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Thermal debinding mass transfer mechanism and dynamics of copper green parts fabricated by an innovative 3D printing method

机译:通过创新的3D打印方法制造的生铜零件的热脱脂传质机理和动力学

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摘要

To explore the thermal debinding mass transfer mechanism and dynamics of an innovative copper paste injection 3D printing method, the thermal behavior of the copper paste was investigated to clarify the stages of the debinding process. Furthermore, the debinding ratio, burnout ratio, shrinkage and microstructures were characterized to study the mass transfer channel and dynamics. The dynamics equation of diffusion mass transfer was analyzed. The activation energy and pre-exponential factor were calculated. The results revealed that gas phase mass transfer was the main mass transfer path and the diffusion coefficient in the carbon powder embedded environment (2.68 × 10 ~(?5) cm ~(2) s ~(?1) ) was higher than that in air atmosphere (1.96 × 10 ~(?5) cm ~(2) s ~(?1) ). Moreover, the migration of solid phase materials and the diffusion of atoms are also discussed. When combined with the sintering process, the sintered metal parts had a smooth surface flatness and excellent metallurgical bonding, the thin wall of which was only 340 μm thick.
机译:为了探索创新的铜浆注射3D打印方法的热脱脂传质机理和动力学,研究了铜浆的热行为以阐明脱脂过程的各个阶段。此外,对脱脂率,燃尽率,收缩率和微观结构进行了表征,以研究传质通道和动力学。分析了扩散传质动力学方程。计算了活化能和指数前因子。结果表明,气相传质是主要的传质路径,碳粉包埋环境中的扩散系数(2.68×10〜(?5)cm〜(2)s〜(?1))高于气相中的扩散系数。空气气氛(1.96×10〜(?5)cm〜(2)s〜(?1))。此外,还讨论了固相材料的迁移和原子的扩散。当与烧结过程结合使用时,烧结的金属零件具有光滑的表面平整度和优异的冶金结合力,其薄壁厚度仅为340μm。

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