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TUNING DUCTILITY FOR REFRACTORY HIGH-ENTROPY ALLOYS

机译:耐高温高合金合金的调整延展性

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Development of new high-temperature materials, incorporating alloys based on metals with higher operating temperatures and melting points along with optimum properties, has always been motivated for their applications, typically in aerospace and marine industries. High-Entropy alloys (HEAs), or multicomponent alloys with equiatomic or close-to-equiatomic compositions, based on group IV, V and VI refractory elements, can be potential candidates due to their attractive high-temperature properties. However, inadequate ductility puts a limit on their mechanical performance for structural applications. A strategy is proposed here to design refractory HEAs with yield strength reaching 1000 MPa, and importantly with sufficient ductility at room temperature. Ductility is introduced by maintaining the number of total valence electrons low, and this is controlled by adjusting the alloy compositions. In addition, thermomechanical treatment is also utilized to further fine tune the mechanical properties via modifying the microstructure. Our findings will shed light on the design of refractory HEAs with optimal mechanical properties.
机译:一直以来,人们一直在积极开发新型高温材料,这些材料结合了具有较高工作温度和熔点以及最佳性能的金属合金,因此通常被应用在航空航天和海洋工业中。基于IV,V和VI组耐火元素的高熵合金(HEA)或具有等原子或接近等原子组成的多组分合金,可能具有潜在的优势,因为它们具有有吸引力的高温特性。但是,延展性不足限制了其在结构应用中的机械性能。这里提出一种策略来设计屈服强度达到1000 MPa的耐火HEA,重要的是在室温下具有足够的延展性。通过使总价电子数保持较低来引入延展性,并且通过调节合金成分来控制延展性。另外,还通过改变微观结构来利用热机械处理来进一步微调机械性能。我们的发现将为具有最佳机械性能的耐火HEA设计提供启发。

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