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Heat treatment of Ti6Al4V produced by Selective Laser Melting: Microstructure and mechanical properties

机译:选择性激光熔化生产的Ti6Al4V的热处理:组织和力学性能

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摘要

The present work shows that optimization of mechanical properties via heat treatment of parts produced by Selective Laser Melting (SLM) is profoundly different compared to conventionally processed Ti6Al4V. In order to obtain optimal mechanical properties, specific treatments are necessary due to the specific microstructure resulting from the SLM process. SLM is an additive manufacturing technique through which components are built by selectively melting powder layers with a focused laser beam. The process is characterized by short laser-powder interaction times and localized high heat input, which leads to steep thermal gradients, rapid solidification and fast cooling. In this research, the effect of several heat treatments on the microstructure and mechanical properties of Ti6Al4V processed by SLM is studied. A comparison is made with the effect of these treatments on hot forged and subsequently mill annealed Ti6Al4V with an original equiaxed microstructure. For SLM produced parts, the original martensite α' phase is converted to a lamellar mixture of α and β for heat treating temperatures below the β-transus (995°C), but features of the original microstructure are maintained. Treated above the β-transus, extensive grain growth occurs and large β grains are formed which transform to lamellar α+β upon cooling. Post treating at 850°C for two hours, followed by furnace cooling increased the ductility of SLM parts to 12.84 ± 1.36 %, compared to 7.36 ± 1.32 % for as-built parts.
机译:目前的工作表明,与常规处理的Ti6Al4V相比,通过选择性激光熔炼(SLM)生产的零件进行热处理来优化机械性能存在很大差异。为了获得最佳的机械性能,由于SLM工艺产生的特定微观结构,必须进行特殊处理。 SLM是一种增材制造技术,通过使用聚焦的激光束选择性地熔化粉末层来构建零件。该工艺的特点是激光与粉末的相互作用时间短,局部热量输入大,从而导致陡峭的热梯度,快速凝固和快速冷却。在这项研究中,研究了几种热处理对SLM处理的Ti6Al4V的组织和力学性能的影响。比较了这些处理对具有原始等轴组织的热锻Ti6Al4V以及随后铣削退火的Ti6Al4V的影响。对于SLM生产的零件,原始的马氏体α'相会转变为α和β的层状混合物,以便在低于β-转变温度(995°C)的温度下进行热处理,但是保留了原始微观结构的特征。在β-transus上方进行处理,会发生大量晶粒生长,并形成大的β晶粒,冷却后转变为片状α+β。在850°C下进行两个小时的后处理,然后进行熔炉冷却,使SLM零件的延展性提高到12.84±1.36%,而制成零件的延展性为7.36±1.32%。

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