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Shornikov, S. I.; Yakovlev, O. I. (2025) Evaporation Features of the Melts of Ca–Al–Inclusions in Chondrites: Experimental Data and Their Implications. Geochemistry International, 63 (7). doi:10.1134/s0016702925600178

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Reference TypeJournal (article/letter/editorial)
TitleEvaporation Features of the Melts of Ca–Al–Inclusions in Chondrites: Experimental Data and Their Implications
JournalGeochemistry International
AuthorsShornikov, S. I.Author
Yakovlev, O. I.Author
Year2025 (July)Volume63
Issue7
PublisherPleiades Publishing Ltd
DOIdoi:10.1134/s0016702925600178Search in ResearchGate
Generate Citation Formats
Mindat Ref. ID18861569Long-form Identifiermindat:1:5:18861569:4
GUID0
Full ReferenceShornikov, S. I.; Yakovlev, O. I. (2025) Evaporation Features of the Melts of Ca–Al–Inclusions in Chondrites: Experimental Data and Their Implications. Geochemistry International, 63 (7). doi:10.1134/s0016702925600178
Plain TextShornikov, S. I.; Yakovlev, O. I. (2025) Evaporation Features of the Melts of Ca–Al–Inclusions in Chondrites: Experimental Data and Their Implications. Geochemistry International, 63 (7). doi:10.1134/s0016702925600178
In(2025, July) Geochemistry International Vol. 63 (7). Pleiades Publishing Ltd

References Listed

These are the references the publisher has listed as being connected to the article. Please check the article itself for the full list of references which may differ. Not all references are currently linkable within the Digital Library.

A. G. W. Cameron, “Meteoritical astrophysics: a new subdiscipline,” in Workshop on Chondrites and Protoplanetary Disk (2004), p. 9015.
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Not Yet Imported: - journal-article : 10.1039/tf9646001920

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V. P. Glushko, L. V. Gurvich, G. A. Bergman, I. V. Veits, V. A. Medvedev, G. A. Khachkuruzov, and V. S. Yungman, Thermodynamic Properties of Individual Substances. Handbook, Ed. by V. P. Glushko (Nauka, Moscow, 1978–1982).
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M. Kamibayashi, S. Tachibana, D. Yamamoto, N. Kawasaki, and H. Yurimoto, “Effect of hydrogen gas pressure on calcium-aluminum-rich inclusion formation in the protosolar disk: A laboratory simulation of open-system melt crystallization,” Astrophys. J. Lett 923 (1), L12 (2021).
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A. G. Kerekgyarto, C. R. Jeffcoat, T. J. Lapen, R. Andreasen, M. Righter, D. K. Ross, and J. I. Simon, “Al–Mg isotope study of Allende 5241,” Lunar Planet. Sci. 47, JSC-CN-35195 (2016).
G. N. Lewis and M. Randall, Thermodynamics and the free energy of chemical substances (McGraw-Hill, New York, 1923).
Not Yet Imported: Treatise on Geochemistry - book-chapter : 10.1016/B978-0-08-095975-7.00105-4

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G. J. MacPherson, “CAIs did not form in the outer Solar system,” Lunar Planet. Sci 50, 3005 (2019).
O. M. Markova, O. I. Yakovlev, G. A. Semenov, and A. N. Belov, “Some general results of experiments on evaporation of natural melts in Knudsen cell,” Geokhimiya 23 (11), 1559–1569 (1986).
R. A. Mendybaev, F. M. Richter, C. D. Williams, A. V. Fedkin, and M. Wadhwa, “Evolution of chemical and isotopic composition of FUN CAIs: experimental modelling,” Lunar Planet. Sci 45, 2782 (2014).
B. S. Meyer and K. R. Berminghem, “Exploding white dwarf stars and the carriers of nucleosynthetic isotope anomalies,” Lunar Planet. Sci 51, 2652 (2020).
M. A. Nazarov, M. I. Korina, A. A. Ul’yanov, G. M. Kolesov, E. Shcherbovskii, and Ya, “Mineralogy, petrography and chemical composition of calcium- and aluminum-rich inclusions of the Efremovka meteorite,” Meteoritika 43, 49–65 (1984).
L. R. Nittler, “Calcium-aluminum-rich inclusions are not supernova condensates,” Chondrites and the protoplanetary disk 341, 539–547 (2005).
F. M. Richter, A. M. Davis, and R. A. Mendybaev, “How the type B1 CAIs got their melilite mantle,” Lunar Planet. Sci 53, 1901 (2002).
G. A. Semenov, E. N. Nikolaev, and K. E. Frantseva, Applications of Mass Spectrometry in Inorganic Chemistry (Khimiya, Leningrad, 1976).
S. I. Shornikov, “Thermodynamic properties of CaO–Al2O3–SiO2 melts,” Experiment in Geosciences 14 (1), 35–37 (2007).
S. I. Shornikov and O. I. Yakovlev, “Mass spectrometric study of evaporation of natural CAIs melts (types A and B) in the Efremovka chondrite,” Lunar Planet. Sci 54, 1983 (2023).
S. I. Shornikov, V. L. Stolyarova, and M. M. Shul’ts, “Mass spectrometric study of thermodynamic properties of melts of the CaO-Al2O3-SiO2 system,” Tekhnika i tekhnologiya silikatov 3 (1-2), 8–22 (1996).
S. I. Shornikov, I. Archakov, Yu, and M. M. Shultz, “Mass spectrometric study of evaporation and thermodynamic properties of silica: III. Equilibrium reactions of molecules occurring in the gas phase over silica,” Russ. J. Gener. Chem. 70 (3), 360–370 (2000).
Yu. A. Shukolyukov, “Star dust in hands,” Sorosov. Obrazovat. Zh. 7, 74–80 (1996).
Y. Tsuruoka and S. Tachibana, “Evaporation-induced formation of melilite mantle of type B CAI: Experimental study,” Met. Planet. Sci 58 (1), 6077 (2024).
O. I. Yakovlev, O. M. Markova, G. A. Semenov, and A. N. Belov, “Results of Krymka chondrite evaporation experiment,” Meteoritika 43, 126–132 (1984).
O. I. Yakovlev, O. M. Markova, G. A. Semenov, and A. N. Belov, “The vaporization peculiarities of CAI inclusions in chondrites: experimental data,” Lunar Planet. Sci 15, 945–946 (1984).
O. I. Yakovlev, O. M. Markova, A. N. Belov, and G. A. Semenov, “On the formation of iron metallic form during chondrit heating,” Meteoritika 46, 104–118 (1987).


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