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[21] L. Song, X.J. Xu. L. You, J.P. Lin. Journal of Alloys & Compounds, 2015, 618:305-310. B19 phase in Ti–45Al–8.5Nb–0.2W–0.2B–0.02Y alloy..
[22] K.M. Pan, W. Liu, L.Q. Zhang, J.P. Lin. Materials Science & Engineering A, 2015, 623(623):124-132. Deformation behavior of Mo5SiB2, at elevated temperatures..
[23] L. Song, X.J. Xu, C. Peng, J.P. Lin. Philosophical Magazine Letters, 2015, 95(2):85-91. Deformation behaviour and 6H-LPSO structure formation at nanoindentation in lamellar high Nb containing TiAl alloy..
[24] H. Li, Y.F. Liang, W. Yang, J.P. Lin. Materials Science & Engineering A, 2015, 628:262-268. Disordering induced work softening of Fe–6.5wt%Si alloy during warm deformation..
[25] Z.Y. Zhang, Y.L. Wang, X.J. Xu, J.P. Lin. Advanced Engineering Materials, 2015, 17(10):1414–1419. Synthesis and characterization of TiAl-based nanocomposites by a melt electromagnetic stirring process. ω0 phase precipitation in annealed high Nb containing TiAl alloys..
[26] Y.S. Wang, G.J. Hao, R. Ma, J.P. Lin. Intermetallics, 2015, 60:66-71. Quasi-static and dynamic compression behaviors of metallic glass matrix composites..
[27] L. Song, X.J. Xu, L. You, J.P. Lin. Acta Materialia, 2015, 91:330-339. Ordered α2 to ω phase transformations in high Nb-containing TiAl alloys..
[28] L. Yang, W.B. Kan, Y.W. Zhang, J.P. Lin. 金属学报, 2015, 51(7):859-865. Effect of Si addition on the microstructure and room temperature tensile properties of high Nb-TiAl alloy.
[29] F. Wang, Y.F. Liang, S.L. Shang, J.P. Lin. Materials Science and Technology, 2015, 31(11):1388-1391. Nb–Al diffusion reaction in high Nb containing TiAl porous alloys.
[30] L.W. Zhang, J.P. Lin, J. He, J.P. Lin. Intermetallics, 2015, 63:67-72. Influence of thermal stabilization treatment on the subsequent microstructure development during directional solidification of a Ti–46Al–5Nb alloy.
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