Patterns of plant rehydration and growth following pulses of soil moisture availability
Name
bg-18-831-2021.pdf
Description
Published version
Size
2.83 MB
Format
Adobe PDF
Checksum (MD5)
5e1a5430d9dd036469c297355d0cc394
Author(s) • • • •
Feldman, Andrew F
Short Gianotti, Daniel J
Konings, Alexandra G
Gentine, Pierre
Entekhabi, Dara
Date Issued
February 2021
Journal
Biogeosciences
Publisher
Copernicus GmbH
Citation
Biogeosciences, 18, 831–847, 2021
Version
Final published version
Abstract
© 2021 World Scientific Publishing Co. Pte Ltd. All rights reserved. Plant hydraulic and photosynthetic responses to individual rain pulses are not well understood because field experiments of pulse behavior are sparse. Understanding individual pulse responses would inform how rainfall intermittency impacts terrestrial biogeochemical cycles, especially in drylands, which play a large role in interannual global atmospheric carbon uptake variability. Using satellite-based estimates of predawn plant and soil water content from the Soil Moisture Active Passive (SMAP) satellite, we quantify the timescales of plant water content increases following rainfall pulses, which we expect bear the signature of whole-plant mechanisms. In wetter regions, we find that plant water content increases rapidly and dries along with soil moisture, which we attribute to predawn soil-plant water potential equilibrium. Global drylands, by contrast, show multi-day plant water content increases after rain pulses. Shorter increases are more common following dry initial soil conditions. These are attributed to slow plant rehydration due to high plant resistances using a plant hydraulic model. Longer multi-day dryland plant water content increases are attributed to pulse-driven growth, following larger rain pulses and wetter initial soil conditions. These dryland responses reflect widespread drought recovery rehydration responses and individual pulse-driven growth responses, as supported by previous isolated field experiments. The response dependence on moisture pulse characteristics, especially in drylands, also shows ecosystem sensitivity to intra-Annual rainfall intensity and frequency, which are shifting with climate change.
MIT Department
Massachusetts Institute of Technology. Institute for Data, Systems, and Society
Terms of Use
Creative Commons Attribution 4.0 International license
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DOI of Published Version
https://doi.org/10.5194/BG-18-831-2021