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Metal-Ceramic Smart Composite in Ti(C,N)-Ni-Mo-W System

Metal-Ceramic Smart Composite in Ti(C,N)-Ni-Mo-W System
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摘要 Goal: Low wolfram-containing cutting composite was obtained by fusion of titanium carbonitride and high melting temperature binding metallic phase. Method: The composite was obtained via compaction and further sintering in vacuum furnace at 1600&#176;C under 10<sup>-3</sup> Pa pressure. Phase analysis was performed on X-ray apparatus “DRON-3”;microstructure was determined by electron microscope NANOLAB-7, microhardness by MUCKE-mark microhardness meter;relative resistance of cutters was evaluated at similar modes of cutting according to distances they passed;experiments were carried out on turning lathe. Results: Physical-mechanical characteristics of the obtained composite are: σ<sub>bend</sub>, = 1000 - 1150 MPa, σ<sub>bend1000</sub>&#176;C = 600 MPa, HV = 14 GPa;HV<sub>1000</sub>&#176;C = 6.5 GPa. High speeds of cutting and high temperatures resistance of cutters made by the obtained composites exceeds 1.5 - 2-folds that of cutters made of the known BK8 and KNT20 hard alloys. Conclusion: Its application is recommended in hot steel treatment by cutting, for removal of the so-called burrs, as well as in steel treatment by cutting during pure and semi-pure operations. It can also be used in jet engines, chemical industry apparatuses, electric-vacuum devices, in industry of responsible details of rockets, nuclear reactors, flying apparatuses. Goal: Low wolfram-containing cutting composite was obtained by fusion of titanium carbonitride and high melting temperature binding metallic phase. Method: The composite was obtained via compaction and further sintering in vacuum furnace at 1600&#176;C under 10<sup>-3</sup> Pa pressure. Phase analysis was performed on X-ray apparatus “DRON-3”;microstructure was determined by electron microscope NANOLAB-7, microhardness by MUCKE-mark microhardness meter;relative resistance of cutters was evaluated at similar modes of cutting according to distances they passed;experiments were carried out on turning lathe. Results: Physical-mechanical characteristics of the obtained composite are: σ<sub>bend</sub>, = 1000 - 1150 MPa, σ<sub>bend1000</sub>&#176;C = 600 MPa, HV = 14 GPa;HV<sub>1000</sub>&#176;C = 6.5 GPa. High speeds of cutting and high temperatures resistance of cutters made by the obtained composites exceeds 1.5 - 2-folds that of cutters made of the known BK8 and KNT20 hard alloys. Conclusion: Its application is recommended in hot steel treatment by cutting, for removal of the so-called burrs, as well as in steel treatment by cutting during pure and semi-pure operations. It can also be used in jet engines, chemical industry apparatuses, electric-vacuum devices, in industry of responsible details of rockets, nuclear reactors, flying apparatuses.
作者 Z. Kovziridze N. Nizharadze G. Tabatadze E. Nikoleishvili M. Mshvildadze Z. Kovziridze;N. Nizharadze;G. Tabatadze;E. Nikoleishvili;M. Mshvildadze(Department of Chemical and Biological Technologies, Georgian Technical University, Tbilisi, Georgia)
出处 《Journal of Electronics Cooling and Thermal Control》 2016年第2期42-51,共10页 电子器件冷却与温度控制期刊(英文)
关键词 Metal-Ceramic COMPOSITE Cutting Material High-Temperature Heatproof Micro Hardness Metal-Ceramic Composite Cutting Material High-Temperature Heatproof Micro Hardness
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