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Featured researches published by Y. Ruan.


Scientific Reports | 2016

Microstructural and Mechanical-Property Manipulation through Rapid Dendrite Growth and Undercooling in an Fe-based Multinary Alloy.

Y. Ruan; Amirhossein Mohajerani; Ming Dao

Rapid dendrite growth in single- or dual-phase multicomponent alloys can be manipulated to improve the mechanical properties of such metallic materials. Rapid growth of (αFe) dendrites was realized in an undercooled Fe-5Ni-5Mo-5Ge-5Co (wt.%) multinary alloy using the glass fluxing method. The relationship between rapid dendrite growth and the micro-/nano-mechanical properties of the alloy was investigated by analyzing the grain refinement and microstructural evolution resulting from the rapid dendrite growth. It was found that (αFe) dendrites grow sluggishly within a low but wide undercooling range. Once the undercooling exceeds 250 K, the dendritic growth velocity increases steeply until reaching a plateau of 31.8 ms−1. The increase in the alloy Vickers microhardness with increasing dendritic growth velocity results from the hardening effects of increased grain/phase boundaries due to the grain refinement, the more homogeneous distribution of the second phase along the boundaries, and the more uniform distribution of solutes with increased contents inside the grain, as verified also by nanohardness maps. Once the dendritic growth velocity exceeds ~8 ms−1, the rate of Vickers microhardness increase slows down significantly with a further increase in dendritic growth velocity, owing to the microstructural transition of the (αFe) phase from a trunk-dendrite to an equiaxed-grain microstructure.


Chinese Physics Letters | 2016

Liquid State Undercoolability and Crystal Growth Kinetics of Ternary Ni-Cu-Sn Alloys

Na Yan; Liang Hu; Y. Ruan; W.L. Wang; BingBo Wei

The liquid state undercoolability and crystal growth kinetics of ternary Ni-5%Cu-5%Sn and Ni-10%Cu-10%Sn alloys are investigated by the glass fluxing method. In these two alloys, experimental maximum undercoolings of 304K (0.18TL) and 286 K (0.17TL) are achieved and the dendritic growth velocities attain 39.8 and 25.1 m/s, respectively. The transition of morphology from coarse dendrite into equiaxed structure occurs and the grain size of the α (Ni) phase decreases remarkably when the undercooling increases. Both the lattice constant and microhardness increase obviously with the enhancement of undercooling. The enrichment of Cu and Sn solute contents reduces the dendritic growth velocity, while enhances the lattice constant and microhardness of α (Ni) phase.


Intermetallics | 2012

Rapid dendrite growth subjected to multi-solute trapping in an undercooled Fe-based quaternary alloy

Y. Ruan; F.P. Dai


Applied Physics A | 2011

Formation mechanism of the primary faceted phase and complex eutectic structure within an undercooled Ag–Cu–Ge alloy

Y. Ruan; F. P. Dai; B. Wei


Acta Materialia | 2015

Two hardening mechanisms in high-level undercooled Al–Cu–Ge alloys

Y. Ruan; Xuyang Wang; Shou-Yi Chang


Intermetallics | 2012

Peri-eutectic solidification and complicated microstructural evolution of liquid undercooled Cu–Ag–Sb alloy

Y. Ruan; W.J. Xie


Journal of Alloys and Compounds | 2017

Thermal performance determination of binary Fe-Al alloys at elevated temperatures

Y. Ruan; N. Yan; H.Z. Zhu; Kai Zhou; BingBo Wei


Journal of Alloys and Compounds | 2013

Pseudobinary eutectics in Cu-Ag-Ge alloy droplets under containerless condition

Y. Ruan; Xuyang Wang; Xufei Lu


Acta Materialia | 2017

Structural evolution and micromechanical properties of ternary AlAgGe alloy solidified under microgravity condition

Y. Ruan; Q.Q. Wang; Shou-Yi Chang; B. Wei


Crystal Growth & Design | 2015

Comparative Effect of Rapid Dendrite Growth and Element Addition on Microhardness Enhancement of Fe-Based Alloys

Y. Ruan; Shou-Yi Chang; Ming Dao

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Bingqing Wei

Northwestern Polytechnical University

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BingBo Wei

Northwestern Polytechnical University

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Kai Zhou

Northwestern Polytechnical University

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Shou-Yi Chang

National Chung Hsing University

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Ming Dao

Massachusetts Institute of Technology

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B. Wei

Northwestern Polytechnical University

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F. P. Dai

Northwestern Polytechnical University

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H.P. Wang

Northwestern Polytechnical University

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H.Z. Zhu

Northwestern Polytechnical University

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Liang Hu

Northwestern Polytechnical University

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