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Hydrodynamic Crystals: Structural Evolution in Confined Suspension Flows

Hydrodynamic Crystals: Structural Evolution in Confined Suspension Flows
流体动力学晶体:受限悬浮液流中的结构演化
批准号:
1059745
负责人:
Jerzy Blawzdziewicz
金额:
$27.68万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-01 至 2014-10-31

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中文摘要
翻译
0931504 Blawzdziewicz理解微限制悬浮液流中的集体流体动力学现象在从细菌菌落动力学到微流体学的各种研究领域中至关重要。然而,这些现象还远未被理解。为了阐明集体流体动力学的颗粒系统,我们建议调查的演变强烈限制有序悬浮液在平行壁通道。 我们将研究两种系统:粒子阵列仅通过流体动力相互作用,和流动驱动的胶体晶体中的粒子排序源于潜在的和流体动力。 我们对流动驱动有序粒子阵列的初步研究表明,这些系统表现出波的传播、粒子晶格的突然重排、有序无序转变和指状不稳定性。使用数值,实验和理论方法,我们将研究产生这种丰富的动力学行为的水动力机制。 从我们的研究中获得的见解将为颗粒流的基本问题提供新的见解,将适用于其他有序耗散系统,并且还将为实际应用提出新的策略(例如,多点微流体装置和颗粒涂覆流)。 建议的数值模拟将使用我们的新的斯托克斯动力学算法,是准确和高效的。实验部分将包括使用全息光镊组装规则的2D颗粒阵列,并使用共聚焦显微镜观察悬浮液微结构的变化。我们的理论研究将涉及傅立叶分析的位移波在规则的颗粒阵列和有效介质的方法来描述的演变和不稳定性的arrays.Intellectual优点:我们提出的研究的智力价值是基础和实用。我们将研究蠕动颗粒流中的一种全新的流体动力学现象。我们的研究结果将与非线性物理(包括复杂流体的动力学,尘埃等离子体的结构演化,以及超导体中磁通涡旋的集体运动)相关。我们的研究结果也将对工程应用产生重大影响,特别是在微流体领域。新兴的多点微流体应用包括可调光学器件、高通量芯片实验室分析和微结构材料制造。了解在强约束条件下控制悬挂结构的流体动力学机制是此类应用的关键,我们的研究将揭示此类机制。更广泛的影响:本项目将为研究生、本科生和高中生提供教育和研究机会。研究生和本科生将在新英格兰复杂流体研讨会和国家科学会议上展示他们的工作。来自代表性不足群体的学生将通过耶鲁大学的STARS(科学,技术和研究学者)计划招募。PI将通过担任纽黑文科学博览会的评委来支持大纽黑文的K-12教育。 我们的项目的跨学科意义在于获得将用于图案形成物理学、物理化学和微流体技术的结果。从我们的研究见解也将适用于生物科学的调查涉及集体流体动力学效应,例如,在细菌运动的研究中。粒子跟踪软件和一些斯托克斯动力学代码将通过免费网站传播。 这项研究还涉及国际合作。
英文摘要
0931504BlawzdziewiczUnderstanding of collective hydrodynamic phenomena in microconfined suspension flows is crucial in diverse research fields that range from dynamics of bacterial colonies to microfluidics. Such phenomena, however, are far from being understood. To elucidate collective hydrodynamics of particulate systems we propose to investigate the evolution of strongly confined ordered suspensions in parallel wall channels. We will study two kinds of systems: particle arrays interacting only via hydrodynamic forces, and flow driven colloidal crystals where particle ordering stems from potential and hydrodynamic forces. Our preliminary studies of flow driven ordered particle arrays reveal that these systems show wave propagation, sudden rearrangements of particle lattice, order disorder transitions, and fingering instabilities. Using numerical, experimental and theoretical methods, we will investigate hydrodynamic mechanisms that produce this rich dynamical behavior. Insights from our studies will shed new light on basic questions of particulate flows, will be applicable to other ordered dissipative systems, and will also suggest new strategies for practical applications (e.g., multidrop microfluidic devices and particulate coating flows). The proposed numerical simulations will be performed using our novel Stokesian dynamics algorithm that is accurate and highly efficient. The experimental part will consist in assembling regular 2D particle arrays using holographic optical tweezers, and observing changes in suspension microstructure using confocal microscopy. Our theoretical investigations will involve Fourier analysis of displacement waves in regular particle arrays and an effective medium approach to describe the evolution and instabilities of the arrays.Intellectual Merit: The intellectual value of our proposed research is both fundamental and practical. We will study an entirely new class of hydrodynamic phenomena in creeping particulate flows. Our results will be relevant to nonlinear physics (including dynamics of complex fluids, structural evolution in dusty plasma, and collective motion of flux vortices in superconductors). Our results will also have significant impact on engineering applications, especially in microfluidics. Emerging multidrop microfluidic applications include tunable optical devices, high throughput lab-on-chip assays, and manufacturing microstructured materials. Understanding hydrodynamic mechanisms governing suspension structure under strong confinement conditions is key in such applications, and our proposed research will uncover such mechanisms.Broader Impact: This project will provide educational and research opportunities for graduate, undergraduate and high school students. Graduate and undergraduate students will present their work at New England Complex Fluids Workshops and at national scientific meetings. Students from under represented groups will be recruited through the STARS (Science, Technology and Research Scholars) program at Yale. The PIs will support K-12 education in Greater New Haven by serving as judges in New Haven science fairs. Interdisciplinary significance of our project consists in obtaining results that will be used in physics of pattern formation, physical chemistry, and microfluidic technology. Insights from our research will also be applicable to biological sciences in investigations involving collective hydrodynamic effects, e.g., in studies of bacterial motion. Software for particle tracking and some of the Stokesian dynamics codes will be disseminated through free websites. This research also involves international collaboration.
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Collaborative research: Hydrodynamic mechanisms for flow-induced self-assembly in confined complex fluids
  • 批准号:
    1603627
  • 项目类别:
    Standard Grant
  • 资助金额:
    $21.8万
  • 财政年份:
    2016
  • 负责人:
    Jerzy Blawzdziewicz
  • 依托单位:
Hydrodynamic Crystals: Structural Evolution in Confined Suspension Flows
  • 批准号:
    0931504
  • 项目类别:
    Standard Grant
  • 资助金额:
    $0.0万
  • 财政年份:
    2009
  • 负责人:
    Jerzy Blawzdziewicz
  • 依托单位:
CAREER: Dynamics of Confined Colloidal Suspensions
  • 批准号:
    0348175
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $0.0万
  • 财政年份:
    2004
  • 负责人:
    Jerzy Blawzdziewicz
  • 依托单位:
Particle Dynamics in Asymmetric Colloidal Mixtures
  • 批准号:
    0201131
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $35.0万
  • 财政年份:
    2002
  • 负责人:
    Jerzy Blawzdziewicz
  • 依托单位:
海外基金