Reactor infiltration area parameterization calculation method, device, equipment and medium

By using parametric 3D modeling and automated calculation, the problems of large calculation errors and low efficiency in reactor wetting area calculation have been solved, achieving accurate and efficient wetting area calculation and dynamic data updates.

CN121031114APending Publication Date: 2025-11-28NUCLEAR POWER INSTITUTE OF CHINA
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Patent Information

Application Number
CN202511282936.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-09
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

Existing methods for calculating reactor infiltration area have large errors and low efficiency. Traditional simplified formulas ignore detailed structures, while 3D modeling calculations are complex, labor-intensive, and prone to errors.

Method used

By establishing a parameterized 3D model of the reactor structure, dividing it into zones and accumulating the wetting area, and using 3D modeling software for automatic calculation, combined with structured data display and engineering document output, the wetting area is dynamically updated.

Benefits of technology

It improves the accuracy and efficiency of immersion area calculation, simplifies the process, and ensures a single data source and immediate feedback for key parameters.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a reactor infiltration area parameterization calculation method, device and equipment and a medium, and relates to the technical field of reactor structure design, and the method comprises the following steps: constructing a reactor structure parameterization three-dimensional model; constructing a parameterized region segmentation interface, partitioning an inner cavity of the reactor structure parameterized three-dimensional model by using the parameterized region segmentation interface, and dynamically associating the parameterized region segmentation interface with the reactor structure parameterized three-dimensional model; checking and identifying an internal cavity of the reactor structure parameterized three-dimensional model, judging the surface area of the components in the partition range, taking the surface area as an input parameter for calculating the infiltration area, traversing modeling information of each component through three-dimensional modeling software according to material attributes of different components of the reactor structure parameterized three-dimensional model, and calculating the infiltration area of the components; and obtaining the infiltration area corresponding to each type of material of each component, forming a list, and calculating the infiltration area corresponding to each type of material or calculating the total infiltration area based on the list.
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Description

Technical Field

[0001] This application belongs to the field of reactor structure design technology, specifically relating to a method, apparatus, equipment, and medium for parameterizing the calculation of reactor wetting area. Background Technology

[0002] Reactor structures are complex. A typical reactor structure includes the reactor pressure vessel, reactor pressure vessel irradiation monitoring tube, reactor pressure vessel insulation, control rod drive mechanism, reactor top structure, in-core components, reactor support, and primary shielding structure. The disciplines involved include overall reactor structural design, reactor pressure vessel design, refueling process, control rod drive mechanism design, in-core component design, and reactor support and primary shielding design. Reactor structural design has numerous external interfaces with core physics, primary loop systems, nuclear instrumentation, fuel assemblies, thermal hydraulics, and mechanical analysis, enabling design collaboration among these disciplines.

[0003] Among them, the reactor wetting area is an important interface parameter for reactor structural design. It is often necessary to calculate the internal area of ​​the reactor body structure according to the given liquid level and different contact materials, and then provide the calculated wetting area values ​​corresponding to different materials as interface data to the relevant design calculations.

[0004] Traditional methods for calculating wetting area primarily simplify / abstract the complex container space, estimating the wetting area using relatively simple formulas. However, this method ignores many structural details, resulting in significant errors. Using 3D modeling software to calculate the wetting area is overly complex, leading to a large workload and low efficiency in manual operation, and is prone to errors. Therefore, there is an urgent need for a method to reduce wetting area calculation errors, improve work efficiency, and standardize the wetting area calculation process. Summary of the Invention

[0005] To address the problems existing in current methods for calculating infiltration area, this application provides a parameterized calculation method, apparatus, equipment, and medium for reactor infiltration area. This application establishes a parameterized three-dimensional model of the reactor structure, partitions the parameterized three-dimensional model, and classifies and accumulates the infiltration areas of different materials, thereby quickly and accurately obtaining the reactor structure infiltration area. The calculation process is standardized and simple.

[0006] This application is achieved through the following technical solution:

[0007] A method for parameterizing the calculation of reactor wetting area includes:

[0008] Construct a parameterized 3D model of the reactor structure;

[0009] A parameterized region segmentation interface is constructed, and the internal cavity of the parameterized three-dimensional model of the reactor structure is divided into partitions using the parameterized region segmentation interface. The parameterized region segmentation interface is then dynamically associated with the parameterized three-dimensional model of the reactor structure.

[0010] The internal cavities of the parameterized 3D model of the reactor structure are inspected and identified. At the same time, the surface area of ​​the components within the partition range is determined. The surface area is used as the input parameter for calculating the wetting area. Based on the material properties of different components in the parameterized 3D model of the reactor structure, the modeling information of each component is traversed through the 3D modeling software to obtain the wetting area corresponding to each type of material for each component, forming a list. Based on the list, the wetting area corresponding to each type of material or the total wetting area is calculated.

[0011] In some implementations, the method further includes:

[0012] The wetted area of ​​the reactor structure is stored in the attributes of the parameterized 3D model of the reactor structure according to the preset specifications and naming rules, and an attribute list is formed for display.

[0013] In some implementations, the method further includes:

[0014] The attribute list is dynamically associated with the three-dimensional model of the reactor structural parameters, so that the attribute list can be dynamically updated as the three-dimensional model of the reactor structural parameters changes.

[0015] In some implementations, the method further includes:

[0016] The attribute list is then converted into a corresponding project document for output.

[0017] In some implementations, the method further includes:

[0018] The engineering document is dynamically associated with the parameterized 3D model of the reactor structure, so that the engineering document data can be dynamically updated as the parameterized 3D model of the reactor structure changes.

[0019] In some implementations, the process of constructing the parameterized three-dimensional model of the reactor structure includes:

[0020] Based on the rules and order of reactor structural parameters, extract the key design parameters of the reactor structure;

[0021] The design process of key components in reactor structural design is analyzed. According to the design process, the corresponding design parameters are input in sequence to form a complete structural design dimension. Based on the structural design dimension, the parameterized three-dimensional model of the reactor structure is established.

[0022] In some implementations, the process of constructing the parameterized region segmentation interface includes:

[0023] The position, shape, and size of the parameterized region segmentation interface are defined by inputting parameters or selecting points, ensuring that the coolant level inside the reactor structure can be correctly marked by the parameterized region segmentation interface.

[0024] Secondly, this application proposes a reactor wetting area parameterization calculation device, comprising:

[0025] Model building unit, used to build a parameterized 3D model of the reactor structure;

[0026] A partitioning unit is used to construct a parameterized region segmentation interface, which is used to partition the internal cavity of the parameterized three-dimensional model of the reactor structure, and dynamically associates the parameterized region segmentation interface with the parameterized three-dimensional model of the reactor structure.

[0027] The calculation unit is used to check and identify the internal cavities of the parameterized 3D model of the reactor structure, and to determine the surface area of ​​the components within the partition range. The surface area is used as the input parameter for calculating the wetting area. Based on the material properties of different components of the parameterized 3D model of the reactor structure, the unit traverses the modeling information of each component through 3D modeling software to obtain the wetting area corresponding to each type of material of each component, forms a list, and calculates the wetting area corresponding to each type of material or the total wetting area based on the list.

[0028] In some embodiments, the device further includes:

[0029] The display unit is used to store the wetted area of ​​the reactor structure into the attributes of the parameterized three-dimensional model of the reactor structure according to preset specifications and naming rules, form an attribute list for display, and dynamically associate the attribute list with the parameterized three-dimensional model of the reactor structure.

[0030] In some embodiments, the device further includes:

[0031] The output unit is used to convert the attribute list into an engineering document for output, and to dynamically associate the engineering document with the parameterized three-dimensional model of the reactor structure.

[0032] Thirdly, this application proposes an electronic device including a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement any of the above-described methods for parameterizing the reactor wetting area.

[0033] Fourthly, this application proposes a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements any of the above-described methods for parameterizing reactor wetting area.

[0034] This application proposes a parameterized calculation method for reactor wetting area. First, a parameterized 3D model of the reactor structure is constructed. The internal cavity of this parameterized 3D model is divided into zones, and the wetting area of ​​different materials is accumulated for calculation, thus quickly and accurately obtaining the wetting area of ​​different materials. This wetting area calculation process is standardized and simplified. The method stores the wetting area as structured data for display and dynamically links it to the parameterized 3D model, ensuring that it can be dynamically updated as the 3D model changes. Furthermore, the method converts the structured data into an engineering document for output, using it as the sole data source for the wetting area parameter. The engineering document is dynamically linked to the parameterized 3D model, ensuring that the engineering document data is updated promptly as the 3D model changes, guaranteeing a single data source for the key parameter (wetting area), and improving design efficiency and accuracy.

[0035] Accordingly, the reactor wetting area parameterization calculation device, electronic device and computer-readable storage medium proposed in this application also have the same technical effects as described above. Attached Figure Description

[0036] The accompanying drawings, which are included to provide a further understanding of the embodiments of this application and form part of this application, do not constitute a limitation on the embodiments of this application. In the drawings:

[0037] Figure 1 This is a flowchart of the parameterized calculation method for reactor wetting area proposed in the embodiments of this application;

[0038] Figure 2 This is a schematic diagram of the reactor wetting area parameterization calculation device proposed in the embodiments of this application;

[0039] Figure 3 This is a schematic diagram of the reactor wetting area parameterization calculation system architecture proposed in the embodiments of this application;

[0040] Figure 4 This is a schematic diagram of the electronic device proposed in the embodiments of this application;

[0041] Figure 5 This is a schematic diagram of a computer-readable storage medium proposed in an embodiment of this application;

[0042] Figure reference numerals and corresponding component names:

[0043] 200 - Parametric computing device; 201 - Model building unit; 202 - Partitioning unit; 203 - Computation unit; 204 - Display unit; 205 - Output unit; 300 - Parametric computing system; 301 - Input device; 302 - Output device; 303 - Processor A; 304 - Memory A; 400 - Electronic device; 410 - Memory B; 420 - Processor B; 411 - Computer program A; 500 - Computer-readable storage medium; 511 - Computer program B. Detailed Implementation

[0044] In the following, the terms “comprising” or “may include” as used in the various embodiments of this application indicate the presence of a function, operation, or element of the invention and do not limit the addition of one or more functions, operations, or elements. Furthermore, as used in the various embodiments of this application, the terms “comprising,” “having,” and their cognates are intended only to indicate a specific feature, number, step, operation, element, component, or combination of the foregoing and should not be construed as primarily excluding the presence of one or more other features, numbers, steps, operations, elements, components, or combinations of the foregoing, or adding one or more combinations of the foregoing.

[0045] In various embodiments of this application, the expression "or" or "at least one of A and / or B" includes any combination or all combinations of the words listed simultaneously. For example, the expression "A or B" or "at least one of A and / or B" may include A, may include B, or may include both A and B.

[0046] The terms used in the various embodiments of this application (such as "first," "second," etc.) may modify various constituent elements in the various embodiments, but do not limit the corresponding constituent elements. For example, the above terms do not limit the order and / or importance of the elements. The above terms are only used for the purpose of distinguishing one element from other elements. For example, a first user device and a second user device refer to different user devices, although both are user devices. For example, without departing from the scope of the various embodiments of this application, a first element may be referred to as a second element, and similarly, a second element may be referred to as a first element.

[0047] It should be noted that if a description is made of "connecting" one component to another, then the first component can be directly connected to the second component, and a third component can be "connected" between the first and second components. Conversely, when a component is "directly connected" to another component, it can be understood that there is no third component between the first and second components.

[0048] The terminology used in the various embodiments of this application is for the purpose of describing particular embodiments only and is not intended to limit the various embodiments of this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by one of ordinary skill in the art to which the various embodiments of this application pertain. The terms (such as those defined in a generally used dictionary) are to be interpreted as having the same meaning as in the context of the relevant technical field and are not to be interpreted as having an idealized or overly formal meaning, unless clearly defined in the various embodiments of this application.

[0049] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the embodiments and accompanying drawings. The illustrative embodiments and descriptions of this application are only for explaining this application and are not intended to limit this application.

[0050] Traditional methods for calculating infiltration area primarily simplify / abstract the complex container space, estimating the infiltration area using relatively simple formulas. However, this method ignores many structural details, leading to significant calculation errors. Using 3D modeling software to determine the infiltration area is overly complex, resulting in a large workload and low efficiency during manual operation, and is prone to errors. To address these issues, this application proposes a parametric calculation method for reactor infiltration area. This method calculates the infiltration area through parametric modeling of the reactor structure's 3D model and automated classification and accumulation of infiltration areas from different materials. The calculation process is standardized and simplified. Compared to traditional manual 3D modeling for infiltration area calculation, this method is more standardized and easier to automate. Combined with program control, it provides real-time feedback on calculation information, significantly improving efficiency.

[0051] like Figure 1 As shown, the parameterized calculation method proposed in this application includes the following steps:

[0052] Step 110: Construct a parameterized 3D model of the reactor structure;

[0053] Step 120: Construct a parameterized region segmentation interface, use the parameterized region segmentation interface to partition the internal cavity of the parameterized 3D model of the reactor structure, and dynamically associate the parameterized region segmentation interface with the parameterized 3D model of the reactor structure.

[0054] Step 130: Inspect and identify the internal cavities of the parameterized 3D model of the reactor structure, and determine the surface area of ​​the components within the partition range. This surface area is used as the input parameter for calculating the wetting area. Based on the material properties of different components in the parameterized 3D model, the component modeling information is traversed through the 3D modeling software to obtain the wetting area corresponding to each type of material for each component, forming a list. The list can be used to accumulate data to calculate the wetting area corresponding to each type of material as needed, or the total wetting area can be obtained by accumulating the list.

[0055] Furthermore, the parameterized calculation method proposed in this application embodiment also includes:

[0056] The wetted area of ​​the reactor structure is specified according to certain standards and naming rules, such as "Wetted area value of XX component XX part XX material XX zone: XXX mm". 2 "The attributes of the parameterized 3D model of the reactor structure are stored, forming an attribute list for display, and this attribute list is dynamically linked to the parameterized 3D model of the reactor structure. This enables structured display of the infiltration area, which can be dynamically updated as the model changes."

[0057] Furthermore, the parameterized calculation method proposed in this application embodiment also includes:

[0058] Using the attribute list as the sole output channel for reactor structure wetting area parameters, the attribute list can be automatically output as a corresponding engineering document, and this engineering document can be dynamically linked to the parameterized 3D model of the reactor structure. This allows the document data to be dynamically updated as the parameterized 3D model of the reactor structure changes, ensuring a single data source for key parameters and improving design efficiency and accuracy.

[0059] Furthermore, in step 110 of this application embodiment, the process of constructing the parameterized three-dimensional model of the reactor structure includes:

[0060] Based on the rules and order of reactor structural parameters, extract key design parameters of the reactor structure, such as the height of the active section in the core and the inner diameter of the pressure vessel.

[0061] The design process of key components in reactor structural design is analyzed. Parametric custom template technology (such as PTS (Product Template Studio) template in NX software) is adopted. The corresponding design parameters are entered in sequence according to the design process in the input interface, and finally the complete structural design dimensions are formed. Based on the structural design dimensions, the parametric three-dimensional model of the reactor structure is established.

[0062] Furthermore, in step 120 of this application embodiment, the position, shape, and size of the parameterized region segmentation interface can be defined by inputting parameters or selecting points on the interface to ensure that the coolant level inside the reactor structure can be correctly marked by the segmentation interface.

[0063] Simultaneously, the constructed parameterized region segmentation interface is dynamically linked with the parameterized 3D model of the reactor structure to ensure that the position and size of the liquid level height interface (i.e., the parameterized region segmentation interface) can adaptively change after the 3D model changes.

[0064] The parameterized calculation method for reactor wetting area proposed in this application first constructs a parameterized three-dimensional model of the reactor structure, divides the internal cavity of the parameterized three-dimensional model into partitions, and performs cumulative calculation of the wetting area of ​​different materials, thereby quickly and accurately obtaining the wetting area of ​​different materials. This wetting area calculation process is standardized and simplified. The method stores the wetting area as structured data for display and dynamically associates it with the parameterized three-dimensional model to ensure that it can be dynamically updated as the three-dimensional model changes. In addition, the method converts the structured data into engineering documents for output, which serve as the sole data source for the wetting area parameter. The engineering documents are dynamically associated with the parameterized three-dimensional model to ensure that the engineering document data can be updated in a timely manner as the three-dimensional model changes, ensuring a single data source for the key parameter (wetting area) and improving design efficiency and accuracy.

[0065] Based on the same technical concept described above, this application also proposes a device for parameterizing the reactor wetting area, such as... Figure 2 As shown, the parameterized computing device 200 proposed in this application embodiment includes:

[0066] Model building unit 201 is used to build a parameterized 3D model of the reactor structure. The specific process of building the parameterized 3D model of the reactor structure is as described in step 110 above, and will not be repeated here.

[0067] Partitioning unit 202 constructs a parameterized region segmentation interface. This interface is used to partition the internal cavities of the parameterized 3D model of the reactor structure, and the parameterized region segmentation interface is dynamically linked to the parameterized 3D model of the reactor structure. The specific process of constructing the parameterized region segmentation interface is as described in step 120 above, and will not be repeated here.

[0068] Additionally, calculation unit 203 is used to inspect and identify the internal cavities of the parameterized 3D model of the reactor structure, extract the cavity geometric parameters, determine the surface area of ​​components within the partition range, and obtain the total wetting area by summing the data from a list based on the material properties of different components in the parameterized 3D model, thus obtaining the wetting area of ​​different materials. The specific wetting area calculation process is as described in step 130 above, and will not be repeated here.

[0069] Furthermore, the parameterized calculation device 200 proposed in this application embodiment also includes:

[0070] Display unit 204 is used to store the required reactor structure wetting area into the attributes of the parameterized 3D model of the reactor structure according to certain specifications and naming rules, forming an attribute list for display, and dynamically associating this attribute list with the parameterized 3D model of the reactor structure. This enables structured data display of the wetting area, which can be dynamically updated as the model changes.

[0071] Furthermore, the parameterized calculation device 200 proposed in this application embodiment also includes:

[0072] Output unit 205 automatically outputs the attribute list as a corresponding engineering document and dynamically associates the engineering document with the parameterized 3D model of the reactor structure. This allows the document data to be dynamically updated as the parameterized 3D model of the reactor structure changes, ensuring a single data source for key parameters and improving design efficiency and accuracy.

[0073] Furthermore, the model building unit 201 in this embodiment is configured to perform the following steps:

[0074] Based on the rules and order of reactor structural parameters, extract key design parameters of the reactor structure, such as the height of the active section in the core and the inner diameter of the pressure vessel.

[0075] The design process of key components in reactor structural design is analyzed. Parametric custom template technology (such as NX PTS template) is adopted. The corresponding design parameters are input in sequence according to the design process in the input interface, and finally the complete structural design dimensions are formed. Based on the structural design dimensions, the parametric three-dimensional model of the reactor structure is established.

[0076] Furthermore, the partitioning unit 202 in this embodiment is configured to perform the following steps:

[0077] The position, shape, and size of the parameterized region segmentation interface can be defined by inputting parameters or selecting points in the interface, ensuring that the coolant level inside the reactor structure can be correctly marked by the segmentation interface.

[0078] Furthermore, the computing unit 203 in this embodiment is configured to perform the following steps:

[0079] Software modules such as NX Internal Space Analyzer or Caddoctor can be used to inspect and identify cavities inside the 3D model.

[0080] Based on the same technical concept described above, this application also proposes a parameterized calculation system for reactor wetting area, such as... Figure 3 As shown, the parameterized calculation system 300 proposed in this application includes:

[0081] The system comprises an input device 301, an output device 302, a processor A303, and a memory A304; wherein the number of processors A303 and memory A304 can be one or more. Figure 3 The following description uses a processor A303 and a memory A304 as an example. The input device 301, output device 302, processor A303, and memory A304 can be connected via a bus or other means. Figure 3 Taking the example of a connection between China and Israel via a bus.

[0082] Specifically, by calling the operation instructions stored in memory A304, processor A303 executes the following steps:

[0083] Construct a parameterized 3D model of the reactor structure;

[0084] A parameterized region segmentation interface is constructed, which is used to partition the internal cavity of the parameterized 3D model of the reactor structure, and the parameterized region segmentation interface is dynamically associated with the parameterized 3D model of the reactor structure.

[0085] The internal cavities of the parameterized 3D model of the reactor structure are inspected and identified, and the geometric parameters of the cavities are extracted. At the same time, the surface area of ​​the components within the partition is determined, and the total wetting area is obtained by summing the different components in the parameterized 3D model through a list, thus obtaining the wetting area of ​​different materials.

[0086] Optionally, by calling the operation instructions stored in memory A304, processor A303 is also used to execute any of the embodiments in the corresponding examples of the above-described parameterized calculation method.

[0087] Based on the same technical concept described above, this application also proposes an electronic device, such as... Figure 4 As shown, the electronic device 400 includes: a memory B410, a processor B420, and a computer program A411 stored in the memory B410 and executable on the processor B420. When the processor B420 executes the computer program A411, it performs the following steps:

[0088] Construct a parameterized 3D model of the reactor structure;

[0089] A parameterized region segmentation interface is constructed, which is used to partition the internal cavity of the parameterized 3D model of the reactor structure, and the parameterized region segmentation interface is dynamically associated with the parameterized 3D model of the reactor structure.

[0090] The internal cavities of the parameterized 3D model of the reactor structure are inspected and identified, and the geometric parameters of the cavities are extracted. At the same time, the surface area of ​​the components within the partition is determined, and the total wetting area is obtained by summing the different components in the parameterized 3D model through a list, thus obtaining the wetting area of ​​different materials.

[0091] Optionally, when processor B420 executes computer program A411, it can implement any of the embodiments in the corresponding examples of the parameterized calculation method described above.

[0092] It should be noted that the electronic device proposed in this application embodiment is a device used to implement the above-described parameterized calculation method. Therefore, based on the above-described parameterized calculation method proposed in this application embodiment, those skilled in the art can understand the specific implementation method and various variations of the electronic device in this application embodiment. Therefore, the specific implementation method of the above-described parameterized calculation method will not be described in detail here. Any electronic device used by those skilled in the art to implement the above-described parameterized calculation method is within the scope of protection of this application.

[0093] Based on the same technical concept described above, embodiments of this application also propose a computer-readable storage medium, such as... Figure 5 As shown, the computer-readable storage medium 500 stores a computer program B511, which, when executed by a processor, performs the following steps:

[0094] Construct a parameterized 3D model of the reactor structure;

[0095] A parameterized region segmentation interface is constructed, which is used to partition the internal cavity of the parameterized 3D model of the reactor structure, and the parameterized region segmentation interface is dynamically associated with the parameterized 3D model of the reactor structure.

[0096] The internal cavities of the parameterized 3D model of the reactor structure are inspected and identified, and the geometric parameters of the cavities are extracted. At the same time, the surface area of ​​the components within the partition is determined, and the total wetting area is obtained by summing the different components in the parameterized 3D model through a list, thus obtaining the wetting area of ​​different materials.

[0097] Optionally, when the computer program B511 is executed by the processor, it can implement any of the embodiments corresponding to the above-described parameterized calculation method.

[0098] It should be noted that the descriptions of each embodiment in the above embodiments have different focuses. For parts that are not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0099] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program products. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0100] This application is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of this application. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the flowchart... Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.

[0101] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.

[0102] These computer program instructions may also be loaded onto a computer or other programmable data processing equipment to cause a series of operational steps to be performed on the computer or other programmable equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.

[0103] The specific embodiments described above further illustrate the purpose, technical solution, and beneficial effects of this application. It should be understood that the above description is only a specific embodiment of this application and is not intended to limit the scope of protection of this application. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application.

Claims

1. A method for parameterizing the calculation of reactor wetting area, characterized in that, include: Construct a parameterized 3D model of the reactor structure; A parameterized region segmentation interface is constructed, and the internal cavity of the parameterized three-dimensional model of the reactor structure is divided into partitions using the parameterized region segmentation interface. The parameterized region segmentation interface is then dynamically associated with the parameterized three-dimensional model of the reactor structure. The internal cavities of the parameterized 3D model of the reactor structure are inspected and identified. At the same time, the surface area of ​​the components within the partition range is determined. The surface area is used as the input parameter for calculating the wetting area. Based on the material properties of different components in the parameterized 3D model of the reactor structure, the modeling information of each component is traversed through the 3D modeling software to obtain the wetting area corresponding to each type of material for each component, forming a list. Based on the list, the wetting area corresponding to each type of material or the total wetting area is calculated.

2. The method for parameterizing the reactor wetting area according to claim 1, characterized in that, Also includes: The wetted area of ​​the reactor structure is stored in the attributes of the parameterized 3D model of the reactor structure according to the preset specifications and naming rules, and an attribute list is formed for display.

3. The method for parameterizing the reactor wetting area according to claim 2, characterized in that, Also includes: The attribute list is dynamically associated with the three-dimensional model of the reactor structural parameters, so that the attribute list can be dynamically updated as the three-dimensional model of the reactor structural parameters changes.

4. The method for parameterizing the reactor wetting area according to claim 2, characterized in that, Also includes: The attribute list is then converted into a corresponding project document for output.

5. The method for parameterizing the reactor wetting area according to claim 5, characterized in that, Also includes: The engineering document is dynamically associated with the parameterized 3D model of the reactor structure, so that the engineering document data can be dynamically updated as the parameterized 3D model of the reactor structure changes.

6. A method for parameterizing the reactor wetting area according to any one of claims 1-5, characterized in that, The process of constructing the parameterized three-dimensional model of the reactor structure includes: Based on the rules and order of reactor structural parameters, extract the key design parameters of the reactor structure; The design process of key components in reactor structural design is analyzed. According to the design process, the corresponding design parameters are input in sequence to form a complete structural design dimension. Based on the structural design dimension, a parametric three-dimensional model of the reactor structure is established.

7. A method for parameterizing the reactor wetting area according to any one of claims 1-5, characterized in that, The construction process of the parameterized region segmentation interface includes: The position, shape, and size of the parameterized region segmentation interface are defined by inputting parameters or selecting points, ensuring that the coolant level inside the reactor structure can be correctly marked by the parameterized region segmentation interface.

8. A device for parameterizing and calculating the wetted area of ​​a reactor, characterized in that, include: Model building unit, used to build a parameterized 3D model of the reactor structure; A partitioning unit is used to construct a parameterized region segmentation interface, which is used to partition the internal cavity of the parameterized three-dimensional model of the reactor structure, and dynamically associates the parameterized region segmentation interface with the parameterized three-dimensional model of the reactor structure. The calculation unit is used to check and identify the internal cavities of the parameterized 3D model of the reactor structure, and to determine the surface area of ​​the components within the partition range. The surface area is used as the input parameter for calculating the wetting area. Based on the material properties of different components of the parameterized 3D model of the reactor structure, the unit traverses the modeling information of each component through 3D modeling software to obtain the wetting area corresponding to each type of material of each component, forms a list, and calculates the wetting area corresponding to each type of material or the total wetting area based on the list.

9. The reactor wetting area parameterization calculation device according to claim 8, characterized in that, Also includes: The display unit is used to store the reactor structure wetting area into the attributes of the parameterized three-dimensional model of the reactor structure according to preset specifications and naming rules, form an attribute list for display, and dynamically associate the attribute list with the parameterized three-dimensional model of the reactor structure.

10. The reactor wetting area parameterization calculation device according to claim 9, characterized in that, Also includes: The output unit is used to convert the attribute list into an engineering document for output, and to dynamically associate the engineering document with the parameterized three-dimensional model of the reactor structure.

11. An electronic device comprising a memory and a processor, wherein the memory stores a computer program, characterized in that, When the processor executes the computer program, it implements the reactor wetting area parameterization calculation method according to any one of claims 1-7.

12. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the reactor wetting area parameterization calculation method according to any one of claims 1-7.