TY - JOUR
T1 - Impact of Surface Finishing on Ti6Al4V Voronoi Additively Manufactured Structures
T2 - Morphology, Dimensional Deviation, and Mechanical Behavior
AU - Bregoli, Chiara
AU - Mohajerani, Shiva
AU - Fiocchi, Jacopo
AU - Mehrpouya, Mehrshad
AU - Elahinia, Mohammad
AU - Tuissi, Ausonio
AU - Vergani, Laura Maria
AU - Biffi, Carlo Alberto
N1 - Publisher Copyright:
© 2024 by the authors.
PY - 2024/10/4
Y1 - 2024/10/4
N2 - Additively manufactured medical devices require proper surface finishing before their use to remove partially adhered particles and provide adequate surface roughness. The literature widely investigates regular lattice structures—mainly scaffolds with small pores to enhance osseointegration; however, only a few studies have addressed the impact of surface finishing on the dimensional deviation and the global and local mechanical responses of lattice samples. Therefore, the current research investigates the impact of biomedical surface finishing (i.e., corundum sandblasting and zirconia sandblasting) on Voronoi lattice structures produced by laser powder bed fusion (LPBF) with large pores and different thicknesses on the surface morphology and global and local mechanical behaviors. MicroCT and SEM are performed for the assessment of dimensional mismatch and surface evaluation. The mechanical properties are investigated with 2D digital image correlation (DIC) in quasi-static compression tests to estimate the impact of surface finishes on local maps of strain. In the quasi-static tests, both the global mechanical performances, as expected, and local 2D DIC strain maps were mainly affected by the strut thickness, and the impact of different surface finishings was irrelevant; on the contrary, different surface finishing processes led to differences in the dimensional deviation depending on the strut thickness. These results are relevant for designing lattice structures with thin struts that are integrated into medical prostheses that undergo AM.
AB - Additively manufactured medical devices require proper surface finishing before their use to remove partially adhered particles and provide adequate surface roughness. The literature widely investigates regular lattice structures—mainly scaffolds with small pores to enhance osseointegration; however, only a few studies have addressed the impact of surface finishing on the dimensional deviation and the global and local mechanical responses of lattice samples. Therefore, the current research investigates the impact of biomedical surface finishing (i.e., corundum sandblasting and zirconia sandblasting) on Voronoi lattice structures produced by laser powder bed fusion (LPBF) with large pores and different thicknesses on the surface morphology and global and local mechanical behaviors. MicroCT and SEM are performed for the assessment of dimensional mismatch and surface evaluation. The mechanical properties are investigated with 2D digital image correlation (DIC) in quasi-static compression tests to estimate the impact of surface finishes on local maps of strain. In the quasi-static tests, both the global mechanical performances, as expected, and local 2D DIC strain maps were mainly affected by the strut thickness, and the impact of different surface finishings was irrelevant; on the contrary, different surface finishing processes led to differences in the dimensional deviation depending on the strut thickness. These results are relevant for designing lattice structures with thin struts that are integrated into medical prostheses that undergo AM.
KW - digital image correlation
KW - dimensional mismatch
KW - LPBF
KW - medical sandblasting
KW - Voronoi lattice structures
UR - http://www.scopus.com/inward/record.url?scp=85206458565&partnerID=8YFLogxK
U2 - 10.3390/ma17194879
DO - 10.3390/ma17194879
M3 - Article
AN - SCOPUS:85206458565
SN - 1996-1944
VL - 17
JO - Materials
JF - Materials
IS - 19
M1 - 4879
ER -