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Ductility improvement of amorphous steels: Roles of shear modulus and electronic structure

机译:非晶钢延展性改进:剪切模量和电子结构的作用

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摘要

Metal-metalloid composition effects on the mechanical properties of Fe-Cr-Mo-P-C-B amorphous steel alloys have been investigated. Compressivc plastic strain, elastic moduli and microhardness were measured. The present amorphous steels were found to exhibit enhanced plastic strains up to approx 3.6 percent and fracture strengths up to approx 3.5 GPa. Moreover, the plastic strain increased quite rapidly with the decrease in shear modulus. The shear modulus values measured are appreciably lower than those reported for previous amorphous steel compositions that did not contain phosphorus; and the Poisson's ratios obtained are in the range approx 0.33-0.34. The present findings indicate that the ductility of amorphous steels can be significantly improved by chemically tuning the elastic properties which are determined by the amorphous structure and chemical bonding. First-principles electronic structure calculations show that ductility can be improved by partially replacing elements that create ionic and covalent bonds with other elements that favor metallic cohesion.
机译:研究了金属-准金属成分对Fe-Cr-Mo-P-C-B非晶钢合金力学性能的影响.测量了压缩塑性应变、弹性模量和显微硬度。研究发现,目前的非晶钢表现出增强的塑性应变,高达约3.6%,断裂强度高达约3.5 GPa。此外,塑性应变随着剪切模量的减小而迅速增加。测得的剪切模量值明显低于以前报告的不含磷的非晶态钢组合物的剪切模量值;得到的泊松比在大约 0.33-0.34 的范围内。本研究结果表明,通过化学调整由非晶结构和化学键合决定的弹性性能,可以显著提高非晶钢的延展性。第一性原理电子结构计算表明,通过用有利于金属内聚的其他元素部分替换产生离子键和共价键的元素,可以提高延展性。

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