Application of BIM to Rebar Modeling of a Variable Section Column
Abstract
:1. Introduction
2. Methods
- (1)
- Rebar.CreateFreeForm() creates a free-form rebar that can have constraints.
- (2)
- Rebar.CreateFreeForm() creates a free-form rebar that will be unconstrained.
- (3)
- Rebar.CreateFromCurves() creates a new instance of a shape-driven rebar element within the project.
- (4)
- Rebar.CreateFromRebarShape() creates a new instance of a shape-driven rebar element within the project.
- (5)
- Rebar.CreateFromCurvesAndShape() creates a new shape-driven rebar, as an instance of a rebar shape.
3. Generation of a Rebar Model
3.1. Generation of Longitudinal Corner Rebar with Variable Section of Column
3.2. The Generation of Longitudinal Rebar for the Variable Section Column
3.3. Generation of a Stirrup
3.4. Generation of Additional Stirrups
4. The Statistics of Steel Bar Quantities and the Generation of Steel Bar Marks
4.1. Revit Schedule Function and the Statistics of Steel Bars Quantities
4.2. Generation of Rebar Marks
5. Conclusions
- (1)
- Using the C# programming language combined with Revit secondary development technology and the planar construction drawing, an automatic generation program for a steel bar parameter model is written. The generation of a longitudinal rebar model, stirrups in the encryption area, and stirrups in the non-encryption area are realized using the parameter-driven rebar model in a variable cross-section column. Users can choose the diameter and type of rebar according to their needs. They can also set the spacing of stirrups and the combination of additional stirrups. To a large extent, the repetitive work is reduced, and the modeling efficiency and accuracy are improved. This avoids the problem of inaccurate and nonstandard models caused by human errors.
- (2)
- Combined with WPF technology, the program operation interface was developed to increase the maneuverability of the program, which realized the automatic export of 2D steel bar CAD drawings and steel engineering quantities from a 3D model of steel bars and completed the forward design program from a 3D model to 2D drawings. The forward drawing of rebar engineering can improve the work efficiency of designers. This study provides a reference for subsequent research on the automatic forward design of steel bar engineering.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Complex surface model | Revit | Common model design |
Rhino | Special-shaped surface model design | |
Tekla | Structural steel design | |
Environmental analysis | Revit | Model design |
Ecotect | Analysis of sound, light, and thermal environments | |
Impact analysis | Revit | Model design |
Navisworks | Visual construction disclosure and report |
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Li, S.; Shi, Y.; Hu, J.; Li, S.; Li, H.; Chen, A.; Xie, W. Application of BIM to Rebar Modeling of a Variable Section Column. Buildings 2023, 13, 1234. https://doi.org/10.3390/buildings13051234
Li S, Shi Y, Hu J, Li S, Li H, Chen A, Xie W. Application of BIM to Rebar Modeling of a Variable Section Column. Buildings. 2023; 13(5):1234. https://doi.org/10.3390/buildings13051234
Chicago/Turabian StyleLi, Shushan, Yongxin Shi, Jinxin Hu, Siyuan Li, Hongmei Li, Aijiu Chen, and Wei Xie. 2023. "Application of BIM to Rebar Modeling of a Variable Section Column" Buildings 13, no. 5: 1234. https://doi.org/10.3390/buildings13051234
APA StyleLi, S., Shi, Y., Hu, J., Li, S., Li, H., Chen, A., & Xie, W. (2023). Application of BIM to Rebar Modeling of a Variable Section Column. Buildings, 13(5), 1234. https://doi.org/10.3390/buildings13051234