Diurnal and vertical variability of the sensible heat and carbon dioxide budgets in the atmospheric surface layer

被引:45
作者
Casso-Torralba, Pau [1 ,3 ]
de Arellano, Jordi Vila-Guerau [3 ]
Bosveld, Fred [2 ]
Soler, Maria Rosa [1 ]
Vermeulen, Alex [4 ]
Werner, Cindy [5 ]
Moors, Eddy
机构
[1] Univ Barcelona, Fac Phys, Dept Astron & Meteorol, E-08028 Barcelona, Spain
[2] Royal Netherlands Meteorol Inst, Dept Climate & Seismol, Sect Reg Climate, NL-3730 AE De Bilt, Netherlands
[3] Univ Wageningen & Res Ctr, Meteorol & Air Qual Sect, NL-6700 AA Wageningen, Netherlands
[4] Energy Res Ctr, Dept Air Qual & Climate Change, Unit Biomass Coal & Environm, NL-1755 LE Petten, Netherlands
[5] US Geol Survey, Cascades Volcano Observ, Volcano Emiss Project, Vancouver, WA 98683 USA
关键词
D O I
10.1029/2007JD009583
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 [大气科学]; 070601 [气象学];
摘要
The diurnal and vertical variability of heat and carbon dioxide (CO2) in the atmospheric surface layer are studied by analyzing measurements from a 213 m tower in Cabauw (Netherlands). Observations of thermodynamic variables and CO2 mixing ratio as well as vertical profiles of the turbulent fluxes are used to retrieve the contribution of the budget terms in the scalar conservation equation. On the basis of the daytime evolution of turbulent fluxes, we calculate the budget terms by assuming that turbulent fluxes follow a linear profile with height. This assumption is carefully tested and the deviation from linearity is quantified. The budget calculation allows us to assess the importance of advection of heat and CO2 during day hours for three selected days. It is found that, under nonadvective conditions, the diurnal variability of temperature and CO2 is well reproduced from the flux divergence measurements. Consequently, the vertical transport due to the turbulent flux plays a major role in the daytime evolution of both scalars and the advection is a relatively small contribution. During the analyzed days with a strong contribution of advection of either heat or carbon dioxide, the flux divergence is still an important contribution to the budget. For heat, the quantification of the advection contribution is in close agreement with results from a numerical model. For carbon dioxide, we qualitatively corroborate the results with a Lagrangian transport model. Our estimation of advection is compared with traditional estimations based on the Net Ecosystem-atmosphere Exchange (NEE).
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页数:15
相关论文
共 35 条
[1]
Localization of source and sink regions of carbon dioxide through the method of the synoptic air trajectory statistics [J].
Apadula, F ;
Gotti, A ;
Pigini, A ;
Longhetto, A ;
Rocchetti, F ;
Cassardo, C ;
Ferrarese, S ;
Forza, R .
ATMOSPHERIC ENVIRONMENT, 2003, 37 (27) :3757-3770
[2]
On measuring net ecosystem carbon exchange over tall vegetation on complex terrain [J].
Baldocchi, D ;
Finnigan, J ;
Wilson, K ;
Paw U, KT ;
Falge, E .
BOUNDARY-LAYER METEOROLOGY, 2000, 96 (1-2) :257-291
[3]
Assessing the eddy covariance technique for evaluating carbon dioxide exchange rates of ecosystems: past, present and future [J].
Baldocchi, DD .
GLOBAL CHANGE BIOLOGY, 2003, 9 (04) :479-492
[4]
Beljaars ACM, 1997, J CLIMATE, V10, P1172, DOI 10.1175/1520-0442(1997)010<1172:CDFTVO>2.0.CO
[5]
2
[6]
BOUNDARY-LAYER HEAT AND MOISTURE BUDGETS FROM FIFE [J].
BETTS, AK ;
DESJARDINS, RL ;
MACPHERSON, JI ;
KELLY, RD .
BOUNDARY-LAYER METEOROLOGY, 1990, 50 (1-4) :109-138
[7]
FIFE ATMOSPHERIC BOUNDARY-LAYER BUDGET METHODS [J].
BETTS, AK .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1992, 97 (D17) :18523-18531
[8]
Annual cycles of water vapour and carbon dioxide fluxes in and above a boreal aspen forest [J].
Black, TA ;
DenHartog, G ;
Neumann, HH ;
Blanken, PD ;
Yang, PC ;
Russell, C ;
Nesic, Z ;
Lee, X ;
Chen, SG ;
Staebler, R ;
Novak, MD .
GLOBAL CHANGE BIOLOGY, 1996, 2 (03) :219-229
[9]
Bosveld F., 2004, 16 S BOUNDARY LAYERS, P1
[10]
Acceleration of global warming due to carbon-cycle feedbacks in a coupled climate model [J].
Cox, PM ;
Betts, RA ;
Jones, CD ;
Spall, SA ;
Totterdell, IJ .
NATURE, 2000, 408 (6809) :184-187