Circulation method and device of nuclear engineering three-dimensional model and related equipment
Through an automated review mechanism, the 3D models delivered by nuclear power design and construction departments are circulated in a standardized manner, solving the problems of low efficiency in the delivery of nuclear engineering 3D models and file loss, and ensuring the smooth progress of nuclear power plant construction.
Patent Information
- Application Number
- CN202510838725.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-23
- Publication Date
- 2025-09-23
AI Technical Summary
The existing delivery process of nuclear engineering 3D models suffers from low delivery efficiency and file loss, which affects the construction efficiency of nuclear power plants.
Through the automated review mechanism, the first and second preset standards are used to review the design plans delivered by the nuclear power design department and the construction department to ensure that the file names match and the content meets the standards before delivery, realizing automated circulation.
It improves the delivery efficiency of nuclear engineering 3D models, reduces the risk of file loss, and ensures the smooth progress of nuclear power plant construction.
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Figure CN120689005A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of nuclear engineering technology, and in particular to a method, device and related equipment for circulating a three-dimensional model of a nuclear engineering. Background Art
[0002] In existing technologies, nuclear engineering mainly includes the steps of designing, building, operating and managing nuclear power plants, and therefore usually requires the collaboration of nuclear power design departments and nuclear power construction departments. Among them, the nuclear power design department is responsible for designing the three-dimensional model of the nuclear engineering project, and the nuclear power construction department is responsible for constructing the nuclear power plant based on the three-dimensional model of the nuclear power plant.
[0003] In actual operation, after the nuclear power design department completes the design of the nuclear engineering 3D model, it needs to deliver the massive 3D model files corresponding to the nuclear engineering 3D model to the nuclear power construction department. The nuclear power construction department then loads the massive 3D model files to obtain the 3D model of the nuclear power plant. Only then can the nuclear power construction department construct the nuclear power plant based on the 3D model.
[0004] In actual applications, the number of 3D model files corresponding to nuclear engineering 3D models is too large, which easily leads to problems such as low delivery efficiency and file loss, which may ultimately affect the construction efficiency of nuclear power plants. Summary of the Invention
[0005] In view of this, the purpose of this application is to provide a method, device and equipment for circulating nuclear engineering three-dimensional models to solve the problems of low delivery efficiency and file loss in the existing nuclear engineering three-dimensional model delivery process.
[0006] In a first aspect, the present application provides a method for circulating a nuclear engineering three-dimensional model, the method comprising: In response to receiving a first design solution of a nuclear engineering three-dimensional model delivered by a nuclear power design department, reviewing the first design solution using a first preset standard; If the review result of the first design plan is passed, the first design plan is delivered to the nuclear power construction department, so that the nuclear power construction department can supplement the first design plan to obtain a second design plan; In response to receiving the second design plan delivered by the nuclear power construction department, reviewing the second design plan using a second preset standard; If the review result of the second design plan is passed, the second design plan will be delivered to the nuclear power design department.
[0007] In a second aspect, the present application provides a circulation device for a nuclear engineering three-dimensional model, the device comprising: a first review module, a first delivery module, a second review module, and a second delivery module; The first review module is configured to review the first design solution of the nuclear engineering three-dimensional model delivered by the nuclear power design department using a first preset standard; The first delivery module is configured to deliver the first design solution to the nuclear power construction department if the review result of the first design solution is passed, so that the nuclear power construction department can supplement the first design solution to obtain a second design solution; The second review module is configured to review the second design scheme according to a second preset standard in response to receiving the second design scheme delivered by the nuclear power construction department; The second delivery module is used to deliver the second design scheme to the nuclear power design department if the review result of the second design scheme is passed.
[0008] In a third aspect, the present application provides an electronic device comprising a processor and a memory, wherein the memory is used to store an application program, and the processor runs or executes a software program stored in the memory so that the electronic device implements the above-mentioned method for circulating a three-dimensional model of nuclear engineering.
[0009] In a fourth aspect, the present application provides a computer-readable storage medium, which is used to store program codes executed by a processor, and the program codes are used to implement the above-mentioned method for circulating nuclear engineering three-dimensional models.
[0010] In a fifth aspect, the present application provides a computer program product, which includes computer instructions. When the computer instructions are run on an electronic device, the electronic device implements the above-mentioned method for circulating the three-dimensional model of nuclear engineering.
[0011] Beneficial effects: The present application provides a method for circulating a three-dimensional model of a nuclear engineering project, the method comprising: in response to receiving a first design scheme of a three-dimensional model of a nuclear engineering project delivered by a nuclear power design department, reviewing the first design scheme according to a first preset standard; if the review result of the first design scheme is passed, delivering the first design scheme to the nuclear power construction department, so that the nuclear power construction department can supplement the first design scheme to obtain a second design scheme; in response to receiving a second design scheme delivered by the nuclear power construction department, reviewing the second design scheme according to a second preset standard; if the review result of the second design scheme is passed, delivering the second design scheme to the nuclear power design department; in summary, the method for circulating a three-dimensional model of a nuclear engineering project provided by the present application can automatically review the three-dimensional model of a nuclear engineering project during its circulation process, without the need for paper documents. Therefore, the present application solves the problems of low delivery efficiency and file loss in the existing delivery process of three-dimensional models of nuclear engineering. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments of the present application. The following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.
[0013] Figure 1 A schematic diagram of a flow chart of a method for circulating a nuclear engineering three-dimensional model provided in an embodiment of the present application; Figure 2 A schematic structural diagram of a circulation device for a nuclear engineering three-dimensional model provided in an embodiment of the present application. DETAILED DESCRIPTION
[0014] To make the purpose, technical solutions, and advantages of the embodiments of this application more clear, the technical solutions of this application will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the embodiments described are part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0015] First, this application provides a method for circulating a nuclear engineering three-dimensional model, such as Figure 1 As shown, Figure 1 The flow diagram of the method for circulating a nuclear engineering three-dimensional model provided in an embodiment of the present application includes: S110 to S140, and the details are as follows: S110: In response to receiving a first design solution of a nuclear engineering three-dimensional model delivered by a nuclear power design department, reviewing the first design solution using a first preset standard.
[0016] Specifically, in the embodiments of the present application, "nuclear engineering" refers to the engineering project of building a nuclear power plant; the "nuclear engineering three-dimensional model" is usually a three-dimensional model of a nuclear power plant. In actual operation, the "nuclear engineering three-dimensional model" may also include other structures related to the nuclear power plant, and this application does not make specific limitations on this; the nuclear power design department refers to the enterprise or institution that designs the nuclear engineering three-dimensional model, and the nuclear power construction department is the enterprise or institution that implements the nuclear engineering based on the nuclear engineering three-dimensional model; the first preset standard is the rules and requirements formulated for the review of the first design plan.
[0017] In actual operation, the nuclear engineering 3D model is not entirely designed by the nuclear power design department. The nuclear power design department is mainly responsible for designing most of the components in the nuclear engineering 3D model, including core components such as reactor pressure vessels and steam generators. The nuclear power construction department is mainly responsible for designing some pipelines in the nuclear engineering 3D model based on factors such as the terrain of the nuclear power plant construction site.
[0018] In actual operation, when the nuclear power design department delivers the three-dimensional model of the nuclear engineering project it is responsible for designing to the nuclear power construction department, and when the nuclear power construction department delivers the three-dimensional model of the nuclear engineering project it designed to the nuclear power design department, they will both conduct an audit. However, in the existing technology, the audit is all conducted manually. However, the circulation method of the nuclear engineering three-dimensional model provided in the embodiment of the present application can realize the automatic audit of the nuclear engineering three-dimensional model during the above process.
[0019] In actual operation, after the nuclear power design department completes the preliminary design of the nuclear engineering three-dimensional model, it will generate a first design plan containing all the design details and parameters of the model; after receiving the first design plan through information management systems, email and other channels, the first design plan will be stored in a designated storage location and the review process will be triggered.
[0020] In one implementation, the first design scheme includes: a plurality of first folders and a plurality of first detailed lists regarding the nuclear engineering three-dimensional model, wherein the plurality of first folders and the plurality of first detailed lists are in one-to-one correspondence; S110 includes: steps (1) to (2), the details of which are as follows: Step (1): According to the name of the first folder, determine the first target detailed list corresponding to each first folder in the plurality of first detailed lists.
[0021] Specifically, in actual operation, since the files corresponding to the nuclear engineering three-dimensional model are massive, they must be stored in a classified manner, that is, stored in multiple first folders respectively; among them, the first folders can be used to store the three-dimensional model files of each component according to its importance in the nuclear engineering three-dimensional model, or they can be used to store the three-dimensional model files of each component according to the installation location of the nuclear engineering three-dimensional model; the setting principle of the first folder can be determined according to actual needs, and this application does not make specific restrictions on this.
[0022] In an embodiment of the present application, in the first design scheme of the nuclear engineering three-dimensional model, there are multiple first folders and multiple first detailed lists, and the two are not in a one-to-one correspondence. One first folder may correspond to multiple first detailed lists. The purpose of step (1) is to accurately and quickly find at least one first target detailed list corresponding to the first folder in the multiple first detailed lists through the name of the first folder, paving the way for subsequent file proofreading work. The "first target detailed list" refers to the first detailed list that records the names of multiple three-dimensional model files included in the first folder corresponding to the "first target detailed list".
[0023] In actual operation, the name of the first folder and the name of the first detailed list correspond to each other. Therefore, according to the "correspondence between the name of the first folder and the name of the first detailed list", the name of the first folder and the name of the first detailed list can be matched one by one with the names of multiple first folders and multiple first detailed lists, and finally the first target detailed list corresponding to each first folder is obtained; among them, since the files corresponding to the nuclear engineering three-dimensional model are massive, the corresponding folders are also huge, so the above-mentioned "matching one by one between the names of multiple first folders and multiple first detailed lists" is automatically executed; in actual operation, the "correspondence between the names of the first folders and the names of the first detailed lists" is pre-configured.
[0024] In one implementation, the first folder includes: a first pipeline folder, a first ventilation folder, a first electrical folder, and a first instrument folder; step (1) includes: step (1.1), details of which are as follows: Step (1.1): According to the names of the first pipeline folder, the first ventilation folder, the first electrical folder, and the first instrument folder, determine the first target detail table corresponding to the first pipeline folder, the first ventilation folder, the first electrical folder, and the first instrument folder in the plurality of first detail tables.
[0025] The first target detailed tables corresponding to the first pipe folder include: basic pipe information table, isometric drawing material table, isometric drawing pipe section table, isometric drawing corresponding weld table, and isometric drawing corresponding bolting table. The first target detailed tables corresponding to the first ventilation folder include: ventilation duct basic information table, ventilation duct material table, and ventilation duct accessory table. The first target detailed tables corresponding to the first electrical folder include: primary and secondary pallet basic information table and primary pallet material table. The first target detailed tables corresponding to the first instrument folder include: pipeline summary material table, pipeline component material table, pipeline attribute table, and pipeline straight pipe segment table.
[0026] Specifically, in practice, nuclear engineering 3D models require clear 3D model data standards and minimum construction unit standards, which are then used as a foundation for their creation. Nuclear engineering 3D models must meet requirements for equipment and material scheduling and engineering construction needs. The minimum construction unit standard is broken down based on the application requirements of nuclear power project construction, taking into account application needs during the construction process. It defines the smallest level of 3D model units used for construction site management and guidance.
[0027] In an embodiment of the present application, the first folder includes a first pipeline folder, a first ventilation folder, a first electrical folder, and a first instrument folder. The above-mentioned first folder is the basic classification unit for subsequently determining the first target detailed list.
[0028] Based on the names of the first pipe folder, the first ventilation folder, the first electrical folder, and the first instrument folder, multiple first detail lists are searched and matched. Through a clear folder classification and name matching mechanism, the required detail list can be quickly and accurately located, avoiding blind searching through large amounts of data and significantly improving data management efficiency. This folder name-based matching method reduces errors caused by human factors, ensures that the determined first target detail list is consistent with actual needs, and improves data accuracy.
[0029] The pipeline basic information table is used to record the basic attribute information of the pipeline, such as pipeline number, specification, material, length, etc., to provide basic data support for the management and maintenance of the pipeline; the isometric drawing material table is used to record the material information related to the isometric drawing, such as material name, model, quantity, etc., which helps to understand the materials used in the isometric drawing; the isometric drawing pipe section table is used to record the pipe section information of the isometric drawing in detail, including the pipe section number, position, connection method, etc., to facilitate the accurate management of the pipe section of the isometric drawing; the isometric drawing corresponding weld table is used to record the relevant information of the weld in the isometric drawing, such as weld number, welding process, test results, etc., which is of great significance for ensuring the quality of pipeline welding; the isometric drawing corresponding bolting table is used to record the information related to the bolting of the isometric drawing, such as bolting type, specification, installation position, etc., which helps to manage and maintain the bolting part.
[0030] The ventilation duct basic information table is used to record and store the basic information of the ventilation duct, such as duct diameter, air volume, wind speed, etc., to provide data basis for the design and operation of ventilation components; the ventilation duct material table is used to record and list the material information used in the ventilation duct, such as material name, supplier, price, etc., which helps to control the cost and quality of ventilation components; the ventilation duct accessory table is used to record the accessory information of the ventilation duct, such as accessory name, model, installation location, etc., to facilitate the management and maintenance of the accessories of the ventilation components.
[0031] The main and secondary pallet basic information table is used to record the basic information of the main and secondary pallets, such as pallet number, specifications, load capacity, etc., to provide basic data for the wiring of the electrical system and equipment installation; the main pallet material table is used to record the material information used in the main pallet, such as material name, material, performance, etc., to help select the appropriate main pallet material.
[0032] The pipeline summary material table is used to record and summarize the instrument material information related to the pipeline, such as material name, quantity, purpose, etc., to facilitate unified management of pipeline instrument materials; the pipeline component material table is used to record and list the material information of pipeline components, such as component name, specification, material, etc., to facilitate accurate management of pipeline components; the pipeline attribute table is used to record various attribute information of the pipeline, such as pipeline type, working pressure, temperature range, etc., to provide a reference for pipeline design and use; pipeline straight pipe section: may contain relevant information of the straight pipe section, such as the straight pipe section length, connection method, etc., to facilitate the management and maintenance of the pipeline straight pipe section.
[0033] Step (2): Check whether the names of the multiple three-dimensional model files included in each first folder are consistent with the names of the multiple three-dimensional model files recorded in the first target detailed list.
[0034] Specifically, after determining the correspondence between the first folder and the first target detailed list, it is necessary to subsequently proofread the names of the multiple three-dimensional model files contained in the first folder to ensure that the names of the three-dimensional model files in each first folder correspond to the names of the three-dimensional model files recorded in the first target detailed list; wherein, it is necessary to traverse each first folder to clarify the names of the multiple three-dimensional model files included in each first folder.
[0035] In one implementation, step (2) includes: step (2.1) to step (2.3), the details of which are as follows: Step (2.1): according to a preset name translation rule, the names of the multiple three-dimensional model files included in the first folder are translated into target names.
[0036] Specifically, in the embodiment of the present application, the target name refers to a name translated from the name of the three-dimensional model file included in the first folder.
[0037] In actual operation, the nuclear power design department and the nuclear power construction department may have different naming rules for the three-dimensional model files obtained from their designs due to work requirements; for example, the names of the three-dimensional model files are named using letters and numbers, but the names of the three-dimensional model files recorded in the detailed list are named using Chinese characters, so the names of the multiple three-dimensional model files included in the first folder need to be translated into target names.
[0038] Step (2.2): Check whether the names of the multiple three-dimensional model files recorded in each first target detailed list are consistent with the target names of the multiple three-dimensional model files included in the first folder.
[0039] Specifically, in the embodiment of the present application, "providing proofreading" refers to the process of determining whether the names of the multiple three-dimensional model files recorded in each first target detailed list and the target names of the multiple three-dimensional model files included in the folder are the same.
[0040] Step (2.3): If the proofreading fails, an alarm is issued based on the fact that the names of the multiple three-dimensional model files in the first folder do not match the multiple three-dimensional model files recorded in the first target detailed list.
[0041] Specifically, if the proofreading fails, an alarm is determined based on the reason for "proofreading failure".
[0042] For example, if the first folder contains "Wall_1_v1", but the three-dimensional model file is not recorded in the first target detailed list, a "missing file alarm" is determined; if the first target detailed list records "Wall_1_v1", but the first folder does not contain the file, a "redundant file alarm" is determined; if the name "Wall_1_v2" recorded in the first target detailed list is inconsistent with the target name "Wall_1_v1", a name error alarm is determined.
[0043] In one implementation, before step (2.1), the method further includes: steps (3) to (4), the details of which are as follows: Step (3): Determine whether the updated name translation rules are received.
[0044] Specifically, in an embodiment of the present application, before executing the proofreading task for the name of the three-dimensional model file, it is necessary to dynamically check whether there is an update to the name translation rule to ensure that the current name translation rule can be used to translate the names of the multiple three-dimensional model files included in the first folder into target names.
[0045] In actual operation, the "updated name translation rules" can be sent by the nuclear power design department along with the first folder, or can be sent separately. The specific situation can be determined based on actual conditions, and this application does not make any specific restrictions on this.
[0046] Step (4): If it is determined that an updated name translation rule has been received, the currently used name translation rule is updated using the updated name translation rule.
[0047] Specifically, when it is determined that an updated name translation rule has been received, a rule update operation needs to be performed to ensure that subsequent name translation processes use the latest name translation rule. In actual operation, it can be verified whether the updated name translation rule introduces fields that are not supported by the non-updated name translation rule.
[0048] S120: If the review result of the first design plan is passed, the first design plan is delivered to the nuclear power construction department, so that the nuclear power construction department can supplement the first design plan to obtain a second design plan.
[0049] Specifically, in an embodiment of the present application, a first audit report will be generated after the review of the first design scheme is completed. The first audit report will indicate whether the review of the first design scheme is passed; if the first audit report indicates that the first design scheme meets the first preset standard, the audit result will be judged as passed; if the first audit report indicates that the first design scheme does not meet the first preset standard, the audit result will be judged as failed.
[0050] In practice, if the review result is passed, the first design plan will be delivered to the nuclear power construction department. The delivery method can be through information management systems, email, or other channels. After receiving the first design plan, the nuclear power construction department will supplement and improve the first design plan based on actual construction needs and on-site conditions to obtain a second design plan.
[0051] S130: In response to receiving the second design plan delivered by the nuclear power construction department, reviewing the second design plan according to a second preset standard.
[0052] Specifically, in the embodiment of the present application, the second preset standard is the rules and requirements formulated for the review of the second design solution.
[0053] In actual operation, when the nuclear power construction department completes the supplement to the first design plan and obtains the second design plan, the nuclear power construction department delivers it to the nuclear power design department. The way the nuclear power design department receives the second design plan is similar to the way the nuclear power construction department receives the first design plan, and will not be repeated here.
[0054] In the embodiment of the present application, the process of reviewing the second design solution can refer to the process of reviewing the first design solution, and will not be repeated here.
[0055] S140: If the review result of the second design plan is passed, the second design plan will be delivered to the nuclear power design department.
[0056] Specifically, in an embodiment of the present application, a second audit report will be generated after the review of the second design scheme is completed. The second audit report will indicate whether the review of the second design scheme is passed; if the second audit report indicates that the second design scheme meets the second preset standard, the audit result will be judged as passed; if the second audit report indicates that the second design scheme does not meet the first preset standard, the audit result will be judged as failed.
[0057] In practice, if the review results in a favorable outcome, the second design plan will be delivered to the nuclear power design department. This delivery can be through information management systems, email, or other channels. Upon receipt, the nuclear power design department will conduct further review of the second design plan. If the review is favorable, the nuclear power construction department will proceed with construction of the nuclear power plant according to the second design plan. If the review is unfavorable, the two departments will negotiate on the review outcome.
[0058] Second, this application provides a circulation device for a nuclear engineering three-dimensional model, such as Figure 2 As shown, Figure 2 A schematic diagram of the structure of a circulation device for a nuclear engineering three-dimensional model provided in an embodiment of the present application, the device comprising: a first review module 210, a first delivery module 220, a second review module 230, and a second delivery module 240; A first review module 210 is configured to review the first design solution of the nuclear engineering three-dimensional model delivered by the nuclear power design department using a first preset standard; The first delivery module 220 is configured to deliver the first design solution to the nuclear power construction department if the review result of the first design solution is passed, so that the nuclear power construction department can supplement the first design solution to obtain a second design solution; The second review module 230 is configured to review the second design solution delivered by the nuclear power construction department according to a second preset standard; The second delivery module 240 is configured to deliver the second design solution to the nuclear power design department if the review result of the second design solution is passed.
[0059] In one implementation, the first design solution includes: a plurality of first folders and a plurality of first detailed lists regarding a nuclear engineering three-dimensional model; the first review module 210 is further configured to determine, based on the names of the first folders, a first target detailed list corresponding to each first folder in the plurality of first detailed lists; The first review module 210 is further configured to check whether the names of the multiple 3D model files included in each first folder are consistent with the names of the multiple 3D model files recorded in the first target detailed list.
[0060] In one implementation, the first folder includes: a first pipeline folder, a first ventilation folder, a first electrical folder and a first instrument folder; the first review module 210 is also used to determine the first target detailed list corresponding to the first pipeline folder, the first ventilation folder, the first electrical folder and the first instrument folder in multiple first detailed lists based on the names of the first pipeline folder, the first ventilation folder, the first electrical folder and the first instrument folder.
[0061] In one implementation, the first target detailed table corresponding to the first pipeline folder includes: a pipeline basic information table, an isometric drawing material table, an isometric drawing pipe section table, an isometric drawing corresponding weld table, and an isometric drawing corresponding bolting table; The first target detailed list corresponding to the first ventilation folder includes: a ventilation duct basic information list, a ventilation duct material list, and a ventilation duct accessory list; The first target detailed list corresponding to the first electrical folder includes: a main and secondary pallet basic information list and a main pallet material list; The first target detailed list corresponding to the first instrument folder includes: pipeline summary material list, pipeline component material list, pipeline attribute list and pipeline straight pipe section.
[0062] In one implementation, the first review module 210 is further configured to translate the names of the plurality of three-dimensional model files included in the first folder into target names according to a preset name translation rule; The first review module 210 is further configured to check whether the names of the multiple 3D model files recorded in each first target detailed list are consistent with the target names of the multiple 3D model files included in the first folder; The first review module 210 is further configured to generate an alarm if the proofreading fails and the names of the multiple 3D model files in the first folder do not match the multiple 3D model files recorded in the first target list.
[0063] In one implementation, the first review module 210 is further configured to determine whether an updated name translation rule has been received; The first review module 210 is further configured to update the currently used name translation rule with the updated name translation rule if it is determined that the updated name translation rule has been received.
[0064] Third, the present application also provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, steps S110 to S140 provided in the above embodiment are implemented.
[0065] Fourth, the present application also provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, steps S110 to S140 of the above embodiment are executed.
[0066] Fifth, the computer program product provided in this application includes a computer-readable storage medium storing program code. The instructions included in the program code can be used to execute the method in the previous method embodiment. For specific implementation, please refer to steps S110 to S140 of the method embodiment, which will not be repeated here.
[0067] In the embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are merely schematic. For example, the division of the units is only a logical function division. There may be other division methods in actual implementation. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some communication interface, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0068] In addition, the units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0069] Furthermore, the functional modules in each embodiment of the present application can be integrated together to form an independent part, or each module can exist independently, or two or more modules can be integrated to form an independent part.
[0070] It should be noted that if the function is implemented in the form of a software function module and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application, or the part that contributes to the existing technology, or the part of the technical solution, can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes a number of instructions for enabling a computer device (which can be a personal computer, server, or network device, etc.) to execute all or part of the steps of the method described in each embodiment of the present application. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM), random access memory (RAM), disk or optical disk, and other media that can store program code.
[0071] In this document, relational terms such as first and second, etc. are used merely to distinguish one entity or operation from another entity or operation, but do not necessarily require or imply any actual relationship or order between these entities or operations.
[0072] The above description is merely an embodiment of the present application and is not intended to limit the scope of protection of the present application. For those skilled in the art, various modifications and variations of the present application are possible. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present application shall be included in the scope of protection of the present application.
Claims
1. A method for circulating a nuclear engineering three-dimensional model, characterized in that: The method comprises: In response to receiving a first design solution of a nuclear engineering three-dimensional model delivered by a nuclear power design department, reviewing the first design solution using a first preset standard; If the review result of the first design plan is passed, the first design plan is delivered to the nuclear power construction department, so that the nuclear power construction department can supplement the first design plan to obtain a second design plan; In response to receiving the second design plan delivered by the nuclear power construction department, reviewing the second design plan using a second preset standard; If the review result of the second design plan is passed, the second design plan will be delivered to the nuclear power design department.
2. The method according to claim 1, characterized in that The first design solution includes: a plurality of first folders and a plurality of first detailed lists regarding the nuclear engineering three-dimensional model; and the review of the first design solution using the first preset standard includes: Determining, according to the name of the first folder, a first target detail list corresponding to each of the first folders in the plurality of first detail lists; The names of the multiple three-dimensional model files included in each of the first folders are checked to see whether they conform to the names of the multiple three-dimensional model files recorded in the first target list.
3. The method according to claim 2, characterized in that The first folder includes: a first pipeline folder, a first ventilation folder, a first electrical folder, and a first instrument folder; and determining, according to the names of the first folders, a first target detail table corresponding to each of the first folders in the plurality of first detail tables, includes: According to the names of the first pipeline folder, the first ventilation folder, the first electrical folder and the first instrument folder, the first target detailed list corresponding to the first pipeline folder, the first ventilation folder, the first electrical folder and the first instrument folder is determined in multiple first detailed lists.
4. The method according to claim 3, characterized in that The first target detailed table corresponding to the first pipeline folder includes: a pipeline basic information table, an isometric drawing material table, an isometric drawing pipe section table, an isometric drawing corresponding weld table, and an isometric drawing corresponding bolting table; The first target detailed table corresponding to the first ventilation folder includes: a ventilation duct basic information table, a ventilation duct material table, and a ventilation duct accessory table; The first target detailed list corresponding to the first electrical folder includes: a main and secondary pallet basic information list and a main pallet material list; The first target detailed table corresponding to the first instrument folder includes: a pipeline summary material table, a pipeline component material table, a pipeline attribute table, and a pipeline straight pipe section.
5. The method according to claim 2, characterized in that The checking whether the names of the multiple three-dimensional model files included in each of the first folders are consistent with the names of the multiple three-dimensional model files recorded in the corresponding first target detailed table includes: translating the names of the plurality of three-dimensional model files included in the first folder into target names according to a preset name translation rule; Checking whether the names of the multiple three-dimensional model files recorded in each of the first target detailed lists are consistent with the target names of the multiple three-dimensional model files included in the first folder; If the proofreading fails, an alarm is generated based on the fact that the names of the multiple three-dimensional model files in the first folder do not conform to the multiple three-dimensional model files recorded in the first target list.
6. The method according to claim 5, characterized in that Before translating the names of the plurality of three-dimensional model files included in the first folder into target names according to a preset name translation rule, the method further includes: determining whether updated name translation rules have been received; If it is determined that the updated name translation rule is received, the currently used name translation rule is updated using the updated name translation rule.
7. A circulation device for a nuclear engineering three-dimensional model, characterized in that: The apparatus comprises: a first review module, a first delivery module, a second review module, and a second delivery module; The first review module is configured to review the first design solution of the nuclear engineering three-dimensional model delivered by the nuclear power design department using a first preset standard; The first delivery module is configured to deliver the first design solution to the nuclear power construction department if the review result of the first design solution is passed, so that the nuclear power construction department can supplement the first design solution to obtain a second design solution; The second review module is configured to review the second design scheme according to a second preset standard in response to receiving the second design scheme delivered by the nuclear power construction department; The second delivery module is used to deliver the second design scheme to the nuclear power design department if the review result of the second design scheme is passed.
8. An electronic device, characterized in that: The electronic device includes a processor and a memory, the memory is used to store an application program, and the processor runs or executes a software program stored in the memory so that the electronic device can implement the method for circulating a three-dimensional model of a nuclear engineering project as described in any one of claims 1 to 6.
9. A computer-readable storage medium, characterized in that The computer-readable storage medium is used to store program codes executed by a processor, and the program codes are used to implement the method for circulating a nuclear engineering three-dimensional model according to any one of claims 1 to 6.
10. A computer program product, characterized in that The computer program product includes computer instructions. When the computer instructions are run on an electronic device, the electronic device implements the method for circulating a three-dimensional model of a nuclear engineering project as described in any one of claims 1 to 6.