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Microstructure and mechanical behavior of hot-work tool steels processed by Selective Laser Melting

机译:选择性激光熔化处理热工床钢的微观结构和力学行为

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摘要

The present study is aimed at identifying and testing high-strength alloys for tooling applications featuring suitable processability for laser-based additive manufacturing technologies. The microstructure and mechanical properties of the H11 hot-work tool steel and a leaner version of the same alloy (L-H11) processed by Selective Laser Melting were assessed as a function of specific microstructural conditions obtained by performing different heat treatments. Tempering was performed on quenched alloys or simply from as built material. The rapidly solidified microstructures revealed able to respond directly to precipitation hardening treatment without performing any prior solution annealing. The microstructure of the as-built alloys revealed characterized by alpha-Fe dendritic cells decorated at boundaries by C-rich gamma-Fe regions. Air quenching was responsible for the transformation of the solidification cells into lath martensitic structures and for the formation of the M3C phase, which transformed into more complex carbide species on tempering. The hardness of quenched and tempered H11 steel is similar to that obtained by processing the alloy with conventional routes, and the final hardness gap between the two SLM processed H11 and L-H11 alloys treated according to optimal tempered condition was limited to 62 HV.
机译:本研究旨在识别和测试高强度合金,用于加工应用,适用于基于激光的添加剂制造技术的合适可加工性。通过进行选择性激光熔化处理的H11热工床钢的微观结构和机械性能和通过选择性激光熔化加工的相同合金(L-H11)的少量通过进行不同的热处理获得的特异性微观结构条件。在淬火合金中或简单地从作为制造材料进行回火。快速凝固的微结构显示出能够直接响应沉淀硬化处理,而不进行任何先前的溶液退火。由C的γ-Fe区界限以界限装饰的α-Fe树突细胞的特征的微观结构。空气猝灭负责将凝固细胞转化成Lath马氏体结构并形成M3C相的形成,其在回火上转化为更复杂的碳化物物种。淬火和回火H11钢的硬度类似于通过将合金与常规途径加工而获得的硬度,并且根据最佳回火条件处理的两个SLM处理的H11和L-H11合金之间的最终硬度间隙限制为62HV。

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