Simulation of Deep Cycle Turbulence by a Global Ocean General Circulation Model

被引:10
|
作者
Pei, Suyang [1 ]
Shinoda, Toshiaki [1 ]
Wang, Wanqiu [2 ]
Lien, Ren-Chieh [3 ]
机构
[1] Texas A&M Univ Corpus Christi, Dept Phys & Environm Sci, Corpus Christi, TX 78412 USA
[2] NOAA, Climate Predict Ctr, NWS, NCEP, College Pk, MD USA
[3] Univ Washington, Appl Phys Lab, Seattle, WA 98105 USA
关键词
deep cycle turbulence; ocean general circulation model; marginal instability; Equatorial Undercurrent; vertical mixing parameterization; tropical instability waves; TROPICAL INSTABILITY WAVES; LARGE-EDDY SIMULATION; PACIFIC COLD-TONGUE; EQUATORIAL UNDERCURRENT; INTERNAL WAVES; DIURNAL CYCLE; SURFACE-LAYER; SHEAR; ATLANTIC; PARAMETERIZATION;
D O I
10.1029/2020GL088384
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Deep cycle turbulence (DCT) is a diurnally oscillating turbulence that penetrates into a stratified shear layer below the surface mixed layer, which is often observed in the eastern Pacific and Atlantic above the Equatorial Undercurrent (EUC). Here we present the simulation of DCT by a global ocean general circulation model (OGCM) for the first time. As the k-epsilon vertical mixing scheme is used in the OGCM, the simulation of observed DCT structure based on in situ microstructure measurements can be explicitly demonstrated. The simulated DCT is found in all equatorial ocean basins, and its characteristics agree very well with observations. Zonal and meridional variations of DCT in the entire equatorial Pacific and Atlantic are described through constructing the composite diurnal cycle. In the central Pacific where the maximum shear associated with EUC is deep, the separation of DCT from the surface mixed layer is much more prominent than other areas. Plain Language Summary Deep cycle turbulence (DCT) is a nighttime intensified turbulence that develops in the stratified layer below the base of the surface mixed layer. It is often observed below the equatorial Pacific and Atlantic cold tongue regions above the Equatorial Undercurrent (EUC). Mixing caused by DCT is essential in modulating sea surface temperature (SST), which could have a large impact on air-sea interaction and thus global climate variability. However, simulations of DCT in global ocean models have not been demonstrated so far, and the spatial variation of DCT characteristics in the entire equatorial oceans is not well known. This study presents the first global ocean general circulation model simulation of DCT, demonstrated by the comparison of simulated turbulence with that derived from in situ observations. The simulated DCT is found in all equatorial ocean basins, and its characteristics agree very well with observations. Large-scale spatial variability of DCT in the equatorial Pacific and Atlantic is described through the analysis of model output. The DCT layer completely separated from surface mixed layer is found at locations where the EUC is deep, such as the central equatorial Pacific near the dateline.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] A parameterization scheme of vertical mixing due to inertial internal wave breaking in the ocean general circulation model
    Fan Zhisong
    Shang Zhenqi
    Zhang Shanwu
    Hu Ruijin
    Liu Hailong
    ACTA OCEANOLOGICA SINICA, 2015, 34 (01) : 11 - 22
  • [32] Impact of bathymetry on Indian Ocean circulation in a nested regional ocean model
    Rahman, Raheema
    Rahaman, Hasibur
    SCIENTIFIC REPORTS, 2024, 14 (01)
  • [33] Global simulation of dissolved 231Pa and 230Th in the ocean and the sedimentary 231Pa/230Th ratios with the ocean general circulation model COCO ver4.0
    Sasaki, Yusuke
    Kobayashi, Hidetaka
    Oka, Akira
    GEOSCIENTIFIC MODEL DEVELOPMENT, 2022, 15 (05) : 2013 - 2033
  • [34] Wind Dependencies of Deep Cycle Turbulence in the Equatorial Cold Tongues
    Moum, James N.
    Smyth, William D.
    Hughes, Kenneth G.
    Cherian, Deepak
    Warner, Sally J.
    Bourles, Bernard
    Brandt, Peter
    Dengler, Marcus
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2023, 53 (08) : 1979 - 1995
  • [35] Parameterized Internal Wave Mixing in Three Ocean General Circulation Models
    Brueggemann, Nils
    Losch, Martin
    Scholz, Patrick
    Pollmann, Friederike
    Danilov, Sergey
    Gutjahr, Oliver
    Jungclaus, Johann
    Koldunov, Nikolay
    Korn, Peter
    Olbers, Dirk
    Eden, Carsten
    JOURNAL OF ADVANCES IN MODELING EARTH SYSTEMS, 2024, 16 (06)
  • [36] Variability and Coherence of the Agulhas Undercurrent in a High-Resolution Ocean General Circulation Model
    Biastoch, A.
    Beal, L. M.
    Lutjeharms, J. R. E.
    Casal, T. G. D.
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2009, 39 (10) : 2417 - 2435
  • [37] Excitation of equatorial Kelvin and Yanai waves by tropical cyclones in an ocean general circulation model
    Sriver, R. L.
    Huber, M.
    Chafik, L.
    EARTH SYSTEM DYNAMICS, 2013, 4 (01) : 1 - 10
  • [38] Geographical Distribution of Diurnal and Semidiurnal Parametric Subharmonic Instability in a Global Ocean Circulation Model
    Ansong, Joseph K.
    Arbic, Brian K.
    Simmons, Harper L.
    Alford, Matthew H.
    Buijsman, Maarten C.
    Timko, Patrick G.
    Richman, James G.
    Shriver, Jay F.
    Wallcraft, Alan J.
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2018, 48 (06) : 1409 - 1431
  • [39] On the assimilation of absolute geodetic dynamic topography in a global ocean model: impact on the deep ocean state
    Androsov, Alexey
    Nerger, Lars
    Schnur, Reiner
    Schroeter, Jens
    Albertella, Alberta
    Rummel, Reiner
    Savcenko, Roman
    Bosch, Wolfgang
    Skachko, Sergey
    Danilov, Sergey
    JOURNAL OF GEODESY, 2019, 93 (02) : 141 - 157
  • [40] Assimilation of sub-surface temperature profiles from Argo floats in the Indian Ocean in an Ocean General Circulation Model
    Agarwal, Neeraj
    Sharma, Rashmi
    Basu, Sujit
    Agarwal, Vijay K.
    CURRENT SCIENCE, 2008, 95 (04): : 495 - 501