材料科学
选择性激光熔化
脆性
金属粉末
电子背散射衍射
复合材料
断裂(地质)
相(物质)
张力(地质)
粒度
压实
图层(电子)
粉末混合物
脆性断裂
激光器
金属
大气温度范围
航程(航空)
材料性能
微观结构
艾氏冲击强度试验
极限抗拉强度
结构材料
冶金
液相
断裂韧性
压缩(物理)
还原(数学)
热膨胀
作者
Artem Deev,П. А. Кузнецов,А. С. Жуков,Vitaliy Bobyr
标识
DOI:10.1016/j.phpro.2017.08.013
摘要
Additive technologies, which obtained the wide spreading in the last decade, allow producing items of any shape from metal materials practically without additional mechanical treatment. This approach based on the layer by layer melting of powder material accordingly to the premade 3D-CAD model, provides the geometrical accuracy which mostly depends on the size of the used material. In the present study, as material a 410 L steel powder was chosen, for which the basic dependencies between the selective laser melting (SLM) parameters and the mechanical properties were determined. Trial batches of standard samples for uniaxial tension and impact strength tests (according to the ASTM A370 and ASTM E8 M standards) were produced. It was shown that in the as build (after SLM) the fracture appeared to be brittle with the impact strength 3-5 J/cm2. The carried out heat treatment of quenching-tempering cycle and subsequent tests provide the viscous fracture and evaluation of impact strength up to 20-30 J/cm2. Presumably, this is due to a refinement of the grain structure and the inner stresses reduction of the samples, which also acknowledges the execution EBSD analysis, which points to the presence of quenched and tempered martensite. The presence of high inner stresses can be attributed to two α-γ-α transformations that were revealed by dilatometry investigation. In the range of cooling or heating rates from 1 to 500 °C/s temperatures of phase transformation are shifted.
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