Ice-Free Radiative Convection Drives Spring Mixing in a Large Lake

被引:26
作者
Cannon, D. J. [1 ]
Troy, C. D. [1 ]
Liao, Q. [2 ]
Bootsma, H. A. [2 ]
机构
[1] Purdue Univ, Lyles Sch Civil Engn, W Lafayette, IN 47907 USA
[2] Univ Wisconsin, Sch Freshwater Sci, Milwaukee, WI 53201 USA
基金
美国国家科学基金会;
关键词
THERMAL STRUCTURE; BOUNDARY-LAYER; CIRCULATION; TURBULENCE; ECOLOGY;
D O I
10.1029/2019GL082916
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
In this work we highlight the importance of radiative convection as a mixing mechanism in a large, ice-free lake (Lake Michigan, USA), where solar heating of waters below the temperature of maximum density drives vertical convection during the vernal turnover. Measurements taken over a 2-week period at a 55-m deep site demonstrate the ability of radiative convection to mix the entire water column. Observations show a diurnal cycle in which solar heating drives a steady deepening of the convective mixed layer throughout the day (dH(CML)/dt = 12.8 m/hr), followed by surface-cooling-induced restratification during the night. Radiative convection is linked to a dramatic enhancement in turbulence characteristics, including both turbulent kinetic energy dissipation (epsilon: 10(-9)-10(-7) W/kg) and turbulent scalar diffusivity (K-z: 10(-3)-10(-1) m(2)/s), suggesting that radiative convection plays a major role in driving vertical mixing throughout the water column during the isothermal spring.
引用
收藏
页码:6811 / 6820
页数:10
相关论文
共 44 条
[1]  
[Anonymous], BIOL CHEM OCEANOGRAP
[2]   Observations of radiatively driven convection in a deep lake [J].
Austin, Jay A. .
LIMNOLOGY AND OCEANOGRAPHY, 2019, 64 (05) :2152-2160
[3]   A comparative examination of recent changes in nutrients and lower food web structure in Lake Michigan and Lake Huron [J].
Barbiero, Richard P. ;
Lesht, Barry M. ;
Warren, Glenn J. ;
Rudstam, Lars G. ;
Watkins, James M. ;
Reavie, Euan D. ;
Kovalenko, Katya E. ;
Karatayev, Alexander Y. .
JOURNAL OF GREAT LAKES RESEARCH, 2018, 44 (04) :573-589
[4]   Modeling circulation and thermal structure in Lake Michigan: Annual cycle and interannual variability [J].
Beletsky, D ;
Schwab, DJ .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2001, 106 (C9) :19745-19771
[5]  
Bennett E.B., 1978, J. Great Lakes Res, V4, P310, DOI DOI 10.1016/S0380-1330(78)72200-8
[6]   Estimating Turbulent Dissipation from Microstructure Shear Measurements Using Maximum Likelihood Spectral Fitting over the Inertial and Viscous Subranges [J].
Bluteau, Cynthia E. ;
Jones, Nicole L. ;
Ivey, Gregory N. .
JOURNAL OF ATMOSPHERIC AND OCEANIC TECHNOLOGY, 2016, 33 (04) :713-722
[7]   Disposition of a novel and potent αvβ3 antagonist in animals, and extrapolation to man [J].
Prueksaritanont, T ;
Fernandez-Metzler, C ;
Meng, Y ;
Barrish, A ;
Halczenko, W ;
Rodan, SB ;
Hutchinson, JH ;
Duggan, ME ;
Lint, JH .
XENOBIOTICA, 2004, 34 (01) :103-115
[8]  
Bouffard D, 2019, ANNU REV FLUID MECH, V51, P189, DOI [10.1146/annurev-fluid-010518-040506, 10.1146/annurev-fluid-010518040506]
[9]   Ice-covered Lake Onega: effects of radiation on convection and internal waves [J].
Bouffard, Damien ;
Zdorovennov, Roman E. ;
Zdorovennova, Galina E. ;
Pasche, Natacha ;
Wuest, Alfred ;
Terzhevik, Arkady Y. .
HYDROBIOLOGIA, 2016, 780 (01) :21-36
[10]   THERMAL STRUCTURE AND CIRCULATION IN THE GREAT-LAKES [J].
BOYCE, FM ;
DONELAN, MA ;
HAMBLIN, PF ;
MURTHY, CR ;
SIMONS, TJ .
ATMOSPHERE-OCEAN, 1989, 27 (04) :607-642