Muskeri Saideep, Hasannaeimi Vahid, Salloom Riyadh, Sadeghilaridjani Maryam, Mukherjee Sundeep
Department of Materials Science and Engineering, University of North Texas, Denton, TX, 76203, USA.
Sci Rep. 2020 Feb 14;10(1):2669. doi: 10.1038/s41598-020-59513-2.
Eutectic high entropy alloys, with lamellar arrangement of solid solution phases, represent a new paradigm for simultaneously achieving high strength and ductility, thereby circumventing this well-known trade-off in conventional alloys. However, dynamic strengthening mechanisms and phase-boundary interactions during external loading remain unclear for these eutectic systems. In this study, small-scale mechanical behavior was evaluated for AlCoCrFeNi eutectic high entropy alloy, consisting of a lamellar arrangement of L1 and B2 solid-solution phases. The ultimate tensile strength was 1165 MPa with ductility of ~18% and ultimate compressive strength was 1863 MPa with a total compressive fracture strain of ~34%. Dual mode fracture was observed with ductile failure for L1 phase and brittle mode for B2 phase. Phase-specific mechanical tests using nano-indentation and micro-pillar compression showed higher hardness and strength and larger strain rate sensitivity for B2 compared with L1. Micro-pillars on B2 phase deformed by plastic barreling while L1 micro-pillars showed high density of slip steps due to activation of more slip systems and homogenous plastic flow. Mixed micro-pillars containing both the phases exhibited dual yielding behavior while the interface between L1 and B2 was well preserved without any sign of separation or cracking. Phase-specific friction analysis revealed higher coefficient of friction for B2 compared to L1. These results will pave the way for fundamental understanding of phase-specific contribution to bulk mechanical response of concentrated alloys and help in designing structural materials with high fracture toughness.
具有固溶体相层状排列的共晶高熵合金代表了一种同时实现高强度和高延展性的新范例,从而规避了传统合金中这种众所周知的权衡。然而,这些共晶体系在外部加载过程中的动态强化机制和相界相互作用仍不清楚。在本研究中,对由L1和B2固溶体相层状排列组成的AlCoCrFeNi共晶高熵合金的小尺度力学行为进行了评估。其极限抗拉强度为1165MPa,延展性约为18%,极限抗压强度为1863MPa,总压缩断裂应变为约34%。观察到双模式断裂,L1相为韧性断裂模式,B2相为脆性断裂模式。使用纳米压痕和微柱压缩进行的相特异性力学测试表明,与L1相比,B2具有更高的硬度和强度以及更大的应变速率敏感性。B2相上的微柱因塑性鼓胀而变形,而L1微柱由于更多滑移系的激活和均匀塑性流动而显示出高密度的滑移台阶。包含这两个相的混合微柱表现出双屈服行为,而L1和B2之间的界面保存完好,没有任何分离或开裂的迹象。相特异性摩擦分析表明,B2的摩擦系数高于L1。这些结果将为深入理解相特异性对集中合金整体力学响应的贡献铺平道路,并有助于设计具有高断裂韧性的结构材料。