Preview

RUSSIAN RAILWAY SCIENCE JOURNAL

Advanced search

Simulation of contact-fatigue damage to rails in a welded rail joint area

https://doi.org/10.21780/2223-9731-2023-82-1-47-57

Abstract

Introduction. The aim is to study the formation and accumulation of contact-fatigue damage in a welded rail joint area and to determine the degree of influence of the presence and deformation behaviour of the rail tread surface on an electrically welded joint on the occurrence and development of contact-fatigue damage, including the number of cycles to crack formation, which determines the service life of the welded joint.

Materials and methods. In order to simulate the accumulation of contact-fatigue damage in the material surface under cyclical stress the authors take an approach that considers the peak values of the maximum shear stresses as an accumulation criterion. The following stages have been implemented as part of the given approach: determine the distribution of the probability density of wheel load on the rails; solve the contact problem of a rolling wheel considering the rail shape change in the collapse area; simulate the damage accumulation process.

Results. The collapse of the rail material in a welded rail joint area causes, on the one hand, an additional dynamic load that increases the contact and internal stresses, and on the other hand, increases the contact area due to the flattening of the rail head, which reduces contact stresses. Depending on the depth of collapse, initial damage, nature of loading, the accumulation of contact-fatigue damage can both accelerate and slow down.

Discussion and conclusion. It is confirmed that need for heat treatment to eliminate zones of reduced hardness in welded rail joint areas resulting in saddling, cracks and spalling. Reducing the weakened zone to the size of the contact spot will practically prevent the formation of impulse irregularities, and their formation upon contact would eliminate additional dynamic load. The problem may be solved by intensifying local heat treatment after welding, bandoning separate local heat treatment of rails after welding, and combining accelerated cooling of rail heads with the general welding process.

About the Authors

E. V. Torskaya
Ishlinsky Institute for Problems in Mechanics of the Russian Academy of Sciences; Sirius University of Science and Technology
Russian Federation

Elena V. Torskaya, Dr. Sci. (Phys. and Math.), Professor of the Russian Academy of Sciences, Leading Researcher, Tribology Laboratory, Ishlinsky Institute for Problems in Mechanics of the Russian Academy of Sciences

Author ID: 13427

119526, Moscow, 101, bldg. 1, Vernadskiy Ave.



I. Yu. Tsukanov
Ishlinsky Institute for Problems in Mechanics of the Russian Academy of Sciences; Sirius University of Science and Technology
Russian Federation

Ivan Yu. Tsukanov, Cand. Sci. (Eng.), Senior Researcher, Tribology Laboratory, Ishlinsky Institute for Problems in Mechanics of the Russian Academy of Sciences

Author ID: 721434

119526, Moscow, 101, bldg. 1, Vernadskiy Ave.



A. R. Meshcheryakova
Ishlinsky Institute for Problems in Mechanics of the Russian Academy of Sciences; Sirius University of Science and Technology
Russian Federation

Almira R. Meshcheryakova, Cand. Sci. (Phys. and Math.), Junior Researcher, Tribology Laboratory, Ishlinsky Institute for Problems in Mechanics of the Russian Academy of Sciences

Author ID: 963641

119526, Moscow, 101, bldg. 1, Vernadskiy Ave.



K. L. Zagranichek
Railway Research Institute
Russian Federation

Konstantin l. Zagranichek, Head of Laboratory, Rails, Welding and Transport Material Research Centre

Author ID: 808109

129626, Moscow, 10, 3rd Mytishchinskaya St.



S. M. Zakharov
Railway Research Institute
Russian Federation

Sergey M. Zakharov, Dr. Sci. (Eng.), Professor, Academic Advisor, Rails, Welding and Transport Material Research Centre

Author ID: 731500

129626, Moscow, 10, 3rd Mytishchinskaya St.



E. A. Shur
Railway Research Institute
Russian Federation

Evgeniy A. Shur, Dr. Sci. (Eng.), Professor, Chief Researcher, Rails, Welding and Transport Material Research Centre

Author ID: 764128

129626, Moscow, 10, 3rd Mytishchinskaya St.



References

1. Shur E. A., Fedin V. M., Borts A. I., Ronzhina Yu. V., Fimkin A. I. Methods of elimination of rails increased damage in the area of weld joints. Russian Railway Science Journal. 2019;78(4):210-217. (In Russ.) https://doi.org/10.21780/2223-9731-2019-78-4-210-217.

2. Burstow M. C. A model to predict and understand rolling contact fatigue in wheels and rails. In: Proceedings of the 7th World Congress on Railway Research, WCRR 2006, 4–8 June 2006, Montreal, Canada. Montreal; 2006. P. 7.

3. Trummer G., Marte C., Dietmaier P., Sommitsch C., Six K. Modeling surface rolling contact fatigue crack initiation taking severe plastic shear deformation into account. Wear. 2016;352-353:136-145. https://doi.org/10.1016/j.wear.2016.02.008.

4. Pun C. L., Welsby D., Mutton P., Yan W. Rolling contact fatigue life prediction for rails and welds in heavy haul systems. In: Proceedings of the 11th International Heavy Haul Association Conference, IHHA 2017, 2–6 September 2017, Cape Town, South Africa. New York: Curran Associates, Inc.; 2017. P. 56–63.

5. Sakalo V. I., Sakalo A. V. Criteria for predicting the initiation of rolling contact fatigue damage in the railway wheels and rails. Russian Railway Science Journal. 2019;78(3):141-148. (In Russ.). https://doi.org/10.21780/2223-9731-2019-78-3-141-148.

6. Kogan A. Y. Evaluation of the intensity of lateral and vertical wear of rails under passing trains. Russian Railway Science Journal. 2017;76(3):138-145. (In Russ.). https://doi.org/10.21780/2223-9731-2017-76-3-138-145.

7. Goryacheva I. G. Mekhanika friktsionnogo vzaimodeystviya [The mechanics of frictional interaction] Moscow: Nauka; 2001. 478 p. (In Russ.)

8. Torskaya E. V., Goryacheva I. G., Muravieva T. I., Shcherbakova O. O., Tsukanov I. Yu., Meshcheryakova A. R., et al. Rolling contact fatigue damage in welded rail steel joints. Physical Mesomechanics. 2022;25(5):12-25. (In Russ.). http://doi.org/10.55652/1683-805X_2022_25_5_12.

9. Meshcheryakova A. R., Tsukanov I. Yu. Influence of Flattening in the Zone of Welded Joints of a Railway on Contact Interaction in the Wheel — Rail System. Journal of Friction and Wear. 2022;43(2):192-201. (In Russ.)]. https://doi.org/10.32864/0202-4977-2022-43-2-192-201.

10. Kossov V. S., Krasnov O. G., Akashev M. G. The impact of deformation in the zone of welded joints on the force action of the rolling stock on the track. Russian Railway Science Journal. 2020;79(1):9-16. (In Russ.). https://doi.org/10.21780/2223-9731-2020-79-1-9-16.

11. Gmurman V. E. Teoriya veroyatnostey i matematicheskaya statistika: ucheb. posobie dlya vuzov [The Probability Theory and Mathematical Statistics: тextbook for universities]. 12th ed. Moscow: Urait; 2020. 480 p. (In Russ.).

12. Johnson K. L. Contact Mechanics. Cambridge: Cambridge University Press; 1985. 452 p. https://doi.org/10.1017/cbo9781139171731.

13. Carter F. W. On the action of a locomotive driving wheel. Proceedings of the Royal Society of London. Series A, Containing Papers of a Mathematical and Physical Character. 1926;112(760):151-157. https://doi.org/10.1098/rspa.1926.0100.

14. Vershinskiy S. V., Danilov V. N., Khusidov V. D. Dinamika vagona: ucheb. dlya vuzov zh.-d. transporta [Car dynamics: тextbook for railway universities]. 3rd ed., upd. and rev. Moscow: Transport; 1991. 360 p. (In Russ.).

15. Borts A. I., Dolgikh L. V., Zagranichek K. L. Ispytaniya rel'sov na vynoslivost' [Rail durability testing]. Railway Track and Facilities. 2013;2:16-22. (In Russ.)


Review

For citations:


Torskaya E.V., Tsukanov I.Yu., Meshcheryakova A.R., Zagranichek K.L., Zakharov S.M., Shur E.A. Simulation of contact-fatigue damage to rails in a welded rail joint area. RUSSIAN RAILWAY SCIENCE JOURNAL. 2023;82(1):47-57. (In Russ.) https://doi.org/10.21780/2223-9731-2023-82-1-47-57

Views: 381


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2223-9731 (Print)
ISSN 2713-2560 (Online)