- PII
- 10.31857/S0235010623060117-1
- DOI
- 10.31857/S0235010623060117
- Publication type
- Status
- Published
- Authors
- Volume/ Edition
- Volume / Issue number 6
- Pages
- 563-569
- Abstract
- Long-term relaxation of large–scale inhomogeneities in aluminum – rare earth metal melts with a content of the latter in the range of 5–10 at % was previously observed when measuring viscosity and density, but did not manifest itself when measuring electrical resistance and magnetic susceptibility. This behavior could be related both to the specifics of the measured properties and to the size of the samples, which in the case of viscosity and density is much larger: 12–15 g with a diameter of a cylindrical crucible ~15 mm for viscosity and density, and less than 1 g with a crucible diameter of 6 and 4 mm for electrical resistance and magnetic susceptibility, respectively. To solve this problem, the time dependences of the electrical resistance of the Al91La9 melt were measured at 1060°C for samples of various sizes by the rotating magnetic field method, namely for standard (crucible diameter of 6 mm) and enlarged (crucible diameter of 10.5 mm) When the sample increases, the random measurement error increases, so additional measures had to be taken to stabilize the current in the coils, creating this field. It was found that with an increase in the mass of the sample to 2.15 g with a crucible diameter of 10.5 mm the large-scale heterogeneity that occurs during the melting process is manifested. It is interpreted as a compact “cloud” of intermetallic microparticles surrounded by a melt with a high content of REM. The sample relaxes to an equilibrium homogeneous state in a few hours. To speed up the process, additional exposure is required – heating to a high temperature, about 1500°C, which reduces the time to less than one minute. At the same time, in small (0.7 g with a crucible diameter of 6 mm) samples, the mentioned heterogeneity does not occur. The probable cause of the inhomogeneity is the flow of REM atoms to the surface and the reverse flow of aluminum atoms into the volume during crystallization, which is similar to liquation during the crystallization of cast iron and steel. The measurements carried out allow us to estimate the scale of the resulting inhomogeneities, which corresponds to the size of the enlarged sample.
- Keywords
- долговременная релаксация крупномасштабная неоднородность электросопротивление расплавы Al–РЗМ
- Date of publication
- 17.09.2025
- Year of publication
- 2025
- Number of purchasers
- 0
- Views
- 12
References
- 1. Ладьянов В.И., Меньшикова С.Г., Бельтюков А.Л., Маслов В.В. Влияние температуры и времени изотермической выдержки на вязкость и процессы кристаллизации расплавов Al–Y вблизи эвтектического состава // Изв. РАН. Сер. Физическая. 2010. 74. № 8. С. 1226–1228.
- 2. Бельтюков А.Л., Русанов Б.А., Ягодин Д.А., Мороз А.И., Стерхов Е.В., Сон Л.Д., Ладьянов В.И. Релаксация в аморфизирующемся расплаве Al–La // Расплавы. 2022. № 5. С. 485–493.
- 3. Beltyukov A.L., Rusanov B.A., Yagodin D.A. et al. Relaxation processes in Al–R (R = Ce, Sm) glass-forming alloys // Solid State Communications. 2023. 60. 115044.
- 4. Inoue A. Amorphous, nanoquasicrystalline and nanocrystalline alloys in Al-based systems // Progress in Materials Science. 1998. 43. № 5. P. 365–520.
- 5. Shen Y., Perepezko J.H. Al-based amorphous alloys: glass-forming ability, crystallization behavior and effects of minor alloying additions // J. Alloys Compd. 2017. 707. P. 3–11.
- 6. Бельтюков А.Л., Меньшикова С.Г., Васин М.Г., Ладьянов В.И., Корепанов А.Ю. Релаксационные процессы в жидких сплавах Al–Ni–(La/Y/Ce) // Расплавы. 2015. № 1. С. 3–16.
- 7. Ладьянов В.И., Меньшикова С.Г., Васин М.Г. и др. О немонотонных релаксационных процессах в неравновесных нанообразующих расплавах Al–ПМ–РЗМ // Изв. РАН. Сер. Физическая. 2011. 75. № 11. С. 1514–1517.
- 8. Бельтюков А.Л., Русанова А.И., Русанов Б.А., Сидоров В.Е., Сон Л.Д., Ладьянов В.И. Особенности политерм вязкости и плотности стеклообразующих расплавов Al86(Ni, Co)8Tb6 с различным соотношением Ni/Co // Изв. ВУЗов. Физика. 2023. 66. № 1. С. 9–15.
- 9. Beltyukov A.L., Menshikova S.G., Lad’yanov V.I. Role of rare-earth metals (R) in the appearance of relaxation processes in AL–N–R metal melts //J. Phys.: Condens. Matter. 2023. 35. 314001.
- 10. Vasin M.G., Lebedev V.G. To understanding of slow and non-monotonic relaxation in Al–Y eutectic melts // J. Non-Cryst. Solids. 2020. 543. 120131.
- 11. Сон Л.Д. Устойчивость гетерофазных неоднородностей в системе с расслоением // Изв. РАН. Сер. Физическая. 2022. 86. № 2. С. 199–204.
- 12. Филиппов В.В., Ягодин Д.А., Шуняев К.Ю., Леонтьев Л.И. Электросопротивление расплавов Cu–Zr // Докл. Академии наук. 2018. 483. № 6. С. 646–649.
- 13. Голиков И.Н. Дендритная ликвация в стали. М.: Металлургиздат, 1958.
- 14. Шевченко В., Кононенко В., Кожанов В. Сегрегация в сплавах на основе алюминия и ее роль в разработке технологий получения новых материалов // Тезисы 9-ой Всероссийской конференции по металлическим и шлаковым расплавам (МИШР-9). Екатеринбург, 1998.
- 15. Меньшикова С.Г., Ширинкина И.Г., Бродова И.Г., Бражкин В.В. Структура сплава Al90Y10 при кристаллизации под давлением // Расплавы. 2019. № 1. С. 18–23.
- 16. Vasin M.G., Lebedev V.G., Shklyaev K.Y., Menshikova S.G. About causes of slow relaxation of melted intermetallic alloys // printed in CALPHAD. 2023. https://doi.org/10.48550/arXiv.2304.06444