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Gross primary production responses to warming, elevated CO 2 , and irrigation: quantifying the drivers of ecosystem physiology in a semiarid grassland

Edmund M. Ryan; Kiona Ogle; Drew Peltier; Anthony P. Walker; Martin G. De Kauwe; Belinda E. Medlyn; David G. Williams; William Parton; Shinichi Asao; Bertrand Guenet; Anna B. Harper; Xingjie Lu; Kristina A. Luus; Sönke Zaehle; Shijie Shu; Christian Werner; Jianyang Xia; Elise Pendall
Global Change Biology · Vol. 23, Issue 8 · pp. 3092-3106 · 2017

Abstract

Determining whether the terrestrial biosphere will be a source or sink of carbon (C) under a future climate of elevated CO 2 ( eCO 2 ) and warming requires accurate quantification of gross primary production ( GPP ), the largest flux of C in the global C cycle. We evaluated 6 years (2007–2012) of flux‐derived GPP data from the Prairie Heating and CO 2 Enrichment ( PHACE ) experiment, situated in a grassland in Wyoming, USA . The GPP data were used to calibrate a light response model whose basic formulation has been successfully used in a variety of ecosystems. The model was extended by modeling maximum photosynthetic rate ( A max ) and light‐use efficiency ( Q ) as functions of soil water, air temperature, vapor pressure deficit, vegetation greenness, and nitrogen at current and antecedent (past) timescales. The model fits the observed GPP well ( R 2 = 0.79), which was confirmed by other model performance checks that compared different variants of the model (e.g. with and without antecedent effects). Stimulation of cumulative 6‐year GPP by warming (29%, P = 0.02) and eCO 2 (26%, P = 0.07) was primarily driven by enhanced C uptake during spring (129%, P = 0.001) and fall (124%, P = 0.001), respectively, which was consistent across years. Antecedent air temperature (Tair ant ) and vapor pressure deficit ( VPD ant ) effects on A max (over the past 3–4 days and 1–3 days, respectively) were the most significant predictors of temporal variability in GPP among most treatments. The importance of VPD ant suggests that atmospheric drought is important for predicting GPP under current and future climate; we highlight the need for experimental studies to identify the mechanisms underlying such antecedent effects. Finally, posterior estimates of cumulative GPP under control and eCO 2 treatments were tested as a benchmark against 12 terrestrial biosphere models ( TBM s). The narrow uncertainties of these data‐driven GPP estimates suggest that they could be useful semi‐independent data streams for validating TBMs.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2017-08-01
Publication Year2017
Volume23
Issue8
Pages3092-3106
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.13602
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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