Abstract

Additive manufacturing (AM) is one of the recently studied research areas, due to its ability to eliminate different subtractive manufacturing limitations, such as difficultly in fabricating complex parts, material wastage, and numbers of sequential operations. Laser-powder bed fusion (L-PBF) AM for SS316L is known for complex part production due to layer-by-layer deposition and is extensively used in the aerospace, automobile, and medical sectors. The process parameter selection is crucial for deciding the overall quality of the SS316L build component with L-PBF AM. This review critically elaborates the effect of various input parameters, i.e., laser power, scanning speed, hatch spacing, and layer thickness, on various mechanical properties of AM SS316L, such as tensile strength, hardness, and the effect of porosity, along with the microstructure evolution. The effect of other AM parameters, such as the build orientation, pre-heating temperature, and particle size, on the build properties is also discussed. The scope of this review also concerns the challenges in practical applications of AM SS316L. Hence, the residual stress formation, their influence on the mechanical properties and corrosion behavior of the AM build part for bio implant application is also considered. This review involves a detailed comparison of properties achievable with different AM techniques and various post-processing techniques, such as heat treatment and grain refinement effects on properties. This review would help in selecting suitable process parameters for various human body implants and many different applications. This study would also help to better understand the effect of each process parameter of PBF-AM on the SS316L build part quality.

Highlights

  • Introduction iationsAdditive manufacturing (AM) offers plenty of advantages over the conventional manufacturing process, due to the layer-by-layer deposition of materials

  • Hajnys et al [10] investigated the optimization approach, using Taguchi to establish the relation of process parameters on mechanical properties

  • Delgado et al [16] investigated the effect of process parameters on hardness and reported that the hardness value decreases as the build direction changes from 0’ to 90’

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Summary

Tensile Strength

Tensile strength is one of the important factors considered to evaluate the quality of the build part. Hajnys et al [10] investigated the optimization approach, using Taguchi to establish the relation of process parameters on mechanical properties They stated that the most influencing parameter for tensile strength of AM build parts is the scanning speed followed by the scanning pattern and laser power.

Tensile
Porosity
Keyhole
12. Molten
Corrosion
18. Pit in in corrosion
Residual
C Heat Treated
Findings
Conclusions
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