论文标题
相关同步加速器X射线成像和定向能量沉积加成制造的衍射
Correlative Synchrotron X-ray Imaging and Diffraction of Directed Energy Deposition Additive Manufacturing
论文作者
论文摘要
定向能量沉积添加剂制造(DED-AM)的机械行为通过原位和Operando Synchrotron X射线成像和镍基超级合金的衍射研究(IN718)揭示。使用唯一的过程复制器,真实空间相位对比度成像可以量化熔体池边界和凝固过程中的流动动力学。这些成像知识可知,在转化和应力发展过程中,通过空间分辨率为100 $μm,对时间分辨的微观结构阶段进行了精确的衍射测量。衍射量化的热梯度使树突状固化微结构得到预测并耦合到应力方向和幅度。快速冷却速率完全抑制了固态中二期或重结晶的形成。固化后,压力会在冷却过程中迅速增加到屈服强度。这种洞察力与In718 $'$ s的大固化范围相结合表明,累积的可塑性耗尽了合金$'$ s延展性,从而导致液化破裂。这项研究揭示了有关Ded-AM期间高度非平衡微观结构形成的其他基本机制。
The governing mechanistic behaviour of Directed Energy Deposition Additive Manufacturing (DED-AM) is revealed by a combined in situ and operando synchrotron X-ray imaging and diffraction study of a nickel-base superalloy, IN718. Using a unique process replicator, real-space phase-contrast imaging enables quantification of the melt-pool boundary and flow dynamics during solidification. This imaging knowledge informed precise diffraction measurements of temporally resolved microstructural phases during transformation and stress development with a spatial resolution of 100 $μ$m. The diffraction quantified thermal gradient enabled a dendritic solidification microstructure to be predicted and coupled to the stress orientation and magnitude. The fast cooling rate entirely suppressed the formation of secondary phases or recrystallisation in the solid-state. Upon solidification, the stresses rapidly increase to the yield strength during cooling. This insight, combined with IN718 $'$s large solidification range suggests that the accumulated plasticity exhausts the alloy$'$s ductility, causing liquation cracking. This study has revealed additional fundamental mechanisms governing the formation of highly non-equilibrium microstructures during DED-AM.