Nuclear power process flow intelligent configuration mapping method and system
Through the nuclear power process design knowledge base and multi-level selection logic, the nuclear power process design solution is intelligently generated, which solves the problems of long design cycle and low efficiency of nuclear power, and realizes efficient and flexible process system design.
Patent Information
- Application Number
- CN202510347705.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2025-06-24
AI Technical Summary
Nuclear power design has the characteristics of long design cycle, large professional span, high safety indicators, and diverse design standards, which leads to designers spending a lot of time studying various factors and conducting multiple rounds of solution design and comparison. Especially when designing new stack types or system, they lack design experience and unfamiliar with system functions, resulting in inefficient design efficiency.
A method and system for intelligent configuration of nuclear power process flow is proposed. By calling the nuclear power process design knowledge base, a nuclear power process model is established, and the target stack, main functional module and technical route are determined through multi-level selection logic, and a design drawing including equipment and/or pipelines is finally generated.
It realizes intelligently generated nuclear power process design scheme, improves design efficiency, and can efficiently and flexibly complete process system design, reducing manpower investment and design cycle.
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Figure CN120197245A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of nuclear power process design, and particularly to an intelligent configuration mapping method and system for nuclear power process flows. Background Art
[0002] Nuclear power design has the characteristics of high technical difficulty, large professional span, high safety indicators, and diverse design standards. At the same time, due to various technical barriers or information asymmetry between existing design schemes, when actually carrying out the design of a new reactor type or scheme, without a clear design scheme library or guidance, designers need to spend a lot of time studying various factors affecting the design, such as the characteristics of the reactor type, design objectives, implementation standards, operation experience, and overall principles, and carry out multiple rounds of scheme design and comparison processes between industries or specialties to complete the design. Especially when carrying out the design of a completely new reactor type or system, problems such as lack of design experience and unfamiliarity with system functions will occur, and a large amount of time is required for investigation, learning, collection, and research of different system process designs, understanding relevant design standards, consulting experts in this specialty, and through the method of repeatedly iterating various process combinations, can a set of compliant solutions be designed, and it takes a long time to complete the drawing of the process flow diagram.
[0003] In addition, with the rapid development of nuclear power units, in the initial stage of project design when the scheme is not finalized, the scheme decision-making, project conditions, interface schemes, etc. will change frequently, which requires designers to provide multiple design schemes and repeatedly design after evaluating the design input changes. This not only increases the human input but also easily omits key links and interfaces.
[0004] Therefore, how to safely and efficiently complete the process design schemes applicable to multiple types of models and users, and be able to provide the best design scheme and risk guidance in combination with project preferences among multiple types of design schemes has become one of the key issues in nuclear power design.
[0005] Based on this, the inventors of the present application propose an intelligent configuration mapping method and system for nuclear power process flows in order to solve one or more of the above technical problems. Summary of the Invention
[0006] The technical problem to be solved by the present invention is to overcome the defect of the long project pre - scheme design cycle in the prior art, and provide an intelligent configuration mapping method and system for nuclear power process flows.
[0007] The present invention solves the above - mentioned technical problems through the following technical solutions:
[0008] The first aspect of the present invention provides an intelligent configuration mapping method for nuclear power process flows, including:
[0009] Step 1: Invoke the nuclear power process design knowledge base; wherein, the knowledge base includes at least the design scheme, design standards, and design reports of the selected reactor type.
[0010] Step 2: Establish a nuclear power process model based on the knowledge base.
[0011] Step 3: Establish a first selection logic in the nuclear power process model, and determine the target reactor and the main functional modules associated with the target reactor based on the first selection logic.
[0012] Step 4: After Step 3, establish a second selection logic in the nuclear power process model and determine the technical routes of each of the main functional modules; wherein, the technical routes are composed of at least two functional units.
[0013] Step 5: After Step 4, establish a third selection logic in the nuclear power process model, and configure the functional units to form a design drawing including equipment and / or pipelines.
[0014] According to an embodiment of the present invention, the design scheme in Step 1 at least includes: power plant system specification, flow chart, equipment specification, operation procedure, safety analysis report, general specification.
[0015] The design standards are the power plant design requirements and standards.
[0016] The design reports at least include: operation reports, annual reports, maintenance reports, and health reports related to the operation of different power plants.
[0017] According to an embodiment of the present invention, the first selection logic in Step 3 is: screening the reactor type, site conditions, and power design to determine the target reactor.
[0018] According to an embodiment of the present invention, in Step 3, before determining the target reactor, first select whether there is a reference power plant; if there is a reference power plant, directly generate the process configuration of the reference power plant; if there is no reference power plant, further determine the target reactor according to the first selection logic.
[0019] According to an embodiment of the present invention, the second selection logic in Step 4 is: establishing selection criteria according to different targets, and determining the technical routes corresponding to the main functional modules.
[0020] According to an embodiment of the present invention, the third selection logic in Step 5 is: selecting the pipeline design or equipment model of the functional units according to the target operating conditions.
[0021] According to an embodiment of the present invention, the knowledge base in Step 1 has an expansion interface for supplementing new reactor types.
[0022] In a second aspect of the present invention, there is provided a computer program product, including a computer program which, when executed by a processor, implements the steps performed by a computer in the method described above.
[0023] In a third aspect of the present invention, there is provided a computer-readable storage medium having a computer program which, when executed by a processor, implements the steps performed by a computer in the method described above.
[0024] In a fourth aspect of the present invention, there is provided an intelligent configuration and mapping system, including:
[0025] a memory capable of storing instructions executable by a processor;
[0026] a processor capable of executing the instructions to implement the steps performed by a computer in the method described above.
[0027] The positive and progressive effects of the present invention are as follows:
[0028] The intelligent configuration and mapping method for nuclear power process flow of the present invention can intelligently generate one or more nuclear power process design schemes and perform mapping design by invoking the nuclear power process design knowledge base. It can not only complete the scheme comparison and engineering design in the early stage of the project, but also the intelligent mapping function can efficiently and flexibly complete the process system design, improving the design efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The above and other features, properties and advantages of the present invention will become more apparent from the following description with reference to the drawings and embodiments, wherein:
[0030] Figure 1 is a flowchart of an embodiment of the intelligent configuration and mapping method for nuclear power process flow of the present invention;
[0031] Figure 2 is a schematic diagram of main functional modules of an embodiment of the present invention;
[0032] Figure 3 is a schematic diagram of the technical route of an embodiment of the present invention;
[0033] Figure 4 is a schematic diagram of the reference power plant selection of an embodiment of the present invention;
[0034] Figure 5 is a structural diagram of the technical route of an embodiment of the present invention;
[0035] Figure 6 is Figure 5 the design diagram of the technical route of
[0036] Figure 7This is a schematic structural diagram of the intelligent configuration and mapping system of the present invention. Detailed implementation manners
[0037] The present invention will be further described below in conjunction with specific embodiments and the accompanying drawings. More details are set forth in the following description to facilitate a full understanding of the present invention. However, the present invention is clearly capable of being implemented in many other different ways than described herein. Those skilled in the art can make similar generalizations and deductions according to the actual application situation without departing from the connotation of the present invention. Therefore, the protection scope of the present invention should not be limited by the content of this specific embodiment.
[0038] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above description of the drawings are intended to cover non-exclusive inclusion.
[0039] Referring to Figures 1 to 7 , the present invention provides an intelligent configuration and mapping method for nuclear power process flows, including the following steps:
[0040] S1. Invoke the nuclear power process design knowledge base; wherein, the knowledge base at least includes the design scheme, design standards, and design reports of the selected reactor type.
[0041] Specifically, the designer can design a knowledge base by himself / herself, or remotely call a database without establishing it by himself / herself. The specific steps for establishing the knowledge base can be: collecting the design schemes, design standards, and design reports of existing reactor types, and performing structured storage to form a multi-level knowledge base.
[0042] For example, the knowledge base includes the design schemes, design standards, and design reports of various reactor types such as 300,000 kW pressurized water reactors, passive AP series and CAP series, M310 series, CADNU heavy water reactors, VVER, ACP1000, boiling water reactors, integral reactors, molten salt reactors, etc., and supports the expansion interface of the knowledge base.
[0043] Among them, the design scheme is: by studying various system-related information such as power plant system specifications, flowcharts, equipment specifications, operation procedures, safety analysis reports, and general specifications, and normalizing it and inputting it into the knowledge base.
[0044] The design standard is the power plant design requirements and standards.
[0045] The design reports are the recorded data that record the operation status of power plants, such as operation reports, annual reports, maintenance reports, and health reports of different power plants, to learn about the operation status of different system design schemes, and analyze their reliability, advantages, and disadvantages.
[0046] In order to accommodate the rapid development of nuclear power technology, the knowledge base supports inputting new technical solutions and logics according to certain rules to continuously expand the existing knowledge base.
[0047] For example, in one implementation, the knowledge base includes: foreign design standards IAEA NUREG, domestic design standards HAD HAF GB NB, domestic power plants CAP SNG EPRI CANDUE EPR, foreign power plants AP1000 BWR MSR, power plant design experience, power plant operation experience, equipment design experience, etc.
[0048] Among them, the foreign design standards IAEA NUREG and domestic design standards HAD HAF GB NB correspond to the design standards of the knowledge base; domestic power plants CAP SNG EPRI CANDUE EPR and foreign power plants AP1000 BWR MSR correspond to the design schemes of the knowledge base; power plant design experience, power plant operation experience, and equipment design experience correspond to the design reports of the knowledge base.
[0049] S2. Establish a nuclear power process model based on the knowledge base.
[0050] It can be seen that when the knowledge base is established, the reactor type has been associated with the main function modules, and a one-to-many relationship has been established, that is, one reactor type includes multiple main function modules. Similarly, a one-to-many relationship has also been established between the main function modules and the technical routes, that is, one main function module can be realized through multiple technical routes.
[0051] When designing the nuclear power process model, screening conditions are set for the reactor type, main function modules, and technical routes. For example, the reactor type screening conditions can be reactor type selection, site condition selection, power selection, etc., and can be specifically selected according to the design goals of the designers.
[0052] When constructing the nuclear power process model, based on the screening conditions input by the user, it is matched through a rule engine, weights are set for each screening condition, the comprehensive score of each option is calculated, sorted by score, and fuzzy query is supported, such as parsing the user's needs through natural language processing technology.
[0053] Moreover, the nuclear power process model provided by the present invention provides user interaction, allowing users to input screening conditions and displaying the screening results in real time.
[0054] The above model design and establishment are realized by using common technical means in the art and will not be elaborated here.
[0055] S3. Establish a first selection logic in the nuclear power process model, and determine the target reactor and the main functional modules associated with the target reactor based on the first selection logic.
[0056] Among them, the first selection logic is: screening the reactor type, site conditions, and power design to determine the target reactor.
[0057] Specifically, when constructing the nuclear power process model, design experience reports, industry standards, etc. can be converted into rules, such as reactor type selection rules, site condition selection rules, power selection rules, etc., establish an analysis logic and introduce an optimization algorithm to screen the target reactor and the main functional modules corresponding to the target reactor.
[0058] Through the establishment of the nuclear power process model in the present invention, after judgment by the first selection logic, designers can quickly determine the target reactor type of the project.
[0059] Thus, at the initial stage of the project, designers first confirm the overall summary of the project, including the reactor type, site conditions, and power design, and then select the target reactor in the nuclear power process model.
[0060] For example, the first selection logic includes a reactor type selection logic, that is, whether to select "passive" or "active" for the reactor type; or whether to select "integral reactor" or "multi-loop reactor". The first selection logic also includes a site selection logic, that is, whether to select "coastal site discharge" or "internal site discharge" for the site. The first selection logic also includes a power selection logic, that is, whether to select a power exceeding 1000 MW or less than 1000 MW. Through the screening of the first selection logic, designers can quickly determine the target reactor of the project.
[0061] Please refer to Figure 4 , before determining the target reactor, first select whether there is a reference power station; if there is a reference power station, directly generate the process configuration of the reference power station; if there is no reference power station, further determine the target reactor according to the first selection logic.
[0062] For example, when the target reactor refers to the "multi-heat transfer loop type" of an in-service power plant, then there are "PC series", "CAP series", M310 series, CANDU series, and VVER series, etc. as references. Designers can "select with one key" to achieve the process configuration of the existing power plant. If there is no reference power plant, the first selection logic is used to determine the target reactor.
[0063] It should be noted that the one-key generation function not only follows the top-level scheme logic but can also extend to the function configuration logic and unit design logic, thereby realizing the one-key generation of process functions.
[0064] Please refer to Figure 2, generally, the main functional modules include the heat transfer and pressure intelligent configuration and mapping function of the reactor primary loop, the nuclear island feedwater function, the containment cooling function, the equipment cooling function, the chemical and volume intelligent configuration and mapping function, the normal residual heat removal function, the primary loop sampling function, the radioactive solid waste treatment function, and the compressed air supply function.
[0065] For example, the functions of a standard high-power pressurized water reactor are about more than 20, specifically including the primary loop, the secondary loop, residual heat removal, emergency core cooling, etc.; while for an integrated low-power reactor type, only more than a dozen functions may be required to complete the design of the scheme. Designers can select and configure the corresponding main functional modules according to different reactor types.
[0066] It should be noted that the main functional modules corresponding to different reactor types are different. After selecting the target reactor, different main functional modules can be selected and configured.
[0067] Or, pre-determine the corresponding main functional modules of different reactor types in the model. After the designer selects the target reactor, the main functional modules corresponding to the target reactor can be obtained.
[0068] S4. After step 3, establish a second selection logic in the nuclear power process model and determine the technical route of each of the main functional modules; wherein, the technical route consists of at least two functional units.
[0069] It can be seen that the second selection logic is: establish a selection criterion according to different targets and determine the technical route corresponding to the main functional module.
[0070] This technical route scheme can be one or more process routes formed by grouping multiple devices. This technical route scheme is obtained through the system design points, design criteria, operation records, etc. established in the background, through an explicit logical judgment interface, and the designer completes the logical judgment through different targets.
[0071] For example, for the function of treating hydrogen-containing radioactive waste gas, there are mainly three technical routes, which can be specifically referred to Figure 3 . Designers can finally determine the technical route suitable for this project through logical judgments in terms of waste generation amount, floor area, treatment efficiency, etc.
[0072] S5. After step 4, establish a third selection logic in the nuclear power process model and configure the functional units to form a design drawing including equipment and / or pipelines.
[0073] Specifically, the third selection logic is: select the pipeline design or equipment model of the functional unit according to the target working condition.
[0074] Refer to Figure 5 and Figure 6, taking the main functions of heat transfer and pressure control in the primary circuit as an example for illustration:
[0075] Referring to Figure 5 , the main function module includes the reactor main body unit 11, the automatic depressurization function unit 12, the overpressure protection function unit 13, the pressurizer spray unit 14, and the reactor exhaust unit 15. The above five units constitute the technical route for heat transfer and pressure control in the primary circuit.
[0076] Then, the operator can configure the five units one by one according to the third selection logic in sequence. For example, taking the reactor main body unit 11 as an example, first judge whether the reactor main body is integral. If it is, then further determine whether a main pump is needed; if not, it is a multi - heat transfer loop type. Among them, there are two options for whether a main pump is needed, and the operator can select and determine according to the needs.
[0077] For the reactor exhaust unit 15, the operator can select whether an exhaust unit is needed or not according to the needs.
[0078] For the pressurizer spray unit 14, there is an integral reactor pressurizer spray or a multi - loop reactor pressurizer spray, and the operator can select according to the needs.
[0079] For the automatic depressurization function unit 12, the operator can select integral reactor depressurization or multi - loop reactor depressurization.
[0080] For the overpressure protection function unit 13, since it is a conventional unit, no selection is required.
[0081] The operator can use the above selection logic (the third selection logic) to finally obtain the design drawing corresponding to the technical route as Figure 6 shown.
[0082] For another example, taking the treatment of radioactive hydrogen - containing waste gas as the main function for illustration:
[0083] First, the determined second selection logic is "whether there is a reference power station", "whether to treat hydrogen - containing gas", "whether secondary waste (such as activated carbon, silica gel, etc.) is allowed to be generated", "whether it is a single source". Through the above screening, the technical route of "room - temperature activated carbon retention decay continuous treatment process" is obtained. This technical route includes: hydrogen - containing waste gas temperature adjustment unit, hydrogen - containing waste gas retention unit, hydrogen - containing waste gas monitoring unit (room monitoring), hydrogen - containing waste gas buffer unit, and hydrogen - containing waste gas dehumidification unit.
[0084] After determining the functional units, each functional unit is configured using third selection logic. For example, for the hydrogen-containing waste gas temperature regulation unit, the selection logic can be: whether the gas temperature is greater than 40°C and whether it is necessary to increase the temperature to reduce the loudness humidity; among them, if so, a gas cooler is selected, and if not, a heat exchanger is selected.
[0085] For the hydrogen-containing waste gas retention unit, the selection logic can be: delayed decay bed or storage decay tank, and whether the relative humidity of the gas is below 30%; among them, if the relative humidity of the gas is below 30%, a delayed bed is used, and if it is above 30%, a combination of a protection bed and a delayed bed is used.
[0086] For the hydrogen-containing waste gas monitoring unit, the selection logic can be: whether it is necessary to increase room monitoring.
[0087] For the hydrogen-containing waste gas buffer unit (room monitoring), the selection logic can be: whether there are multiple input streams at the same time and whether it is a stable continuous flow; if there is an input stream, it is further determined whether it is a stable continuous flow. If so, a control valve is selected, and if not, a gas buffer tank is selected. If there is no input stream, a control valve is directly selected.
[0088] For the hydrogen-containing waste gas dehumidification unit, the selection logic can be: whether the relative humidity of the gas is below 30% and whether the dehumidification efficiency is higher than 90%. When the dehumidification efficiency is higher than 90%, a combination of a gas-liquid separator, a dryer, and a thermometer is used. When it is lower than 90%, a gas-liquid separator is selected.
[0089] For example, in one embodiment, the knowledge base includes: foreign design standards IAEA NUREG, domestic design standards HAD HAF GB NB, domestic power plants CAP SNG EPRI CANDUE EPR, foreign power plants AP1000 BWR MSR, power plant design experience, power plant operation experience, equipment design experience, etc.
[0090] Reference Figure 7 As shown, the present application also provides an intelligent configuration and mapping system 1000, including a memory 1001 and a processor 1002. The memory 1001 stores instructions executable by the processor 1002; the processor 1002 is capable of executing the instructions to implement the steps performed by a computer in the intelligent configuration and mapping method for nuclear power process flows based on model decision-making introduced in the above embodiments.
[0091] It can be understood that it should be noted that the above-mentioned memory and processor are not limited to a specific memory and processor. Further, in an embodiment adopting a distributed structure, each step can adjust the specific execution terminal according to the actual situation, and the specific implementation scheme of each step on a specific terminal should not limit the protection scope of the present application.
[0092] According to another aspect of the present application, the present application also provides a computer-readable medium.
[0093] The computer-readable medium provided by the present application has computer instructions thereon. When executed by a processor, these computer instructions can implement the steps executed by the program in the methods introduced in the above embodiments when the program is executed by the processor.
[0094] According to yet another aspect of the present application, the present application also provides a computer program product.
[0095] The computer-readable medium provided by the present application includes a computer program, which when executed by a processor can implement the steps executed by the program in the methods introduced in the above embodiments when the program is executed by the processor.
[0096] The various illustrative logical modules and circuits described in connection with the embodiments disclosed herein can be implemented or executed using a general-purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. A general-purpose processor may be a microprocessor, but in the alternative, the processor may be any conventional processor, controller, microcontroller, or state machine. The processor may also be implemented as a combination of computing devices, such as a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors cooperating with a DSP core, or any other such configuration.
[0097] The steps of the methods or algorithms described in connection with the embodiments disclosed herein can be embodied directly in hardware, in a software module executed by a processor, or in a combination of both. The software module may reside in RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, a hard disk, a removable disk, a CD-ROM, or any other form of storage medium known in the art. An exemplary storage medium is coupled to the processor such that the processor can read from, and write to, the storage medium. In the alternative, the storage medium may be integrated into the processor. The processor and the storage medium may reside in an ASIC. The ASIC may reside in a user terminal. In the alternative, the processor and the storage medium may reside as discrete components in a user terminal.
[0098] In one or more exemplary embodiments, the described functionality may be implemented in hardware, software, firmware, or any combination thereof. If implemented in software as a computer program product, the functions may be stored on or transmitted via a computer-readable medium as one or more instructions or code. The computer-readable medium includes both computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another. The storage media may be any available media that can be accessed by a computer. By way of example and not limitation, such computer-readable media can include RAM, ROM, EEPROM, CD-ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to carry or store desired program code in the form of instructions or data structures and that can be accessed by a computer. Any connection is properly termed a computer-readable medium. For example, if the software is transmitted from a web site, server, or other remote source using a coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave, then the coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are included in the definition of medium. As used herein, disk and disc include compact disc (CD), laser disc, optical disc, digital versatile disc (DVD), floppy disk, and Blu-ray disc where disks typically reproduce data magnetically, while discs reproduce data optically with lasers. Combinations of the above should also be included within the scope of computer-readable media.
[0099] Although this application is disclosed above in preferred embodiments, it is not intended to limit this application. Any person skilled in the art can make possible changes and modifications without departing from the spirit and scope of this application. Therefore, all modifications, equivalent changes, and decorations made to the above embodiments based on the technical essence of this application without departing from the technical solutions of this application shall fall within the protection scope defined by the claims of this application.
Claims
1. A method for intelligent configuration and mapping of nuclear power process flow, characterized in that: include: Step 1: calling a nuclear power process design knowledge base; wherein the knowledge base at least includes a design scheme, design standards and design report of the selected reactor type; Step 2: establishing a nuclear power process model based on the knowledge base; Step 3: establishing a first selection logic in the nuclear power process model, and determining a target stack and a main functional module associated with the target stack based on the first selection logic; Step 4: After step 3, a second selection logic is established in the nuclear power process model and a technical route of each of the main functional modules is determined; wherein the technical route is composed of at least two functional units; Step 5: After step 4, a third selection logic is established in the nuclear power process model, and the functional units are configured to form a design drawing including equipment and / or pipelines.
2. The method for intelligent configuration and mapping of nuclear power process flow according to claim 1, characterized in that: The design scheme in step 1 at least includes: power plant system specification, flow chart, equipment specification, operation procedures, safety analysis report, and general specification; The design standards mentioned are the design requirements and standards for power plants; The design report includes at least: operation reports, annual reports, maintenance reports, and health reports related to the operation of different power plants.
3. The method for intelligent configuration and mapping of nuclear power process flow according to claim 1, characterized in that: The first selection logic in step 3 is: screening the reactor type, site conditions and power design to determine the target reactor.
4. The method for intelligent configuration and mapping of nuclear power process flow according to claim 1, characterized in that: In step 3, before determining the target stack, first select whether there is a reference power plant; if there is a reference power plant, directly generate the process configuration of the reference power plant; if there is no reference power plant, further determine the target stack based on the first selection logic.
5. The method for intelligent configuration and mapping of nuclear power process flow according to claim 1, characterized in that: The second selection logic in step 4 is: establishing selection criteria according to different objectives, and determining the technical route corresponding to the main functional module.
6. The method for intelligent configuration and mapping of nuclear power process flow according to claim 1, characterized in that: The third selection logic in step 5 is: selecting the pipeline design or equipment model of the functional unit according to the target working condition.
7. The method for intelligent configuration and mapping of nuclear power process flow according to claim 1, characterized in that: The knowledge base in step 1 has an expansion interface for adding new reactor types.
8. A computer program product, characterized in that The method comprises a computer program, which, when executed by a processor, implements the steps performed by a computer in the method according to any one of claims 1 to 7.
9. A computer-readable storage medium, characterized in that: A computer program is provided, which, when executed by a processor, implements the steps performed by a computer in the method according to any one of claims 1 to 7.
10. An intelligent configuration and mapping system, characterized in that: include: a memory capable of storing instructions executable by a processor; A processor capable of executing the instructions to implement the steps performed by a computer in the method according to any one of claims 1 to 7.