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Mathematical study and finite element simulation of wave propagation in metamaterials

Mathematical study and finite element simulation of wave propagation in metamaterials
超材料中波传播的数学研究和有限元模拟
批准号:
1416742
负责人:
Jichun Li
金额:
$14.99万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-01 至 2018-08-31

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中文摘要
翻译
自2000年以来,超材料的研究引起了许多科学家和工程师的关注。超材料中的波传播是各个学科的兴趣,并且可能彻底改变高效天线,波导和雷达,纳米光刻和亚波长成像,近场控制和操纵(用于检测低水平的化学和生物制剂以及分子操纵),粒子检测和隐形斗篷(用于隐形技术)的设计。开发强大而有效的算法来建模超材料将有利于不同的领域,如电气工程,材料科学,光学,物理,纳米技术和生物医学技术。本计画的目标是透过数学模型与电脑模拟来研究波与异向介质相互作用的问题。数学建模在超材料的设计和应用中起着重要的作用。2006年10月,杜克大学的一组研究人员利用计算机模拟找到了一种制造超材料的方法,以构建二维“隐形斗篷”,使物体在某些频率下不可见。然而,工程师们提出的大多数超材料模型都没有得到很好的研究,缺乏坚实的数学分析和建模。超材料是有损耗和色散的,这导致控制方程比研究得很好的麦克斯韦?自由空间中的S方程。准确有效地近似超材料方程的解是具有挑战性的(请注意,所有未知数都是三维空间中的对象,并且随时间变化),需要额外的研究。该项目将开发数学上稳健,准确和有效的有限元方法,可用于模拟波与超材料的相互作用。在拟议的项目期间,PI将培养有兴趣从事计算科学和工程职业的研究生。
英文摘要
Since 2000, the study of metamaterials has attracted the attention of many scientists and engineers. Wave propagation in metamaterials is of interest in various disciplines and could potentially revolutionize design of efficient antennas, waveguides and radars, nanolithography and subwavelength imaging, near field control and manipulation (useful for detecting low levels of chemical and biological agents, and manipulation of molecules), particle detection, and invisibility cloaking (useful for stealth technology). Developing robust and efficient algorithms for modeling metamaterials will benefit diverse areas such as electrical engineering, materials science, optics, physics, nano-technology, and biomedical technology. The goal of this project is to study problems of wave interaction with metamaterials through mathematical modeling and computer simulations. Mathematical modeling plays an important role in the design and application of metamaterials. In October 2006 using computer simulations, a group of researchers at Duke University found a way to fabricate the metamaterials to build a 2-D "invisibility cloak" that makes an object invisible to certain frequencies. However, most metamaterial models proposed by engineers are not well studied and there is a lack of solid mathematical analysis and modeling. Metamaterials are lossy and dispersive, which leads to governing equations which are much more complicated than the well-studied Maxwell?s equations in free space. Approximating solutions of the metamaterial equations accurately and efficiently is challenging (note that all unknowns are objects in three dimensional spaces and vary in time) and requires additional research. This project will develop mathematically robust, accurate, and efficient, finite element methods that can be be used for simulating wave interactions with metamaterials. During the proposed project the PI will train graduate students interested in pursuing careers in computational sciences and engineering.
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Robust and Efficient Numerical Methods for Electromagnetic Wave Propagation in Complex Media
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