论文标题
设计转换引起的可塑性和孪生诱导的可塑性CR-CO-NI中熵合金:理论和实验
Designing transformation-induced plasticity and twinning-induced plasticity Cr-Co-Ni medium entropy alloys: theory and experiment
论文作者
论文摘要
为了有效地探索多组分固体溶液合金中几乎无限的组成空间,建立预测设计策略并使用计算辅助方法很重要。在目前的工作中,我们证明了在CR-CO-NI中等熵合金中实现转化诱导的可塑性(TRIP)和双胞胎诱导的可塑性(TIP)的密度功能理论计算的知情设计途径(MES)。我们系统地研究了磁性和化学成分对广义堆叠断层能表面(伽马表面)的影响,并表明化学和耦合磁态都强烈影响伽马表面,因此,主要变形模式。基于竞争变形模式计算出的有效能屏障,我们在房间和低温温度下构建了组成和磁性依赖性变形图。因此,我们提出了各种设计路线,以实现三元CR-CO-NI合金中所需的主要变形模式。我们的理论模型预测的变形机制与文献中可用的实验观察非常吻合。此外,我们制造了两个具有设计的旋转和跳闸效果的非平等性CR-CO-NI测量,表现出极好的拉伸强度和延展性的组合。
In order to efficiently explore the nearly infinite composition space in multicomponent solid solution alloys, it is important to establish predictive design strategies and use computation-aided methods. In the present work, we demonstrated the density functional theory calculations informed design routes for realizing transformation-induced plasticity (TRIP) and twinning-induced plasticity (TWIP) in Cr-Co-Ni medium entropy alloys (MEAs). We systematically studied the effects of magnetism and chemical composition on the generalized stacking fault energy surface (gamma-surface) and showed that both chemistry and the coupled magnetic state strongly affect the gamma-surface, consequently, the primary deformation modes. Based on the calculated effective energy barriers for the competing deformation modes, we constructed composition and magnetism dependent deformation maps at both room and cryogenic temperatures. Accordingly, we proposed various design routes for achieving desired primary deformation modes in the ternary Cr-Co-Ni alloys. The deformation mechanisms predicted by our theoretical models are in nice agreement with available experimental observations in literature. Furthermore, we fabricated two non-equiatomic Cr-Co-Ni MEAs possessing the designed TWIP and TRIP effects, showing excellent combinations of tensile strength and ductility.