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Titanium-Alumina Slag – Semifunctional Technogenic Resource of High-Alumina Composition. Part 2. Use of Ferrotitanium Slag for Producing Refractories in Metallurgy and Other Branches of Industry1
Rytvin V.M., Perepelitsyn V.A., Ponomarenko A.A., Gil’varg S.I.
Use of Refractories in the Melting Tank of a High-Production-Capacity Glass Melting Furnace
Dzyuzer V.Y.
The Use of Refractories in the Lining of Rotary Cement Kilns1
Kashcheev I.D.
Corrosion Testing of Baddeleyite-Corundum and Chromium Oxide Materials in Aluminum Phosphate Glass Melts
Remizov M.B., Kozlov P.V., Kazadaev A.A., Medvedev V.P., Malinkovich V.L.
Lining of the Rotary Kilns for Petroleum Coke Calcination
Lapaev I.I., Sorokin V.V., Goloskin S.E., Orlov A.V.
Oxidation Resistance of Nano-Reinforced PC-Refractories Modified with Phenol Formaldehyde Resin. Part 5. Optimization of Filler Grain Size Composition by Means of a Simplex-Lattice Planning Method Using Complex Modification of Charge Components1
Borisenko O.N., Semchenko G.D., Povshuk V.V., Vasyuk P.A.
Oxidation-Resistant Nano-Reinforced PC-refractories of Modified Phenolformaldehyde Resin. Part 2. Modification of Phenolformaldehyde Resins with Silicon Alkoxide Sols1
Semchenko G.D., Borisenko O.N., Povshuk V.V., Brazhnik D.A., Angolenko L.A., Permyakov Y.V., Vasyuk O.A.
Physicochemical Study of Alumochromium-Containing Refractories Developed by Self-Propagating High-Temperature Synthesis
Satbaev S.B., Satbaev B.N., Koketaev A.I., Aimbetova É.O., Shalabaev N.T.
Synthesis and Conversion on Heating of Nickel-Containing Antioxidant Organic Precursor for Periclase-Carbon Refractories
Semchenko G.D., Brazhnik D.A., Povshuk V.V., Rozhko I.N., Starolat E.E., Vernigora K.P.
Selection of Refractory Materials for Electric Furnaces Used for Radioactive Waste Vitrification
Sokolov V.A., Gasparyan M.D., Remizov M.B., Kozlov P.V.
Half-Century Epoch of Domestic Quartz Ceramic Development. Part 31
Pivinskii Y.E.
Use of Economic Mineral Hydraulic Mining Technology for Expanding the Raw Material Base for Refractory Manufacture
Valiev N.G., Davydov S.Y., Apakashev R.A., Simisinov D.I.
Reinforcement of Periclase-Carbon Refractories with Carbon Fibers1
Kashcheev I.D., Zemlyanoi K.G., Pomortsev S.A., Valuev A.G., Borisova Y.A.
Periclase-Carbon Refractory Reinforcement with Carbon Fibers
Kashcheev I.D., Zemlyanoi K.G., Pomortsev S.A., Ryaplova A.A., Borisova Y.A.
Effect of Nano-Dispersed Iron Oxide Additions on Carbon Refractory Density Formation
Apal’kova G.D.
Use of Discrete Carbon Fibers in Refractory Materials
Korsukov E.B., Balakhonov Y.A., Kashcheev I.D., Zemlyanoi K.G., Pomortsev S.A., Podkopaev S.A.
Research in the Area of Preparing Materials Based on Fuzed Quartz HCBS. Part 10. Some Properties of Cristobalite-Containing Materials1
Pivinskii Y.E., Dyakin P.V., Kolobov A.Y.
Study of the Structure and Properties of Graphites for Refractory Production. Part 1. Physicochemical Study of Graphites from Different Deposits
Kashcheev I.D., Zemlyanoi K.G., Ust’yantsev V.M., Pomortsev S.A.
Heat-Insulating Properties of High-Alumina Materials Filament-Reinforced with Glass Fiber of the Al2O3–SiO2 and Al2O3–SiO2–ZrO2 Systems
Zubashchenko R.V.
Structure of Periclase-Chromite Refractories After the Service Life in Furnaces for the Processing of Sulfide Raw Material
Klyushnikov A.M., Pikulin K.V., Belyaev V.V., Selivanov E.N., Lebed’ A.B., Udoeva L.Y.
Study of Artificial Ceramic Binder Properties in the System Al2O3–SiO2–SiC
Zaitsev S.V., Doroganov V.A., Doroganov E.A., Evtushenko E.I.
Corrosion Resistance of Refractories in Melts of Glasses Used to Immobilize Radioactive Wastes
Sokolov V.A., Gasparyan M.D., Remizov M.B., Kozlov P.V.
Slag Corrosion and Penetration Behaviors of MgAl2O4 and Al2O3 Based Refractories
Ma B., Yin Y., Zhu Q., Zhai Y., Li Y., Li G., Yu J.
Creation of High-Efficiency Promising Refractory Materials and Constructions for the Lining of Metallurgical Units
Slovikovskii V.V., Gulyaeva A.V.
Oxidation Resistance of Nano-Reinforced PC-Refractories Modified with Phenol Formaldehyde Resin. Part 4. Thermodynamic Evaluation of Phase Formation Within Mg–O–C–Al, Mg–O–C–Ni and MgO–Al2O3–NiO–SiO2 Systems Using SiC + Al + Ni (NiO) Complex Antioxidant1
Semchenko G.D., Borisenko O.N., Brazhnik D.A., Logvinkov S.M., Povshuk V.V., Shuteeva I.Y., Angolenko L.A., Chopenko N.S., Vasyuk P.A.
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