Collaborative Research: Dust Entrainment Processes by Convective Vortices and Localized Turbulent Structures: Experimental and Numerical Study
Collaborative Research: Dust Entrainment Processes by Convective Vortices and Localized Turbulent Structures: Experimental and Numerical Study
批准号:
2207115
负责人:
Yulia Peet
金额:
$33.16万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-07-01 至 2025-06-30
中文摘要
大气中的尘埃在调节天气、空气质量和气候方面起着重要作用。大多数关于尘埃从地表飘移的研究都集中在稳定的风力条件下。然而,还有其他类型的扬尘机制的明显例子,如尘卷风,发生在风流更复杂的情况下。这个研究项目将结合高分辨率数值模拟和实验室实验来研究尘卷和对流涡旋,以及它们如何从地表夹带尘埃。该项目的长期影响将是改善对气候有重大影响的沙尘的预测。研究小组还将开展重要的教育和推广工作,包括研究生和本科生,向K-12学生推广,以及包括国际合作伙伴在内的虚拟小型研讨会。该项目计划通过招募代表性不足的本科生的具体项目来增强多样性。该项目的主要目标是确定和描述在非平衡条件下触发尘埃夹带的基本机制,这些条件偏离了假设空间均匀性和统计平稳性的完全发展的边界层流动的规范、充分研究的情景。非平衡条件的一个例子是尘暴,这是一个可以举起大量灰尘的旋涡结构。研究小组将通过实验室实验和数值模拟相结合,确定个别扬尘过程在由尘卷和对流涡旋夹带沉积物的物理过程中的作用。实验装置由涡发生器和三维粒子成像测速系统(PIV)和粒子跟踪测速系统(3D-PTV)组成。该项目的计算方面将使用开源的谱元方法(SEM)代码Nek5000,该代码由其中一名研究人员共同开发。实验室和数值技术将用于回答下列问题:载流湍流的平均和波动特性的水平空间不均匀性对非正则涡旋流中尘埃夹带机制的影响是什么?空气动力、压力梯度、内聚力、重力和电力等竞争力在粉尘夹带过程中的作用是什么?粒径、斯托克斯数和粒径分布方式的作用是什么?对于不同尺寸的惯性粒子,主要机制是不同的还是相似的?在多相流湍流的表示中,实验结果和计算结果之间预期有什么样的一致性?不确定性的来源和价值是什么?建模的含义是什么?全球(局部)泥沙通量与全球(局部)涡旋流量变量的相关性如何?这一信息对于开发改进的泥沙通量参数化模拟模型至关重要。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Dust in the atmosphere plays a significant role in modulating weather, air quality, and climate. Most studies of the lofting of dust from the surface have focused on steady wind conditions. However, there are obvious examples of other types of dust lifting mechanisms, such as dust devils, that occur in situations where the wind flow is more complicated. This research project will combine high-resolution numerical modeling with laboratory experiments to study dust devils and convective vortices and how they entrain dust from the surface. The long-term impact of the project will be to improve the prediction of dust entrainment, which has a significant climate impact. The research team will also conduct a significant education and outreach effort, with graduate and undergraduate students, outreach to K-12 students, and a virtual mini-symposium including international partners. The project plans to enhance diversity through specific programs that recruit underrepresented undergraduate students.The primary objective of this project is to identify and characterize the fundamental mechanisms triggering the entrainment of dust in the non-equilibrium conditions that depart from a canonical, well-investigated scenario of a fully-developed boundary layer flow that assumes both spatial homogeneity and statistical stationarity. An example of a non-equilibrium condition is a dust devil, which is a vortical structure that can lift significant amounts of dust. The research team will, through a combination of laboratory experiments and numerical simulations, characterize and identify the role of individual dust lifting processes in the physics of sediment entrainment by dust devils and convective vortices. The laboratory experimental setup consists of a vortex generator with three-dimensional particle image velocimetry (PIV) and particle tracking velocimetry (3D-PTV) systems. The computational aspect of the project will use an open-source spectral-element method (SEM) code Nek5000 which was co-developed by one of the researchers. The laboratory and numerical techniques would be used to answer the following questions:1. What is the effect of a horizontal spatial inhomogeneity of mean and fluctuating properties of the carrier flow turbulence on dust entrainment mechanisms in non-canonical vortex flows? What is the role of the competing forces, such as aerodynamic, pressure gradient, cohesion, gravity and electric forces in the dust entrainment processes?2. What is the role of the particle size, Stokes number and the size distribution modality? Would the main mechanisms be different or similar for inertial particles of different sizes?3. What kind of agreement is expected between experimental and computational results in a representation of multiphase flow turbulence? What is the source and value of uncertainties?4. What are the implications for modeling? How well the global (local) sediment fluxes are correlated with the global (local) vortex flow variables? This information is critical for developing improved sediment flux parameterizations for simulation models.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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会议论文
Effect of Reynolds number on drag reduction: from near-wall cycle to large-scale motions.
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批准号:2345157
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项目类别:Standard Grant
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资助金额:$32.97万
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财政年份:2024
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负责人:Yulia Peet
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依托单位:
CAREER: Interaction of Turbulence with Flexible Surfaces: Coherent Structures and Near-Wall Dynamics
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资助金额:$50.0万
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负责人:Yulia Peet
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Understanding Bio-Locomotion for Collective Swimming in a Quiet and Disturbed Media
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批准号:1762827
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资助金额:$30.5万
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财政年份:2018
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依托单位:
Improving Statistical Convergence in Direct Numerical Simulations by Exploring Large-Scale Structures Organization and Symmetry
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批准号:1707075
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财政年份:2017
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负责人:Yulia Peet
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依托单位:
Wind Turbine Array Performance Based on Coupling CFD with Doppler Lidar Measurements
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批准号:1335868
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项目类别:Standard Grant
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资助金额:$33.62万
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财政年份:2013
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负责人:Yulia Peet
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依托单位:
Multidomain and Integrative Capabilities for Large-Scale Systems Simulations with High-Order Methods
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批准号:1250124
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项目类别:Standard Grant
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资助金额:$26.47万
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财政年份:2012
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负责人:Yulia Peet
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依托单位:
国内基金
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