Joele Malefane, Matizamhuka Wallace Rwisayi
Department of Chemical and Metallurgical Engineering, Vaal University of Technology, Vanderbijlpark 1911, South Africa.
Materials (Basel). 2021 Oct 6;14(19):5835. doi: 10.3390/ma14195835.
The studies following HEA inceptions were apparently motivated to search for single-phase solid solution over intermetallic phases, accordingly made possible by the concept of high configurational entropy. However, it was realised that the formation of intermetallic phases in HEAs is prevalent due to other criterions that determine stable phases. Nonetheless, recent efforts have been directed towards attributes of microstructural combinations. In this viewpoint, the techniques used to predict microstructural features and methods of microstructural characterisation are elucidated in HESA fields. The study further analyses shortcomings regarding the design approaches of HESAs. A brief history is given into how HESAs were developed since their birth, to emphasize the evaluation techniques used to elucidate high temperature properties of HESAs, and the incentive thereof that enabled further pursuit of HESAs in the direction of optimal microstructure and composition. The theoretical models of strengthening mechanisms in HEAs are explained. The impact of processing route on the HESAs performance is analysed from previous studies. Thereafter, the future of HESAs in the market is conveyed from scientific opinion. Previous designs of HEAs/HESAs were more based on evaluation experiments, which lead to an extended period of research and considerable use of resources; currently, more effort is directed towards computational and theoretical methods to accelerate the exploration of huge HEA composition space.
在高熵合金(HEA)诞生后的研究显然旨在寻找单相固溶体而非金属间化合物相,这因高组态熵的概念而成为可能。然而,人们意识到由于决定稳定相的其他标准,HEA中金属间化合物相的形成很普遍。尽管如此,最近的努力已指向微观结构组合的特性。从这个角度来看,在高熵合金体系(HESA)领域中阐明了用于预测微观结构特征的技术和微观结构表征方法。该研究进一步分析了高熵合金体系设计方法的缺点。简要介绍了高熵合金体系自诞生以来的发展历程,以强调用于阐明其高温性能的评估技术以及促使其在最佳微观结构和成分方向上进一步探索的动机。解释了高熵合金强化机制的理论模型。从先前的研究中分析了加工路线对高熵合金体系性能的影响。此后,从科学观点阐述了高熵合金体系在市场上的未来。以前高熵合金/高熵合金体系的设计更多基于评估实验,这导致研究周期延长和资源大量使用;目前,更多努力指向计算和理论方法,以加速对庞大的高熵合金成分空间的探索。