Collaborative Research: Internal Lee-Wave Dissipation in Oceanic Flows with Mean Shear

合作研究:平均剪切海洋流中的内部利波耗散

基本信息

  • 批准号:
    1756093
  • 负责人:
  • 金额:
    $ 24.6万
  • 依托单位:
  • 依托单位国家:
    美国
  • 项目类别:
    Standard Grant
  • 财政年份:
    2018
  • 资助国家:
    美国
  • 起止时间:
    2018-09-15 至 2022-08-31
  • 项目状态:
    已结题

项目摘要

The mechanisms for dissipating the ocean's balanced flow remain uncertain but are important for correctly simulating oceanic circulation. Dissipation through internal lee-wave generation followed by turbulence production has been proposed to account for 20-75% of the needed loss. However, microstructure measurements do not agree with the predicted dissipation. This research will explain this discrepancy and better constrain the role of lee-waves in dissipating vs. redistributing energy. This study will carry out numerical simulations describing the generation, propagation, dissipation, and reabsorption of internal lee-waves in areas where earth rotation-induced flows of finite extent are dominant. Results from this project will be presented at conferences and published in peer-reviewed journals to make them available to the wider scientific community. The results of this study will provide an improved parameterization for the dissipation and redistribution of balanced flows and induced mixing by lee-wave generation and increase the accuracy of Ocean circulation modeling. The project will support education and mentoring of a graduate student in numerical modeling and internal-wave physics, and an undergraduate student in research. The research will also be utilized in outreach activities for the general public and K-12 science teachers, as well as undergraduate and international student training.Large amounts of power, equivalent of 1 TW, is thought to be input into the ocean circulation by wind-work. The maintenance of steady state conditions (i.e., constant energy levels) in the world's oceans requires that addition of energy by the wind is balanced through energy dissipation processes. Internal lee-wave generation has been assumed to be one of the largest predicted energy sinks dissipating 0.2 to 0.75 TW through turbulence generation. However, measurements in Antarctic Circumpolar Current jets find that turbulent dissipation rates fall short of predictions by as much as an order of magnitude. Recent numerical simulations of spontaneous near-inertial wave generation in the Kuroshio Front find that much of the generated wave energy is reabsorbed back into the mean flow. If reabsorption also occurs for lee waves, they would be as much a mechanism for redistributing balanced energy as dissipating it. These numerical simulations will determine what fractions of lee-wave energy are lost to turbulence vs. being reabsorbed into the mean flow and hence address whether lee-wave generation represents a major sink for the large-scale circulation. Missing key elements have been sheared flow and wave action (E/w) conservation where E is the wave energy density, w = kU the Lagrangian frequency of the lee wave, k the topographic wavenumber and U the flow speed. In a bottom-intensified rotating shear flow, the fraction kU1/(kUo) is available for dissipation and (kUo- kU1)/(kUo) for reabsorption, where Uo is the bottom flow speed and U1 f/k the flow where the waves break. The numerical simulations will test realistic ocean flow and topography configurations to determine whether reabsorption is a significant fraction of lee-wave generation in the ocean.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.
消散海洋平衡流的机制仍然不确定,但对正确模拟海洋环流很重要。已经提出,通过内部背风波产生以及随后的湍流产生的耗散占所需损失的20-75%。然而,微观结构的测量不同意预测的耗散。这项研究将解释这种差异,并更好地限制背风波在消散与重新分配能量中的作用。本研究将进行数值模拟,描述在地球旋转引起的有限范围流动占主导地位的地区,内部背风波的产生,传播,耗散和重吸收。该项目的成果将在会议上介绍,并在同行评审的期刊上发表,以便更广泛的科学界可以使用。这项研究的结果将提供一个改进的参数化的耗散和再分配的平衡流和诱导混合的背风波生成,并提高海洋环流模拟的准确性。该项目将支持一名研究生在数值建模和内波物理学方面的教育和指导,以及一名本科生在研究方面的教育和指导。该研究还将用于面向公众和K-12科学教师的推广活动,以及本科生和国际学生的培训。大量的功率,相当于1 TW,被认为是通过风工作输入海洋环流。稳态条件的维持(即,恒定的能量水平)要求通过能量耗散过程平衡风增加的能量。内部背风波生成被认为是最大的预测能量汇之一,通过湍流生成耗散0.2至0.75 TW。然而,南极绕极流射流的测量发现,湍流耗散率达不到预测的数量级。最近的数值模拟的自发近惯性波产生的黑潮锋发现,所产生的波能量被重新吸收回平均流。如果背风波也发生再吸收,那么它们将是重新分配平衡能量的机制,而不是耗散平衡能量的机制。这些数值模拟将确定哪些部分的背风波能量损失于湍流,而哪些部分被再吸收到平均流中,从而确定背风波的产生是否代表大尺度环流的主要汇。缺少的关键要素是剪切流和波浪作用(E/w)守恒,其中E是波浪能量密度,w = kU是背风波的拉格朗日频率,k是地形波数,U是流速。在底部增强的旋转剪切流中,分数kU 1/(kUo)用于耗散,分数(kUo-kU 1)/(kUo)用于再吸收,其中Uo是底部流速,U1 f/k是波浪破碎处的流动。数值模拟将测试现实的海洋流动和地形配置,以确定是否再吸收是一个显着的一部分,在海洋中的背风波generation.This奖项反映了美国国家科学基金会的法定使命,并已被认为是值得的支持,通过评估使用基金会的知识价值和更广泛的影响审查标准。

项目成果

期刊论文数量(2)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
Reabsorption of Lee-Wave Energy in Bottom-Intensified Currents
底部强化电流中背风波能量的重吸收
  • DOI:
    10.1175/jpo-d-22-0058.1
  • 发表时间:
    2023
  • 期刊:
  • 影响因子:
    3.5
  • 作者:
    Wu, Yue;Kunze, Eric;Tandon, Amit;Mahadevan, Amala
  • 通讯作者:
    Mahadevan, Amala
Energy Sinks for Lee Waves in Shear Flow
  • DOI:
    10.1175/jpo-d-19-0052.1
  • 发表时间:
    2019-10
  • 期刊:
  • 影响因子:
    3.5
  • 作者:
    E. Kunze;R. Lien
  • 通讯作者:
    E. Kunze;R. Lien
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Eric Kunze其他文献

Surface and Sub‐Surface Kinetic Energy Wavenumber‐Frequency Spectra in Global Ocean Models and Observations
全球海洋模型和观测中的表面和次表面动能波数频率谱
  • DOI:
  • 发表时间:
    2024
  • 期刊:
  • 影响因子:
    0
  • 作者:
    Joseph K. Ansong;B. Arbic;Arin D. Nelson;Matthew H. Alford;Eric Kunze;D. Menemenlis;Anna C. Savage;J. Shriver;A. Wallcraft;M. Buijsman
  • 通讯作者:
    M. Buijsman
Near-Inertial Energy Variability in a Strong Mesoscale Eddy Field in the Iceland Basin
冰岛盆地强中尺度涡流场中的近惯性能量变率
  • DOI:
  • 发表时间:
    2024
  • 期刊:
  • 影响因子:
    2.8
  • 作者:
    Gunnar Voet;A. Waterhouse;Anna C. Savage;Eric Kunze;Jennifer A. MacKinnon;Matthew H. Alford;John Colosi;Harper Simmons;T. Klenz;Samuel Kelly;James Moum;Caitlin B. Whalen;R. Lien;J. Girton
  • 通讯作者:
    J. Girton
酸素に富むAGB星周における高温凝縮ダスト形成過程解明への赤外分光スペクトルその場計測実験
原位红外光谱测量实验揭示富氧AGB轨道高温凝结尘埃形成过程
  • DOI:
  • 发表时间:
  • 期刊:
  • 影响因子:
    0
  • 作者:
    Takeyoshi Nagai;Amit Tandon;Eric Kunze;Amala Mahadevan;笠原成,渡邊大樹,水上雄太,三上拓也,川本雄太,藏田聡信,芝内孝禎,松田祐司,Anna Boehmer,Thomas Wolf,Peter Adelmann,Christoph Meingast;木村 勇気,田中今日子,竹内伸介,塚本勝男,三浦均,稲富裕光
  • 通讯作者:
    木村 勇気,田中今日子,竹内伸介,塚本勝男,三浦均,稲富裕光
BLOCKED DRAINPIPES AND SMOKING CHIMNEYS DISCOVERY OF NEW NEAR-INERTIAL WAVE PHENOMENA IN ANTICYCLONES
堵塞的排水管和冒烟的烟囱在反气旋中发现新的近惯性波现象
  • DOI:
  • 发表时间:
  • 期刊:
  • 影响因子:
    0
  • 作者:
    Leif Thomas;James Moum;Lixin Qu;J. P. Hilditch;Eric Kunze;Luc Rainville;Craig M. Lee;USA. Lixin Qu
  • 通讯作者:
    USA. Lixin Qu
Lee-Wave Energy Sinks in Bottom-Intensified Flow: Reabsorption, Dissipation and Nonlinear Spectral Transfer
底部强化流中的背风波能量汇:重吸收、耗散和非线性光谱传输
  • DOI:
  • 发表时间:
    2024
  • 期刊:
  • 影响因子:
    0
  • 作者:
    Yue Cynthia Wu;Eric Kunze;Amit Tandon;A. Mahadevan
  • 通讯作者:
    A. Mahadevan

Eric Kunze的其他文献

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{{ truncateString('Eric Kunze', 18)}}的其他基金

Collaborative Research: Nonlinear Wake Observations at a Kuroshio Seamount (NOKS)
合作研究:黑潮海山非线性尾流观测 (NOKS)
  • 批准号:
    2318952
  • 财政年份:
    2024
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
Collaborative Research: Lee Waves and Sheared Mean Flow: Interactions and Impacts of Topography
合作研究:李波和剪切平均流:地形的相互作用和影响
  • 批准号:
    2148405
  • 财政年份:
    2022
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
Collaborative Research: Kelvin-Helmholtz Instabilities at a Kuroshio Seamount (KHIKS)
合作研究:黑潮海山的开尔文-亥姆霍兹不稳定性 (KHIKS)
  • 批准号:
    2048554
  • 财政年份:
    2021
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Continuing Grant
Collaborative Research: Lee Waves and Turbulence Forced by the Kuroshio
合作研究:李波和黑潮引起的湍流
  • 批准号:
    1829190
  • 财政年份:
    2019
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
Collaborative Research: Isopycnal Spectra and Stirring on the Submesoscale and Finescale in the Upper Ocean
合作研究:上层海洋亚介尺度和细尺度的等密度光谱和搅拌
  • 批准号:
    1734222
  • 财政年份:
    2017
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
Collaborative Research: A Study of Submesoscale Mixed-Layer Dynamics at a Mid-Latitude Oceanic Front: Isolating the Sub- and Super-Inertial Response to Atmospheric Forcing
合作研究:中纬度海洋锋的亚尺度混合层动力学研究:分离对大气强迫的亚惯性和超惯性响应
  • 批准号:
    1536681
  • 财政年份:
    2015
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
A Global Geography of Internal-Wave Strain and Mixing from WOCE CTD Hydrography
WOCE CTD 水文学中的内波应变和混合的全球地理
  • 批准号:
    1523930
  • 财政年份:
    2014
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
A Global Geography of Internal-Wave Strain and Mixing from WOCE CTD Hydrography
WOCE CTD 水文学中的内波应变和混合的全球地理
  • 批准号:
    1153692
  • 财政年份:
    2012
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Standard Grant
Internal Waves and Turbulence in Monterey Submarine Canyon
蒙特利海底峡谷的内波和湍流
  • 批准号:
    9633315
  • 财政年份:
    1996
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Continuing Grant
Finescale Interleaving
精细交织
  • 批准号:
    9521468
  • 财政年份:
    1995
  • 资助金额:
    $ 24.6万
  • 项目类别:
    Continuing Grant

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