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New opportunities for sensing via continuous measurement
Topological and out-of-equilibrium QFTs, and quantum computing
【低维量子物理国家重点实验室杰出学者讲座】Superconductivity and magnetism: tw...
【低维量子物理国家重点实验室杰出学者讲座】Topological and correlated phases i...
报告题目:
材料院《材料科学论坛》:Application of Meso-scale Phase-field Methods in Predicting Microstructure and Property Evolution
 报告人:
Shenyang Hu, PhD
Engineering Mechanics and Structural Materials Group, 
Radiological & Nuclear Science & Technology Division
Pacific Northwest National Laboratory
报告时间:
2013-05-28 14:00
报告地点:
清华大学材料院学术报告厅(逸夫技术科学楼2-321)
主办单位:
材料院《材料科学论坛》 联系方式:徐贲老师 欢迎广大师生踊跃参加
  简介:

 
讲座摘要:

•        实验室与个人简介
•        相场方法在核材料服役行为预测上的应用
•        相场方法在金属变形行为研究上的应用

演讲者简历

Education and Training
2005-2007   Director’s Postdoctoral Fellow, Los Alamos National Laboratory
2001-2004   Ph. D. in Computational Materials Science, Pennsylvania State University
1988        M. Sc. in Solid State Physics, Lanzhou University, China
1984        B. Sc.  in Solid Mechanics, Lanzhou University, China

Research and Professional Experience
9/2007-Present    Scientist, Pacific Northwest National Laboratory, Richland, WA, USA.
2/1999-2/2001     Research Scientist, Department of Materials Science and Engineering, The Pennsylvania State University, University Park, PA, USA.
3/1998-2/1999     Research  Scientist, Dept. Appl. Phys. & Appl. Mech, Institute of Industrial Science, University of Tokyo, Tokyo, Japan.
6/1996-2/1998     Research Scientist, Staatliche Material Prufungsanstalt, University Stuttgart, Stuttgart, Germany
1/1995-1/1998     Associate Professor,  Department of Material Science, Lanzhou University, P. R. China

Research Interests:
The main researches focus on developing multi-scale computational models to understand the mechanisms underlying different materials processes, and predict the performance of materials and the relationships between properties and microstructures in alloys, multiphase ferroelectric and ferromagnetic materials, self-assembled nanostructures, battery materials, and nuclear materials. Development of atomistic potentials, Ginzburg Landau free energy and cluster expansion with inputs from experimental data and first-principles calculations. Multi-scale simulations of phase stability, thermodynamic and kinetic properties, microstructure evolutions, and material performance. Fundamental understanding of signal physics in non-destructive measurements for monitoring microstructure and property evolution in irradiated materials. Materials design by integrating atomistic simulations, computational thermodynamics, phase-field modeling and continuous mechanical calculations.
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