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Processamento de Ligas de N?-quel com T??cnica de Manufatura Aditiva Utilizando Plasma por Arco Transferido

机译:电弧转移等离子体的增材制造技术处理镍合金

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Additive manufacturing (AM) is a process used to build and repair complex shape components or whenever a property gradient is required. In this manufacturing procedure, multiple layers are deposited to fabricate a component. The success of the procedure is strongly dependent on the deposition technique, processing parameters selection and chemical composition of the material being deposited. Also pre-heating and the use of inert atmosphere impact on cracking, wettability and oxidation of the deposited layers. In this study, the potential of plasma transferred arc for additive manufacturing was assessed by the fabrication of “thin walls”. Two Ni superalloys were used, a solid solution hardening and a gamma prime precipitation hardening alloy. The analysis of processing parameters that allowed to process “thin wall”, included pre-heating at 300?°C. Results showed that the chemical composition and the using of pre-heating impact on the layers geometry. In both alloys, a fine dendritic solidification structure with epitaxial growth between layers was identified. However, each alloy determined the hardness profile along the cross section. The precipitation hardened alloy is strongly influenced by the deposition thermal cycle of each layer. The solid solution hardened alloy is mainly influenced by dilution of the first layers with the substrate.
机译:增材制造(AM)是一种用于构建和修复复杂形状部件或需要特性梯度的过程。在该制造过程中,沉积多层以制造部件。该过程的成功在很大程度上取决于沉积技术,工艺参数的选择以及所沉积材料的化学组成。预热和惰性气氛的使用也影响沉积层的破裂,润湿性和氧化。在这项研究中,通过“薄壁”的制造来评估等离子体转移电弧在增材制造中的潜力。使用了两种镍超级合金,一种固溶硬化和一种γ′沉淀沉淀硬化合金。对允许处理“薄壁”的处理参数的分析包括在300°C下的预热。结果表明,化学成分和预热的使用对层的几何形状有影响。在这两种合金中,均确定了在各层之间具有外延生长的良好的树枝状凝固组织。但是,每种合金都确定了横截面的硬度分布。沉淀硬化合金受每一层沉积热循环的强烈影响。固溶硬化的合金主要受第一层被基材稀释的影响。

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