Research on the Modular Design and Application of Prefabricated Components Based on KBE
Abstract
:1. Introduction
2. Problem Description
2.1. Classification of Prefabricated Cantilevered Structural Components
2.2. Challenges in the Design of Prefabricated Cantilevered Structural Components
- Complex component information
- Poor modeling accuracy
- Low efficiency in modifications
3. Research Methodology
3.1. The Theoretical Foundation of KBE
3.2. Secondary Split Modularization
3.3. Revit Secondary Development Revit
3.3.1. Development Platform and Workflow
3.3.2. Development Process for Design Tools
- User Interface Design
- Configure the main windows. The main windows were named as the components after the first split. These various component types were indicated by “RadioButtons”. For example, “RadioButton1.Text” was set as “Beam balcony board,” and “RadioButton2.Text” was set as “Slab balcony board”.
- Configure sub-windows. The sub-windows were named as the components after the secondary split. The sub-windows were created using a “FlowLayoutPanel”, forming docked windows that can be collapsed or hidden within their corresponding main window. In the sub-window interface’s dropdown menu, “RadioButton”, “ComboBox”, “Label”, and “TextBox” were utilized for embedding knowledge parameters. By using the appropriate knowledge engineering components, these were linked to bind the corresponding module design parameters. For example, in the dropdown menu of the right-line module in the air conditioning board, “RadioButton” was used to indicate line style types and rebar diameters. “Label” and “TextBox” were used to represent module outline parameters and rebar spacing.
- Configure the confirm and cancel buttons. The “Confirm” and “Cancel” functions were both configured using “Button”. When the user initiated the “Confirm” button click event, the program automatically checked for input errors in the UI. If the input of necessary modules or related design parameters is missing, the program will prompt an error and automatically cancel the operation. If no such problem exists, the procedure will continue. When the user initiates a “Cancel” click event, the program will immediately terminate without making any judgment.
- Creating module libraries for prefabricated cantilevered structures
- Generate contour family examples of prefabricated cantilevered structures
- 2.
- Rebar arrangement for prefabricated cantilevered structural modules
- Assembly design of prefabricated cantilevered structure components
- Function for verification and modification
- Function for component management
4. Case Study
4.1. Case Overview
4.2. Model Establishment and Management
4.3. Results and Analysis
5. Discussion
6. Conclusions
- (1)
- Based on the theoretical framework of KBE, this study systematically organized knowledge related to the design parameters and structural requirements of cantilevered structural components, adhering to the principles of secondary split modularization and modulars coordination. The aim was to achieve knowledge reuse and accomplish the meticulous design of components, thereby enhancing the versatility of module utilization. Utilizing rule libraries obtained through KBE knowledge decomposition, components were subjected to verification and assessment, ensuring structural safety and rationality before production. This enhanced component precision and quality, while effectively reducing the design cycle and preventing cost overruns. Additionally, this paper developed a component management function based on design knowledge for manufacturing and assembly. This function automatically stores component information, facilitates model information sharing, and strengthens data connectivity between design, production, and construction processes. It aids in factory mass production while optimizing site scheduling plans to improve construction efficiency that aligns with the industrial batch construction mode.
- (2)
- Utilizing C# language for secondary development of Revit using object-oriented expression methods simplifies complex design knowledge into an intuitive user interface and logical programming language that is easy for users to operate. Through Revit secondary development, module connection issues during the modeling process are effectively resolved by eliminating redundant modeling tasks. Consequently, component modeling efficiency is significantly improved while reducing designers’ workload. The developed tool system exhibits high maintainability as well as allowing future updates to enhance diversified component designs of prefabricated buildings.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Cantilevered Structural Components | Name | Classifications | |
Balcony board | Beam balcony board | Slab balcony board | |
Air conditioning board | Ordinary air conditioning board | Air conditioning board with linestyles | |
Bay window | Extruding bay window | Recessed bay window | |
Component Level | Modular Level | Element Level (Example) | Determining Parameters (Example) |
---|---|---|---|
Balcony board |
| ||
Air conditioning board |
| ||
Bay window |
|
Modeling Methodology | Quantities (pcs) | Staffing | Workflow | Work Hours (Min) | Add Up the Total (Min) | |
---|---|---|---|---|---|---|
Traditional modeling tools | 6396 | Architectural designer | 1 | Sort out all the cantilevered structural components in the project. | 480 | 2880 |
Draw component outlines. | 660 | |||||
Connect components. | 140 | |||||
Structural designer | 1 | Reinforce steel layout, including distribution bars, stress bars, and hoop bars. | 1380 | |||
Duplicate the same specification components that generate the standard layer. | 220 | |||||
Modular design tools | 6158 | 2 | Sort out data related to the cantilevered structural components. | 480 | 780 | |
Generate the modular components. | 300 | |||||
238 | — | — | — | — |
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Li, N.; Feng, Y.; Liu, J.; Ye, X.; Xie, X. Research on the Modular Design and Application of Prefabricated Components Based on KBE. Buildings 2023, 13, 2980. https://doi.org/10.3390/buildings13122980
Li N, Feng Y, Liu J, Ye X, Xie X. Research on the Modular Design and Application of Prefabricated Components Based on KBE. Buildings. 2023; 13(12):2980. https://doi.org/10.3390/buildings13122980
Chicago/Turabian StyleLi, Na, Yu Feng, Jixiong Liu, Xiongjin Ye, and Xingxing Xie. 2023. "Research on the Modular Design and Application of Prefabricated Components Based on KBE" Buildings 13, no. 12: 2980. https://doi.org/10.3390/buildings13122980
APA StyleLi, N., Feng, Y., Liu, J., Ye, X., & Xie, X. (2023). Research on the Modular Design and Application of Prefabricated Components Based on KBE. Buildings, 13(12), 2980. https://doi.org/10.3390/buildings13122980