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EVALUATION OF STRAIN-STRESS STATE OF THE RAILS IN THE PRODUCTION

https://doi.org/10.21122/2220-9506-2017-8-3-263-270

Abstract

High values of residual stresses is one of the most common reason of breaking lots of metal constructions, including rails. These stresses can reach values of flow limit, especially in the area of faults. Estimation of residual stresses values allows to get information about technical condition of the rail and also allow to avoid abnormal situations So, the aim of the research is creating the model of stress-strain state of the rail, which was hardened in its top and bottom, and to compare modeling results with experimental measurements of stresses and discrepancy of the housing.

For creating the model and making evaluations by finite element method we used a program COMSOL. Forces on the top and bottom of the rail cause tension stresses, forces on the web of the rail cause tensile stresses. We compared calculated values of stresses with discrepancy of the housing. The discrepancy of the housing is informative characteristic for estimating the residual stresses according to standards. For experimental measurements we used an acoustic structuroscope SEMA. This structuroscope uses the acoustoelastic phenomenon for measurements. We made measurements of the five rails.

According to the calculation results of the model, critical discrepancy of the housing in 2 mm corresponded to the following values of maximum stresses: –54 MPa in the top of the rail, 86 MPa in the web and –62 MPa in the bottom of the rail. Experimental measurements are the following: from –48 MPa to – 64 MPa in the top of the rail, 54 MPa to 93 MPa in the web of the rail, and –59 MPA to –74 MPa in the bottom of the rail. Absolute error was ±5 MPa.

Thus we created the model, which allowed to analyze strain-stress state and compare real values of stresses with discrepancy of the housing. Results of the modeling showed coincidence with structure of distribution of residual stresses in five probes of rails. 

About the Authors

V. V. Muravev
Kalashnikov Izhevsk State Technical University
Russian Federation


K. A. Tapkov
Kalashnikov Izhevsk State Technical University
Russian Federation

Address for correspondence: Tapkov K.A. – Kalashnikov Izhevsk State Technical University, Studencheskaya str., 7, Izhevsk 426069, Russia   e-mail: izhjup@gmail.ru



References

1. Gromov V.E. Mikrostruktura zakalennykh rel'sov [Microstructure of hardened rails]. Novokuznetsk, InterKuzbass Publ., 2014, 213 p. (in Russian).

2. Beher S.A., Kolomeec A.O. [Experimental method of measurement of dynamic forces, applied to the rails of the crane in real conditions of using]. Izvestija vuzov. Stroitel’stvo [News of the universities. Construction], 2016, no. 3, pp. 110–118 (in Russian).

3. Kluev V.V., Anisimov V.V., Katorgin B.I., Kucenko A.N. Nerazrushayushchii kontrol' : spravochnik v 7 t. [Non-destructive testing: directory in 7 volumes], vol.

4. 4, Moscow, Mashinostroenie Publ., 2004, 736 p. (in Russian). 4. Deputat J., Szelazek J., Kwaszczynska-KlimekA. and Miernik A. Experiences in Ultrasonic Measurement of Rail Residual Stresses. O. Orringer et al. (eds.). Residual Stress in Rails, Kluwer academic publishers, 1992, no. 1, pp. 169–183.

5. Stepanova L.N., Beher S.A., Kurbatov A.N. [Research of strain-stress state of the rail by acoustoelasticity and tensometry]. Izvestija vuzov. Stroitel’stvo [News of the universities. Construction], 2013, no. 7, pp 103–109 (in Russian).

6. Murav’ev V.V., Volkova L.V., Platunov A.V. and Kulikov V.A. An Electromagnetic-Acoustic Method for Studying Stress-Strain States of Rails. Russian Journal of Nondestructive Testing, 2016, vol. 52, no. 7, pp.  370– 376.

7. Ivanov U.F., Morozov K.V., Peregudov O.A. [Developing of structural-phase gradients in rails during long time use]. Problemy chernoi metallurgii i materialovedeniya [Problems of iron metallurgy and material science], 2015, no. 3, pp. 59–65 (in Russian).

8. Ivanov U.F., Gromov V.E., Peregudov O.A. [Evolution of structural-phase states of the rails in process of long time using]. Izvestiya vishih uchebnih zavedenij. Chernaja Metallurgia [Messenger of universities. Iron industry], 2015, vol. 58, no. 4, pp. 262–267 (in Russian).

9. Pokrovsky A.M., Tretyakov D.N. [Numerical Modeling of temperature and structural state of rail during its hardening]. Nauka i Obrazovanie. MGTU im. N.E. Baumana. Elektron. zhurn. [Science and education of Bauman MSTU. Electronic magazine], 2015, no. 7, pp. 1–13 (in Russian).

10. Nikitina N.E., Kamyshev A.V., Kazachek S.V. [Applying acoustoelastic method for calculating stresses in anisotropic tube steels]. Defektoskopia [Defectoscopy], 2015, no. 3, pp. 51–60 (in Russian).

11. Whithers P.J. Bhadeshia and H.K.H. Overview Residual stress. Part 1 – Measurement techniques, Material Science and Technology, 2001, no. 17, рр. 355–365. doi: 10.1179/026708301101509980

12. Beher S.A., Kurbatov A.N., Stepanova L.N. [Using acoustoelastic effect during research mechanic stresses in rails]. Vestnik RGUPS [Messenger of RGUPS], no. 2, 2013, pp. 104–110 (in Russian).

13. Schneider E., Herzer R. Ultrasonic Evaluation of Stresses in the Rims of Railroad Wheels. NDTnet, June 1998, vol. 3, no. 6.

14. Murav’ev V.V., Volkova L.V., Gromov V.E., Glezer A.M. Estimation of the Residual Stresses in Rails Using Electromagnetic–Acoustic Introduction–Reception of Waves. Russian Metallurgy (Metally), vol. 2016, no. 10, pp. 1002–1005. doi: 10.1134/S003602951610013X

15. Strizhak V.A., Pryahin A.V., Obuhov S.A., Efremov A.B. [Information measurement system of exciting, receiving, registering and processing of electromagnetic acoustic transducer signals]. Intellektual'nye sistemy v proizvodstve [Intelligence systems in production], 2011, no. 1, pp. 243–250 (in Russian).


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For citations:


Muravev V.V., Tapkov K.A. EVALUATION OF STRAIN-STRESS STATE OF THE RAILS IN THE PRODUCTION. Devices and Methods of Measurements. 2017;8(3):263-270. (In Russ.) https://doi.org/10.21122/2220-9506-2017-8-3-263-270

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ISSN 2220-9506 (Print)
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