Diamond cutting and compliant morphable tool polishing of additively manufactured stainless steel

Author:

Nie Qianqian1

Affiliation:

1. National University of Singapore

Abstract

Abstract

The surfaces of additively manufactured (AMed) workpiece are generally very rough with many large pits and powder particles, which significantly limits their application. In this work, diamond cutting and compliant morphable tools polishing were proposed to finish AMed stainless steel. The surface morphology, indentation hardness and friction coefficient of the as-built, diamond cut and polished workpiece were measured and analyzed. The results show that grinding was able to reduce the roughness of the as-built sample to 2.4 µm. Diamond cutting and polishing significantly reduced the roughness Sa, Sq of the sample from more than 10 µm to 80 nm, 90 nm and 3 nm, 5 nm, respectively. Besides, the sample surface protrusions and valleys were significantly reduced from ~ 50 µm, ~ 30 µm to ~ 0.6 µm, ~ 0.3 µm by diamond cutting and ~ 0.2 µm, 0.1 µm by polishing. The 9 µm abrasive polished surface was flat with some left particles and irregular abrasion marks while the 0.3 µm abrasive polished surface was flatter with no observable protrusions or marks. Polishing made the nanoindentation load-depth curves more identical, and increased the indentation hardness and modulus, and decreased the indentation depth than those on the cut surface. The friction coefficients on the as-built surface were 0.64–0.82. Diamond cutting and polishing greatly reduced the friction coefficients to 0.49 and 0.46.

Publisher

Research Square Platform LLC

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