Inter-annual variability of the global terrestrial water cycle
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Published:2020-01-24
Issue:1
Volume:24
Page:381-396
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ISSN:1607-7938
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Container-title:Hydrology and Earth System Sciences
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language:en
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Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Yin DongqinORCID, Roderick Michael L.ORCID
Abstract
Abstract. Variability of the terrestrial water cycle, i.e. precipitation (P),
evapotranspiration (E), runoff (Q) and water storage change (ΔS) is the
key to understanding hydro-climate extremes. However, a comprehensive global
assessment for the partitioning of variability in P between E, Q and ΔS is still not available. In this study, we use the recently released global
monthly hydrologic reanalysis product known as the Climate Data Record (CDR)
to conduct an initial investigation of the inter-annual variability of the
global terrestrial water cycle. We first examine global patterns in
partitioning the long-term mean P‾ between the various sinks
E‾, Q‾ and ΔS‾ and confirm the well-known
patterns with P‾ partitioned between E‾ and Q‾
according to the aridity index. In a new analysis based on the concept of
variability source and sinks we then examine how variability in the
precipitation σP2 (the source) is partitioned between the
three variability sinks σE2, σQ2 and σΔS2 along with the three relevant covariance terms, and how
that partitioning varies with the aridity index. We find that the
partitioning of inter-annual variability does not simply follow the mean
state partitioning. Instead we find that σP2 is mostly
partitioned between σQ2, σΔS2 and the
associated covariances with limited partitioning to σE2. We
also find that the magnitude of the covariance components can be large and
often negative, indicating that variability in the sinks (e.g. σQ2, σΔS2) can, and regularly does, exceed
variability in the source (σP2). Further investigations under
extreme conditions revealed that in extremely dry environments the variance
partitioning is closely related to the water storage capacity. With limited
storage capacity the partitioning of σP2 is mostly to σE2, but as the storage capacity increases the partitioning of σP2 is increasingly shared between σE2, σΔS2 and the covariance between those variables. In other environments
(i.e. extremely wet and semi-arid–semi-humid) the variance partitioning
proved to be extremely complex and a synthesis has not been developed. We
anticipate that a major scientific effort will be needed to develop a
synthesis of hydrologic variability.
Funder
Australian Research Council National Natural Science Foundation of China
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference35 articles.
1. Agarwal, D. A., Humphrey, M., Beekwilder, N. F., Jackson, K. R., Goode, M.
M., and van Ingen, C.: A data-centered collaboration portal to support
global carbon-flux analysis, Concurr. Comp-Pract. E., 22, 2323–2334,
https://doi.org/10.1002/cpe.1600, 2010. 2. Baldocchi, D., Falge, E., Gu, L., Olson, R., Hollinger, D., Running, S.,
Anthoni, P., Bernhofer, C., Davis, K., Evans, R., Fuentes, J., Goldstein,
A., Katul, G., Law, B., Lee, X., Malhi, Y., Meyers, T., Munger, W., Oechel,
W., Paw U, K. T., Pilegaard, K., Schmid, H. P., Valentini, R., Verma, S.,
Vesala, T., Wilson, K., and Wofsy, S.: FLUXNET: A New Tool to Study the
Temporal and Spatial Variability of Ecosystem-Scale Carbon Dioxide, Water
Vapor, and Energy Flux Densities, B. Am. Meteorol. Soc., 82, 2415–2434,
https://doi.org/10.1175/1520-0477(2001)082<2415:FANTTS>2.3.CO;2, 2001. 3. Balsamo, G., Albergel, C., Beljaars, A., Boussetta, S., Brun, E., Cloke, H., Dee, D., Dutra, E., Muñoz-Sabater, J., Pappenberger, F., de Rosnay, P., Stockdale, T., and Vitart, F.: ERA-Interim/Land: a global land surface reanalysis data set, Hydrol. Earth Syst. Sci., 19, 389–407, https://doi.org/10.5194/hess-19-389-2015, 2015. 4. Budyko, M. L.: Climate and Life. Academic Press, London, UK, 1974. 5. Choudhury, B. J.: Evaluation of an empirical equation for annual evaporation
using field observations and results from a biophysical model, J. Hydrol.,
216, 99–110, https://doi.org/10.1016/S0022-1694(98)00293-5,
1999.
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