4.6 Article

Breakdown Trade-Off Relation of Mechanical Properties via Micro-alloying in Mg-Mn Alloys

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SPRINGER
DOI: 10.1007/s11661-021-06581-2

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  1. Hitachi Metals Ltd.
  2. NIMS
  3. JSPS [19K05068]
  4. Grants-in-Aid for Scientific Research [19K05068] Funding Source: KAKEN

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The impact of micro-alloying on tensile behavior at different strain rates is investigated using five types of extruded Mg-0.3 at. pct Mn-0.1 at. pct X ternary alloys. Microstructural observations reveal that the micro-alloying elements segregate at grain boundaries, affecting the mechanical properties and deformation behavior. Different micro-alloying elements lead to different mechanical properties and deformation mechanisms.
The impact of micro-alloying on tensile behavior at strain rates in various ranges is examined using five types of extruded Mg-0.3 at. pct Mn-0.1 at. pct X ternary alloys, where X is selected as a common element, Al, Li, Sn, Y or Zn. Microstructural observations reveal that the average grain size of these extruded alloys is between 1 and 3 mu m, and these micro-alloying elements segregate at grain boundaries. In room temperature tensile and compression tests, these results show that the mechanical properties and deformation behavior are influenced by the micro-alloying element, even as a small addition of 0.1 at. pct. Mg-Mn-Y and Mg-Mn-Zn alloys show higher strength and smaller strain rate sensitivity (m-value) among the present alloys, owing to the rate-controlling mechanism as dislocation slip. On the other hand, the Mg-Mn-Li alloy exhibits the largest elongation to failure in tension and the highest strain rate sensitivity, associated with high contribution of grain boundary sliding to deformation. These differences are due to the grain boundary segregation of the micro-alloying elements. Compared to the common Mg alloys, the present ternary alloys also show a trade-off relationship between strength and ductility, which is similar to that of the well-known Mg alloys; however, these properties of the Mg-Mn system ternary alloys could be controlled via the type of micro-alloying elements with a chemical content of 0.1 at. pct.

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