Zhang Wei, Guo Xin, Ren Junqiang, Li Junchen, Xue Hongtao, Tang Fuling, La Peiqing, Lu Xuefeng
State Key Laboratory of Advanced Processing and Recycling of Non-ferrous Metal, Department of Materials Science and Engineering, Lanzhou University of Technology, Lanzhou 730050, PR China.
Phys Chem Chem Phys. 2023 Nov 29;25(46):32142-32150. doi: 10.1039/d3cp03613h.
Gradient induced unusual strain hardening achieves the equilibrium of the strength and plasticity of alloys, and is an important strategy for the optimization of the mechanical properties of metals and alloys. The segregation of solute elements can greatly improve the grain boundary stability, inhibit grain coarsening and promote the mechanical strength of the alloy. In our efforts, the segregation structure of the solute element Co was designed and added to the gradient nano Ni-Co alloy, and the two strengthening strategies were applied simultaneously in one structure. The mechanical strength of the alloy achieved a second increase based on the unique combination of gradient induced strain hardening and high plasticity, especially the yield strength of alloy increase amplitude reach to 42%. This provides a positive direction for the alloy strengthening strategy. In the process of secondary strengthening, the micro-mechanism is divided into two stages: in the first stage, the gradient strain provides the alloy with geometrically necessary dislocations and a multi-axial stress state, and the existence of large numbers of geometrically necessary dislocations creates good conditions for the second stage strengthening. In the second stage, the solute segregation induced stable grain boundaries produce a strong pinning effect on the geometrically necessary dislocation, which realizes the coupling of grain boundary strengthening and dislocation strengthening. This provides a new strengthening strategy and positive theoretical guidance for the experimental preparation of advanced alloys with excellent properties.
梯度诱导异常应变硬化实现了合金强度与塑性的平衡,是优化金属及合金力学性能的重要策略。溶质元素的偏析可极大提高晶界稳定性,抑制晶粒粗化并提升合金的力学强度。在我们的工作中,设计了溶质元素Co的偏析结构并将其添加到梯度纳米Ni-Co合金中,两种强化策略在一种结构中同时应用。基于梯度诱导应变硬化与高塑性的独特结合,合金的力学强度实现了二次提高,尤其是合金的屈服强度增幅达到42%。这为合金强化策略提供了一个积极的方向。在二次强化过程中,微观机制分为两个阶段:第一阶段,梯度应变给合金提供几何必需位错和多轴应力状态,大量几何必需位错的存在为第二阶段强化创造了良好条件。第二阶段,溶质偏析诱导的稳定晶界对几何必需位错产生强烈钉扎作用,实现了晶界强化与位错强化的耦合。这为具有优异性能的先进合金的实验制备提供了一种新的强化策略及积极的理论指导。