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Influence of energy density on the microstructure and mechanical properties of GH5188 superalloy formed by laser melting deposition

机译:能量密度对激光熔化沉积形成GH5188超合金的微观结构和力学性能的影响

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Cobalt-based superalloys have been widely used in manufacturing high-temperature parts of gas turbine missiles, such as combustion chambers, exhaust nozzles, and heat exchangers in the nuclear energy industry. In order to meet the requirements for rapid manufacturing of these large-scale and high-performance components, the laser melting deposition (LMD) technology has attracted great attention in recent years. At present, the printability evaluation of Cobalt-based superalloys powder needs in-depth study. In this study, a cobalt-based superalloy (GH5188) has been additively manufacturing by using LMD for the first time. The self-designed gas atomization equipment is used to prepare GH5188 alloy powder, LMD technology is used to prepare as-deposited samples, the key process parameters and the resulted microstructure and mechanical properties are investigated. The results show that as the energy density increases, the pores and unfused defects of the as-deposited GH5188 sample decrease. The microstructure of the GH5188 sample is composed of columnar dendrites grown epitaxially, and carbides are precipitated in the grain boundaries and inside the crystals. As the energy density increases, the columnar crystals of the GH5188 sample are obviously thicker, and the hardness and elongation of the sample increase significantly. When the energy density is 70J/mm, the tensile strength of the sample can reach 806.3MPa; when the energy density is increased to 80J/m, the elongation of the sample is 33.01%;
机译:基于钴的高温合金已广泛用于制造燃气涡轮机导弹的高温部件,例如核能工业中的燃烧室,排气喷嘴和热交换器。为了满足快速制造这些大型和高性能组件的要求,近年来激光熔化沉积(LMD)技术引起了极大的关注。目前,基于钴的超合金粉末的可印刷性评价需要深入研究。在该研究中,通过使用LMD首次使用LMD的基于钴的高温合金(GH5188)。自行设计的气体雾化设备用于制备GH5188合金粉末,LMD技术用于制备沉积的样品,研究了关键过程参数和所得到的微观结构和机械性能。结果表明,随着能量密度的增加,孔隙和沉积的GH5188样品的毛孔和未用的缺陷降低。 GH5188样品的微观结构由外延生长的柱状树枝状物组成,碳化物在晶界和晶体内部沉淀。随着能量密度的增加,GH5188样品的柱状晶体显然较厚,并且样品的硬度和伸长率显着增加。当能量密度为70J / mm时,样品的拉伸强度可达806.3MPa;当能量密度增加到80J / m时,样品的伸长率为33.01%;

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