Aug 2026· IOP Conference Series: Materials Science and Engineering· Vol 1350, pp. 012050· 0 citations· 25 references
Physics
Abstract
The development of advanced lightweight steels is critical for energy conservation and the reduction of emissions. This paper outlines the application of high-entropy alloy (HEA) design principles to the traditional Fe-Mn-Al-C system, resulting in a novel class of Compositionally Complex Steels (CCSs). By incorporating five principal elements, the alloy accesses a unique dual-nanoprecipitation phase space, enabling the simultaneous formation of ordered κ-carbides and B2 intermetallic compounds. This paper details the microstructural evolution and deformation mechanisms of the CCS across a spectrum of mechanical loading conditions. At room temperature, the synergistic interplay of dislocation shearing and bypassing within the dual-nanoprecipitation enhances the flow stress to an extent that triggers high-stress mechanical twinning, overriding the limitations of the inherently high stacking fault energy of lightweight steels. Furthermore, we evaluate the microstructural evolution under extreme conditions: dynamic high-strain-rate loading induces intricate multidirectional twinning networks and localized amorphization, while cryogenic deformation triggers an unprecedented paradigm shift from Orowan bypassing to the direct dislocation shearing of brittle B2 intermetallics. These findings provide valuable insights into designing ultra-strong, damage-tolerant structural materials.
The susceptibility of high-Al ferritic steels to thermal cracking and microstructural coarsening during fusion welding restricts their practical implementation. To address this challenge, high-quality joints of Fe–10Al alloy were successfully fabricated by friction stir welding (FSW) under ultra-low rotation (80 r/min)...
Jun-Qi Chen, Takuya Miura, K. Ushioda et al.· International Journal of Min...· 0 citations
In this work, a coupled multiscale microstructural design strategy was developed for a Cu-5Ni-0.7Si-0.4Al alloy by integrating partial recrystallization-induced grain heterogeneity with hierarchical precipitation. Partial recrystallization produced heterogeneous grains spanning the micrometer to submicrometer scale, wh...
Yi-Jie Ban, Qing-Feng Wu, Shi-Woo Lee et al.· Materials Research Letters· 0 citations
Mg-Gd-Y-Zr alloys, with strong age-hardening and thermal stability, are ideal for lightweight load-bearing components, yet forming large complex parts is limited by high sensitivity to hot deformation parameters. This work investigates the hot deformation behavior and microstructure evolution of a Mg-9Gd-4Y-0.5Zr (wt.%...
Haitao Xie, Zhiwei Liang, D. Mei et al.· Metals· 0 citations
Conventional high-performance superalloys typically rely on substantial amounts of costly Ni and Co, raising material costs and restricting widespread industrial use. We adopt a Fe-rich FeNi-based multi-principal element alloy with the nominal composition Fe40Ni30Co10Cr10Al5Ti5 (at.%) as a model system. Via heavy cold...
Ze-Yu Xing, Xing-Hao Du, De-Zheng Liu et al.· Journal of Physics, Conferen...· 0 citations
Two heterostructured metal composites (HMCs) have been fabricated by hot isostatic pressing (HIPing); i) a mixture of two steel powders (SA508 and 316L) and ii) a mixture of two titanium powders (Ti-6Al-4V and Beta C). They are heterogeneous in terms of grain size, morphology and phase distribution. In the as-HIPed con...
E. Cantergiani, Z. Zhang, M. Preuss et al.· IOP Conference Series: Mater...· 0 citations