AlSi10Mg alloy lattice structures produced by Powder Bed Fusion- Laser Beam (PBF-LB) technology show high specific strength and an optimal surface/volume ratio. However, in the as-built condition they are characterized by a high roughness that may worsen their performance. To address this issue, a multilayer coating consisting of (i) electroless Ni-9%P interlayer, to compensate surface defects and optimize the surface topography, and (ii) PA-CVD hydrogenated amorphous carbon (DLC a-C:H) topcoat was deposited. The features of the coated system were evaluated by: (i) optical profilometry, (ii) FEG-SEM/EDS observations, (iii) micro/nanoscale hardness tests, and (iv) scratch test. Based on the results, the main problems related to the deposition of the Ni-P + DLC multilayer coating on the PBF-LB AlSi10Mg critical components were identified, in order to optimize the whole post-printing cycle and guarantee adequate performance of the multilayer coating.

Characterization of a multilayer coating (Ni-P plus DLC) applied on PBF-LB AlSi10Mg components with complex geometries and lattice structures

Tocci, M;Gelfi, M;Pola, A;
2025-01-01

Abstract

AlSi10Mg alloy lattice structures produced by Powder Bed Fusion- Laser Beam (PBF-LB) technology show high specific strength and an optimal surface/volume ratio. However, in the as-built condition they are characterized by a high roughness that may worsen their performance. To address this issue, a multilayer coating consisting of (i) electroless Ni-9%P interlayer, to compensate surface defects and optimize the surface topography, and (ii) PA-CVD hydrogenated amorphous carbon (DLC a-C:H) topcoat was deposited. The features of the coated system were evaluated by: (i) optical profilometry, (ii) FEG-SEM/EDS observations, (iii) micro/nanoscale hardness tests, and (iv) scratch test. Based on the results, the main problems related to the deposition of the Ni-P + DLC multilayer coating on the PBF-LB AlSi10Mg critical components were identified, in order to optimize the whole post-printing cycle and guarantee adequate performance of the multilayer coating.
2025
Altre fonti
PE8_9 Materials engineering (biomaterials, metals, ceramics, polymers, composites,…)
PE8_8 Mechanical and manufacturing engineering (shaping, mounting, joining, separation)
Esperti anonimi
Italiano
1
PBF-LB; ALSI10MG; LATTICE STRUCTURES; CRITICAL GEOMETRY; ELECTROLESS NI-P COATING; INSTRUMENTED INDENTATION; ADHESION TESTS; TOPOGRAPHIC ANALYSIS; PBF-LB; ALSI10MG; LATTICE STRUCTURES; CRITICAL GEOMETRY; HYDROGENATED AMORPHOUS CARBON (A-C:H) DLC COATING; ELECTROLESS NI-P COATING; INSTRUMENTED INDENTATION; ADHESION TESTS; TOPOGRAPHIC ANALYSIS
   National Sustainable Mobility Center CN00000023 – Spoke 11 – Innovative materials & Lightweighting
   MOST - Spoke 11
   European Union – NextGenerationEU (PNRR)
no
Goal 9: Industry, Innovation, and Infrastructure
10
info:eu-repo/semantics/article
262
Di Egidio, G; Martini, C; Morri, A; Tonelli, L; Ceschini, L; Tocci, M; Gelfi, M; Pola, A; Martucci, A; Lombardi, M
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11379/626825
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