Effect of ultrasonic vibration on microstructural evolution, clad defects, and surface properties in laser direct energy deposition of Inconel 625

Biplab Kumar Dash, S. Bhatnagar, Hari Srinivasa Rao Magham, Shubham Rao, Gopinath Muvvala, S. Mullick
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Abstract

Laser direct energy deposition (DED) has some accompanying issues, such as existence of micropores, elemental segregation at grain boundaries, intergranular corrosion, etc. Therefore, the current work aims for a reduction in clad defects and enhancement in surface properties for laser direct deposition of Inconel 625 by implementing ultrasonic vibration. The acoustic streaming and cavitation effect induced by ultrasonic vibration results in the breaking of columnar grains, along with grain refinement and better elemental distribution in the matrix during the solidification process. The investigation is carried out for deposition using a 240 W Yb-fiber laser under the application of ultrasonic vibration with a variable amplitude of 6–13 μm (frequency: 33–28 kHz). A relatively higher vibration amplitude was found more efficient in converting long columnar grains into finer and uniformly distributed equiaxed grains, with a significant reduction in micropores. Further, it resulted in a shorter molten pool lifetime because of the generation of more nucleation centers, leading to better cooling. The above effects resulted in higher microhardness of the deposited layer. Further, the wear and corrosion resistance showed an improvement with the application of vibration, which may be due to the finer equiaxed grains, less porosity, and better elemental distribution at a higher vibration amplitude.
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超声波振动对激光直接能量沉积铬镍铁合金 625 的微结构演变、熔覆缺陷和表面性能的影响
激光直接能量沉积(DED)有一些伴随问题,如存在微孔、晶界元素偏析、晶间腐蚀等。因此,目前的工作旨在通过超声波振动来减少 Inconel 625 激光直接沉积的熔覆缺陷并提高其表面性能。在凝固过程中,超声波振动诱导的声流和空化效应会导致柱状晶粒破碎、晶粒细化以及基体中元素分布的改善。研究使用 240 W Yb 光纤激光器,在振幅为 6-13 μm(频率:33-28 kHz)的超声波振动下进行沉积。结果发现,相对较高的振幅能更有效地将长柱状晶粒转化为更细且分布均匀的等轴晶粒,同时显著减少微孔。此外,由于产生了更多的成核中心,因此熔池寿命更短,冷却效果更好。上述效应使沉积层的显微硬度更高。此外,耐磨性和耐腐蚀性也随着振动的应用而得到改善,这可能是由于在较高的振动振幅下,等轴晶更细、孔隙率更小、元素分布更均匀。
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