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The coatings with a N content of 25.5 at.% possessed a highest hardness of 25.4 GPa and a highest H/E ratio of 0.096.
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This effect could be explained only by a higher hardness of the material.
After heat-treatment, it decomposed into a bainitic structure with a high hardness of 884 HV.
The DLC coatings have a high hardness of >18 GPa, a low friction coefficient of 0.12 and a low wear rate of (1.7 ± 0.2) × 10−15 m3/N·m.
Additionally, microhardness results also confirm that Cu ball bonds reveal a higher hardness of 111 VHN than that of initial Cu ball (84 VHN).
The featureless phase with a high hardness of 1155 HV was characterized as a metastable solid solution of ε phase.
In addition, this NGMG sustains the good mechanical properties of metallic glasses, showing a high hardness of ∼5.3 GPa.
The lower transformation temperature produces finer and denser carbides, and results in a higher hardness of ferrite.
A nanoindentation test revealed that the coating had a high hardness of 11.8 GPa, and a scratch test indicated that the coating well adhered to the N36 substrate.
The coatings exhibit a high hardness of 8 GPa and a Young's Modulus of 70 GPa, which are comparable with the bulk quartz glass.
Consequently, the AlSi10Mg SLM products have a high hardness of 127 ± 3 Hv0.5 even without the application of a precipitation hardening treatment.
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