Physical Modelling in Development of the Regulatory Framework for Transport Construction

Author:

Tlyavlina G. V.1

Affiliation:

1. Scientific Research Centre «Sea Coasts», subdivision of JSC Central Research Institute of Transport Construction

Abstract

Application of the physical modelling method to justify regulatory requirements for design of structures for engineering protection of transport facilities from wave action is considered using the example of three completed research and development works. The described experimental studies of interaction of waves with structures were carried out in wave basins and tanks.The objective of the research is to scientifically substantiate the requirements of regulatory documents for design of shore protection to ensure safe operation of the roadbed of railways and roads, bridge supports, and other transport structures operated under conditions of wave action on the shores of seas and lakes. In this case, the normalised parameters, depending on the hydrological (wind-wave and sea-level regimes of the water area and current), geological-morphological and lithodynamic (coastal zone dynamics) conditions are the types of protective structures used, planned and design solutions for protective hydraulic structures (location, elevations, dimensions), as well as the materials and products used for construction (including quality requirements).The experimental design part of the described studies was carried out by the method of physical (hydraulic) modelling in wave basins and tanks. Physical modelling was carried out in accordance with the theory of similarity. At the same time, a «flat problem» is solved in wave tanks, and a «spatial problem» is solved in wave basins.

Publisher

FSBEO HPE Moscow State University of Railway Engineering (MIIT)

Subject

General Medicine

Reference20 articles.

1. Tlyavlina, G. V., Tlyavlin, R.M. Technical regulation in the field of designing shore protection structures [Tekhnicheskoe regulirovanie v oblasti proektirovaniya beregozashchitnykh sooruzhenii]. Gidrotekhnika, 2018, Iss. 3, pp. 70–72. [Electronic resource]: https://tsniis.choose.digital/texnicheskoe-regulirovanie-v-oblasti-proektirovaniyaberegozashhitnyx-sooruzhenij/. Last accessed 22.03.2023.

2. Ashpiz, E., Savin, A., Tlyavlin, R., Tlyavlina, G. Urgent issues of anti-deformation measures to protect coastal railways. Proceedings of the 14th MEDCOAST Congress on Coastal and Marine Sciences, Engineering, Management and Conservation (Marmaris, Turkey, 22–26 October 2019), 2019, Vol. 2, pp. 841–852. [Electronic resource]: https://www.elibrary.ru/item.asp?id=43226040. Last accessed 22.03.2023.

3. Tlyavlin, R.M. Problems of inspection and monitoring of structures of engineering protection of the coastal zone [Problemy obsledovaniya i monitoring sooruzhenii inzhenernoi zashchity beregovoi zony]. Olympic Legacy and Large-Scale Events: Impact on the Economy, Ecology and Socio-Cultural Sphere of Host Destinations: Proceedings of 11th International Scientific and Practical Conference (Sochi, November 14–15, 2019). Sochi, Editorial publishing centre of SSU FSBEI HE, 2019, pp. 244–248. [Electronic resource]: https://www.elibrary.ru/item.asp?id=41552411. Last accessed 22.03.2023.

4. Ashpiz, E. S., Savin, A. N., Yavna, V.A. Protection of the railway line Tuapse-Adler from dangerous landslip and rockslide processes. Zheleznodorozhniy transport, 2017, Iss. 7, pp. 52–57. [Electronic resource]: https://www.elibrary.ru/item.asp?id=29670918. Last accessed 22.03.2023.

5. Tlyavlin, R.M. Assessment of the technical condition of wave suppression structures for engineering protection of the roadbed from wave action [Otsenka tekhnicheskogo sostoyaniya volnogasyashchikh sooruzhenii inzhenernoi zashchity zemlyanogo polotna ot volnovogo vozdeistviya]. Izvestiya PEterburskogo universiteta putei soobshcheniya. St.Petersburg, PGUPS publ., 2020, Vol. 17, Iss. 2, pp. 198–209. DOI: 10.20295/1815-588Х‑2020–2–198–209.

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