Lehua Liu
Tsinghua University
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Publication
Featured researches published by Lehua Liu.
Scientific Reports | 2016
Lehua Liu; Chao Yang; L. M. Kang; Shengguan Qu; Xiaoquiang Li; W. W. Zhang; Weiping Chen; Yuanyuan Li; Peijie Li; Lai-Chang Zhang
It is well known that semi-solid forming could only obtain coarse-grained microstructure in a few alloy systems with a low melting point, such as aluminum and magnesium alloys. This work presents that semi-solid forming could also produce novel bimodal microstructure composed of nanostructured matrix and micro-sized (CoFe)Ti2 twins in a titanium alloy, Ti62Nb12.2Fe13.6Co6.4Al5.8. The semi-solid sintering induced by eutectic transformation to form a bimodal microstructure in Ti62Nb12.2Fe13.6Co6.4Al5.8 alloy is a fundamentally different approach from other known methods. The fabricated alloy exhibits high yield strength of 1790 MPa and plastic strain of 15.5%. The novel idea provides a new insight into obtaining nano-grain or bimodal microstructure in alloy systems with high melting point by semi-solid forming and into fabricating high-performance metallic alloys in structural applications.
Scientific Reports | 2018
Peng Chen; W. B. Liao; Lehua Liu; F Luo; Xiaoyu Wu; Peijie Li; Cao Yang; M Yan; Yunsheng Liu; Lai-Chang Zhang; Zhiyuan Liu
Nanocrystalline (NC) materials have fascinating physical and chemical properties, thereby they exhibit great prospects in academic and industrial fields. Highly efficient approaches for fabricating bulk NC materials have been pursued extensively over past decades. However, the instability of nanograin, which is sensitive to processing parameters (such as temperature and time), is always a challenging issue to be solved and remains to date. Herein, we report an ultrafast nanostructuring strategy, namely ultrasonic vibration consolidation (UVC). The strategy utilizes internal friction heat, generated from mutually rubbing between Ti-based metallic glass powders, to heat the glassy alloy rapidly through its supercooled liquid regime, and accelerated viscous flow bonds the powders together. Consequently, bulk NC-Ti alloy with grain size ranging from 10 to 70 nm and nearly full density is consolidated in 2 seconds. The novel consolidation approach proposed here offers a general and highly efficient pathway for manufacturing bulk nanomaterials.
Materials & Design | 2015
Lehua Liu; Chao Yang; F. Wang; Shengguan Qu; Xiaoqiang Li; W. W. Zhang; Yong Li; Lai-Chang Zhang
Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2016
Lehua Liu; Chao Yang; L. M. Kang; Y. Long; Zhiyu Xiao; Peijie Li; Lai-Chang Zhang
Scripta Materialia | 2017
Chao Yang; M. Zhu; X. Luo; Lehua Liu; W. W. Zhang; Y. Long; Z. Y. Xiao; Zhiqiang Fu; Lai-Chang Zhang; Enrique J. Lavernia
Journal of Materials Processing Technology | 2008
Yong Tang; Y. Chi; Zhenping Wan; X.K. Liu; J.Ch. Chen; X.X. Deng; Lehua Liu
Intermetallics | 2017
B.G. Liu; Lehua Liu; W.D. Xing; Renci Liu; R. Yang; P.A. Withey; Jing Zhu; Ronghai Yu
Journal of Non-crystalline Solids | 2012
Chenghao Yang; T. Wei; J. Zeng; Lehua Liu; Shengguan Qu; Yuan Yuan Li
Journal of Materials Processing Technology | 2016
Xixi Dong; Xiusong Huang; Lehua Liu; Liangju He; Peijie Li
Intermetallics | 2018
Yanan Sun; Peng Chen; Lehua Liu; Ming Yan; Xiaoyu Wu; Chunyan Yu; Zhiyuan Liu