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Waves in complex mesoscopic materials

Waves in complex mesoscopic materials
复杂介观材料中的波
批准号:
9037-2006
负责人:
Page, John
金额:
$5.27万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2008
资助国家:
加拿大
项目状态:
已结题
起止时间:
2008-01-01 至 2009-12-31

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中文摘要
翻译
我的研究计划的目标是发现和理解波在复杂的介观材料的显着性能,并开发和使用新的超声波技术,基于我们的波散射的知识,探测它们的结构和动力学。介观材料的特征在于在中间或介观长度尺度上的内部结构,其控制它们的宏观性质和性能。它们的重要性在于操纵介观结构的巨大潜力以及它们之间的相互作用,以根据社会当前和未来的需求定制和优化材料。了解这些材料的波动物理学将有助于实现这一潜力,其中波在离开介质之前可能会被散射多次,并表现出许多迷人的波动现象。例子从强烈的共振散射引起的波速的惊人变化(当脉冲甚至可以出现如此快速地通过样品,其速度是负的)到完全抑制波的传播,当波变得局部化时,可能会发生在非常强烈的散射样品中。周期性结构中的波,被称为光的光子晶体和声音的声子晶体,也表现出不寻常的效果,如负折射和显着的聚焦特性。我们将使用我们实验室开发的创新超声技术来研究声波和弹性波(声音)的波动现象。由于我们的探测器的性质,声音与物质相互作用的独特方式,以及使用新的理论模型解释我们的数据的可能性,这些实验可能会导致在理解介观材料的新波性质方面取得重大进展,也导致新的超声波光谱用于材料表征和过程控制。我们打算研究的一些介观材料包括声子晶体、多孔材料、泡沫、颗粒和气泡悬浮液以及充气食品生物材料。
英文摘要
The goals of my research program are to discover and understand the remarkable properties of waves in complex mesoscopic materials, and to develop and use new ultrasonic techniques, based on our knowledge of wave scattering, to probe their structure and dynamics. Mesoscopic materials are characterized by internal structures, at intermediate or mesoscopic length scales, that govern their macroscopic properties and performance. Their importance lies in the enormous potential for manipulating mesostructures and the interactions between them to tailor and optimize materials for society's current and future needs. Realizing this potential will be facilitated by understanding the wave physics of these materials, in which the waves may be scattered many times before leaving the medium and exhibit many fascinating wave phenomena. Examples range from strikingly large variations in wave speeds caused by strong resonant scattering (when a pulse can even appear to travel so quickly through a sample that its velocity is negative) to the complete inhibition of wave propagation that may occur in very strongly scattering samples when waves become localized. Waves in periodic structures, known as photonic crystals for light and phononic crystals for sound, also exhibit unusual effects, such as negative refraction and remarkable focusing properties. We will use innovative ultrasonic techniques, developed in our laboratory, to study such wave phenomena for acoustic and elastic waves (sound). Because of the nature of our detectors, the unique ways in which sound interacts with matter, and the possibility of interpreting our data using new theoretical models, significant advances in understanding the novel wave properties of mesoscopic materials are likely to result from these experiments, leading also to new ultrasonic spectroscopies for materials characterization and process control. Some of the mesoscopic materials that we intend to study include phononic crystals, porous materials, foams, particulate and bubbly suspensions, and aerated food biomaterials.
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Mesoscopic Wave Physics of Heterogeneous Complex Materials
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  • 项目类别:
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  • 项目类别:
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  • 项目类别:
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  • 资助金额:
    $4.37万
  • 财政年份:
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  • 负责人:
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