课题基金 / 基金详情

Equilibrium and Nonequilibrium Phenomena in Condensed Matter

Equilibrium and Nonequilibrium Phenomena in Condensed Matter
凝聚态物质中的平衡和非平衡现象
批准号:
9970690
负责人:
Nigel Goldenfeld
金额:
$56.4万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-06-01 至 2003-05-31

项目摘要

项目成果

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中文摘要
翻译
9970690 goldenfeld这是一个对与材料研究相关的各种系统进行理论研究的奖项。该研究涉及远平衡系统、生物材料、相变过程中的模式形成过程以及高温超导等方面。此外,还特别强调了分析重整化群方法和新型模拟工具的发展,以弥合微观物理和宏观行为之间的差距。该项目推进了当前对材料加工和复杂材料行为领域的理解,该方法广泛适用于具有复杂长度和时间尺度相互作用的系统。通过在材料科学,理论物理和应用数学的交叉点工作,与本研究相关的学生和博士后在重整化群论的应用和新型计算算法的开发方面接受了独特的培训。这是一个对与材料研究相关的各种系统进行理论研究的奖项。该研究涉及远平衡系统、生物材料、相变过程中的模式形成过程以及高温超导等方面。此外,还特别强调了分析重整化群方法和新型模拟工具的发展,以弥合微观物理和宏观行为之间的差距。该项目推进了当前对材料加工和复杂材料行为领域的理解,该方法广泛适用于具有复杂长度和时间尺度相互作用的系统。通过在材料科学,理论物理和应用数学的交叉点工作,与本研究相关的学生和博士后在重整化群论的应用和新型计算算法的发展方面获得了独特的培训
英文摘要
9970690GoldenfeldThis is an award for a theoretical investigation of a wide variety of systems of relevance to materials research. The research impacts systems far from equilibrium, biological materials, pattern formation processes during phase transitions, and aspects of high temperature superconductivity. In addition, there is special emphasis on the development of analytic renormalization group methods and novel simulation tools to bridge the gap between microscopic physics and macroscopic behavior. This project advances current understanding in the areas of materials processing and the behavior of complicated materials, and the methodology is broadly applicable to systems with a complex interplay of length- and time-scales. By working at the intersection of materials science, theoretical physics and applied mathematics, students and postdocs associated with this research receive a unique training in the applications of renormalization group theory and the development of novel computational algorithms.This is an award for a theoretical investigation of a wide variety of systems of relevance to materials research. The research impacts systems far from equilibrium, biological materials, pattern formation processes during phase transitions, and aspects of high temperature superconductivity. In addition, there is special emphasis on the development of analytic renormalization group methods and novel simulation tools to bridge the gap between microscopic physics and macroscopic behavior. This project advances current understanding in the areas of materials processing and the behavior of complicated materials, and the methodology is broadly applicable to systems with a complex interplay of length- and time-scales. By working at the intersection of materials science, theoretical physics and applied mathematics, students and postdocs associated with this research receive a unique training in the applications of renormalization group theory and the development of novel computational algorithms.***
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