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CHANGE OF MECHANICAL CHARACTERISTICS OF POLYCRYSTALLINE PARAMAGNETIC MATERIALS IN A MAGNETIC FIELD

Abstract

The work is devoted to the analysis of the influence of weak constant magnetic fields with induction up to 0.6 T on the strength and plastic characteristics of paramagnetic materials, in this case polycrystalline technical pure titanium and aluminum. In the course of the work, it was found that weak magnetic fields can qualitatively affect the plastic characteristics of the materials under study. The effect of the magnetic field linearly depended on the induction of the magnetic field and was quantitatively characterized by a change in the microhardness of polycrystalline technically pure titanium and polycrystalline technically pure aluminum. A comparative analysis of the change in the stationary creep rate in a magnetic field of 0.4 T for titanium and aluminum is presented.

About the Authors

V.V. Shlyarov
Siberian State Industrial University
Russian Federation


D.V. Zagulyaev
Siberian State Industrial University


References

1. Ebadi Z., Pourali N., Mohammadzadeh H. Plasma coating of nanoparticles in the pres-ence of an external electric field // Physics Letters A. 2018. Vol. 382. P. 1024 – 1030.

2. Agrawal S., Ghose A. K., Chakrabarty I. Ef-fect of rotary electromagnetic stirring during solidification of In-situ Al-TiB2 composites // Materials and Design. 2017. Vol. 113. P. 195 – 206.

3. Tsunekawa Y., Suzuki H., Genma Y. Applica-tion of ultrasonic vibration to in situ MMC process by electromagnetic melt stirring // Ma-terials and Design. 2001. Vol. 22. No. 6. P. 467 – 472.

4. Joffe R., Shavit R., Kamenetskii E.O. Micro-wave magnetoelectric fields: an analytical study of topological characteristics // Journal of Magnetism and Magnetic. 2015. Vol. 392. P. 6 – 21.

5. Burdin D.A., Chashin D.V., Ekonomov N.A., Fetisov Y.K. Static deformation of a ferro-magnet in alternating magnetic field // Journal of Magnetism and Magnetic Materials. 2016. Vol. 406. P. 217 – 220.

6. Yetim A.F., Kovacı H., Aslan M., Çelik A. The effect of magnetic field on the wear prop-erties of a ferromagnetic steel // Wear. 2013. Vol. 301. P. 636 – 640.

7. Wu G. H., Hou T.P., Wu K.M., Chen L. In-fluence of high magnetic field on carbides and the dislocation density during tempering of high chromium-containing steel // Journal of Magnetism and Magnetic Materials. 2019. Vol. 479. P. 43 – 49.

8. Guirong L., Hongming W., Xueting Y., Yutao Z. Microstructure of nanometer Al2O3 particles reinforced aluminum matrix compo-sites processed by high pulsed electromagnetic field // Materials Letters. 2013. Vol. 99. P. 50 – 53.

9. Yin L., Qiang W., Tie L., Pengfei G., Yi Y., Jicheng H. Effects of high magnetic fields on the crystal orientation and magnetostriction of a TbFe2 based alloy during treatment in the semi-solid state // Journal of Alloys and Com-pounds. 2014. Vol. 590. P. 110 – 115.

10. Yang L., Zhen L., Fuyu Y., Rui D., Qi Y. Ef-fect of external magnetic field on resistance spot welds of aluminum alloy // Material and Design. 2014. Vol. 56. P. 1025 – 1033.

11. Li C., Hu S., Ren Z., Fautrelle Y., Li X. Ef-fect of the simultaneous application of a high static magnetic field and a low alternating current on grain structure and grain boundary of pure aluminum // Journal of Materials Sci-ence & Technology. 2018. Vol. 34. No. 12. P. 2431 – 2438.

12. Li Y.J., Tao W.Z., Yang Y.S. Grain refine-ment of Al–Cu alloy in low voltage pulsed magnetic field // Journal of Materials Pro-cessing Technology. 2012. Vol. 212. P. 903 – 909.

13. Fu J.W., Yang Y.S. Microstructure and me-chanical properties of Mg–Al–Zn alloy under a low-voltage pulsed magnetic field // Materials Letters. 2012. Vol. 67. P. 252 – 255.

14. Alshits V.I., Darinskaya E.V., Koldaeva M.V., Petrzhik E.A. Magnetoplastic effect in nonmagnetic crystals // Dislocations in Sol-ids. 2008. Vol. 14. P. 333 – 437.

15. Cheng J., Gui-rong Li., Hong-ming W., Pei-si Li., Chao-qun Li. Influence of high pulsed magnetic field on the dislocations and me-chanical properties of Al2O3 / Al composites // Journal of Materials Engineering and Perfor-mance. 2018. Vol. 27. P. 1083 – 1092.

16. Guirong L., Yueming L., Fangfang W., Hongming W. Microstructure and perfor-mance of solid TC4 titanium alloy subjected to the high pulsed magnetic field treatment // Journal of Alloys and Compounds. 2015. Vol. 644. P. 750 – 756.

17. Кеннеди А.Дж. Ползучесть и усталость в металлах. – M.: Металлургия, 1965. – 312 с.

18. Kassner M.E. Fundamentals of creep in met-als and alloys. – Elsevir Ltd., 2015. – 356 p.


Review

For citations:


Shlyarov V., Zagulyaev D. CHANGE OF MECHANICAL CHARACTERISTICS OF POLYCRYSTALLINE PARAMAGNETIC MATERIALS IN A MAGNETIC FIELD. Bulletin of the Siberian State Industrial University. 2020;(1):39-43. (In Russ.)

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ISSN 2304 - 4497 (Print)
ISSN 2307-1710 (Online)