Assembly pipe application delivery management system and application method
By developing an assembly tube application delivery management system that integrates lightweight model processing, plan management, animation simulation, and data sharing, we solved problems such as lack of spatial sense and communication barriers during the processing and installation of assembly tubes in nuclear fuel plants, and achieved efficient project management and quality control.
Patent Information
- Application Number
- CN202510785169.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-12
- Publication Date
- 2025-09-19
AI Technical Summary
Existing technologies in the processing and installation of assembly tubes in nuclear fuel plants suffer from problems such as lack of spatial awareness, communication barriers, high risk of errors, and difficulty in dynamic demonstration, resulting in low efficiency and unstable project quality.
Develop an assembly pipe application delivery management system, including a lightweight model processing module, a planning management module, an animation simulation module, a data sharing module, a simulation feedback module, a statistics and recording module, and an associated document and model positioning module, to improve coordination and transparency through 3D modeling, animation simulation, and data management.
It improves the efficiency, transparency and accuracy of fabricated pipe installation projects, ensures that projects proceed smoothly as planned, reduces rework and errors, and improves the visualization and data sharing capabilities of project management.
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Figure CN120672288A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of assembly pipe processing management, and in particular to an assembly pipe application delivery management system and an application method. Background Art
[0002] At present, the assembly tube processing and installation process of nuclear fuel plants mainly relies on two-dimensional drawings, text descriptions, physical models and verbal communication. Although these methods have been widely used in past projects, they still expose a series of limitations and problems in the modern complex engineering environment: (1) Lack of spatial sense and intuitiveness. Two-dimensional drawings and text descriptions can only display information on a plane and lack three-dimensional spatial sense. This makes it difficult to understand complex structures and assembly relationships, especially for technicians without rich experience. It is even more difficult to accurately grasp the spatial layout and the relationship between components; (2) Communication and understanding barriers. Relying on drawings and text communication may lead to misunderstandings, especially in cross-departmental or cross-company cooperation. These communication barriers may lead to errors or deviations in the design and actual installation process, which in turn affects the project schedule and quality; (3) Risk of errors and rework. Due to the difficulty in intuitively understanding the design plan, errors are more likely to occur during the construction and assembly process. These errors sometimes only appear after the actual operation or installation is completed, resulting in rework and wasting time and resources; (4) Difficulty in dynamic demonstration and simulation. Traditional methods cannot dynamically demonstrate the assembly or operation process. This makes it impossible to fully predict and verify the feasibility or safety of certain operations during the design phase, increasing the risks in actual operations; (5) Inefficiency: interpreting and analyzing complex two-dimensional drawings requires more time and effort. Even experienced engineers sometimes need extra time to confirm every detail on the drawings, which in turn prolongs the design and construction cycle; (6) Limited collaboration and modification capabilities: Traditional drawing modifications are relatively troublesome, especially when multi-party collaboration is required, and version management and updates are prone to errors. In addition, the production of physical models is time-consuming and labor-intensive, making it difficult to quickly adjust and modify; (7) Lack of visual project progress tracking makes it difficult to intuitively display the progress and phased results of the project. This lack of transparency may lead to information asymmetry in project management, which in turn affects the accuracy and timeliness of decision-making.
[0003] Therefore, those skilled in the art are in urgent need of developing a new technical solution to solve the above problems. Summary of the Invention
[0004] In order to overcome the problems existing in the related art, the present invention discloses an assembly pipe application delivery management system and an application method.
[0005] According to a first aspect of the disclosed embodiments of the present invention, there is provided an assembly pipe application delivery management system, the system comprising:
[0006] A lightweight model processing module is used to perform lightweight processing on the assembly tube 3D model and upload the processed assembly tube 3D model to the network platform;
[0007] a plan management module, connected to the lightweight model processing module, for generating an installation and processing plan for the assembly pipe according to the three-dimensional model of the assembly pipe;
[0008] An animation simulation module, connected to the plan management module, for generating a simulation animation of the assembly process of the assembly pipe according to the installation and processing plan of the assembly pipe;
[0009] A data sharing module, connected to the plan management module, for generating model data, an installation plan table, and a bill of materials of the assembly pipe that can be exported and shared according to the installation and processing plan of the assembly pipe;
[0010] a simulation feedback module, connected to the data sharing module, for displaying the installation progress, material usage and processing batch records of the assembly pipe;
[0011] A statistics and recording module, connected to the data sharing module, is used to count the latest installation progress, the latest material usage and the latest processing batch records in real time;
[0012] The document association and model positioning module is connected to the lightweight model processing module and is used to associate the design specifications and installation guidelines with the assembly pipe three-dimensional model so as to access the documents of the design specifications and installation guidelines through the assembly pipe three-dimensional model.
[0013] Optionally, the lightweight model processing module includes:
[0014] A lightweight processing unit, used for performing lightweight processing on the three-dimensional model of the assembly pipe;
[0015] The model uploading unit is connected to the lightweight processing unit and is used to upload the processed three-dimensional model of the assembly pipe to the network platform.
[0016] Optionally, the plan management module includes:
[0017] The project information collection unit is used to obtain the relevant information of the installation and processing plan that needs to be generated according to the user's newly created project;
[0018] An installation plan creation unit, connected to the project information collection unit, is used to generate an installation and processing plan for the assembly pipe based on the relevant information of the installation and processing plan filled in by the user and the three-dimensional model of the assembly pipe, including a plan name, a time schedule, and bound pipelines, pipe sections, or areas;
[0019] An installation plan importing unit, connected to the installation plan creating unit, for batch adding and importing already generated installation processing plans;
[0020] The installation plan issuing unit is connected to the installation plan importing unit and is used to issue the installation processing plan.
[0021] Optionally, the animation simulation module includes:
[0022] An animation generating unit, configured to generate a dynamic demonstration of the assembly process of the assembly pipe according to the installation processing plan of the assembly pipe;
[0023] An animation playing unit is connected to the animation generating unit and is used to display the color change of the three-dimensional model of the assembly pipe during the execution of the installation processing plan.
[0024] Optionally, the data sharing module is used to:
[0025] Generate a data package containing model data of the assembly pipe, installation plan and bill of materials;
[0026] Exporting the data package for use by a processing unit and an installation unit;
[0027] Supports importing of said data packages and creation of local projects.
[0028] Optionally, the simulation feedback module includes:
[0029] An installation progress display unit, used for visually displaying the installation progress of the assembly pipe;
[0030] A material usage display unit, used for visually displaying the material usage;
[0031] The processing batch feedback unit is used to record and provide feedback on the processing batches.
[0032] Optionally, the document association and model positioning module is used to:
[0033] Quickly access associated design specifications and installation guide documents by clicking on components of the 3D pipe assembly model;
[0034] Supports direct opening and viewing of drawings.
[0035] Optionally, the statistics and recording module includes:
[0036] A material statistics unit, used to count the types and quantities of materials in the three-dimensional model of the assembly pipe;
[0037] The batch record unit is used to store the processing batch record and associate it with the three-dimensional model of the assembly pipe.
[0038] According to a second aspect of the disclosed embodiments of the present invention, a method for applying the assembly pipe application delivery management system is provided. Based on the assembly pipe application delivery management system described in the first aspect of the disclosed embodiments of the present invention, the method includes:
[0039] Lightweight the 3D model of the assembly tube and upload it to the online platform;
[0040] generating an installation and processing plan for the assembly pipe according to the three-dimensional model of the assembly pipe;
[0041] Generate and display a simulation animation of the assembly process of the assembly pipe according to the installation processing plan of the assembly pipe;
[0042] generating, according to the installation processing plan of the assembly pipe, model data of the assembly pipe, an installation plan table, and a bill of materials that support export and sharing;
[0043] Display the installation progress, material usage and processing batch records of the assembly pipe;
[0044] Real-time statistics of the latest installation progress, the latest material usage and the latest processing batch records.
[0045] Optionally, the method further includes:
[0046] Design specifications and installation guidelines are associated with the three-dimensional model of the assembly pipe, so that the documents of the design specifications and installation guidelines are accessed through the three-dimensional model of the assembly pipe.
[0047] In summary, the present invention discloses an assembly pipe application delivery management system and application method, which includes: a lightweight model processing module for lightweighting the assembly pipe three-dimensional model and uploading it to a network platform; a plan management module for generating an installation and processing plan for the assembly pipe; an animation simulation module for generating a simulation animation of the assembly process; a data sharing module for generating model data, an installation plan table, and a bill of materials that support export and sharing based on the installation and processing plan; a simulation feedback module for displaying the installation progress, material usage, and processing batch records; a statistics and recording module for real-time statistics of the latest installation progress, material usage, and processing batch records; and an association document and model positioning module for associating design specifications and installation guidelines with the assembly pipe three-dimensional model. It can fully utilize the advantages of digitalization and information technology to improve the efficiency, transparency, and accuracy of assembly pipe installation projects. By integrating three-dimensional modeling, animation simulation, and data management, all relevant parties can better coordinate and cooperate to ensure that the project proceeds smoothly as planned.
[0048] Other features and advantages disclosed in the present invention will be described in detail in the following detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0049] The accompanying drawings are used to provide a further understanding of the present disclosure and constitute a part of the specification. Together with the following detailed description, they are used to explain the present disclosure but do not constitute a limitation of the present disclosure. In the accompanying drawings:
[0050] Figure 1 is a structural diagram of an assembly pipe application delivery management system according to an exemplary embodiment;
[0051] Figure 2 is based on Figure 1 A schematic structural diagram of a lightweight processing module is shown;
[0052] Figure 3 is based on Figure 1 A schematic diagram of the structure of a plan management module is shown;
[0053] Figure 4 is based on Figure 1 A structural schematic diagram of an animation simulation module is shown;
[0054] Figure 5 is based on Figure 1 A schematic structural diagram of an analog feedback module is shown;
[0055] Figure 6 is based on Figure 1 A schematic diagram of the structure of a statistics and recording module is shown;
[0056] Figure 7 The present invention is a flowchart illustrating an application method of an assembly pipe application delivery management system according to an exemplary embodiment. DETAILED DESCRIPTION
[0057] The following is a detailed description of the specific embodiments disclosed in the present invention in conjunction with the accompanying drawings. It should be understood that the specific embodiments described herein are only used to illustrate and explain the present invention and are not intended to limit the present invention.
[0058] Figure 1 FIG. 1 is a structural diagram of an assembly pipe application delivery management system according to an exemplary embodiment. Figure 1As shown, the system 100 includes: a lightweight model processing module 110, which is used to perform lightweight processing on the assembly pipe three-dimensional model and upload the processed assembly pipe three-dimensional model to the network platform; a plan management module 120, which is connected to the lightweight model processing module 110 and is used to generate an installation and processing plan for the assembly pipe according to the assembly pipe three-dimensional model; an animation simulation module 130, which is connected to the plan management module 120 and is used to generate a simulation animation of the assembly pipe in the assembly process according to the installation and processing plan of the assembly pipe; a data sharing module 140, which is connected to the plan management module 120 and is used to generate a support export based on the installation and processing plan of the assembly pipe. and shared assembly pipe model data, installation schedule and material list; a simulation feedback module 150, connected to the data sharing module 140, for displaying the installation progress, material usage and processing batch records of the assembly pipe; a statistics and recording module 160, connected to the data sharing module 140, for real-time statistics of the latest installation progress, the latest material usage and the latest processing batch records; an association document and model positioning module 170, connected to the lightweight model processing module 110, for associating design specifications and installation guidelines with the assembly pipe three-dimensional model, so as to access the documents of the design specifications and installation guidelines through the assembly pipe three-dimensional model.
[0059] For example, with the help of three-dimensional technology, a more intuitive and detailed display of assembly pipes can be provided. Through the three-dimensional model, the structure of the assembly pipe and the specific installation process can be observed from multiple angles, and the location of each assembly pipe component, the connection method between the components, and the installation progress can be clearly understood. It can not only help technicians better understand the assembly details, but also discover possible problems in advance during the design stage, thereby reducing rework and errors. In the disclosed embodiment of the present invention, in response to the problems of a large number of assembly pipes in nuclear fuel plants, complex layouts, and processing and installation relying on two-dimensional drawings, lack of spatial sense, and low efficiency, the assembly pipe application delivery management system has been developed to realize the linkage of two-dimensional models and three-dimensional models, model analysis, rapid retrieval and positioning, plan management, animation display and other functions, so that users can simulate the assembly process through animation or virtual reality, enhance understanding and communication efficiency, and have important significance for improving the overall efficiency and quality of the project.
[0060] Figure 2 is based on Figure 1 A structural diagram of a lightweight processing module is shown in FIG. Figure 2 As shown, the lightweight model processing module 110 includes: a lightweight processing unit 111 for lightweighting the assembly pipe three-dimensional model; a model uploading unit 112, connected to the lightweight processing unit 111, for uploading the processed assembly pipe three-dimensional model to the network platform.
[0061] For example, by lightweighting the 3D model of the assembly pipe, the model's complexity and file size are reduced, improving model transmission speed and platform processing efficiency. The processed model is then uploaded to the online platform for access and use by all stakeholders. This lightweighting process can be performed by staff using local professional software and then uploaded to the assembly pipe application delivery management system. Alternatively, it can be performed using processing software built into or linked to the assembly pipe application delivery management system.
[0062] Figure 3 is based on Figure 1 A schematic diagram of the structure of a plan management module is shown in FIG. Figure 3 As shown, the plan management module 120 includes: a project information acquisition unit 121, which is used to obtain relevant information of the installation and processing plan that needs to be generated and filled in by the user based on the newly created project of the user; an installation plan creation unit 122, which is connected to the project information acquisition unit 121, and is used to generate an installation and processing plan for the assembly pipe based on the relevant information of the installation and processing plan filled in by the user and the three-dimensional model of the assembly pipe, including the plan name, time schedule and bound pipelines, pipe sections or areas; an installation plan importing unit 123, which is connected to the installation plan creation unit 122, and is used to batch add and import the already generated installation and processing plans; an installation plan publishing unit 124, which is connected to the installation plan importing unit 123, and is used to publish the installation and processing plan.
[0063] For example, based on the uploaded 3D model of the assembly pipe, a detailed assembly pipe installation and processing plan is developed, including the installation sequence, process steps, material requirements, and construction schedule. The assembly pipe installation and processing plan is located in a newly created project, and users can dynamically adjust and optimize the installation and processing plan based on actual conditions through the assembly pipe application delivery management system.
[0064] Figure 4 is based on Figure 1 A structural diagram of an animation simulation module is shown in FIG. Figure 4 As shown, the animation simulation module 130 includes: an animation generation unit 131, which is used to generate a dynamic demonstration of the assembly process of the assembly pipe according to the installation processing plan of the assembly pipe; an animation playback unit 132, which is connected to the animation generation unit 131 and is used to display the color changes of the three-dimensional model of the assembly pipe during the execution of the installation processing plan.
[0065] For example, based on the 3D model of the assembly tube and the installation processing plan, an animated simulation of the assembly process is created. This dynamically demonstrates the assembly process and shows the detailed steps of how the assembly tube is installed. This helps all parties better understand and foresee possible challenges and risks. At the same time, this visual display method also improves communication efficiency and depth of understanding.
[0066] Optionally, the data sharing module 140 is used to: generate a data package containing model data of the assembly pipe, an installation schedule, and a bill of materials; export the data package for use by the processing unit and the installation unit; and support the import of data packages and the creation of local projects.
[0067] For example, a data package is generated that includes model data, planning details, material lists, etc. This data package can be exported and sent to the processing unit and the installation unit so that the units can make corresponding preparations and operations based on the data package.
[0068] Figure 5 is based on Figure 1 A schematic diagram of the structure of an analog feedback module is shown in FIG. Figure 5 As shown, the simulation feedback module 150 includes: an installation progress display unit 151 for visually displaying the installation progress of the assembly pipe; a material usage display unit 152 for visually displaying the material usage; and a processing batch feedback unit 153 for recording and providing feedback on the processing batch.
[0069] For example, processing and installation teams can view progress simulations on the assembly pipe application management system. These simulations include installation progress, material usage, and batch records. This helps them stay informed of project progress and make adjustments when necessary.
[0070] Figure 6 is based on Figure 1 A structural diagram of a statistics and recording module is shown in FIG. Figure 6 As shown, the statistics and recording module 160 includes: a material statistics unit 161 for counting the types and quantities of materials in the assembly pipe 3D model; a batch recording unit 162 for storing processing batch records and associating them with the assembly pipe 3D model.
[0071] For example, processing and installation units can use the system to count the types and quantities of materials required and record detailed information for each processing batch. This helps trace the production process and provides a basis for subsequent quality control and management.
[0072] Optionally, the associated document and model positioning module 170 is used to: quickly access associated design specifications and installation guide documents by clicking on components of the assembly pipe 3D model; and support direct opening and viewing of drawings.
[0073] For example, the system allows all parties to view relevant documents, such as design specifications, installation guides, and quality standards. These documents are linked to the 3D model, allowing users to quickly access relevant documents by clicking on a component in the model. Furthermore, processing and installation teams can use the 3D model to quickly locate the position and status of assembled pipes, improving work efficiency and accuracy.
[0074] Figure 7 FIG. 1 is a flow chart showing an application method of an assembly pipe application delivery management system according to an exemplary embodiment. Figure 7 As shown, based on the assembly pipe application delivery management system of the first aspect of the embodiment disclosed in the present invention, the method includes:
[0075] In step 701, the three-dimensional model of the assembly pipe is lightweighted and uploaded to the network platform;
[0076] In step 702, an installation processing plan for the assembly pipe is generated based on the assembly pipe three-dimensional model;
[0077] In step 703, a simulation animation of the assembly process of the assembly pipe is generated and displayed according to the installation processing plan of the assembly pipe;
[0078] In step 704 , model data of the assembly pipe, an installation plan table, and a bill of materials that support export and sharing are generated according to the installation processing plan of the assembly pipe;
[0079] In step 705, the installation progress, material usage and processing batch records of the assembly pipe are displayed;
[0080] In step 706, the latest installation progress, the latest material usage and the latest processing batch record are counted in real time.
[0081] Optionally, the method further includes:
[0082] Associate design specifications and installation guidelines with the assembly pipe 3D model to access the design specifications and installation guide documentation through the assembly pipe 3D model.
[0083] In another embodiment disclosed in the present invention, a method for logging in and using the assembly pipe application delivery management system is also provided. Specifically, the following operations are included:
[0084] User login: The user enters the pre-set account and password and logs into the management system.
[0085] Adding Projects and Creating Plans: After logging in, add a new project. Click Add Project, fill in the project information and the project administrator information. Once completed, click OK to create the project. Once the project is created, you'll see the newly created project in your personal workspace. Open the project and click Project Plan to see the schedule. Then click Add Plan and enter the plan name according to the timeline. Click OK to successfully create the plan. Once created, click Edit to create the detailed plan. Click Add to add a plan. Click the type you want to bind to. A selection dialog will appear, allowing you to select pipelines, segments, or areas. After selecting, edit the plan time. In the Basic Configuration, click the Value list to view the values. Click Add to add statuses to the plan. Add a status name and click Add to add a status to the work plan. Add a status and assign a default color. Add statuses and signage, then publish the plan. If adding each one individually is too tedious, you can export a table and adjust it, then import it. A button for adding batches of plans is also available.
[0086] Animation Demonstration: The completed plan will be displayed in the Engineering Collaboration and Model Review interface. Select Animation, then Plan to play the plan. Select the plan you want to play. Then click Play Animation to see the animation progress. As time passes, you will see the model color change. Select Progress Display, then Installation Plan. Click a plan to see the actual status of the plan.
[0087] Associated Drawings: After selecting a node, you can see the drawings associated with it through the assembly pipe. Click on a drawing to open it directly. You can also compare it with the model after upgrading or modifying the plan.
[0088] Data import and document association: After the plan and content are completed, if you want to send it to the processing unit and construction unit, you need to export the data package and then transfer it. Click the data package. Then click Generate Data Package and wait for the generation to be completed. After completion, click Download Data Package to download it. After downloading, you can send it to other units. After other units get the data package, use Vplanning on the desktop to import the data package. First, create a local project. Select Assembly Simulation and click Import Data Package. Select the transferred data package and click Open. Wait for the import to be completed, select the schedule and click a plan. You can see the details of the plan and then click Play. Material statistics can be used to count the materials in the model. Click Statistics to directly count the materials. You can click Save Batch and save it to the plan. Click Progress Display to see the saved batch and plan status. Click a specific plan to see some status of the corresponding plan. Click Associate File and select a specific model node to see the associated documents.
[0089] In summary, the present invention discloses an assembly pipe application delivery management system and application method, which includes: a lightweight model processing module for lightweighting the assembly pipe three-dimensional model and uploading it to a network platform; a plan management module for generating an installation and processing plan for the assembly pipe; an animation simulation module for generating a simulation animation of the assembly process; a data sharing module for generating model data, an installation plan table, and a bill of materials that support export and sharing based on the installation and processing plan; a simulation feedback module for displaying the installation progress, material usage, and processing batch records; a statistics and recording module for real-time statistics of the latest installation progress, material usage, and processing batch records; and an association document and model positioning module for associating design specifications and installation guidelines with the assembly pipe three-dimensional model. It can fully utilize the advantages of digitalization and information technology to improve the efficiency, transparency, and accuracy of assembly pipe installation projects. By integrating three-dimensional modeling, animation simulation, and data management, all relevant parties can better coordinate and cooperate to ensure that the project proceeds smoothly as planned.
[0090] The preferred embodiments of the present disclosure are described in detail above in conjunction with the accompanying drawings. However, the present disclosure is not limited to the specific details of the above embodiments. Within the technical concept of the present disclosure, various simple modifications can be made to the technical solutions of the present disclosure, and these simple modifications all fall within the scope of protection of the present disclosure.
[0091] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any appropriate manner without contradiction. In order to avoid unnecessary repetition, the present disclosure will not further describe various possible combinations.
[0092] In addition, the various embodiments of the present disclosure may be arbitrarily combined, and as long as they do not violate the concept of the present disclosure, they should also be regarded as the contents disclosed by the present disclosure.
Claims
1. An assembly pipe application delivery management system, characterized in that: The system comprises: A lightweight model processing module is used to perform lightweight processing on the assembly tube 3D model and upload the processed assembly tube 3D model to the network platform; a plan management module, connected to the lightweight model processing module, for generating an installation and processing plan for the assembly pipe according to the three-dimensional model of the assembly pipe; An animation simulation module, connected to the plan management module, for generating a simulation animation of the assembly process of the assembly pipe according to the installation and processing plan of the assembly pipe; A data sharing module, connected to the plan management module, for generating model data, an installation plan table, and a bill of materials of the assembly pipe that can be exported and shared according to the installation and processing plan of the assembly pipe; a simulation feedback module, connected to the data sharing module, for displaying the installation progress, material usage and processing batch records of the assembly pipe; A statistics and recording module, connected to the data sharing module, is used to count the latest installation progress, the latest material usage and the latest processing batch records in real time; The document association and model positioning module is connected to the lightweight model processing module and is used to associate the design specifications and installation guidelines with the assembly pipe three-dimensional model so as to access the documents of the design specifications and installation guidelines through the assembly pipe three-dimensional model.
2. The assembly pipe application delivery management system according to claim 1, characterized in that: The lightweight model processing module includes: A lightweight processing unit, used for performing lightweight processing on the three-dimensional model of the assembly pipe; The model uploading unit is connected to the lightweight processing unit and is used to upload the processed three-dimensional model of the assembly pipe to the network platform.
3. The assembly pipe application delivery management system according to claim 2, characterized in that: The plan management module includes: The project information collection unit is used to obtain the relevant information of the installation and processing plan that needs to be generated according to the user's newly created project; An installation plan creation unit, connected to the project information collection unit, is used to generate an installation and processing plan for the assembly pipe based on the relevant information of the installation and processing plan filled in by the user and the three-dimensional model of the assembly pipe, including a plan name, a time schedule, and bound pipelines, pipe sections, or areas; An installation plan importing unit, connected to the installation plan creating unit, for batch adding and importing already generated installation processing plans; The installation plan issuing unit is connected to the installation plan importing unit and is used to issue the installation processing plan.
4. The assembly pipe application delivery management system according to claim 2, characterized in that: The animation simulation module includes: An animation generating unit, configured to generate a dynamic demonstration of the assembly process of the assembly pipe according to the installation processing plan of the assembly pipe; An animation playing unit is connected to the animation generating unit and is used to display the color change of the three-dimensional model of the assembly pipe during the execution of the installation processing plan.
5. The assembly pipe application delivery management system according to claim 1, characterized in that: The data sharing module is used to: Generate a data package containing model data of the assembly pipe, installation plan and bill of materials; Exporting the data package for use by a processing unit and an installation unit; Supports importing of said data packages and creation of local projects.
6. The assembly pipe application delivery management system according to claim 1, characterized in that: The analog feedback module includes: An installation progress display unit, used for visually displaying the installation progress of the assembly pipe; A material usage display unit, used for visually displaying the material usage; The processing batch feedback unit is used to record and provide feedback on the processing batches.
7. The assembly pipe application delivery management system according to claim 1, characterized in that: The associated document and model positioning module is used to: Quickly access associated design specifications and installation guide documents by clicking on components of the 3D pipe assembly model; Supports direct opening and viewing of drawings.
8. The assembly pipe application delivery management system according to claim 5, characterized in that: The statistics and recording module includes: A material statistics unit, used to count the types and quantities of materials in the three-dimensional model of the assembly pipe; The batch record unit is used to store the processing batch record and associate it with the three-dimensional model of the assembly pipe.
9. An application method of an assembly pipe application delivery management system, characterized in that: Based on the assembly pipe application delivery management system according to any one of claims 1 to 8, the method includes: Lightweight the 3D model of the assembly tube and upload it to the online platform; generating an installation and processing plan for the assembly pipe according to the three-dimensional model of the assembly pipe; Generate and display a simulation animation of the assembly process of the assembly pipe according to the installation processing plan of the assembly pipe; generating, according to the installation processing plan of the assembly pipe, model data of the assembly pipe, an installation plan table, and a bill of materials that support export and sharing; Display the installation progress, material usage and processing batch records of the assembly pipe; Real-time statistics of the latest installation progress, the latest material usage and the latest processing batch records.
10. The application method of the assembly pipe application delivery management system according to claim 9, characterized in that: The method further comprises: Design specifications and installation guidelines are associated with the three-dimensional model of the assembly pipe, so that the documents of the design specifications and installation guidelines are accessed through the three-dimensional model of the assembly pipe.