[1] J. Chen, Y. Liu, C. Liu*, X. Zhou, H. Li, Study on microstructural evolution and constitutive modeling for hot deformation behavior of a low-carbon RAFM steel, Journal of Materials Research, 32 (2017) 1376-1385.
[2] J. Chen, Y. Liu, C. Liu*, B. Yan, H. Li, Effects of tantalum on austenitic transformation kinetics of RAFM steel, Journal of Iron and Steel Research, International, 24 (2017) 705-710.
[3] Y. Li, Y. Liu*, C. Liu*, C. Li, Y. Huang, H. Li, W. Li, Carbide dissolution and precipitation in cold-rolled type 347H austenitic heat-resistant steel, Materials Letters, 189 (2017) 70-73.
[4] B. Yan, Y. Liu, Z. Wang, C. Liu*, Y. Si, H. Li, J. Yu, The Effect of Precipitate Evolution on Austenite Grain Growth in RAFM Steel, Materials, 10 (2017) 1017.
[5] C. Liu, Q. Zhao, Y. Liu*, C. Wei, H. Li, Microstructural evolution of high Cr ferrite/martensite steel after deformation in metastable austenite zone, Fusion Engineering and Design, (2017). In press
[6] C. Liu, L. Shi, Y. Liu*, C. Li, H. Li, Q. Guo, Acicular ferrite formation during isothermal holding in HSLA steel, Journal of Materials Science, 51 (2016) 3555-3563.
[7] C. Liu, Y. Shao, J. Chen, Y. Liu*, Non-instantaneous growth characteristics of martensitic transformation in high Cr ferritic creep-resistant steel, Applied Physics A, 122 (2016) 715-721.
[8] J. Chen, C. Liu*, Y. Liu, B. Yan, H. Li, Effects of tantalum content on the microstructure and mechanical properties of low-carbon RAFM steel, Journal of Nuclear Materials, 479 (2016) 295-301.
[9] C. Liu, Y. Liu*, B. Ning, Development of the modified high Cr ferritic heat-resistant steel, Materials Research Innovations, 19 (2015) S8-813-S818-818.
[10] Y. Liu, C. Liu, F. Sommer*, E.J. Mittemeijer, Martensite formation kinetics of substitutional Fe–0.7at.%Al alloy under uniaxial compressive stress, Acta Materialia, 98 (2015) 164-174.