TY - JOUR
T1 - Increasing water and nitrogen availability enhanced net ecosystem CO2 assimilation of a temperate semiarid steppe
AU - Yan, Liming
AU - Chen, Shiping
AU - Huang, Jianhui
AU - Lin, Guanghui
PY - 2011/12
Y1 - 2011/12
N2 - Changes in precipitation patterns and N cycling across the globe are likely to affect ecosystem primary productivity and CO2 exchanges, especially in arid and semi-arid grasslands. To evaluate the effects of water and N availability on ecosystem CO2 fluxes, we conducted a manipulative field experiment with water and N addition in a temperate semiarid steppe in 2006 and 2007 with remarkably different amount of natural precipitation. For each growing season (June-September), water (15 mm) was added about every 2 weeks, which summed up to about 120 mm year-1. N (as urea) was added at a rate of 6. 96 g N m-2 every month during the same period. Variations of the growing-season CO2 fluxes, including net ecosystem exchange (NEE), gross ecosystem photosynthesis (GEP) and ecosystem respiration (ER) were examined. Net carbon uptake was found in all treatments over the growing season in both years, with the growing season average NEE ranging from -1. 27 to -5. 59 μmol m-2 s-1. During two growing seasons, water and N addition significantly increased NEE (+42% and +30% in 2006 and 2007, respectively), because greater stimulation of GEP than ER. Net primary productivity, especially grass biomass, correlated closely with variation in GEP and ER. Precipitation (and thus soil moisture) regulated seasonal and inter-annual variations in GEP and ER, and subsequently NEE. Moreover, both water and N addition effects depended greatly on the initial water condition in this temperate semiarid steppe.
AB - Changes in precipitation patterns and N cycling across the globe are likely to affect ecosystem primary productivity and CO2 exchanges, especially in arid and semi-arid grasslands. To evaluate the effects of water and N availability on ecosystem CO2 fluxes, we conducted a manipulative field experiment with water and N addition in a temperate semiarid steppe in 2006 and 2007 with remarkably different amount of natural precipitation. For each growing season (June-September), water (15 mm) was added about every 2 weeks, which summed up to about 120 mm year-1. N (as urea) was added at a rate of 6. 96 g N m-2 every month during the same period. Variations of the growing-season CO2 fluxes, including net ecosystem exchange (NEE), gross ecosystem photosynthesis (GEP) and ecosystem respiration (ER) were examined. Net carbon uptake was found in all treatments over the growing season in both years, with the growing season average NEE ranging from -1. 27 to -5. 59 μmol m-2 s-1. During two growing seasons, water and N addition significantly increased NEE (+42% and +30% in 2006 and 2007, respectively), because greater stimulation of GEP than ER. Net primary productivity, especially grass biomass, correlated closely with variation in GEP and ER. Precipitation (and thus soil moisture) regulated seasonal and inter-annual variations in GEP and ER, and subsequently NEE. Moreover, both water and N addition effects depended greatly on the initial water condition in this temperate semiarid steppe.
KW - Ecosystem respiration
KW - Gross ecosystem photosynthesis
KW - Net ecosystem CO exchange
KW - Nitrogen
KW - Precipitation
KW - Semiarid steppe
UR - https://www.scopus.com/pages/publications/82555194077
U2 - 10.1007/s11104-011-0864-1
DO - 10.1007/s11104-011-0864-1
M3 - 文章
AN - SCOPUS:82555194077
SN - 0032-079X
VL - 349
SP - 227
EP - 240
JO - Plant and Soil
JF - Plant and Soil
IS - 1-2
ER -