Regional, multi-decadal analysis on the Loire River basin reveals that stream temperature increases faster than air temperature
-
Published:2022-05-17
Issue:9
Volume:26
Page:2583-2603
-
ISSN:1607-7938
-
Container-title:Hydrology and Earth System Sciences
-
language:en
-
Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Seyedhashemi Hanieh, Vidal Jean-PhilippeORCID, Diamond Jacob S.ORCID, Thiéry Dominique, Monteil CélineORCID, Hendrickx Frédéric, Maire Anthony, Moatar Florentina
Abstract
Abstract. Stream temperature appears to be increasing globally, but its rate remains poorly constrained due to a paucity of long-term data and difficulty in parsing effects of hydroclimate and landscape variability. Here, we address these issues using the physically based thermal model T-NET (Temperature-NETwork) coupled with the EROS semi-distributed hydrological model to reconstruct past daily stream temperature and streamflow at the scale of the entire Loire River basin in France (105 km2 with 52 278 reaches). Stream temperature increased for almost all reaches in all seasons (mean =+0.38 ∘C decade−1) over the 1963–2019 period. Increases were greatest in spring and summer, with a median increase of + 0.38 ∘C (range =+0.11 to +0.76 ∘C) and +0.44 ∘C (+0.08 to +1.02 ∘C) per decade, respectively. Rates of stream temperature increases were greater than for air temperature across seasons for the majority of reaches. Spring and summer increases were typically greatest in the southern part of the Loire basin (up to +1 ∘C decade−1) and in the largest rivers (Strahler order ≥5). Importantly, air temperature and streamflow could exert a joint influence on stream temperature trends, where the greatest stream temperature increases were accompanied by similar trends in air temperature (up to +0.71 ∘C decade−1) and the greatest decreases in streamflow (up to −16 % decade−1). Indeed, for the majority of reaches, positive stream temperature anomalies exhibited synchrony with positive anomalies in air temperature and negative anomalies in streamflow, highlighting the dual control exerted by these hydroclimatic drivers. Moreover, spring and summer stream temperature, air temperature, and streamflow time series exhibited common change points occurring in the late 1980s, suggesting a temporal coherence between changes in the hydroclimatic drivers and a rapid stream temperature response. Critically, riparian vegetation shading mitigated stream temperature increases by up to 0.16 ∘C decade−1 in smaller streams (i.e. < 30 km from the source). Our results provide strong support for basin-wide increases in stream temperature due to joint effects of rising air temperature and reduced streamflow. We suggest that some of these climate change-induced effects can be mitigated through the restoration and maintenance of riparian forests.
Funder
European Regional Development Fund Agence de l'eau Loire-Bretagne Institut National de Recherche pour l'Agriculture, l'Alimentation et l'Environnement
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference118 articles.
1. Allen, R. G., Pereira, L. S., Raes, D., and Smith, M.: Crop
Evapotranspiration – Guidelines for computing crop water requirements,
FAO Irrigation and Drainage Paper 56, FAO,
https://appgeodb.nancy.inra.fr/biljou/pdf/Allen_FAO1998.pdf (last access: 11 May 2022), 1998. a 2. Arevalo, E., Lassalle, G., Tétard, S., Maire, A., Sauquet, E., Lambert, P.,
Paumier, A., Villeneuve, B., and Drouineau, H.: An innovative bivariate
approach to detect joint temporal trends in environmental conditions:
Application to large French rivers and diadromous fish,
Sci. Total Environ., 748, 141260, https://doi.org/10.1016/j.scitotenv.2020.141260, 2020. a, b, c, d 3. Arismendi, I., Johnson, S. L., Dunham, J. B., Haggerty, R., and Hockman-Wert,
D.: The paradox of cooling streams in a warming world: regional climate
trends do not parallel variable local trends in stream temperature in the
Pacific continental United States, Geophys. Res. Lett., 39, 10, https://doi.org/10.1029/2012GL051448, 2012. a 4. Arismendi, I., Johnson, S. L., Dunham, J. B., and Haggerty, R.: Descriptors of
natural thermal regimes in streams and their responsiveness to change in the
Pacific Northwest of North America, Freshwater Biol., 58, 880–894,
https://doi.org/10.1111/fwb.12094, 2013a. a 5. Arismendi, I., Safeeq, M., Johnson, S. L., Dunham, J. B., and Haggerty, R.:
Increasing synchrony of high temperature and low flow in western North
American streams: double trouble for coldwater biota?, Hydrobiologia, 712,
61–70, https://doi.org/10.1007/s10750-012-1327-2, 2013b. a
Cited by
21 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|