Accurately simulating gross primary productivity (GPP) in terrestrial ecosystem models is critical because errors in simulated GPP propagate through the model to introduce additional errors in simulated biomass and other fluxes. We evaluated simulated, daily average GPP from 26 models against estimated GPP at 39 eddy covariance flux tower sites across the United States and Canada. None of the models in this study match estimated GPP within observed uncertainty. On average, models overestimate GPP in winter, spring, and fall, and underestimate GPP in summer. Models overpredicted GPP under dry conditions and for temperatures below 0°C. Improvements in simulated soil moisture and ecosystem response to drought or humidity stress will improve simulated GPP under dry conditions. Adding a low-temperature response to shut down GPP for temperatures below 0°C will reduce the positive bias in winter, spring, and fall and improve simulated phenology. The negative bias in summer and poor overall performance resulted from mismatches between simulated and observed light use efficiency (LUE). Improving simulated GPP requires better leaf-to-canopy scaling and better values of model parameters that control the maximum potential GPP, such as ɛmax (LUE), Vcmax (unstressed Rubisco catalytic capacity) or Jmax (the maximum electron transport rate)

Schaefer, K.; Schwalm, C.R.; Williams, C.; Arain, M.A.; Barr, A.; Chen, J.M.; Davis, K.J.; Dimitrov, D.; Hilton, T.W.; Hollinger, D.Y.; Humphreys, E.; Poulter, B.; Raczka, B.M.; Richardson, A.D.; Sahoo, A.; Thornton, P.; Vargas, R.; Verbeeck, H.; Anderson, R.; Baker, I.; Black, T.A.; Bolstad, P.; Chen, J.Q.; Curtis, P.S.; Desai, A.R.; Dietze, M.; Dragoni, D.; Gough, C.; Grant, R.F.; Gu, L.H.; Jain, A.; Kucharik, C.; Law, B.; Liu, S.G.; Lokipitiya, E.; Margolis, H.A.; Matamala, R.; Mccaughey, J.H.; Monson, R.; Munger, J.W.; Oechel, W.C.; Peng, C.H.; Price, D.T.; Ricciuto, D.; Riley, W.J.; Roulet, N.; Tian, H.Q.; Tonitto, C.; Torn, M.; Weng, E.S.; Zhou, X.L. (2012). A model-data comparison of gross primary productivity: results from the North American Carbon Program site synthesis. JOURNAL OF GEOPHYSICAL RESEARCH, 117 (G03010). doi: 10.1029/2012JG001960 handle: http://hdl.handle.net/10449/21330

A model-data comparison of gross primary productivity: results from the North American Carbon Program site synthesis

Oechel, Walter Clarence;
2012-01-01

Abstract

Accurately simulating gross primary productivity (GPP) in terrestrial ecosystem models is critical because errors in simulated GPP propagate through the model to introduce additional errors in simulated biomass and other fluxes. We evaluated simulated, daily average GPP from 26 models against estimated GPP at 39 eddy covariance flux tower sites across the United States and Canada. None of the models in this study match estimated GPP within observed uncertainty. On average, models overestimate GPP in winter, spring, and fall, and underestimate GPP in summer. Models overpredicted GPP under dry conditions and for temperatures below 0°C. Improvements in simulated soil moisture and ecosystem response to drought or humidity stress will improve simulated GPP under dry conditions. Adding a low-temperature response to shut down GPP for temperatures below 0°C will reduce the positive bias in winter, spring, and fall and improve simulated phenology. The negative bias in summer and poor overall performance resulted from mismatches between simulated and observed light use efficiency (LUE). Improving simulated GPP requires better leaf-to-canopy scaling and better values of model parameters that control the maximum potential GPP, such as ɛmax (LUE), Vcmax (unstressed Rubisco catalytic capacity) or Jmax (the maximum electron transport rate)
Settore BIO/07 - ECOLOGIA
2012
Schaefer, K.; Schwalm, C.R.; Williams, C.; Arain, M.A.; Barr, A.; Chen, J.M.; Davis, K.J.; Dimitrov, D.; Hilton, T.W.; Hollinger, D.Y.; Humphreys, E.; Poulter, B.; Raczka, B.M.; Richardson, A.D.; Sahoo, A.; Thornton, P.; Vargas, R.; Verbeeck, H.; Anderson, R.; Baker, I.; Black, T.A.; Bolstad, P.; Chen, J.Q.; Curtis, P.S.; Desai, A.R.; Dietze, M.; Dragoni, D.; Gough, C.; Grant, R.F.; Gu, L.H.; Jain, A.; Kucharik, C.; Law, B.; Liu, S.G.; Lokipitiya, E.; Margolis, H.A.; Matamala, R.; Mccaughey, J.H.; Monson, R.; Munger, J.W.; Oechel, W.C.; Peng, C.H.; Price, D.T.; Ricciuto, D.; Riley, W.J.; Roulet, N.; Tian, H.Q.; Tonitto, C.; Torn, M.; Weng, E.S.; Zhou, X.L. (2012). A model-data comparison of gross primary productivity: results from the North American Carbon Program site synthesis. JOURNAL OF GEOPHYSICAL RESEARCH, 117 (G03010). doi: 10.1029/2012JG001960 handle: http://hdl.handle.net/10449/21330
File in questo prodotto:
File Dimensione Formato  
2012 JGR Oechel et al.pdf

non disponibili

Licenza: Tutti i diritti riservati (All rights reserved)
Dimensione 579.77 kB
Formato Adobe PDF
579.77 kB Adobe PDF   Visualizza/Apri   Richiedi una copia

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10449/21330
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 294
  • ???jsp.display-item.citation.isi??? 243
social impact