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Scandium Canada Ltd V.SCD

Alternate Symbol(s):  SCDCF

Scandium Canada Ltd., formerly Imperial Mining Group Ltd., is a Canadian technology metals company focused on advancing its flagship Crater Lake scandium and rare earth projects in Quebec. It specializes in mining exploration for gold, base metal and technology metal mining sites located in Canada. It is focused on the advancement of its Crater Lake Scandium-REE project in Northeastern Quebec. It also holds gold properties in the Abitibi greenstone belt. Its Crater Lake Project is located about 200 kilometers (km) northeast of Schefferville, Quebec. The property consists of about 96 contiguous claims covering 47 square kilometers. Its Opawica Project is located about 20 km East of Desmaraisville and is accessible via Highway 113 going from Val-d’Or to Chibougamau, Quebec. The property consists of about 42 contiguous claims covering 23.45 square kilometers. Its La Ronciere Project is located about 35 km East of Desmaraisville. The property consists of about 45 contiguous claims.


TSXV:SCD - Post by User

Post by ScandiumPoweron Aug 25, 2022 9:13am
122 Views
Post# 34919342

0.3% Scandium Improves Properties of 3D printed INCONEL 718

0.3% Scandium Improves Properties of 3D printed INCONEL 7183D printed superalloys have attracted increasing attention due to their inherent hierarchical microstructure, but have been impeded by anisotropic properties originating from columnar grains. In this work, we present a strategy for inhibiting the formation of columnar grains in which 0.3 wt% Scandium (Sc) was introduced as an oxide dispersion strengthener (ODS) into the INCONEL (IN718) alloy fabricated via Laser Powder Brd Fusion (LPBF).
The effects of Sc on the microstructure and mechanical properties of the IN718 were investigated, revealing the in-situ formation of Sc2O3 annoparticles as well as the cellular sub-grains microstructure with high-density of dislocations into the as-prepared IN718-Sc alloy. The addition of Sc disrupted the typical columnar grains generated by the LPBF process, resulting in, the strong (100) texture in pure IN718 alloy changing to the irregular orientation in IN718-Sc alloy. In addition, the average grain size and the aspect ratio also show decreases when Sc introduction. As a result, the as-designed IN718-Sc alloy achieved a higher yield strength of 1030 MPa at room temperature and 837 MPa at 650 ºC, respectively, which can be attributed to Zener pinning of grain boundaries by dispersed Sc2O3 nanoparticles. Importantly, the insight into dispersing oxide particles to regulate microstructure and improve properties in this study could provide guidance for other alloy fabrication through powder additive manufacturing.

https://www.sciencedirect.com/science/article/pii/S0925838822021545


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