CMT MIX+Synchropulse电弧定向能量沉积Inconel 718合金凝固组织形态与力学性能研究
Study on Solidification Microstructure and Mechanical Properties of Inconel 718 Alloy Fabricated by CMT MIX+Synchropulse Direct Energy Deposition-Arc
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摘要: 本研究采用CMT MIX+Synchropulse(CSP)作为热源制备了Inconel 718合金薄壁件,并研究了多层多道热履历下合金的凝固组织转变及其和力学性能之间的关系。研究结果表明,CSP-DED-Arc Inconel 718合金的凝固组织主要为γ+TiN+(Nb,Ti)C+NbC +Laves。在试样不同位置,由于凝固条件不同,Laves相在形态上有着很大的区别,试样底部冷却速率快,其Laves相形态以粒状或短棒状为主;试样中上部冷却速率较慢,高温停留时间长,Laves相形态以长链状为主,并且γ″有足够的时间析出;试样顶部冷却速率慢但是缺少后续热循环不足以析出γ″相,Laves相形态以块状为主。受Laves相形态和γ″相析出行为的影响,合金薄壁件沿BD方向的显微硬度和抗拉强度都随着沉积道次的增加而先增大后减小,呈现出中部最高,底部次之,顶部最低的规律,断后伸长率变化规律则相反。沿WA方向取样试样的抗拉强度低于沿BD方向取样试样,断后伸长率高于沿BD方向取样试样。Abstract: Thin-walled Inconel 718 components are fabricated using CMT MIX+Synchropulse (CSP) as the heat source, and the solidification microstructure transformation under multi-layer and multi-pass thermal history and its relationship with the mechanical properties are investigated. The results indicate that the solidification microstructure of CSP-DED-Arc Inconel 718 alloy primarily consists of γ+TiN+(Nb,Ti)C+NbC +Laves. Significant morphological variations in the Laves phase are observed across different regions of the sample. At the bottom of the thin-walled sample, where the cooling rate is high, the Laves phase predominantly exhibits granular or short rod-like morphology. In the middle and upper regions, characterized by slower cooling rates and a prolonged high-temperature exposure, the Laves phase mainly assumes a long chain-like morphology, with sufficient time for the precipitation of γ″. At the top region, despite a slow cooling rate, the absence of subsequent thermal cycling inhibits the γ″ precipitation, resulting in a blocky Laves phase morphology. Influenced by the morphology of the Laves phase and the precipitation behavior of γ″, both the microhardness and tensile strength along the build direction of the thin-walled alloy initially increase and then decrease with the number of deposited layers. The values in the middle region are the highest, those in the bottom region follow and those in the top region are the lowest. The elongation after fracture follows the opposite trend. The tensile strength in the wall axis direction is lower than that in the build direction direction, while the elongation after fracture is higher than that in the build direction direction.
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