Numerical Investigation of Mechanisms Underlying Oceanic Internal Gravity Wave Power-Law Spectra

被引:18
作者
Pan, Yulin [1 ]
Arbic, Brian K. [2 ]
Nelson, Arin D. [2 ]
Menemenlis, Dimitris [3 ]
Peltier, W. R. [4 ]
Xu, Wentao [5 ]
Li, Ye [5 ]
机构
[1] Univ Michigan, Dept Naval Architecture & Marine Engn, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Dept Earth & Environm Sci, Ann Arbor, MI 48109 USA
[3] CALTECH, Jet Prop Lab, Pasadena, CA 91125 USA
[4] Univ Toronto, Dept Phys, Toronto, ON, Canada
[5] Shanghai Jiao Tong Univ, Dept Naval Architecture & Ocean Engn, Shanghai, Peoples R China
基金
加拿大自然科学与工程研究理事会;
关键词
NONLINEAR ENERGY-TRANSFER; FIELD; DISSIPATION; TIDES; FLOW;
D O I
10.1175/JPO-D-20-0039.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
We consider the power-law spectra of internal gravity waves in a rotating and stratified ocean. Field measurements have shown considerable variability of spectral slopes compared to the high-wavenumber, high-frequency portion of the Garrett-Munk (GM) spectrum. Theoretical explanations have been developed through wave turbulence theory (WTT), where different power-law solutions of the kinetic equation can be found depending on the mechanisms underlying the nonlinear interactions. Mathematically, these are reflected by the convergence properties of the so-called collision integral (CL) at low- and high-frequency limits. In this work, we study the mechanisms in the formation of the power-law spectra of internal gravity waves, utilizing numerical data from the high-resolution modeling of internal waves (HRMIW) in a region northwest of Hawaii. The model captures the power-law spectra in broad ranges of space and time scales, with scalings v22.0560.2 in frequency and m(-2.58 +/- 0.4) in vertical wavenumber. The latter clearly deviates from the GM76 spectrum but is closer to a family of induced-diffusion-dominated solutions predicted by WTT. Our analysis of nonlinear interactions is performed directly on these model outputs, which is fundamentally different from previous work assuming a GM76 spectrum. By applying a bicoherence analysis and evaluations of modal energy transfer, we show that the CL is dominated by nonlocal interactions between modes in the power-law range and low-frequency inertial motions. We further identify induced diffusion and the near-resonances at its spectral vicinity as dominating the formation of power-law spectrum.
引用
收藏
页码:2713 / 2733
页数:21
相关论文
共 67 条
[1]   Internal waves across the Pacific [J].
Alford, M. H. ;
MacKinnon, J. A. ;
Zhao, Zhongxiang ;
Pinkel, Rob ;
Klymak, Jody ;
Peacock, Thomas .
GEOPHYSICAL RESEARCH LETTERS, 2007, 34 (24)
[2]  
[Anonymous], 2011, LECT NOTES PHYS
[3]   Indirect evidence for substantial damping of low-mode internal tides in the open ocean [J].
Ansong, Joseph K. ;
Arbic, Brian K. ;
Buijsman, Maarten C. ;
Richman, James G. ;
Shriver, Jay F. ;
Wallcraft, Alan J. .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2015, 120 (09) :6057-6071
[4]  
Arbic B. K, 2018, NEW FRONTIERS OPERAT, P307
[5]   Stimulated Imbalance and the Enhancement of Eddy Kinetic Energy Dissipation by Internal Waves [J].
Barkan, Roy ;
Winters, Kraig B. ;
McWilliams, James C. .
JOURNAL OF PHYSICAL OCEANOGRAPHY, 2017, 47 (01) :181-198
[6]   GAUSSIANITY OF INTERNAL WAVES [J].
BRISCOE, MG .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS AND ATMOSPHERES, 1977, 82 (15) :2117-2126
[7]   INTERNAL WAVE OBSERVATIONS FROM A MIDWATER FLOAT .2. [J].
CAIRNS, JL ;
WILLIAMS, GO .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS AND ATMOSPHERES, 1976, 81 (12) :1943-1950
[8]   Can Tidal Forcing Alone Generate a GM-Like Internal Wave Spectrum? [J].
Chen, Zhiwu ;
Chen, Shaomin ;
Liu, Zhiyu ;
Xu, Jiexin ;
Xie, Jieshuo ;
He, Yinghui ;
Cai, Shuqun .
GEOPHYSICAL RESEARCH LETTERS, 2019, 46 (24) :14644-14652
[9]  
Cushman-Roisin B., 2011, INTRO GEOPHYS FLUID, V101
[10]   High order one-step monotonicity-preserving schemes for unsteady compressible flow calculations [J].
Daru, V ;
Tenaud, C .
JOURNAL OF COMPUTATIONAL PHYSICS, 2004, 193 (02) :563-594