Works matching IS 10834877 AND DT 2016 AND VI 57 AND IP 2
Results: 19
Durable Structures for the Lining of Electric-Arc Furnaces Used to Make Ferronickel and Granular Mattes.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 117, doi. 10.1007/s11148-016-9938-1
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Possibilities of a Thermomechanical Method for Enriching Magnesia-Bearing Raw Materials to Obtain Quality Magnesia.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 121, doi. 10.1007/s11148-016-9939-0
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Theoretical and Applied Aspects of Forecasting Refractories of the Future.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 125, doi. 10.1007/s11148-016-9940-7
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Use of Spent Molding Sand in the Production of Refractories.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 132, doi. 10.1007/s11148-016-9941-6
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Research in the Area of Preparing Materials Based on Fuzed Quartz HCBS. Part 9. Effect of Alkali Additions on Material Cristobalitization and Thermal Expansion After Nonisothermal Heating.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 135, doi. 10.1007/s11148-016-9942-5
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Stages in Multilayer Carbon Nanotube Formation with Mechanical Activation of Amorphous Carbon.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 141, doi. 10.1007/s11148-016-9943-4
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Ceramic of the Mullite-ZrO-SiAlON System During Spark Plasma Sintering.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 146, doi. 10.1007/s11148-016-9944-3
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Synthesis and Reinforcement of Heat-Resistant Cordierite-Mullite Ceramic Structure with Introduction of a Fiber Filler.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 151, doi. 10.1007/s11148-016-9945-2
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Heat-Conducting Properties of High-Temperature Materials Based on Graphite Foam.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 155, doi. 10.1007/s11148-016-9946-1
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Corrosion Resistance of Refractories in Melts of Glasses Used to Immobilize Radioactive Wastes.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 160, doi. 10.1007/s11148-016-9947-0
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Micromachining of a High-Density Current-Conducting Ceramic With the Use of Electrical-Discharge Machining. Part 1.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 164, doi. 10.1007/s11148-016-9948-z
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Improvement of Carbon Composite Material Refractoriness Due to Limitation of Surface Oxidation.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 170, doi. 10.1007/s11148-016-9949-y
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Research in the Field of Preparing Molded and Unmolded Refractories Based on High-Alumina HCBS. Part 5. Effect of Firing Temperature on Properties of Materials Prepared From Composite HCBS With Addition of Refractory Clay.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 180, doi. 10.1007/s11148-016-9950-5
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Complex Clinker-Less Binder Made from Refractory Wastes and Products Based on it.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 185, doi. 10.1007/s11148-016-9951-4
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Heat-Insulating Properties of Refractory Materials Made with the Use of Artificial Ceramic Binders.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 189, doi. 10.1007/s11148-016-9952-3
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The Stressed State of the Boundary Between Ceramic and a Coating Under the Effect of Power Loads.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 192, doi. 10.1007/s11148-016-9953-2
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Effects and Mechanisms of Binders on the Properities of Magnesium Oxide Pellets.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 199, doi. 10.1007/s11148-016-9954-1
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Shock-Resistant Materials Based on Commercial Grade Ceramic: Achievements and Prospects for Improving Their Ballistic Efficiency.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 207, doi. 10.1007/s11148-016-9955-0
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Effect of Refining Slag Phase Composition on Ladle Furnace Unit Lining Life.
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- Refractories & Industrial Ceramics, 2016, v. 57, n. 2, p. 109, doi. 10.1007/s11148-016-9937-2
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