of the present application.
[0083] Figure 3 This is a block diagram of a carbon footprint distribution device for coke and semi-coke products provided in an embodiment of the present application. Figure 3 As shown, the carbon footprint allocation device 300 for coke and semi-coke products includes an information acquisition module 301 , a process material determination module 302 , a co-product determination module 303 and a coefficient determination module 304 .
[0084] Information acquisition module 301, used to obtain coking and quenching information of users with allocation requirements;
[0085] The process material determination module 302 is used to determine the corresponding coking and quenching process and application materials according to the coking and quenching information;
[0086] A co-product determination module 303 is used to determine corresponding co-products according to the coking and quenching process and application materials;
[0087] The coefficient determination module 304 is used to obtain the process data corresponding to the co-product under the preset optional allocation method, and process the process data according to the allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and determine the carbon footprint of the co-product according to the carbon footprint allocation coefficient.
[0088] Optionally, the symbiotic product determination module 303 is specifically configured to:
[0089] Obtain the coking and quenching usage of applied materials;
[0090] According to the coking and quenching process and the usage of coking and quenching, determine the corresponding relevant product data in the coking and quenching process;
[0091] Extracting coking and quenching data in the coking and quenching process from the coking and quenching information;
[0092] Determine the co-products based on relevant product data and coking and quenching data.
[0093] Optionally, when determining the co-product based on the relevant product data and the coking quenching data, the co-product determination module 303 is specifically used to:
[0094] According to the coking quenching information, determine the enterprise type and target product corresponding to the user with allocation demand;
[0095] Select the cause of data error according to the enterprise type;
[0096] Determine the preset correlation analysis model based on the cause of data error;
[0097] Determine the actual coking and quenching information based on relevant product data, coking and quenching data and the correlation analysis model;
[0098] Based on the target products and actual coking information, co-products are determined.
[0099] Optionally, the coefficient determination module 304 is specifically used for:
[0100] Get optional allocation methods and process data;
[0101] Determine whether the coking quenching information contains an allocation mode selection signal;
[0102] In the case where an allocation method selection signal is included, a target allocation method is selected from the optional allocation methods, and the process data is processed according to the target allocation method to determine a carbon footprint allocation coefficient corresponding to the co-product, and the carbon footprint of the co-product is determined according to the carbon footprint allocation coefficient;
[0103] In the absence of an allocation method selection signal, a target allocation method is selected from the optional allocation methods according to the preset allocation method selection conditions, and the process data is processed according to the target allocation method to determine the carbon footprint allocation coefficient corresponding to the co-product, and the carbon footprint of the co-product is determined based on the carbon footprint allocation coefficient.
[0104] Optionally, the optional allocation method includes a physical allocation method; the coefficient determination module 304 is specifically used for:
[0105] Get the physical allocation method;
[0106] Determine the characteristics of the data to be processed based on the physical allocation method;
[0107] Obtaining process data of the co-product corresponding to the characteristics of the data to be processed;
[0108] Process data is processed according to the physical distribution method to determine the heat of co-products;
[0109] The heat is processed according to the physical distribution method and the carbon footprint distribution coefficient is determined;
[0110] The carbon footprint of the co-product is determined based on the carbon footprint allocation coefficient.
[0111] Optionally, the optional allocation method includes an economic allocation method; the coefficient determination module 304 is specifically used for:
[0112] Obtaining economic distribution methods;
[0113] According to the economic allocation method, the process data corresponding to the economic characteristics of the co-products are obtained;
[0114] Process the process data within a preset period based on the economic allocation method to determine the weighted average value;
[0115] The weighted average value and process data are processed based on the economic allocation method to determine the economic value of the co-product;
[0116] Process the economic value based on the economic allocation method and determine the carbon footprint allocation coefficient;
[0117] The carbon footprint of the co-product is determined based on the carbon footprint allocation coefficient.
[0118] Optionally, the optional allocation method includes an extended alternative allocation method; the coefficient determination module 304 is specifically used to:
[0119] obtaining practical uses for symbiotic products;
[0120] Based on the extended alternative allocation method, the process data corresponding to the actual use is obtained;
[0121] According to the process data, the corresponding alternative environmental load is determined, and the carbon footprint allocation coefficient corresponding to the co-product is determined to be empty;
[0122] Based on the pre-calculated carbon footprint of the alternative environmental load, the carbon footprint of the co-product is determined.
[0123] The device performs functions similar to the method provided above. For other functions, please refer to the previous description and will not be repeated here.
[0124] Figure 4 A schematic diagram of the structure of an electronic device provided in an embodiment of the present application, such as Figure 4 As shown, the electronic device 400 of this embodiment may include: a memory 401 and a processor 402 .
[0125] The memory 401 stores a computer program. When the computer program is executed by the processor 402, the processor 402 executes the method in the above embodiment.
[0126] The processor 402 and the memory 401 are connected, for example, via a bus.
[0127] Optionally, the electronic device 400 may further include a transceiver. It should be noted that in actual applications, the number of transceivers is not limited to one, and the structure of the electronic device 400 does not constitute a limitation on the embodiments of the present application.
[0128] Processor 402 may be a CPU (Central Processing Unit), a general purpose processor, a DSP (Digital Signal Processor), an ASIC (Application Specific Integrated Circuit), an FPGA (Field Programmable Gate Array), or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It may implement or execute various exemplary logic blocks, modules, and circuits described in conjunction with the disclosure of this application. Processor 402 may also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, and the like.
[0129] The bus may include a path to transmit information between the above components. The bus may be a PCI (Peripheral Component Interconnect) bus or an EISA (Extended Industry Standard Architecture) bus. The bus may be divided into an address bus, a data bus, a control bus, etc. For ease of representation, only one thick line is used in the figure, but it does not mean that there is only one bus or one type of bus.
[0130] The memory 401 can be a ROM (Read Only Memory) or other types of static storage devices that can store static information and instructions, a RAM (Random Access Memory) or other types of dynamic storage devices that can store information and instructions, or an EEPROM (Electrically Erasable Programmable Read Only Memory), a CD-ROM (Compact Disc Read Only Memory) or other optical disk storage, optical disk storage (including compressed optical disk, laser disk, optical disk, digital versatile disk, Blu-ray disk, etc.), a magnetic disk storage medium or other magnetic storage device, or any other medium that can be used to carry or store the desired program code in the form of instructions or data structures and can be accessed by a computer, but is not limited to these.
[0131] The memory 401 is used to store the application code for executing the solution of the present application, and the execution is controlled by the processor 402. The processor 402 is used to execute the application code stored in the memory 401 to implement the contents shown in the above method embodiment.
[0132] The electronic devices include, but are not limited to, mobile terminals such as mobile phones, laptop computers, digital broadcast receivers, PDAs (personal digital assistants), PADs (tablet computers), PMPs (portable multimedia players), vehicle-mounted terminals (such as vehicle-mounted navigation terminals), and fixed terminals such as digital TVs, desktop computers, etc. It can also be a server, etc. Figure 4 The electronic device shown is merely an example and should not bring any limitation to the functions and scope of use of the embodiments of the present application.
[0133] The electronic device of this embodiment can be used to execute the method of any of the above embodiments, and its implementation principle and technical effect are similar, which will not be described in detail here.
[0134] The present application also provides a non-transitory computer-readable storage medium having computer-readable instructions stored thereon. When the aforementioned instructions are executed by a processor, the processor executes the method in the above embodiment.
[0135] Those skilled in the art can understand that all or part of the steps of implementing the above-mentioned method embodiments can be completed by hardware related to program instructions. The aforementioned program can be stored in a non-transient computer-readable storage medium. When the program is executed, the steps of the above-mentioned method embodiments are executed; and the aforementioned storage medium includes: ROM, RAM, disk or optical disk and other media that can store program codes.
[0136] The embodiments of the present application are described in detail above. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method and its core idea of the present application. At the same time, changes or deformations made by those skilled in the art based on the ideas of the present application, the specific implementation methods and the scope of application of the present application, all belong to the scope of protection of the present application. In summary, the content of this specification should not be construed as a limitation on the present application.
Claims
1. A method for allocating carbon footprint of coke and semi-coke products, characterized in that: include: Obtain the coking and quenching information of the user who needs allocation; Determining corresponding coking and quenching procedures and application materials according to the coking and quenching information; Determining corresponding co-products according to the coking and quenching process and the applied materials; Obtain process data corresponding to the symbiotic product under a preset optional allocation method, and process the process data according to the allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, and determine the carbon footprint of the symbiotic product based on the carbon footprint allocation coefficient.
2. The method according to claim 1, characterized in that Determining corresponding co-products according to the coking and quenching process and the applied materials includes: Obtaining the coking and quenching use of the application material; Determine the relevant product data corresponding to the coking and quenching process according to the coking and quenching process and the coking and quenching usage mode; Extracting coking and quenching data in the coking and quenching process from the coking and quenching information; The co-product is determined based on the relevant product data and the coking and quenching data.
3. The method according to claim 2, characterized in that The determining the symbiotic product based on the relevant product data and the coking and quenching data comprises: Determine the enterprise type and target product corresponding to the user with allocation demand according to the coking quenching information; Select the cause of data error according to the enterprise type; Based on the cause of the data error, determine a preset correlation analysis model; Determining actual coking and quenching information according to the relevant product data, the coking and quenching data and the association analysis model; Based on the target product and the actual coking information, the co-product is determined.
4. The method according to claim 1, characterized in that: The obtaining of process data corresponding to the symbiotic product under a preset optional allocation method, and processing the process data according to the allocation method to determine a carbon footprint allocation coefficient corresponding to the symbiotic product, and determining the carbon footprint of the symbiotic product according to the carbon footprint allocation coefficient, includes: Acquire the optional allocation method and the process data; Determining whether the coking and quenching information includes an allocation mode selection signal; In the case where the allocation mode selection signal is included, a target allocation mode is selected from the optional allocation modes, and the process data is processed according to the target allocation mode to determine a carbon footprint allocation coefficient corresponding to the co-product, and the carbon footprint of the co-product is determined according to the carbon footprint allocation coefficient; In the absence of the allocation method selection signal, a target allocation method is selected from the optional allocation methods according to a preset allocation method selection condition, and the process data is processed according to the target allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, and the carbon footprint of the symbiotic product is determined based on the carbon footprint allocation coefficient.
5. The method according to claim 1, characterized in that The optional allocation method includes a physical allocation method; The step of obtaining process data corresponding to the symbiotic product under a preset optional allocation method, processing the process data according to the allocation method to determine a carbon footprint allocation coefficient corresponding to the symbiotic product, and determining the carbon footprint of the symbiotic product according to the carbon footprint allocation coefficient includes: Obtaining the physical allocation method; Determining characteristics of data to be processed according to the physical allocation method; Acquire process data of the symbiotic product corresponding to the characteristics of the data to be processed; Processing the process data according to the physical distribution method to determine the heat of the co-product; Processing the heat according to the physical distribution method to determine the carbon footprint distribution coefficient; The carbon footprint of the co-product is determined according to the carbon footprint allocation coefficient.
6. The method according to claim 1, characterized in that The optional allocation method includes an economic allocation method; The step of obtaining process data corresponding to the symbiotic product under a preset optional allocation method, processing the process data according to the allocation method to determine a carbon footprint allocation coefficient corresponding to the symbiotic product, and determining the carbon footprint of the symbiotic product according to the carbon footprint allocation coefficient includes: obtaining said economic allocation method; According to the economic allocation method, obtaining process data corresponding to the economic characteristics of the symbiotic product; Processing the process data within a preset period based on the economic allocation method to determine a weighted average value; Processing the weighted average value and the process data based on the economic allocation method to determine the economic value of the co-product; Processing the economic value based on the economic allocation method to determine the carbon footprint allocation coefficient; The carbon footprint of the co-product is determined according to the carbon footprint allocation coefficient.
7. The method according to claim 1, characterized in that The optional allocation method includes an extended alternative allocation method; The step of obtaining process data corresponding to the symbiotic product under a preset optional allocation method, processing the process data according to the allocation method to determine a carbon footprint allocation coefficient corresponding to the symbiotic product, and determining the carbon footprint of the symbiotic product according to the carbon footprint allocation coefficient includes: obtaining practical uses for said symbiotic products; Based on the extended alternative allocation method, correspondingly obtaining process data corresponding to the actual use; Determine the corresponding replaceable environmental load according to the process data, and determine that the carbon footprint allocation coefficient corresponding to the symbiotic product is null; Based on the pre-calculated carbon footprint of the alternative environmental load, a carbon footprint of the co-product is determined.
8. A carbon footprint distribution device for coke and semi-coke products, characterized in that: include: An information acquisition module is used to obtain the coking and quenching information of the user with allocation requirements; A process material determination module, used to determine the corresponding coking and quenching process and application materials according to the coking and quenching information; A co-product determination module, used to determine corresponding co-products according to the coking and quenching process and the application materials; A coefficient determination module is used to obtain process data corresponding to the symbiotic product under a preset optional allocation method, and process the process data according to the allocation method to determine the carbon footprint allocation coefficient corresponding to the symbiotic product, and determine the carbon footprint of the symbiotic product based on the carbon footprint allocation coefficient.
9. An electronic device, characterized in that: include: processor; A memory storing a computer program, which, when executed by the processor, enables the processor to perform the method according to any one of claims 1 to 7.
10. A non-transitory computer-readable storage medium, characterized in that: Computer-readable instructions are stored thereon, and when the instructions are executed by a processor, the processor is caused to execute the method according to any one of claims 1 to 7.