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Bubbles, Drops, and Vortices in Cryogenic Liquids

Bubbles, Drops, and Vortices in Cryogenic Liquids
低温液体中的气泡、液滴和涡流
批准号:
0131111
负责人:
Gary Williams
金额:
$37.5万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-01-01 至 2005-12-31

项目摘要

项目成果

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中文摘要
翻译
这个凝聚态物理项目研究了在水,乙醇和液氩等液体中产生的瞬态激光产生的气泡的特性。 当气泡破裂时,内部的气体被压缩和加热,在最小半径破裂点产生快速的发光脉冲。 将测量发光的光谱,对塌陷点附近的气泡动力学进行高分辨率研究,应能详细了解发光机制的性质及其与声致发光的关系。 第二个感兴趣的领域是超流雾产生的超声波换能器下的液氦表面。 这些新的气溶胶将被研究,以检查是否有显着差异,从正常的雾。 将进行雾中的声衰减测量,以检查液滴中超流第二声模式的耦合。 感兴趣的第三个领域是超流相变的亚单层氦-4膜吸附在一个新的介孔二氧化硅陶瓷基板称为MCM-41。 该基底具有长的均匀的圆柱形孔,并且可以制造具有18至100埃的孔径的材料。 这将允许理论的超流体过渡涉及量子化涡对进行测试,并应允许测量的涡核尺寸在这些亚单层超流体。 这项研究将有助于博士学位。培养多名研究生。 他们将学习在许多不同的科学和技术领域有用的广泛技能,包括低温技术,声学方法,以及激光和光谱学的应用。这个凝聚态物理项目包括三个不同的活动。 在一种方法中,使用聚焦到一点的脉冲激光在水、乙醇和液氩等液体中产生气泡。 当气泡破裂时,里面的气体被压缩和加热,产生快速的光脉冲。 将测量光的光谱,并研究气泡的运动。 这将允许理解光发射的性质,以及它如何与称为声致发光的类似现象相关。 在第二个项目中,将研究液氦上方蒸气中产生的雾的性质。 由于组成雾的液滴是超流体,这个系统不同于普通的雾。 声音在雾中的衰减将被测量,以检查是否有任何耦合到液滴中的超流波。在最后一个项目中,将研究非常薄的氦膜(厚度小于一个原子层)的超流体性质。 这些薄膜被吸附在一种新型的基底上,这种基底是一种二氧化硅陶瓷,它具有长的圆柱形孔,孔的直径非常细,只有几十个原子。 这项工作将测试陶瓷中的超流体特性的理论,并允许测量超流体的基本参数。 这项研究将有助于博士学位。培养多名研究生。 他们将学习在许多不同的科学和技术领域有用的广泛技能,包括低温学,声学以及激光和光学的应用。
英文摘要
This condensed matter physics project investigates the properties of transient, laser-produced bubbles that are created in liquids such as water, ethanol, and liquid argon. As the bubble collapses, the gas inside is compressed and heated, giving rise to emission of a fast pulse of luminescence at the minimum-radius collapse point. The spectrum of the luminescence will be measured, and high-resolution studies of the bubble dynamics near the collapse point should lead to a detailed understanding of the nature of the light-emission mechanism and its relation to sonoluminescence. A second area of interest is superfluid fog generated by an ultrasonic transducer under the surface of liquid helium. These novel aerosols will be investigated to examine if there are significant differences from normal fogs. Sound attenuation measurements in the fog will be undertaken to examine the coupling to the superfluid second-sound mode in the droplets. The third area of interest is the superfluid phase transition of submonolayer helium-4 films adsorbed on a new mesoporous silica ceramic substrate known as MCM-41. This substrate has long uniform cylindrical pores, and materials can be fabricated with pore diameters between 18 and 100 Angstroms. This will allow theories of the superfluid transition involving quantized vortex pairs to be be tested, and should allow a measurement of the vortex core size in these submonolayer superfluids. This research will contribute to the Ph.D. training of several graduate students. They will learn a broad range of skills useful in many different fields of science and technology, including cryogenic techniques, acoustics methods, and applications of lasers and optical spectroscopy.This condensed matter physics project involves three different activities. In one, a pulsed laser focused to a point is used to create bubbles in liquids such as water, ethanol, and liquid argon. As the bubble collapses, the gas inside is compressed and heated, giving rise to a fast pulse of light. The spectrum of the light will be measured, and the bubble motion will be studied. This will allow an understanding of the nature of the light emission, and how it is related to a similar phenomenon known as sonoluminescence. In the second project, the properties of fogs generated in the vapor above liquid helium will be investigated. Since the droplets making up the fog are superfluid, this system is different from ordinary fogs. The attenuation of sound in the fog will be measured, to examine if there is any coupling to the superfluid waves in the droplets. In the final project superfluid properties of very thin helium films (less than an atomic layer in thickness) will be studied. These films are adsorbed on a new type of substrate, a silica ceramic, which has long cylindrical pores, with very fine pore diameters that are only tens of atoms in diameter. The work will test theories of the superfluid properties in the ceramic, and will allow fundamental parameters of the superfluid to be measured. This research will contribute to the Ph.D. training of several graduate students. They will learn a broad range of skills useful in many different fields of science and technology, including cryogenics, acoustics, and applications of lasers and optics.
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Vortices and Bubbles in Cryogenic Liquids
Vortices and Bubbles in Cryogenic Liquids
  • 批准号:
    0548521
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $39.5万
  • 财政年份:
    2006
  • 负责人:
    Gary Williams
  • 依托单位:
Conference on Topological Defects and the Non-Equilibrium Dynamics of Symmetry-Breaking Phase Transitions, February 16-26, 1999; Les Houches, France
Bubbles, Ions and Vortices in Cryogenic Fluids
海外基金