Журналы →  Chernye Metally →  2023 →  №8 →  Назад

NEW DEVELOPMENTS OF THE MENDELEEV UNIVERSITY OF CHEMICAL TECHNOLOGY OF RUSSIA FOR METALLURGY
Refractories for Metallurgical Furnaces
Название Corundum-mullite material for refractory melting crucibles
DOI 10.17580/chm.2023.08.04
Автор D. V. Kharitonov, D. O. Lemeshev, D. Yu. Zhukov, N. E. Sher
Информация об авторе

Obninsk Research and Production Enterprise Tekhnologiya named after
A. G. Romashin, Obninsk, Russia:

D. V. Kharitonov, Dr. Eng., Deputy Director of the Research and Production Complex for Operating Activities, Head of Workshop

N. E. Sher, Process Engineer of the 1st category, e-mail: kolia1211@yandex.ru

 

Mendeleev University of Chemical Technology of Russia, Moscow, Russia:
D. O. Lemeshev, Cand. Eng., Associate Prof., Dean of the Faculty of Technology of Inorganic Substances and High-Temperature Materials
D. Yu. Zhukov, Cand. Eng., Associate Prof., Director of the Technological center "Ekokhimproekt"

Реферат

The technology of obtaining corundum-mullite material for the manufacture of melting crucibles by the method of vibrocasting highly concentrated binder suspensions based on aqueous corundum slip and coarse-grained powders of electrocorundum and mullite into gypsum molds is considered. Corundum slip is prepared by wet grinding white electrocorundum 25A fractions F22, F36 in a ball mill to obtain a suspension with density of 2.7–2.9 g/cm3,conditional viscosity of 20–30 °E, and a content of ~90 % (wt.) of particles up to 10 μm in size. As a filler, a combination of coarse-grained electrocorundum powders with fractions of 0.5–0.6 (16–18 % (wt.)) and 0.125–0.150 (24–26 % (wt.)) mm, as well as electrofused mullite with fractions of 0.4–1.6 (14–16 % (wt.)) and 1.6–3.0 (42–44 % (wt.)) mm. When the filler is mixed with slip in the ratio (61–63):(37–39), % (wt.), a sedimentation-resistant mixture is formed, from which crucibles are formed by vibration casting into plaster molds. Corundum-mullite material after firing at 1550°C has a sufficiently high density (3.0–3.1 g/cm3), compressive strength (140–160 MPa) and a low coefficient of thermal expansion (65∙10–7 K-1 at 1400 °C). Refractory melting crucibles have a homogeneous structure: material density variation throughout the entire volume of articles does not exceed 3%. The service life of crucibles in the conditions of melting nickel alloys is at least 25 melts.
The researches were carried out using D. Mendeleev Center for collective use of scientific equipment, within the framework of the project No. 075-15-2021-688.

Ключевые слова Refractory corundum-mullite material, electrocorundum, mullite, heat resistance, vibration casting, melting crucibles, metal melting
Библиографический список

1. Getsov L. B. Materials and strength of gas turbine parts : book 1. Rybinsk: Gazoturbinnye tekhnologii, 2010. 495 p.
2. Vdovin R. А. Formation of technological foundations for the manufacture of working blades of the GTE turbine: monograph. Samara: Izdatelstvo Samarskogo universiteta, 2021. 209 p.
3. Primachenko V. V., Martynenko V. V., Shulik I. G., Chaplyanko S. V., Gritsyuk L. V., Tkachenko L. P. Vibrocast crucibles of various compositions for induction melting of superalloys. Lityo i metallurgiya. 2012. No. 3. pp. 169–171.
4. Krasnyi B. L., Ikonnikov К. I., Anikanov V. S., Galganova А. L., Mikhaylov М. А. The possibility of using high-quality fused periclase in the technology of manufacturing crucibles for vacuum induction melting. Lityo i metallurgiya. 2019. No. 3. pp. 60–64.
5. Strelov К. К., Mamykin P. S. Refractory technology: 3rd edition, revised. Moscow: Metallurgiya, 1978. 376 p.
6. Kashcheev I. D., Zemlyanoy G. К. Refractory production. Saint-Petersburg, Moscow, Krasnodar: Lan, 2021. 340 p.
7. Primachenko V. V., Ustichenko V. А. Crucibles based on corundum for induction melting of superalloys. Ogneupory i tekhnicheskaya keramika. 2007. No. 9. pp. 9–12.
8. Shevchenko V. Ya. Introduction to technical ceramics. Moscow: Nauka, 1993. 112 p.
9. Lima L. R. S., Silva K. R., Menezes R. R., Santana N. L., Lira H. L. Microstructural charasteristics, properties, synthesis and applications of mullite: a review. Сeramica. 2022. Vol. 68. pp. 126–142.
10. Chen Y., Liu G., Gu Q., Li S. et al. Preparation of corundum-mullite refractories with lightweight, high strength and high thermal shock resistance. Materialia. 2019. Vol. 8. 100517.
11. Qi J., Yan W., Chen Z., Schafföner S. et al. Preparation and characterization of microporous mullitecorundum refractory aggregates with high strength and closed porosity. Ceramics International. 2020. Vol. 46, Iss. 6. pp. 8274–8280.
12. Si Y., Fan S., Wang H., Xia M. et al. Preparation of lightweight corundum-mullite thermal insulation materials by microwave sintering. Processing and Application of Ceramics. 2021. Vol. 15, Iss. 2. pp. 170–178.
13. Vikulin V. V., Rusin М. Yu., Khranovskaya Т. М. et al. Corundum-mullite material for kiln furnitute and melting crucibles. Ogneupory i tekhnicheskaya keramika. 2008. No. 6. pp. 40–42.
14. Baranova T. F., Stepanova E. A., Shunkina N. I. et al. Method of manufacturing mullite- corundum refractory articles. Patent RF, No. 2284974. Applied: 28.04.2005. Published: 10.10.2006.
15. Kharitonov D. V., Kulikova G. I., Anashkina A. A. Crude mixture for making fire-resistant articles. Patent RF, No. 2742265. Applied: 29.07.2020. Published: 04.02.2021.
16. GOST 2409–14. Refractories. Method for determination of bulk density, apparent and true porosity, water absorption. Introduced: 01.09.2015.

Language of full-text русский
Полный текст статьи Получить
Назад