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Nanostructure Characteristics of Al3Sc1−xZrx Nanoparticles and Their Effects on Mechanical Property and SCC Behavior of Al–Zn–Mg Alloys

机译:Al3Sc1-xZrx纳米颗粒的纳米结构特征及其对Al-Zn-Mg合金力学性能和SCC行为的影响

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摘要

The Nanostructure characteristics of Al Sc Zr nanoparticles and their effects on the mechanical properties and stress corrosion cracking (SCC) behavior of Al–Zn–Mg alloys were investigated by 3D atom probe analyses, high-angle annular-dark-field scanning transmission electron microscopy methods, electron back scattered diffraction techniques, electrochemical measurements, slow strain rate tests and quantitative calculations. The results show that adding small amounts of scandium (0.10 percent by weight) and zirconium into Al–Zn–Mg extrusion bars can precipitate Al Sc Zr nanoparticles with a number density of (7.80 ± 3.83) × 10 per cubic meter. Those particles, with a low lattice misfit with matrix (1.14 ± 0.03 percent) and stable core-shell L12-nanostructure in aged Al–Zn–Mg alloys, can increase the yield strength by 161 ± 7 MPa via strong Orowan strengthening (the theoretical calculated value is 159 MPa) and weak Hall-Petch strengthening (the theoretical calculated value is 6 MPa). Moreover, Al Sc Zr nanoparticles can change the fracture mechanism of alloys in 3.5% NaCl solution from intergranular cracks to transgranular failure, and decrease the proportion of high-angle grain boundaries from 87% to 31%, thus reducing the microchemistry differences around the grain boundaries and anodic dissolution kinetics, and improving intergranular SCC resistance and ductility. This study offers a new approach to the simultaneous improvement in mechanical property and corrosion performance of high strength alloys.
机译:通过3D原子探针分析,高角度环形暗场扫描透射电子显微镜研究了Al Sc Zr纳米颗粒的纳米结构特征及其对Al-Zn-Mg合金力学性能和应力腐蚀开裂(SCC)行为的影响。方法,电子背散射衍射技术,电化学测量,慢应变速率测试和定量计算。结果表明,向Al–Zn–Mg挤压棒中添加少量的dium(按重量计0.10%)和锆可以使Al Sc Zr纳米颗粒沉淀,其密度为(7.80±3.83)×10 /立方米。那些颗粒与基体的晶格失配低(1.14±0.03%),并且在时效的Al-Zn-Mg合金中具有稳定的核壳L12纳米结构,这些颗粒可以通过强大的Orowan增强而使屈服强度提高161±7 MPa(理论上计算值是159 MPa)和弱Hall-Petch强化(理论计算值是6 MPa)。此外,Al Sc Zr纳米颗粒可以将合金在3.5%NaCl溶液中的断裂机理从晶间裂纹转变为晶间破坏,并将高角度晶界的比例从87%降低至31%,从而减小了晶粒周围的微化学差异。边界和阳极溶解动力学,以及改善晶间SCC抵抗力和延展性。这项研究为同时提高高强度合金的机械性能和腐蚀性能提供了一种新方法。

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