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Featured researches published by Zhenggang Wu.


Nature Communications | 2016

Exceptional damage-tolerance of a medium-entropy alloy CrCoNi at cryogenic temperatures

Bernd Gludovatz; Anton Hohenwarter; Keli V.S. Thurston; Hongbin Bei; Zhenggang Wu; E.P. George; Robert O. Ritchie

High-entropy alloys are an intriguing new class of metallic materials that derive their properties from being multi-element systems that can crystallize as a single phase, despite containing high concentrations of five or more elements with different crystal structures. Here we examine an equiatomic medium-entropy alloy containing only three elements, CrCoNi, as a single-phase face-centred cubic solid solution, which displays strength-toughness properties that exceed those of all high-entropy alloys and most multi-phase alloys. At room temperature, the alloy shows tensile strengths of almost 1 GPa, failure strains of ∼70% and KJIc fracture-toughness values above 200 MPa  m1/2; at cryogenic temperatures strength, ductility and toughness of the CrCoNi alloy improve to strength levels above 1.3 GPa, failure strains up to 90% and KJIc values of 275 MPa  m1/2. Such properties appear to result from continuous steady strain hardening, which acts to suppress plastic instability, resulting from pronounced dislocation activity and deformation-induced nano-twinning.


Science and Technology of Welding and Joining | 2018

Microstructures and mechanical properties of a welded CoCrFeMnNi high-entropy alloy

Zhenggang Wu; S. A. David; Donovan N. Leonard; Zhili Feng; Hongbin Bei

ABSTRACT The response of the CoCrFeMnNi high-entropy alloy to weld thermal cycles was investigated to determine its applicability as an engineering structural material. Two processes were used: high-energy-density, low-heat-input electron beam (EB) welding and low-energy-density, high-heat-input gas tungsten arc (GTA) welding. Weldability was determined through comprehensive microstructural and mechanical property characterisation of the welds. The welds did not develop solidification cracking or heat-affected zone cracks. The microstructures in weld fusion zones are similar to that in the as-cast materials, consisting of large columnar grains with dendrite. The dendrite arm spacing and the extent of elemental segregation were less in the welds than in the cast ingot, and also were less pronounced in the EB weld than in the GTA weld. Compositional microsegregation between dendritic cores and interdendritic regions of the welds was insignificant. Both welds exhibited slightly higher yield strengths than the base metal. The EB weld possessed comparable tensile strength and ductility to that of the base metal. In comparison, the GTA weld maintained ∼80% of the base metal’s tensile strength and 50% of the ductility.


Acta Materialia | 2014

Temperature dependence of the mechanical properties of equiatomic solid solution alloys with face-centered cubic crystal structures

Zhenggang Wu; Hongbin Bei; G.M. Pharr; E.P. George


Intermetallics | 2014

Recovery, recrystallization, grain growth and phase stability of a family of FCC-structured multi-component equiatomic solid solution alloys

Zhenggang Wu; Hongbin Bei; F. Otto; G.M. Pharr; E.P. George


Journal of Alloys and Compounds | 2015

Nano-twin mediated plasticity in carbon-containing FeNiCoCrMn high entropy alloys

Zhenggang Wu; Chad M. Parish; Hongbin Bei


Acta Materialia | 2016

Thermal activation mechanisms and Labusch-type strengthening analysis for a family of high-entropy and equiatomic solid-solution alloys

Zhenggang Wu; Yanfei Gao; Hongbin Bei


Scripta Materialia | 2015

Single crystal plastic behavior of a single-phase, face-center-cubic-structured, equiatomic FeNiCrCo alloy

Zhenggang Wu; Yanfei Gao; Hongbin Bei


Scripta Materialia | 2016

Weldability of a high entropy CrMnFeCoNi alloy

Zhenggang Wu; S. A. David; Zhili Feng; Hongbin Bei


Materials & Design | 2017

Twinning-mediated work hardening and texture evolution in CrCoFeMnNi high entropy alloys at cryogenic temperature

T. K. Liu; Zhenggang Wu; Alexandru Dan Stoica; Q. Xie; Wei Wu; Yanfei Gao; Hongbin Bei; Ke An


Current Opinion in Solid State & Materials Science | 2017

Phase stability, physical properties and strengthening mechanisms of concentrated solid solution alloys

Zhenggang Wu; M.C. Troparevsky; Yanfei Gao; J.R. Morris; G. M. Stocks; Hongbin Bei

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Hongbin Bei

Oak Ridge National Laboratory

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Yanfei Gao

Oak Ridge National Laboratory

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E.P. George

Ruhr University Bochum

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G.M. Pharr

University of Tennessee

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S. A. David

Oak Ridge National Laboratory

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Zhili Feng

Oak Ridge National Laboratory

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Alexandru Dan Stoica

Oak Ridge National Laboratory

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Bernd Gludovatz

Lawrence Berkeley National Laboratory

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Chad M. Parish

Oak Ridge National Laboratory

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Donovan N. Leonard

Oak Ridge National Laboratory

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