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Microlayered Composite Materials on Basis of Copper, Refractory, Rare-Earth Metals, and Carbon for Electrical Contacts and Electrodes
Department of Computational and Experimental Analysis for Structural Strength, Pisarenko Institute for Problems of Strength, National Academy of Sciences of Ukraine, Kyiv, Ukraine
Department of Computational and Experimental Analysis for Structural Strength, Pisarenko Institute for Problems of Strength, National Academy of Sciences of Ukraine, Kyiv, Ukraine
Faculty of Metallurgy, University of Zagreb, Zagreb, Croatia
- 1 Department of Computational and Experimental Analysis for Structural Strength, Pisarenko Institute for Problems of Strength, National Academy of Sciences of Ukraine, Kyiv, Ukraine
- 2 Department of Computational and Experimental Analysis for Structural Strength, Pisarenko Institute for Problems of Strength, National Academy of Sciences of Ukraine, Kyiv, Ukraine
- 3 Faculty of Metallurgy, University of Zagreb, Zagreb, Croatia
International Journal of Nonferrous Metallurgy·Volume 03 (2014)·Pages 18–27·Published 4 April 2014·DOI10.4236/ijnm.2014.32003
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Abstract
A technology for obtaining microlayered composite materials of Cu-Zr-Y-Mo, Cu-Zr-Y-Cr, Cu-Zr-Y-W and Cu-Zr-Y-C systems by means of high-speed electron-beam evaporation-condensation, structure, electrical, and mechanical properties at ambient and elevated temperatures is developed.
KeywordsMicrolayered Condensed CompositesElectron-Beam TechnologyMaterial StructureElectroconductivityMechanical Characteristics
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