材料科学
成形性
合金
沉浸式(数学)
冶金
铝
复合材料
数学
纯数学
作者
Junming Zhang,Xiaoru Zhuo,Mingxiao Shi,Yanxin Qiao,Yansong Wang,Zhan Zhang,Jingyong Li
标识
DOI:10.1016/j.jmrt.2025.09.036
摘要
Aluminum alloy wire arc additive manufacturing (WAAM) is broadly used in various industrial fields. However, conventional natural air cooling during layer-by-layer deposition induces significant thermal accumulation that compromises geometric accuracy and deteriorates mechanical properties. This study employed a thermal control strategy integrating low-heat-input cold metal transfer (heat source for WAAM) with the Near Immersion Active Cooling (NIAC) technique, systematically investigating the influence of three distinct cooling media (water, solid-CO 2 , and liquid-N 2 ) on deposition quality and mechanical performance. Liquid-N 2 failed to produce effective cooling during deposition due to its rapid vaporization. What is worse, it promoted the formation of AlN impurities, deteriorating mechanical properties. In contrast, both solid-CO 2 and water exhibited superior cooling efficiency, leading to remarkable grain refinement. Water-cooled specimens displayed the highest tensile strength, thanks to minimal surface oxidation and low porosity. Conversely, solid-CO 2 cooling induced substantial surface oxidation and high porosity levels, ultimately deteriorating tensile strength.
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