Uncovering the Role of Solute in Grain Refinement of Additively Manufactured Aluminium Alloys

Qiyang Tan, Yu Yin, Feng Wang, Shiyang Liu, A. Prasad, W. Qu, Gan Li, Tao Wu, Jingqi Zhang, Yingang Liu, Xianliang Yang, Q. Zhu, D. St John, Mingxing Zhang
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引用次数: 1

Abstract

Grain refinement is one of the most effective approaches to improving mechanical properties, reducing anisotropy and hot-cracking of additively manufactured alloys. Recent studies have shown that the extreme solidification conditions associated with additive manufacturing (AM), including large thermal gradient and rapid cooling rate, result in the difference in nucleation and grain growth mechanisms between AM and conventional casting. Thus, it is necessary to re-consider the grain refinement mechanisms, particularly the role of solute during AM. The present work investigates the grain refining efficiencies of different solute additives (Si, Cu and Ni) and their integration with nucleants (LaB6 nanoparticles) in additively manufactured pure Al. It was found that, despite the rapid cooling during AM and nucleant inoculation, solute addition is essential for activating heterogeneous nucleation upon solidification to achieve high grain refining efficiency. However, the role of solute in grain refinement during AM cannot be readily interpreted by the classic grain growth restriction theory (Q value). This is attributed to the large thermal gradient in the melt pools during AM solidification, which significantly limits the development of constitutional supercooling. Alternatively, the role of solute can be better understood in terms of the lag in dendrite growth induced by solute rejection during solidification. This causes the difference between the actual dendrite growth and the theoretical pull rate, generating large thermal undercooling at the solidification front to elicit heterogeneous nucleation. This work sheds new light on the factors affecting grain refinement under rapid solidification.
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揭示溶质在增材制造铝合金晶粒细化中的作用
晶粒细化是提高增材制造合金力学性能、减少各向异性和热裂的最有效途径之一。最近的研究表明,增材制造(AM)的极端凝固条件,包括大的热梯度和快速的冷却速度,导致增材制造与传统铸造在形核和晶粒生长机制上的差异。因此,有必要重新考虑晶粒细化机制,特别是溶质在AM过程中的作用。本文研究了不同溶质添加剂(Si、Cu和Ni)及其与成核剂(LaB6纳米粒子)在增材制造纯铝中的细化效率。研究发现,尽管增材制造和孕育成核剂过程中快速冷却,但溶质添加剂对于激活凝固时的非均相成核至关重要,从而实现高的晶粒细化效率。然而,经典的晶粒生长限制理论(Q值)不能很好地解释溶质在AM过程中晶粒细化中的作用。这是由于增材制造凝固过程中熔池中存在较大的热梯度,这极大地限制了本构过冷的发展。另外,溶质的作用可以更好地理解为凝固过程中溶质排斥引起的枝晶生长滞后。这导致了实际枝晶生长与理论拉速之间的差异,在凝固前沿产生了较大的热过冷,从而引起非均相形核。本工作对快速凝固条件下影响晶粒细化的因素有了新的认识。
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