Warianty tytułu
Języki publikacji
Abstrakty
The article presents the results of the study into the dynamic load of the container during its transportation by the train ferry. The peculiarity of the container is that its walls are made of sandwich panels. Such a solution will help to reduce the dynamic loads acting on the container at operating load modes, including when transported by sea as part of combined trains. To determine the dynamic loads acting on the container, a mathematical model was build that took into account the angular displacements around the longitudinal axis of the system “train ferry – flat wagon – container – freight”. The calculations were made for the train ferry Geroi Plevny. The mathematical model was solved in MathCad. It was found that the value of acceleration acting on the container of the proposed design during transportation by sea was 4.3% lower than that acting on the container of a typical design. The acceleration value obtained, as a component of the dynamic load, was taken into account to determine the stability coefficient of the container in a typical diagram of its interaction with the flat wagon. The roll angle of the train ferry, at which the stability of the container placed on the flat wagon is ensured, was also calculated. The results of the study will contribute to the database of recommendations for the design of modern container structures and their safe operation in international rail and water traffic.
Rocznik
Tom
Strony
205--209
Opis fizyczny
Bibliogr. 18 poz., rys., tab.
Twórcy
autor
- O.M. Beketov National University of Urban Economy, Kharkiv, Ukraine
autor
- University of Zilina, Zilina, Slovak Republic
autor
- University of Zilina, Zilina, Slovak Republic
autor
- Joint stock company “Ukrainian railway”, Kyiv, Ukraine
autor
- University of Žilina, Žilina, Slovak Republic
autor
- University of Zilina, Zilina, Slovak Republic
Bibliografia
- 1. Dižo, J., Harušinec, J., Blatnický, M.: Structural Analysis of a Modified Freight Wagon Bogie Frame. MATEC Web of Conferences. 134, 00010. (2017). - doi:10.1051/matecconf/201713400010.
- 2. Lovskaya, A.: Assessment of dynamic efforts to bodies of wagons at transportation with railway ferries. Eastern-European Journal of Enterprise Technologies. 3, 4, 36–41 (2014). - doi:10.15587/1729-4061.2014.24997.
- 3. Lewandowski, K.: Nadwozia wymienne (swap body) w bezterminalowym systemie transportu szynowego. Sistemy transportowe. 6, 53–55 (2006).
- 4. Bartosiewicz A., Kucharski A.: The Determination of Times of Transhipment Processes at Maritime Container Terminals. TransNav, the International Journal on Marine Navigation and Safety of Sea Transportation, Vol. 16, No. 3, doi:10.12716/1001.16.03.13, pp. 507-513, 2022.
- 5. Elentably A., Fisher K., Holger S., Alghanmi A., Alhrbi S.: Stochastic Model to Estimate the Waiting Time for Container Vessel Turnaround Times. TransNav, the International Journal on Marine Navigation and Safety of Sea Transportation, Vol. 16, No. 3, doi:10.12716/1001.16.03.14, pp. 515-519, 2022.
- 6. Giriunas, H., Sezen, R. B. Dupaix: Evaluation, modeling, and analysis of shipping containerbuilding structures, Eng. Structures. 43, 48–57 (2012). - doi:10.1016/j.engstruct.2012.05.001.
- 7. Rzeczycki A., Wisnicki B.: Strength analysis of shipping container floor with gooseneck tunnel under heavy cargo load. Solid State Phenomena. 252, 81–90 (2016). - doi:10.4028/www.scientific.net/SSP.252.81.
- 8. Stephen Tiernan, Martin Fahy: Dynamic fea modelling of iso tank containers. Journal of materials processing technology. 124 (1), 126 – 132 (2022). - doi:10.1016/S0924-0136(02)00196-6.
- 9. Chuan-jin, O. U., Bing-tao, L. I.: Research and application of new multimodal transport equipment-swap bodies in China. E3S Web of Conferences. 145, (2020). - doi:10.1051/e3sconf/202014502001.
- 10. Lovska, A., Fomin, O., Píštěk, V., Kučera, P. Dynamic load and strength determination of carrying structure of wagons transported by ferries. Journal of Marine Science and Engineering. 8, 902 (2020). - doi:10.3390/jmse8110902.
- 11. Panchenko, S., Gerlici, J., Vatulia, G., Lovska, A., Pavliuchenkov, M., Kravchenko, K.: The Analysis of the Loading and the Strength of the FLAT RACK Removable Module with Viscoelastic Bonds in the Fittings. Applied Sciences. 13(1), 79. (2023). - doi:10.3390/app13010079.
- 12. Мatluba, А. Khadjimukhametova, Avaz, M. Merganov: Development of the Design and Conditions of Operation of Containers for Transportation of Fruit and Vegetable Products. International Journal of Recent Technology and Engineering (IJRTE). 8, 5, 2277–3878. - doi:10.35940/ijrte.E4856.018520.
- 13. Koshlan, A., Salnikova, O., Chekhovska, M., Zhyvotovskyi, R., Prokopenko, Y., Hurskyi, T., Yefymenko, A., Kalashnikov, Y., Petruk, S., Shyshatskyi, A.: Development of an algorithm for complex processing of geospatial data in the special-purpose geoinformation system in conditions of diversity and uncertainty of data. Eastern-European Journal of Enterprise Technologies. 5, 9(101), 16–27. (2019). - doi:10.15587/1729-4061.2019.180197.
- 14. Syaseev A. V.: Introduction to the MathCad system: a tutorial. Dnepropetrovsk, Ukraine (2004).
- 15. Sobolenko O. V., Petrechuk L. M., Ivashchenko Yu. S., Egortseva E. E.: Methods for solving mathematical problems in the Mathcad environment: Textbook for the discipline "Computer science and systemology". Dnipro, Ukraine (2020).
- 16. Lovska, A., Fomin, O., Skurikhin, D.: Special Determination of the Stress State of the Body of a Hopper Car Transported by Sea. Proceedings of 26th International Scientific Conference. Transport Means 2022, Part I, 2022, October 5 – 7, Kaunas, Lithuania, 525 – 529.
- 17. Panchenko, S., Vatulia, G., Lovska, A., Ravlyuk, V., Elyazov, I., Huseynov, I.: Influence of structural solutions of an improved brake cylinder of a freight car of railway transport on its load in operation. EUREKA: Physics and Engineering. 6, 45 – 55 (2022) - doi:10.21303/2461-4262.2022.002638.
- 18. Kondratiev, A. V., Gaidachuk, V. E.: Mathematical analysis of technological parameters for producing superfine prepregs by flattening carbon fibers. Mechanics of Composite Materials. 1, 91 – 100. (2021). - doi:10.1007/s11029-021-09936-3.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-36e3b3d3-6116-487a-bf6a-bc3f3126e2ce