Possibility of Improving the Performance Characteristics of Kh12MF Die Steel by Gas–Powder Laser Cladding

IF 0.4 Q4 METALLURGY & METALLURGICAL ENGINEERING
D. I. Gavrilov, V. V. Morozov, I. V. Belyaev, A. V. Zhdanov, N. S. Dovbysh
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引用次数: 0

Abstract—The possibility of improving the performance characteristics of Kh12MF die steel using gas–powder laser cladding and a nickel-based powder alloy containing 60% tungsten carbide as a cladding material is investigated. Laser cladding is carried out using a domestic SVAROG-1-5DR laser installation equipped with a 5-kW fiber diode laser. Laser cladding conditions have been experimentally selected. The microstructure, microhardness, and chemical composition of the deposited layer and the substrate are studied on transverse metallographic sections. Laser cladding is found to provide reliable melting of a carbide-containing powder material to the substrate and to significantly increase the surface hardness of Kh12MF steel. The hardness of the Kh12MF steel increases to 75.3 HRC upon cladding at P = 5 kW, V = 7 mm/s, and F = 30 mm.

Abstract Image

气粉激光熔覆改善Kh12MF模具钢性能的可能性
摘要:研究了采用气粉激光熔覆和含60%碳化钨的镍基粉末合金作为熔覆材料改善Kh12MF模具钢性能的可能性。激光熔覆使用国产SVAROG-1-5DR激光装置,配备5kw光纤二极管激光器。对激光熔覆条件进行了实验选择。在横向金相切片上研究了沉积层和基体的显微组织、显微硬度和化学成分。激光熔覆可以可靠地将含碳化物的粉末材料熔化到基体上,并显著提高Kh12MF钢的表面硬度。当P = 5 kW, V = 7 mm/s, F = 30 mm熔覆时,Kh12MF钢的硬度提高到75.3 HRC。
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来源期刊
Russian Metallurgy (Metally)
Russian Metallurgy (Metally) METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
0.70
自引率
25.00%
发文量
140
期刊介绍: Russian Metallurgy (Metally)  publishes results of original experimental and theoretical research in the form of reviews and regular articles devoted to topical problems of metallurgy, physical metallurgy, and treatment of ferrous, nonferrous, rare, and other metals and alloys, intermetallic compounds, and metallic composite materials. The journal focuses on physicochemical properties of metallurgical materials (ores, slags, matters, and melts of metals and alloys); physicochemical processes (thermodynamics and kinetics of pyrometallurgical, hydrometallurgical, electrochemical, and other processes); theoretical metallurgy; metal forming; thermoplastic and thermochemical treatment; computation and experimental determination of phase diagrams and thermokinetic diagrams; mechanisms and kinetics of phase transitions in metallic materials; relations between the chemical composition, phase and structural states of materials and their physicochemical and service properties; interaction between metallic materials and external media; and effects of radiation on these materials.
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