Bakr Alyaa, Rometsch Paul, Chen X-Grant
Department of Applied Science, University of Quebec at Chicoutimi, Saguenay, QC G7H 2B1 Canada.
Arvida Research and Development Center, Rio Tinto Aluminium, Saguenay, QC G7S 4K8 Canada.
J Mater Sci Mater Eng. 2025;20(1):84. doi: 10.1186/s40712-025-00307-7. Epub 2025 Jun 23.
1xxx-series aluminum alloys are widely utilized in heat exchangers. During brazing, heat exchanger components are exposed to a short period of high temperature, which may trigger recrystallization and abnormal grain growth, ultimately compromising their mechanical properties. This study investigates the impact of Sc and Zr microalloying on the microstructure stability of hot deformed 1xxx alloys subjected to post-deformation annealing from 500 to 575 °C for 1 h to simulate brazing-type processes. Four alloys were studied: namely 1xxx base, Al-0.07Sc, Al-0.07Sc-0.10Zr and Al-0.19Sc-0.15Zr alloys. Annealing at 500 °C led to complete recrystallization in the base alloy, while higher annealing temperatures promoted abnormal grain growth. The Al-0.07Sc alloy resisted recrystallization at 500 °C but was fully recrystallized by 550 °C. In contrast, the Al-0.07Sc-0.10Zr alloy retained its grain stability up to 550 °C owing to the presence of stable Al(Sc,Zr) precipitates; however, partial recrystallization occurred at 575 °C. The Al-0.19Sc-0.15Zr alloy preserved most of deformed microstructure even after annealing at 575 °C. It showed the highest recrystallization resistance among the four alloys studied owing to its highest number density and finest size of Al(Sc,Zr) precipitates, which suggests that this alloy can be applied in even more extreme conditions including brazing temperatures above 575 °C.
1xxx系铝合金广泛应用于热交换器。在钎焊过程中,热交换器部件会经历短时间的高温,这可能会引发再结晶和异常晶粒长大,最终损害其机械性能。本研究调查了Sc和Zr微合金化对热变形1xxx合金微观结构稳定性的影响,该合金在500至575°C下进行1小时的变形后退火,以模拟钎焊型工艺。研究了四种合金:即1xxx基合金、Al-0.07Sc合金、Al-0.07Sc-0.10Zr合金和Al-0.19Sc-0.15Zr合金。在500°C退火导致基合金完全再结晶,而较高的退火温度促进异常晶粒长大。Al-0.07Sc合金在500°C时抵抗再结晶,但在550°C时完全再结晶。相比之下,由于存在稳定的Al(Sc,Zr)析出相,Al-0.07Sc-0.10Zr合金在550°C以下保持其晶粒稳定性;然而,在575°C时发生了部分再结晶。即使在575°C退火后,Al-0.19Sc-0.15Zr合金仍保留了大部分变形微观结构。在所研究的四种合金中,它表现出最高的再结晶抗性,这是因为其Al(Sc,Zr)析出相的数量密度最高且尺寸最细,这表明该合金可应用于更极端的条件,包括高于575°C的钎焊温度。