Simultaneously increasing the strength and ductility of a Ni-Co-based superalloy via dual-heterostructure design

IF 6.1 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
J. Wang , W. Dai , H.R. Lu , W.L. Su , Q. Cheng , X.C. Lu , B. Gan , H.J. Yang , X.L. Ma , Y.T. Zhu , C.X. Huang
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引用次数: 0

Abstract

Ni-Co-based superalloys are recognized as promising materials for the turbine discs of next-generation aero-engines, but the internal strength-ductility trade-off limits their applications. Here, we present a dual heterostructured Ni-Co-based superalloy characterized by harmonic grain heterostructure comprising fine grains and ultrafine grains, which is accompanied by bimodal-sized γ′ precipitates. The superalloy exhibits an outstanding strength-ductility synergy, with high yield strength (∼1.5 GPa) and ultimate tensile strength (∼1.8 GPa), concurrent with high uniform elongation (∼21 %), which is much higher than its solution and aging counterparts and superior to most superalloys. The excellent tensile properties primarily originate from its distinctive heterostructure and work hardening mechanism. The inhomogeneous plastic deformation leads to a high density of geometrically necessary dislocations pile-up near the hetero-zone boundaries, yielding so-called hetero-deformation-induced hardening. Besides, the bimodal-sized γ′ precipitates effectively impede dislocations slip to improve work hardening capacity. Additionally, stacking faults, Lomer-Cottrell locks and twins also contributed to the strain hardening. These findings suggest that the dual heterostructure design strategy is promising to improve the strength-ductility synergy in Ni-Co-based alloys.
通过双异质结构设计同时提高镍钴基超合金的强度和延展性
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来源期刊
Materials Science and Engineering: A
Materials Science and Engineering: A 工程技术-材料科学:综合
CiteScore
11.50
自引率
15.60%
发文量
1811
审稿时长
31 days
期刊介绍: Materials Science and Engineering A provides an international medium for the publication of theoretical and experimental studies related to the load-bearing capacity of materials as influenced by their basic properties, processing history, microstructure and operating environment. Appropriate submissions to Materials Science and Engineering A should include scientific and/or engineering factors which affect the microstructure - strength relationships of materials and report the changes to mechanical behavior.
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