2001대한금속재료학회지Requires access

복합탄화물계 육성용접합금의 고온마모특성

김창규, 이성학, 정재영, 안상호

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Abstract

A correlation was made of microstructure, high-temperature wear resistance, and surface roughness in hardfacing alloys reinforced with complex carbides. The hardfacing alloys were deposited twice on a low-carbon steel substrate by a submerged arc welding method. In order to investigate the effect of complex carbides, different fractions of FeWTiC and WTiC carbide powders included inside hardfacing electrodes were employed. Hot rolling simulation test was carried out using a high-temperature wear tester capable of controlling speed, load, and temperature. Microstructural analysis indicated that cuboidal and rod-type complex carbides were homogeneously distributed in the bainitic matrix. As volume fraction of these complex carbides increased, hardness and wear resistance increased. The alloy hardfaced with FeWTiC powders contained more complex carbides in the harder matrix than those hardfaced with WTiC powders because of efficient melting and solidification during hardfacing, and thus showed the best wear resistance and excellent surface roughness. Hardness, wear resistance, and surface roughness of the hardfacing alloys reinforced with complex carbides were improved in comparison with high speed steel rolls because of the homogeneous distribution of hard and fine complex carbides in the bainitic matrix.

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A correlation was made of microstructure, high-temperature wear resistance, and surface roughness in hardfacing alloys reinforced with complex carbides. The hardfacing alloys were deposited twice on a low-carbon steel substrate by a submerged arc welding method. In order to investigate the effect of complex carbides, different fractions of FeWTiC and WTiC carbide powders included inside hardfacing electrodes were employed. Hot rolling simulation test was carried out using a high-temperature wear tester capable of controlling speed, load, and temperature. Microstructural analysis indicated that cuboidal and rod-type complex carbides were homogeneously distributed in the bainitic matrix. As volume fraction of these complex carbides increased, hardness and wear resistance increased. The alloy hardfaced with FeWTiC powders contained more complex carbides in the harder matrix than those hardfaced with WTiC powders because of efficient melting and solidification during hardfacing, and thus showed the best wear resistance and excellent surface roughness. Hardness, wear resistance, and surface roughness of the hardfacing alloys reinforced with complex carbides were improved in comparison with high speed steel rolls because of the homogeneous distribution of hard and fine complex carbides in the bainitic matrix.

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Available abstract

A correlation was made of microstructure, high-temperature wear resistance, and surface roughness in hardfacing alloys reinforced with complex carbides. The hardfacing alloys were deposited twice on a low-carbon steel substrate by a submerged arc welding method. In order to investigate the effect of complex carbides, different fractions of FeWTiC and WTiC carbide powders included inside hardfacing electrodes were employed. Hot rolling simulation test was carried out using a high-temperature wear tester capable of controlling speed, load, and temperature. Microstructural analysis indicated that cuboidal and rod-type complex carbides were homogeneously distributed in the bainitic matrix. As volume fraction of these complex carbides increased, hardness and wear resistance increased. The alloy hardfaced with FeWTiC powders contained more complex carbides in the harder matrix than those hardfaced with WTiC powders because of efficient melting and solidification during hardfacing, and thus showed the best wear resistance and excellent surface roughness. Hardness, wear resistance, and surface roughness of the hardfacing alloys reinforced with complex carbides were improved in comparison with high speed steel rolls because of the homogeneous distribution of hard and fine complex carbides in the bainitic matrix.

Key concepts: Hardfacing, Carbide, Materials science, Metallurgy, Microstructure, Surface roughness, Welding, Alloy

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복합탄화물계 육성용접합금의 고온마모특성 — Research Paper | ScholarLens