Preview

Powder Metallurgy аnd Functional Coatings (Izvestiya Vuzov. Poroshkovaya Metallurgiya i Funktsional'nye Pokrytiya)

Advanced search

Control of hysteretic properties in powder alloys based on the Fe–Cr–Co system

https://doi.org/10.17073/1997-308X-2021-3-14-21

Abstract

Hysteresis alloys based on the Fe–Cr–Co system are of scientific and practical interest, primarily due to their high manufacturability, high level and temperature stability of magnetic properties, which provide the required hysteresis magnet performance including residual magnetic induction, coercive force, and loop squareness ratio. The research was aimed to control and stabilize the Fe–Cr–Co ridge alloy magnetic properties using reageing. The 22Kh15K4MS hard magnetic powder alloy was investigated after quenching and multistage aging. Billets were obtained by cold pressing at a pressure of 600 MPa and subsequent sintering in vacuum. The samples obtained by sintering in the α phase in the presence of the liquid phase formed during contact melting had a porosity of up to 1 %. The concentration heterogeneity of chromium and cobalt distribution was 0.06–0.08. The alloy magnetic structure parameters were determined by electron microscopy. The relationship between the magnetic structure formation kinetics during aging and the level of magnetic properties was established. After aging, the fine structure of the 22Kh15K4MS alloy was represented by elongated α1 phase sections in the α2 phase matrix. The average particle sizes of the α1 phase were »124 nm in length and »44 nm in width after the first stage of aging, and they remained the same after final aging. It was shown that it is possible to control magnetic properties by reaging without repeated quenching. A slight change in the size and morphology of magnetic phase particles was observed during aging. The influence of the number of reaging cycles on the stability of magnetic properties over time was determined.

About the Authors

M. A. Marieva
Perm National Research Polytechnic University
Russian Federation

Postgraduate student of the Department of physical metallurgy, heat and laser treatment of metals

614990, Perm, Komsomolsky pr., 29



A. A. Shatsov
Perm National Research Polytechnic University
Russian Federation

Dr. Sci. (Eng.), Professor of the Department of physical metallurgy, heat and laser treatment of metals

614990, Perm, Komsomolsky pr., 29



References

1. Vinogradov A.B. Vector control of AC drives. Ivanovo: IGEU, 2008 (In Russ.).

2. Practice and further prospects of industrial use of high— strength nanostructured hard magnetic alloys of the Fe— Cr—Co system. URL: http://www.ntsr.info/science/library/3201.htm (accessed: 18.06.2020) (In Russ.).

3. Kaneko H., Homma M.Г., Nakamura K. New ductile permanent magnet of Fe—Cr—Co system: AIP Conf. Proc. J. Magnetism and Magnetic Materials. 1971. No. 5. P. 1088—1092.

4. Shan Taoa, Zubair Ahmad. Phase, microstructure and magnetic properties of 45.5Fe—28Cr—20Co—3Mo1.5Ti— 2Nb permanent magnet. J. Magnetism and Magnetic Materials. 2019. Vol. 469. P. 342—348.

5. Homma M., Okada M., Minowa Т., Horikoshi E. Fe—Cr— Co permanent magnet alloys heat—treated in Ridge region of the miscibility Gap. IEEE Trans. Magn. 1981. Vol. 17. No. 6. P. 3473—3478.

6. Generalova K.N. Effect of Mo and W additions on the magnetic hysteresis properties of a powder ridge alloy. Metal Sci. Heat Treat. 2020. Vol. 61. No. 9-10. P. 657—662.

7. Kekalo I.B. Physical materials science of precision alloys. alloys with special magnetic properties Moscow: Metallurgiya, 1989 (In Russ.).

8. Zhen Liang, Sun Xue Yin, Xu Gao, Run Sheng, Xu Ren Gen, Qin Lu Chang. Magnetic anisotropy in Fe—25Cr— 12Co—1Si alloy induced by external magnetic field. Trans. Nonferr. Met. Soc. China (Eng. еd.). 2007. Vol. 17. No. 2. P. 346—350.

9. Lin Zhang, Zhaolong Xiang, Xiaodi Li. Spinodal decomposition in Fe—25Cr—12Co alloys under the influence of high magnetic field and the effect of grain boundary. Nanomaterials. 2018. Vol. 578. No. 8. P. 1—14.

10. Green M.L., Sherwood R.C., Wong C.C. Powder metallurgy processing of Cr—Co—Fe permanent magnet alloys containing 5—25 wt. % Co. J. Appl. Phys. 1982. Vol. 53. No. 3. P. 2398—2400.

11. Antsiferov V.N., Peshherenko S.N., Shatsov A.A. Diffusion homogenization of powder materials of the Fe—Ni— Cr—Mo system. Izvestiya vuzov. Chernaya metallurgiya. 1987. No. 9. P. 65—68 (In Russ.).

12. Zhukova E.H. Heat treatment and magnetic properties of cold—worked alloy 30Kh15K2MT. Metallovedenie i termicheskaya obrabotka metallov. 2014. No. 2. P. 15—19 (In Russ.).

13. Sidorova G.V., Korneev V.P. Investigation of structural changes in the Fe—Cr—Co alloy at the initial stage of the formation of a highly coercive state. Metally. 1997. No. 6. P. 90—92 (In Russ.).

14. Ryaposov I.V., Shatsov A.A. Specific features of alloying, structure and properties of a hard magnetic powder alloy with increased performance characteristics. Perspektivnye materialy. 2009. No. 1. P. 57—61 (In Russ.).

15. Adams E., Hubbard W.M. Sintered magnetic alloy and method of production: Pat. 298806 (USA). 1958.

16. Rossiter P.L., Houghton M.E. Magnetic properties and microstructure of an Fe—27.5Cr—17.5Co—0.5Al alloy. Phys. Stat. Sol. A. 1978. Vol. 48. P. 71—77.

17. Okada M., Thomas G., Homma M., Kaneko H. Microstructure and magnetic properties of Fe—Cr—Co alloys. IEEE Trans. Magn. 1978. Vol. 14. No. 4. P. 245—252.

18. Akhnazarova S.L., Kafarov V.A. Experiment optimization methods in chemical technology: textbook: Manual. Moscow: Vysshaya shkola, 1985 (In Russ.).

19. Shatsov A.A. Powder materials of the iron—chromium— cobalt system. Metallovedenie i termicheskaya obrabotka metallov. 2004. No. 4. P. 17—20 (In Russ.).

20. Fedorchenko I.M., Frantsevich I.N., Radomyselsky I.D. Powder metallurgy: Materials, technology, properties, applications. Kiev: Nauk. Dumka, 1985 (In Russ.).

21. Stoner E.C., Wohlfarth E.P. A mechanism of magnetic hysteresis in heterogenous alloys. Phil. Trans. Royal Soc. 1948. Vol. A240. P. 599—642.

22. Gao R.S., Zhen L., Shao W.Z., Sun X.Y., Zhu D.Y., Xu R.G. Magnetic stability of Fe—Cr—Co permanent magnet materials at high temperature. Mater. Sci. Forum. 2005. Vol. 475-479. Р. 2135—2138. DOI: 10.4028/www.scientific.net/MSF.475—479.2135.

23. Kaneko H., Homma M., Nakamura K., Okada M., Thomas G. Phase. diagram of Fe—Cr—Co permanent magnet system. IEEE Trans. Magn. 1977. Vol. 13. P. 1325—1327.

24. Generalova K.N., Ryaposov I.V., Shatsov A.A. Powder alloys of the Fe—Cr—Co system, heat—treated in the ridge area. Pis’ma o materialakh. 2017. No. 2(26). P.133—136 (In Russ.).


Review

For citations:


Marieva M.A., Shatsov A.A. Control of hysteretic properties in powder alloys based on the Fe–Cr–Co system. Powder Metallurgy аnd Functional Coatings (Izvestiya Vuzov. Poroshkovaya Metallurgiya i Funktsional'nye Pokrytiya). 2021;(3):14-21. (In Russ.) https://doi.org/10.17073/1997-308X-2021-3-14-21

Views: 655


ISSN 1997-308X (Print)
ISSN 2412-8767 (Online)