Citation: Yang Danghui, Su Yuan, Sun Ming. Analysis on the Application Problems of BIM Technology based on Revit in Structural Design. Journal of Information Technologyin Civil Engineering and Architecture, 2014, 6(3): 13-18.
2014, 6(3): 13-18.
Analysis on the Application Problems of BIM Technology based on Revit in Structural Design
1. | School of Civil Engineering and Mechanics, Huazhong University of Science and Technology, Wuhan 430074, China |
2. | Design Department of Wuhan Urban And Rural Construction Commission, Wuhan 430050, China |
Data exchange between structural analysis software and structural modeling using BIM tools has been a key problem in terms of the application of BIM technology in structural design. This paper discusses the current state-of-the-art of the advantages and disadvantages on data exchange issues from the aspects of IFC standard, Revit API Platform and Excel data format, and then the theoretical analysis is conducted after the test. The test results show that IFC standard is only suitable for the information exchange of structural physical model, and the sequential structural analysis and reinforcement entity configuration receives very huge restriction; the information exchange interface based on Revit API is feasible in structural analysis and design, however, there are many problems such as the instability of the interface to be solved and the method based on excel file format is stable during the data exchange process, however, it depends on whether the software can export and import excel file. Finally, different data exchange strategies should be adopted according to the type of the structural system and the complexity of the model.
[1] |
Kiviniemi A, Tarandi V, Karlshøj J, et al. Review of the development and implementation of IFC compatibleBIM[R]. Europe: Erabuild, 2008. |
[2] | |
[3] |
M. Hassanien Serror, J. Inoue et al. Building on IFC: e-interaction with/within structural design domain[C]. Joint International Conference on Computing and Decision Making in Civil and Building Engineering. Montreal, Canada, 2006: 316-325. |
[4] |
Ayako Yasaka, Hiromi Kataoka et al. The development of the reinforced-concrete structural model on IFC specification[C]. Joint International Conference on Computing and Decision Making in Civil and Building Engineering. Montreal, Canada, 2006: 3116-3125. |
[5] |
Caiyun Wan, Po-Han Chen et al. Assessment of IFCs for structural analysis domain [J]. Journal of Information Technology in Construction, 2004, 9:75-95. |
[6] |
Kam Calvin, Fischer Martin, et al. Implementation challenges and research needs of the IFC interoperability standard: Experiences from HUT-600 construction pilot[R]. American Society of Civil Engineers. Washington DC, United states 2002. |
[7] |
Pazlar Tomaz, Turk Ziga. Interoperability in practice: Geometric information exchange using the IFC standard[J]. Electronic Journal of Information Technology in Construction, 2008, 13: 362-380. |
[8] |
Ma, H., Ha, K. M. E., Chung, C. K. J., and Amor, R. Testing semantic interoperability. [C]. Joint International Conference on Computing and Decision Making in Civil and Building Engineering. Montreal, Canada, 2006: 1216-1225. |
[9] |
Kiviniemi, A., Tarandi, V., Karlshøj, J. et al. Review of the development and implementation of IFC compatible BIM[R]. Europe: Erabuild, 2008. |
[10] |
Pazlar, T., Turk, Z. Interoperability in practice: Geometric information exchange using the IFC standard. [J]. Journal of Information Technology in Construction, 2008, 13:362-380. |
[11] |
Ghang Lee, Jongsung Won et al. Metrics for Quantifying the Similarities and Differences between IFC Files [J]. Journal of Computing in Civil Engineering, 2011, 25:172-181.doi: 10.1061/(ASCE)CP.1943-5487.0000077 |
[12] |
buildingSMART International Modeling Support Group. IFC2x Edition 3 Model implementation Guide, 2009. |
[13] |
邱奎宁, 张汉义等. IFC技术标准系列文章之一:IFC标准及实例介绍[J].土木建筑工程信息技术, 2010, 2(1):68-72. |
Metrics
- PDF Downloads(18)
- Abstract views(1410)
- HTML views(643)