<p>In this study, the microstructure and mechanical properties of biodegradable Zn-1Mg alloy processed with a novel severe plastic deformation (SPD) method called expansion extrusion equal channel angular pressing (EECAP) were investigated. For one pass, the plastic deformation was performed at three temperatures of 100&#xa0;°C, 140&#xa0;°C, and 180&#xa0;°C. To reveal the microstructure, optical and SEM studies were carried out. Mechanical properties were examined by tensile and Vickers hardness tests. The results showed a significant reduction in average grain size from 34.5&#xa0;μm for as-cast alloy to 1.3&#xa0;μm, 2.5&#xa0;μm, and 3.9&#xa0;μm for the 100&#xa0;°C, 140&#xa0;°C, and 180&#xa0;°C processed alloys, respectively. Dynamic recrystallization (DRX) was the dominant grain refinement mechanism. EECAP processing fragmented the coarse lamellar and spiral eutectic morphologies, and a fine distribution of hard Mg<sub>2</sub>Zn<sub>11</sub> intermetallic phase within the α-Zn matrix was achieved. As a result, both the strength and ductility of the alloy improved considerably after one pass of EECAP. While the alloy EECAPed at 100&#xa0;°C exhibited the highest yield (YS = 198&#xa0;MPa) and ultimate tensile strength (UTS = 217&#xa0;MPa), the sample deformed at 140&#xa0;°C showed the highest elongation to fracture (El = 12.5%). However, the hardness distribution was relatively nonuniform along the cross-section of the EECAPed samples, though it corresponded well to the effective strain predicted by the finite element method (FEM) simulation.</p> Graphical Abstract <p></p>

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Enhanced Strength and Ductility of Biodegradable Zn-1Mg Alloy Through EECAP Processing at Different Temperatures

  • Geonik Azadkoli,
  • Piunik Azadkoli,
  • Mohammad Moazami-Goudarzi

摘要

In this study, the microstructure and mechanical properties of biodegradable Zn-1Mg alloy processed with a novel severe plastic deformation (SPD) method called expansion extrusion equal channel angular pressing (EECAP) were investigated. For one pass, the plastic deformation was performed at three temperatures of 100 °C, 140 °C, and 180 °C. To reveal the microstructure, optical and SEM studies were carried out. Mechanical properties were examined by tensile and Vickers hardness tests. The results showed a significant reduction in average grain size from 34.5 μm for as-cast alloy to 1.3 μm, 2.5 μm, and 3.9 μm for the 100 °C, 140 °C, and 180 °C processed alloys, respectively. Dynamic recrystallization (DRX) was the dominant grain refinement mechanism. EECAP processing fragmented the coarse lamellar and spiral eutectic morphologies, and a fine distribution of hard Mg2Zn11 intermetallic phase within the α-Zn matrix was achieved. As a result, both the strength and ductility of the alloy improved considerably after one pass of EECAP. While the alloy EECAPed at 100 °C exhibited the highest yield (YS = 198 MPa) and ultimate tensile strength (UTS = 217 MPa), the sample deformed at 140 °C showed the highest elongation to fracture (El = 12.5%). However, the hardness distribution was relatively nonuniform along the cross-section of the EECAPed samples, though it corresponded well to the effective strain predicted by the finite element method (FEM) simulation.

Graphical Abstract