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INFLUENCE OF CONSTANT MAGNETIC FIELD ON STRUCTURE FORMATION IN STEELS AT HIGH-SPEED LASER PROCESSING

https://doi.org/10.17073/0368-0797-2018-8-638-643

Abstract

Experimental studies of laser-irradiated layers in a magnetic field (MF) have shown a non-trivial morphology of the surface of handling zone of material in case of reflow. Twisting of a thin layer of liquid metal is observed, irradiated area is getting a crescent appearance, definitely strictly oriented in relation to magnetic flux. This is probably due to the effect of Righi-Leduc, as well as the action of Lorentz forces, which deflect the electrons flow. As a result, there is significant mixing of metal in the irradiation zone, chemical composition equalization, which positively affects the strength properties of the products. One of the important consequences of the MF-effect on the results of laser processing is the phenomenon of magnetostriction. In laser irradiation without MF slide lines were observed on the pre-polished surface patterns resulting from the emerging thermal and structural stresses. By analyzing the topography of irradiated surfaces using modern analysis techniques and computer image processing, it was established that irradiation in MF in conditions of magnetostriction decreases the stress level in irradiated areas and reduces the risk of cracking. The results of temperature measurements at the irradiated spot on cooling stage allow establishing that the cooling rate during laser processing in a MF is considerably higher than without the field. It affects the processes of phase and structural transformations. At laser heating in MF microheterogenic austenite is supercooled with great speed to temperatures of martensite transformation. After that its transformation begins, the sequence of which is determined by the level of local saturation, degree of deformation and is controlled by temperature. The first crystals of martensite are formed in the least saturated areas of austenite, and a very high speed (thousands or tens of thousands of °С/s) of the transformation process beginning γ → α prevents martensite self tempering, which partially can occur when the temperature decreases further due to transformation spread on the remaining volume of austenite, grabbing areas of different saturation. As a result, along with the “fresh-formed” martensite in the areas of laser quenching the martensite is formed, in which segregation of carbon or even ε-carbide may occur and residual austenite with high carbon intensity are formed. Released dispersed carbides contribute to obtaining a sufficiently high hardness values of metals irradiated in a MF.

About the Authors

A. V. Brover
Don State Technical University
Russian Federation

Cand. Sci. (Eng.), Assist. Professor of the Chair “Physical and Applied Material Science”

Rostov-on-Don, Russia



G. I. Brover
Don State Technical University
Russian Federation

Dr. Sci. (Eng.), Professor of the Chair “Physical and Applied Material Science”

Rostov-on-Don, Russia



References

1. Bernshtein M.L., Pustovoit V.N. Termicheskaya obrabotka stal’nykh izdelii v magnitnom pole [Heat treatment of steel products in magnetic field]. Moscow: Mashinostroenie, 1987, 254 p. (In Russ.).

2. Sadovskii V.D., Malinen P.A., Mel’nikov L.A. Influence of high pressure and a pulsed magnetic field on the martensite transformation in Fe−Ni and Fe−Ni−Mn alloys. Metal Science and Heat Treatment.1972, vol. 14, no. 9, pp. 775–781.

3. Sadovskii V.D., Smirnov L.V., Romanov E.P. Effect of constant magnetic field on the diffusion decay of supercooled austenite. Fizika metallov i metallovedenie. 1978, vol. 46, no. 2, pp. 54–55. (In Russ.).

4. Joo H.D., Kim S.U., Shin N.S., Koo Y.M. An effect of high magnetic field on phase transformation in Fe–C system. Materials Letters. 2000, no. 43 (5), pp. 225–229.

5. Koch C.C. Experimental evidence for magnetic or electric field effects on phase transformations. Materials Science and Engineering. 2000, no. 287 (2), pp. 213–218.

6. Joo H.D., Kim S.U., Koo Y.M., Shin N.S., Choi J.K. An effect of a strong magnetic field on the phase transformation in plain carbon steels. Metallurgical and Materials Transactions. 2004, vol. 35 (6), pp. 1663–1668.

7. Brover A.V. Device for contactless recording of metal temperature, changing with a hyper speed. Uprochnyayushchie tekhnologii i pokrytiya. 2007, no. 3, pp. 53–56. (In Russ.).

8. Pustovoit V.N., Brover A.V., D’yachenko L.D. Ustroistvo dlya izmereniya temperatury poverkhnosti metalla pri vozdeistvii kontsentrirovannym potokom energii [Device for measuring temperature of metal surface exposed to concentrated flow of energy]. Utility model patent no. 64363 RF. Byulletenʹ izobretenii. 2007, no. 18. (In Russ.).

9. Brover A.V., D’yachenko L.D. Structuring in metal and alloy laser melting zones. Metal Science and Heat Treatment. 2009, vol. 51, no. 5-6, pp. 292–296.

10. Brover A.V., Pustovoit V.N. On localized stresses in laser-irradiated surface of metallic materials. Uprochnyayushchie tekhnologii i pokrytiya. 2010, no. 1, pp. 3–7. (In Russ.).

11. Müllner P., Chernenko V.A., Kostorz G. A microscopic approach to the magnetic-field-induced deformation of martensite (magnetoplasticity). Journal of Magnetism and Magnetic Materials. 2003, no. 267 (3), pp. 325–334.

12. Kiefer Björn, Dimitris C. Lagoudas. Magnetic field-induced martensitic variant reorientation in magnetic shape memory alloys. Philosophical Magazine 85. 2005, no. 33-35, pp. 4289–4329.

13. Sadovskii V.D. Magnetic field and phase transformations in steel. Metal Science and Heat Treatment. 1966, no. 7, pp. 441–445.

14. Kaletina Yu.V. Phase transformations in steels and alloys in magnetic field. Metal Science and Heat Treatment. 2008, no. 50, pp. 413–416.

15. Schastlivtsev V.M., Kaletina Yu.V., Fokina E.A., Mirzaev D.A. Effect of external actions and a magnetic field on martensitic transformation in steels and alloys. Metal Science and Heat Treatment. 2016, no. 58, pp. 247–251.

16. Pustovoit V.N., Dolgachev Yu.V. Special features of the structure of martensite formed by hardening of steel in magnetic field in the temperature range of superplasticity of austenite. Metal Science and Heat Treatment. 2012, vol. 53, no. 11-12, pp. 515–519.

17. Pustovoit V.N., Dolgachev Yu.V., Kornilov Yu.A. Instability of crystal lattice before the martensitic transformation and external magnetic field impact under these conditions. Vestnik Donskogo gosudarstvennogo tekhnicheskogo universiteta. 2009, vol. 9, no. 2, pp. 238–248. (In Russ.).

18. Pustovoit V.N., Dolgachev Yu.V. Special features of the structure of martensite formed by hardening of steel in magnetic field in the temperature range of superplasticity of austenite. Metal Science and Heat Treatment. 2012, vol. 53, no. 11-12, pp. 515–519.

19. Pustovoit V.N., Dolgachev Yu.V., Dombrovskii Yu.M. Use of the superplasticity phenomenon of steel for” internal” magnetic correcting a product. Solid State Phenomena. Trans. Tech. Publications. 2017, vol. 265, pp. 745–749.

20. Pustovoit V.N., Dolgachev Yu.V. Ferromagnetically ordered clusters in austenite as the areas of martensite formation. Emerging Materials Research. 2017, vol. 6, no. 2, pp. 1–5.


Review

For citations:


Brover A.V., Brover G.I. INFLUENCE OF CONSTANT MAGNETIC FIELD ON STRUCTURE FORMATION IN STEELS AT HIGH-SPEED LASER PROCESSING. Izvestiya. Ferrous Metallurgy. 2018;61(8):638-643. (In Russ.) https://doi.org/10.17073/0368-0797-2018-8-638-643

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