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双丝CMT + P增材制造316L不锈钢件组织性能

Microstructure and properties of 316L stainless steel parts fabricated by double filament CMT + P additive manufacturing

  • 摘要: 采用了冷金属过渡加脉冲(CMT + P)双丝双电弧工艺进行60层316L不锈钢沉积件的增材,对比分析了不同熔敷电流对沉积件的显微组织与力学性能的影响. 结果表明,成形高度和宽度均随熔敷电流的增加而增大,成型表面良好无明显缺陷,是一种可行的双丝双电弧增材制造工艺.通过金相分析可以看出组织均由γ-Fe和δ铁素体构成,且自下而上均以连续生长的柱状枝晶为主.当电流变化时,铁素体的大小和形状存在明显变化,铁素体同熔敷电流呈负相关;通过机械性能分析可知,当熔覆电流100 A时表现出的整体性能最优,平均冲击吸收功为31.15 ± 0.85 J,整体抗拉强度达到521.9 ± 5.18 MPa,整体屈服强度达到214.45 ± 5.87 MPa,断后伸长率达47.6 ± 2.1%,断口为韧性断裂;当熔覆电流83 A时平均硬度最高,达到209.1 HV0.3,但熔覆电流100A时硬度更均匀.

     

    Abstract: The cold metal transition plus pulsed (CMT + P) double filament double arc process was used to add 60 layers of 316L stainless steel deposits, and the effects of different deposition currents on the microstructure and mechanical properties of the deposits were comparatively analysed. The results show that the forming height and width increase with the increase of the melting current, and the forming surface was good without obvious defects, which was a feasible dual-filament dual-arc additive manufacturing process. Metallographic analysis shows that the organisation consists of γ-Fe and δ-ferrites, and the bottom up was dominated by continuously growing columnar dendrites. When the current changes, there are obvious changes in the size and shape of the ferrite, and the ferrite was negatively correlated with the melting current; The mechanical property analysis shows that the overall performance was optimal when the melting current was 100 A. The average impact absorption work was 31.15 ± 0.85 J, the overall tensile strength reaches 521.9 ± 5.18 MPa, the overall yield strength reaches 214.45 ± 5.87 MPa, and the elongation at break reaches 47.6 ± 2.1 %, and the fracture was a toughness fracture; The highest average hardness of 209.1HV0.3 was achieved at a melting current of 83A, but the hardness was more uniform at a melting current of 100A.

     

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