科研成果 |
<p> [1] L.C. Zhang, J. Han, Y. Xiang, and D. J. Srolovitz, Equation of motion for a grain boundary, Physical Review Letters, 119, 246101, 2017. <br>[2] L.C. Zhang, Y.J. Gu, and Y. Xiang, Energy of low angle grain boundaries based on continuum dislocation structure, Acta Materialia, 126, 11-24, 2017. <br>[3] L.C. Zhang and Y. Xiang, Motion of grain boundaries incorporating dislocation structure, Journal of the Mechanics and Physics of Solids, 117, 157-178, 2018. <br>[4] L.C. Zhang, J. Han, Y. Xiang, and D. J. Srolovitz, The effect of randomness on the strength of high-entropy alloys, Acta Materialia, 166, 424-434, 2019. <br>[5] C.Z. Wei, L.C. Zhang, J. Han, D.J. Srolovitz and Y. Xiang, Grain boundary triple junction dynamics: a continuum disconnection model, SIAM Journal on Applied Mathematics, 80, 1101-1122, 2020. <br>[6] L.C. Zhang and Y. Xiang, A new formulation of coupling and sliding motions of grain boundaries based on dislocation structure, SIAM Journal on Applied Mathematics, 80(6), 2365–2387, 2020. <br>[7] T.P. Jiang, Y. Xiang and L.C. Zhang, Stochastic Peierls-Nabarro model for dislocations in high entropy alloys, SIAM Journal on Applied Mathematics, 80(6), 2496-2517, 2020. <br>[8] L.C. Zhang, X.X. Qin and Y. Xiang, Continuum model for dislocation structures of semicoherent interfaces, Computational Materials Science, 190, 110277, 2021. <br>[9] L.C. Zhang, J. Han, Y. Xiang, and D. J. Srolovitz, Equation of Motion for Grain Boundaries in Polycrystals, npj Computational Materials, 7, 64, 2021. <br>[10] X.X. Qin, Y.J.Gu, L.C. Zhang and Y. Xiang, Continuum model and numerical method for dislocation structure and energy of grain boundaries, Multiscale Modeling and Simulation, 20(1), 323-348, 2022.<br><br></p> |
科研项目 |
国家自然科学基金青年基金,2023年1月-2025年12月,30万,晶体材料中异质界面的结构、能量及动力学的连续模型和数值模拟 (主持);<br>深圳市孔雀计划高层次人才科研经费,2023年1月-2025年12月,200万,晶体材料中缺陷的数学建模和数值模拟(主持)。<br> |