| Literature DB >> 34672735 |
Tianlong Zhang1,2, Zhenghua Huang3, Tao Yang1, Haojie Kong1, Junhua Luan1, Anding Wang1, Dong Wang2, Way Kuo1, Yunzhi Wang4, Chain-Tsuan Liu1.
Abstract
Additive manufacturing is a revolutionary technology that offers a different pathway for material processing and design. However, innovations in either new materials or new processing technologies can seldom be successful without a synergistic combination. We demonstrate an in situ design approach to make alloys spatially modulated in concentration by using laser-powder bed fusion. We show that the partial homogenization of two dissimilar alloy melts—Ti-6Al-4V and a small amount of 316L stainless steel—allows us to produce micrometer-scale concentration modulations of the elements that are contained in 316L in the Ti-6Al-4V matrix. The corresponding phase stability modulation creates a fine scale–modulated β + α′ dual-phase microstructure that exhibits a progressive transformation-induced plasticity effect, which leads to a high tensile strength of ~1.3 gigapascals with a uniform elongation of ~9% and an excellent work-hardening capacity of >300 megapascals. This approach creates a pathway for concentration-modulated heterogeneous alloy design for structural and functional applications.Entities:
Year: 2021 PMID: 34672735 DOI: 10.1126/science.abj3770
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728