Contrasting responses of woody and herbaceous vegetation to altered rainfall characteristics in the Sahel
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Published:2021-01-07
Issue:1
Volume:18
Page:77-93
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ISSN:1726-4189
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Container-title:Biogeosciences
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language:en
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Short-container-title:Biogeosciences
Author:
Verbruggen WimORCID, Schurgers GuyORCID, Horion StéphanieORCID, Ardö JonasORCID, Bernardino Paulo N., Cappelaere Bernard, Demarty Jérôme, Fensholt RasmusORCID, Kergoat LaurentORCID, Sibret ThomasORCID, Tagesson Torbern, Verbeeck HansORCID
Abstract
Abstract. Dryland ecosystems are a major source of land cover, account
for about 40% of Earth's terrestrial surface and net primary
productivity, and house more than 30 % of the human population. These
ecosystems are subject to climate extremes (e.g. large-scale droughts and
extreme floods) that are projected to increase in frequency and severity
under most future climate scenarios. In this modelling study we assessed the
impact of single years of extreme (high or low) rainfall on dryland
vegetation in the Sahel. The magnitude and legacy of these impacts were
quantified on both the plant functional type and the ecosystem levels. In
order to understand the impact of differences in the rainfall distribution
over the year, these rainfall anomalies were driven by changing either
rainfall intensity, event frequency or rainy-season length. The
Lund–Potsdam–Jena General Ecosystem Simulator (LPJ-GUESS) dynamic vegetation
model was parameterized to represent dryland plant functional types (PFTs)
and was validated against flux tower measurements across the Sahel.
Different scenarios of extreme rainfall were derived from existing Sahel
rainfall products and applied during a single year of the model simulation
timeline. Herbaceous vegetation responded immediately to the different
scenarios, while woody vegetation had a weaker and slower response,
integrating precipitation changes over a longer timeframe. An increased
season length had a larger impact than increased intensity or frequency,
while impacts of decreased rainfall scenarios were strong and independent of
the season characteristics. Soil control on surface water balance explains
these contrasts between the scenarios. None of the applied disturbances
caused a permanent vegetation shift in the simulations. Dryland ecosystems
are known to play a dominant role in the trend and variability of the global
terrestrial CO2 sink. We showed that single extremely dry and wet years
can have a strong impact on the productivity of drylands ecosystems, which
typically lasts an order of magnitude longer than the duration of the
disturbance. Therefore, this study sheds new light on potential drivers and
mechanisms behind this variability.
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics
Reference75 articles.
1. Adole, T., Dash, J., Rodriguez-Galiano, V., and Atkinson, P. M.: Photoperiod
controls vegetation phenology across Africa, Commun. Biol., 2, 391,
https://doi.org/10.1038/s42003-019-0636-7, 2019. 2. Ahlstrom, A., Raupach, M. R., Schurgers, G., Smith, B., Arneth, A., Jung,
M., Reichstein, M., Canadell, J. G., Friedlingstein, P., Jain, A. K., Kato,
E., Poulter, B., Sitch, S., Stocker, B. D., Viovy, N., Wang, Y. P.,
Wiltshire, A., Zaehle, S., and Zeng, N.: The dominant role of semi-arid
ecosystems in the trend and variability of the land CO2 sink, Science 348, 895–899, https://doi.org/10.1126/science.aaa1668, 2015. 3. Barron-Gafford, G. A., Sanchez-Caañete, E. P., Minor, R. L., Hendryx, S. M., Lee, E., Sutter,
L. F., Tran, N., Parra, E., Colella, T., Murphy, P. C., Hamerlynck, E. P., Kumar, P., and Scott, R. L.:
Impacts of hydraulic redistribution on grass–tree competition vs facilitation in a semi-arid savanna,
New Phytol., 215, 1451–1461, https://doi.org/10.1111/nph.14693, 2017. 4. Baudena, M., Dekker, S. C., van Bodegom, P. M., Cuesta, B., Higgins, S. I., Lehsten, V., Reick, C. H., Rietkerk, M., Scheiter, S., Yin, Z., Zavala, M. A., and Brovkin, V.: Forests, savannas, and grasslands: bridging the knowledge gap between ecology and Dynamic Global Vegetation Models, Biogeosciences, 12, 1833–1848, https://doi.org/10.5194/bg-12-1833-2015, 2015. 5. Beck, H. E., Vergopolan, N., Pan, M., Levizzani, V., van Dijk, A. I. J. M., Weedon, G. P., Brocca, L., Pappenberger, F., Huffman, G. J., and Wood, E. F.: Global-scale evaluation of 22 precipitation datasets using gauge observations and hydrological modeling, Hydrol. Earth Syst. Sci., 21, 6201–6217, https://doi.org/10.5194/hess-21-6201-2017, 2017.
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