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Received 16.01.2024

Revised 27.05.2024

Accepted 30.06.2024

Retrieved from Iss. 115, P. 2, 2024

Pages 38 -50

  • 142 Views

Suggested citation

Medvediev, K., Dudarenko, O., Galchenko, O., Novikov, M., & Marchenko, A. (2024). ANALYSIS OF THE POSSIBILITY OF TRANSPORT STRUCTURES DESIGNING USING BUILDING INFORMATION MODELING TECHNOLOGIES (BIM TECHNOLOGIES). Automobile Roads and Road Construction, (115.2), 38-50. https://doi.org/10.33744/0365-8171-2024-115.2-038-050

ANALYSIS OF THE POSSIBILITY OF TRANSPORT STRUCTURES DESIGNING USING BUILDING INFORMATION MODELING TECHNOLOGIES (BIM TECHNOLOGIES)

Kostiantyn Medvediev Oleksandr Dudarenko Oleksii Galchenko Mykhailo Novikov Artem Marchenko

Abstract

The experience of working on the bridge rehabilitation project using BIM technologies has primarily shown that today it is possible to perform high-quality design documentation using information modeling technologies and taking into account national regulations for the development of design documentation. It should be noted that the research in the field of transport design has shown new opportunities for optimizing the design process, improving its efficiency and quality. The study revealed the following benefits of using BIM technologies: - centralised data storage and synchronisation - all project information is available to all participants in real time, which guarantees clear coordination and consistency of decisions. The BIM model is a platform for collaboration and information exchange between all project participants; - accuracy of project documentation - the BIM model makes it possible to generate drawings and specifications based on a single data source - the model, which minimises the risk of errors; - detection and elimination of errors at early stages - the BIM model allows you to identify and eliminate conflicts and errors at the early stages of design, which significantly saves time and resources for their correction at later stages of project implementation; - improving the quality of design and construction - BIM technologies can create more understandable and detailed designs, which guarantees better construction quality. Building information modelling technologies are becoming an indispensable tool for designing complex infrastructure facilities such as bridges. Their use guarantees a clear link between the design documentation, the 3D model, and the real object, which significantly saves time and improves design and construction efficiency

Keywords:

bridge design, digital model, information modelling, BIM technologies, bridge structures, design documentation

References

  1. Law of Ukraine No. 2364-IX "On the Adoption as a Basis of the Draft Law of Ukraine on Amendments to Certain Legislative Acts of Ukraine Regarding the Introduction of Building Information Modeling (BIM Technologies) at All Stages of the Life Cycle of Objects and Scientific and Technical Support of Objects, Improvement of the Inspection Procedure of Objects Accepted into Operation in the Manner Prescribed by Law". (2022, July). Retrieved from https://zakon.rada.gov.ua/laws/show/2364-20#Text.
  2. Neelamkavil, J., & Ahamed, S.S. (2012). The return on investment from BIM-driven projects in construction. Ottawa: National Research Council of Canada, Institute for Research in Construction.
  3. Cheverda, O. (Ed.). (2019). Concept of BIM implementation – building information modeling in Ukraine. Project of the EU “Support to Ukrainian authorities in improving infrastructure project cycle management”. Kyiv.
  4. Resolution of the Cabinet of Ministers of Ukraine No. 152-r "On Approval of the Concept of Implementation of Building Information Modeling Technologies (BIM Technologies) in Ukraine and Approval of the Action Plan for Its Implementation". (2021, February). Retrieved from https://zakon.rada.gov.ua/laws/show/152-2021-%D1%80#Text.
  5. European Innovation Council and SMEs Executive Agency (EISMEA). (2021). Calculating costs and benefits for the use of Building Information Modelling in public tenders. Brussels: EISMEA.
  6. EU BIM Task Group. (2018). Handbook for the introduction of Building Information Modelling by the European public sector. Brussels: EU BIM Task Group.
  7. Semerei, V.V., & Zadorozhnikova, I.V. (2017). BIM technologies in design. Modern Technologies and Calculation Methods in Construction, 7.
  8. Luo, Y. (2016). BIM for bridge design. In Proceedings of IABSE conference. Guangzhou.
  9. Nöldgen, M. (2022). BIM in bridge and infrastructure design. Wiesbaden: Springer Fachmedien Wiesbaden GmbH.
  10. Järvenpää, M.-E. (2023). Use of BIM in design and construction of Chenab bridge in India. Retrieved from https://e-brim.com/wp-content/uploads/BIM-for-Bridges-May-2023.pdf.
  11. Flores, A.P. (2023). BIM automation in segmental bridges using parametric modelling – application cases in Perú. Retrieved from https://e-brim.com/wp-content/uploads/BIM-for-Bridges-May-2023.pdf.
  12. Federal Highway Administration. (n.d.). FHWA Bridge Information Modeling (BIM). Retrieved from https://www.fhwa.dot.gov/bridge/bim/.
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https://doi.org/10.33744/0365-8171-2024-115.2-038-050

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