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Study on Improvement of Surface Roughness and Induced Residual Stress for Additively Manufactured Metal Parts by Abrasive Flow Machining

机译:磨料流加工改善金属零件的表面粗糙度和引起的残余应力的研究。

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Fabrication freedom is provided for production of metal parts with complex geometries that cannot be fabricated by conventional subtractive manufacturing, as rapid advancements in additive manufacturing (AM). However, as the quality of as-built surfaces of AM metal parts is far inferior to service requirements, the drawbacks in fabricating metal parts by AM include the poor as-built surface roughness inherent to balling effect and powder adhesion, the tensile residual stress in surface layer inherent to AM building process. In this paper, the additively manufactured aluminum alloy workpiece is polished by abrasive flow machining(AFM), and the effect of the process parameters of AFM on the workpiece’s surface integrity is taken into account,i.e.surface roughness and compressive residual stresses induced. Results of the experiments show that surface roughness is significantly improved after AFM process and surface defects due to powder accumulations is also removed. Furthermore, compressive residual stresses are induced in layer inferior to the machined surface after AFM polishing process. It is proved that AFM offers effective finishing and improvement in surface integrity of AM parts, providing a feasible way to finish AM parts with complex inner surfaces.
机译:随着增材制造(AM)的快速发展,制造自由度可用于生产几何形状复杂的金属零件,而这些零件无法通过传统的减法制造来制造。但是,由于增材制造金属零件的竣工表面质量远远不能满足使用要求,因此,采用增材制造制造金属零件的缺点包括:滚珠效应和粉末附着力固有的较差的竣工表面粗糙度,拉伸残余应力。 AM构建过程固有的表面层。在本文中,增材制造的铝合金工件通过磨料流动加工(AFM)进行抛光,并考虑了AFM的工艺参数对工件表面完整性的影响,即表面粗糙度和产生的压缩残余应力。实验结果表明,经过AFM处理后,表面粗糙度得到了显着改善,并且还消除了由于粉末堆积引起的表面缺陷。此外,在AFM抛光工艺之后,在加工表面以下的层中会产生压缩残余应力。事实证明,AFM可有效地完成AM零件的表面光洁度并改善其表面完整性,为完成具有复杂内表面的AM零件提供了可行的方法。

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