Research of the Vertical Dynamics of the Supporting Structures of Freight Cars Made of Round Pipes
DOI:
https://doi.org/10.15802/stp2021/227223Keywords:
car, supporting structure, dynamic loading, vertical dynamics, transport mechanicsAbstract
Purpose. This study is aimed at determining the vertical dynamics of supporting structures of freight cars made of round pipes. Methodology. Mathematical modeling of the dynamic loading of the supporting structures of the main types of freight cars made of round pipes (gondola car, covered car, flat car, hopper car) was carried out. The studies were carried out in a plane coordinate system – the XZ plane. At the same time, it was taken into account that the car is moving in an elastic-viscous track so that the reactions of the track are proportional to both its deformation and the rate of this deformation. The studies were carried out for the case of empty cars. The joint inequality is described by a periodic function. The calculation was performed at a speed of 80 km/h. Differential equations of motion were solved in the MathCad software package using the Runge-Kutta method. Findings. Based on the mathematical modeling of the dynamic loading of the supporting structures of cars made of round pipes, the main indicators of their dynamics were obtained: accelerations acting on the supporting structures in the mass center, forces acting in the spring suspension of bogies, dynamics coefficients. For gondola car, covered car, and hopper car, the acceleration at the mass center of the supporting structure is within 0.4 g, and for a flat car – 0.5 g. It was found that the obtained indicators of the dynamics of cars made of round pipes are within the permissible limits. The accelerations acting on the supporting structures of cars made of round pipes are almost the same as those obtained for prototype cars. At the same time, the motion of cars is assessed as "excellent" for gondola car, covered car, and hopper car and "good" for flat car. Originality. Mathematical modeling of the dynamic loading of the supporting structures of cars from round pipes was carried out and the main indicators of their dynamics were obtained. Practical value. The research carried out will contribute to the creation of recommendations for the design of supporting structures of freight cars of round pipes, and can also be useful developments in the creation of innovative car designs.
References
Vagony gruzovye. Trebovaniya k prochnosti i dinamicheskim kachestvam, 54 GOST 33211-2014 (2016). (in Russian)
Vagoni vantazhni. Zagalni vimogi do rozrahunkiv ta proektuvannya novih i modernizovanih vagoniv koliyi 1520 mm (nasamohidnih), 250 DSTU 7598:2014 (2015). (in Ukraіnian)
Domin, Yu. V. (2001). Zaliznychna tekhnika mizhnarodnykh transportnykh system (vantazhni perevezennya). Kiev: Yunikom-Pres. (in Ukraіnian)
Dyakonov, V. (2000). MATHCAD 8/2000: spetsialnyy spravochnik. St. Petersburg: Izdatelstvo «Piter». (in Rus-sian)
Yermolenko, I. Yu., & Zheleznyak, V. N. (2016). Issledovanie dinamiki podvizhnogo sostava s ispolzovaniem eksperimentalnogo vagona-laboratorii pri dvizhenii po slozhnym uchastkam dorogi VSZhD. Modern Technologies system. Analysis. Modeling, 4(52), 199-203. (in Russian)
Kiryanov, D. V. (2006). Mathcad 13. St. Petersburg: BKhV-Peterburg. (in Russian)
Lukhanyn, M. I., Myamlin, S. V., Neduzha, L. A., & Shvets, A. O. (2012). Freight Cars Dynamics Taking into Account Transversal Displacement of the Bogies. Zbirnyk naukovykh prats DonIZT, 29, 234-241. (in Rus-sian)
Chao, C., Mei, H., & Yanhui, H. (2012). Study of Railway Freight Vehicle Body’s Dynamic Model Based on Goods Loading Technical Standards. Procedia Engineering, 29, 3572-3577. DOI: https://doi.org/10.1016/j.proeng.2012.01.533 (in English)
Fomin, O., Gerlici, J., Lovska, A., Kravchenko, K., Prokopenko, P., Fomina, A., & Hauser, V. (2019). Durability Determination of the Bearing Structure of an Open Freight Wagon Body Made of Round Pipes during its Transportation on the Railway Ferry. Communications-Scientific Letters of the University of Zilina, 21(1), 28-34. DOI: https://doi.org/10.26552/com.c.2019.1.28-34 (in English)
Fomin, O., Gerlici, J., Lovskaya, A., Kravchenko, K., Prokopenko, P., Fomina, A., & Hauser, V. (2018). Research of the strength of the bearing structure of the flat wagon body from round pipes during tran-sportation on the railway ferry. MATEC Web of Conferences, 235, 1-5. DOI: https://doi.org/10.1051/matecconf/201823500003 (in English)
Fomin, O., Lovska, A., Masliyev, V., Tsymbaliuk, A., & Burlutski, O. (2019). Determining strength indicators for the bearing structure of a covered wagon's body made from round pipes when transported by a railroad ferry. Eastern-European Journal of Enterprise Technologies, 1(7(97)), 33-40. DOI: https://doi.org/10.15587/1729-4061.2019.154282 (in English)
Fomin, O. V., Lovska, A. O., Plakhti,i O. A., & Nerubatskyi, V. P. (2017). The influence of implementation of circular pipes in load-bearing structures of bodies of freight cars on their physico-mechanical properties. Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu, 6, 89-96. (in English)
Haraka, S. S., Sharma, S. C., & Harsha, S. P. (2014). Structural dynamic analysis of freight railway wagon using finite element method. Procedia Materials Science, 6, 1891-1898. DOI: https://doi.org/10.1016/j.mspro.2014.07.221 (in English)
Myamlin, S., Neduzha, L., & Lunys, O. (2017). Estimation of dynamic qualities of freight wagons on bogies of a perspective model. IX International conference, 459-471. (in English)
Płaczek, M., Wróbel, A., & Buchacz, A. (2016). A concept of technology for freight wagons modernization. IOP Conference Series: Materials Science and Engineering, 161, 1-13. DOI: https://doi.org/10.1088/1757-899X/161/1/012107 (in English)
Shvets, A. O., & Bolotov, О. О. (2019). Influence of loading from the axle of a gondola car on its dynamic indi-cators and railway track. Science and Transport Progress, 1(79), 151-166. DOI: https://doi.org/10.15802/stp2019/158127 (in English)
Stoilov, V., Slavchev, S., & Purgic, S. Study of fatigue in welded joints and stress notches of wagon series s (g)mmns with methods of UIC and DVS 1612. Retrieved from http://www.mech-ing.com/journal/Archive/2012/9/nano/82_Stoilov%20d1%20en_tm'12.pdf (in English)
Vatulia, G., Komagorova, S., & Pavliuchenkov, M. (2018). Optimization of the truss beam. Verification of the calculation results. MATEC Web of Conferences, 230, 1-8. DOI: https://doi.org/10.1051/matecconf/201823002037 (in English)
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