Features of Phase Composition and Structure of Rapidly Quenched Ferromagnetic Mn–Al–Ga Alloy

Мұқаба

Дәйексөз келтіру

Толық мәтін

Ашық рұқсат Ашық рұқсат
Рұқсат жабық Рұқсат берілді
Рұқсат жабық Тек жазылушылар үшін

Аннотация

Rapidly quenched Mn55Al36Ga9 ribbons were obtained by the spinning method. In the initial quenched state, the ribbons had a two-phase structure of the ε and γ2-phases. It has been established that, upon heating, the alloy undergoes a series of phase transformations, including the precipitation of the equilibrium β-Mn phase and its subsequent dissolution, the formation of the ferromagnetic τ-phase from both the ε and γ2-phases. The largest amount of the τ-phase was obtained by annealing at a temperature of 700 °C for 20 minutes. The work describes both the phase composition obtained as a result of annealing at different temperatures and the features of the microstructure studied by electron microscopy.

Толық мәтін

Рұқсат жабық

Авторлар туралы

A. Fortuna

National Research Technological University MISiS

Хат алмасуға жауапты Автор.
Email: fortuna.as@misis.ru
Ресей, Moscow, 119049

T. Morozova

National Research Technological University MISiS

Email: fortuna.as@misis.ru
Ресей, Moscow, 119049

D. Karpenkov

National Research Technological University MISiS

Email: fortuna.as@misis.ru
Ресей, Moscow, 119049

M. Gorshenkov

National Research Technological University MISiS

Email: fortuna.as@misis.ru
Ресей, Moscow, 119049

Әдебиет тізімі

  1. Kono H. On the Ferromagnetic Phase in Manganese-Aluminum System // J. Phys. Soc. Japan. 1958. V. 13. P. 1444–1451.
  2. Liu X.J., Ohnuma I., Kainuma R., Ishida K. Thermodynamic Assessment of the Aluminum-Manganese (Al-Mn) Binary Phase Diagram // J. Phase Equilibria. 1999. V. 20. P. 45–56.
  3. Кекало И.Б., Самарин Б.А. Физическое металловедение прецизионных сплавов. Сплавы с особыми магнитными свойствами. М.: Металлургия, 1989. 467 c.
  4. Park J.H., Hong Y.K., Bae S., Lee J.J., Jalli J., Abo G.S., Neveu N., Kim S.G., Choi C.J., Lee J.G. Saturation magnetization and crystalline anisotropy calculations for MnAl permanent magnet // J. Appl. Phys. 2010. V. 107. 09A731. P. 1–3.
  5. Fang H., Kontos S., Ångstrom J., Cedervall J., Svedlindh P., Gunnarsson K., Sahlberg M. Directly obtained τ-phase MnAl, a high performance magnetic material for permanent magnets // J. Solid State Chem. 2016. V. 237. P. 300–306.
  6. Feng L., Freudenberger J., Mix T., Nialsch K., Woodcock T.G. Rare-earth-free MnAl–C–Ni permanent magnets produced by extrusion of powder milled from bulk // Acta Mater. 2020. V. 199. P. 155–168.
  7. Pareti L., Bolzoni F., Leccabue F., Ermakov A.E. Magnetic anisotropy of MnAl and MnAlC permanent magnet materials // J. Appl. Phys. 1986. V. 59. P. 3824–3828.
  8. Zhao S., Wu Y., Zhang C., Wang J., Fu Z., Zhang R., Jiang C. Stabilization of t-phase in carbon-doped MnAl magnetic alloys // J. Alloys Compounds. 2018. V. 755. P. 257–264.
  9. Sakka Y., Nakamura M., Hoshimoto K. Rapid quenching and properties of hard magnetic materials in MnAI–X (X = Ti, Cu, Ni, C, B) systems // J. Mater. Sci. 1989. V. 24. P. 4331–4338.
  10. Mix T., Bittner F., Müller K.-H. Schultz L., Woodcock T.G. Alloying with a few atomic percent of Ga makes MnAl thermodynamically stable // Acta Mater. 2017. V. 128. P. 160–165.
  11. Mix T., Woodcock T.G. Advanced thermal stability investigations of the Mn–Al–Ga system // Results Mater. 2020. V. 5. 100068. P. 1–4.
  12. Xiang Z., Deng B., Xiang Z., Wang X., Cui E., Yu L., Song Y., Lu W. Nanocrystalline MnAlV rare-earth-free Permanent Magnetic Alloys with Improved Magnetization and Thermal Stability // Intermetallics. 2020. V. 116. 106638. P. 1–6.
  13. Xiang Z., Song Y., Deng B., Cui E., Yu L., Lu W. Enhanced formation and improved thermal stability of ferromagnetic τ phase in nanocrystalline Mn55Al45 alloys by Co addition // J. Alloys and Compounds. 2019. V. 783. P. 416–422.
  14. Шелехов Е.В., Свиридова Т.А. Программы для рентгеновского анализа поликристаллов // МиТОМ. 2000. 8. C. 16–19.
  15. Wiezorek J.M.K., Kulovits A.K., Yanar C., Soffa W.A. Grain Boundary Mediated Displacive–Diffusional Formation of s-Phase MnAl // Metal. Mater. Trans. A. 2011. V. 42A. P. 594–604.
  16. Jia Y., Ding H., Wu Y., Wang J., Wu H., Ma T., Zhao S., Skokov K.P., Aubert A., Maccari F., Gutfleisch O., Xu Y., Niu J., Qiao B., Zhao S., Jiang C. On the ε → τ phase transformation and twinning in L10–MnAl alloys // Acta Mater. 2022. V. 232. 117892. P. 1–17.
  17. Bittner F., Schultz L., Woodcock T.G. The role of the interface distribution in the decomposition of metastable L10–Mn54Al46 // J. Alloys Compounds. 2017. V. 727. P. 1095–1099.
  18. Palanisamy D., Raabe D., Gault B. On the compositional partitioning during phase transformation in a binary ferromagnetic MnAl alloy // Acta Mater. 2019. V. 174. P. 227–236.

Қосымша файлдар

Қосымша файлдар
Әрекет
1. JATS XML
2. Fig. 1. X-ray diffraction spectra of tapes tempered with different linear rotation speeds of a copper wheel. The lines of the γ2 phase are marked in red, the lines of the ε phase are blue.

Жүктеу (20KB)
3. Fig. 2. Microstructure of the quick-hardened tape (linear speed of the wheel 10 m/s): a) general appearance; b) the area of the γ2-phase; c) the area of the ε-phase; d) the area of the ε-phase with a noticeable “speckled” contrast from the ε’-phase. The corresponding electronograms are shown in the inserts for each of the regions.

Жүктеу (27KB)
4. Fig. 3. The dependence of the heat flux on the temperature for a fast-tempered tape, obtained by differential scanning calorimetry. The sample was heated and cooled twice.

Жүктеу (24KB)
5. Fig. 4. X-ray diffraction spectra of hardened and annealed tapes at different temperatures (annealing duration 20 min). Approximating spectra obtained by the Rietveld method are superimposed on the experimental spectra. The lines of the γ2-phase are marked in red, the lines of the ε-phase are blue, the τ-phases are black, (β-Mn) are green.

Жүктеу (40KB)
6. Fig. 5. The dependences of the volume fractions of the phases contained in the quick-quenched tape, depending on the annealing temperature.

Жүктеу (18KB)
7. Fig. 6. Microstructure of a quick-tempered tape annealed at 440 °C for 20 minutes. The image is obtained in the signal of reflected electrons.

Жүктеу (8KB)
8. Fig. 7. Microstructure of the t-phase of the tape annealed at 700 °C for 20 min: light-field (000) (a) and dark-field (001) (c), (002) (d), (110) (e) images, image designations correspond to reflexes on the electronogram (b).

Жүктеу (42KB)