A modeling approach of the relationship between nitrous oxide fluxes from soils and the water-filled pore space

Verfasser / Beitragende:
[E. Rabot, I. Cousin, C. Hénault]
Ort, Verlag, Jahr:
2015
Enthalten in:
Biogeochemistry, 122/2-3(2015-02-01), 395-408
Format:
Artikel (online)
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024 7 0 |a 10.1007/s10533-014-0048-1  |2 doi 
035 |a (NATIONALLICENCE)springer-10.1007/s10533-014-0048-1 
245 0 2 |a A modeling approach of the relationship between nitrous oxide fluxes from soils and the water-filled pore space  |h [Elektronische Daten]  |c [E. Rabot, I. Cousin, C. Hénault] 
520 3 |a Nitrous oxide (N2O) fluxes can increase significantly following small increases in soil water-filled pore space (WFPS). Thus, it is essential to improve our knowledge of this crucial relationship to better model N2O emissions by soils. We studied how much the addition of a gas transport and a gas-liquid equilibrium module to the model of N2O emissions NOE could improve simulation results. A sensitivity analysis of the modified model (NOEGTE: gas transport and equilibrium) was first performed, and then the model was tested with published data of a wetting-drying experiment. Simulated N2O fluxes plotted against WFPS appeared to be bell-shaped during the 7days simulated, combining the effects of the low N2O production for WFPS<0.62, and the slow gas diffusion for WFPS>0.95. The WFPS generating the maximum simulated N2O fluxes shifted with time, from 0.76 after 12h, to 0.79 after 168h, because of an increase over time of the gas concentration gradient between the soil surface and the atmosphere. NOEGTE appeared able to capture the pattern of N2O emissions monitored in the experimental data. In particular, N2O peaks during drying were well reproduced in terms of timing, but their magnitudes were often overestimated. They were attributed to the increasing gas diffusivity and N2O exchanges from the liquid phase to the gaseous phase. 
540 |a Springer International Publishing Switzerland, 2014 
690 7 |a Nitrous oxide emission modeling  |2 nationallicence 
690 7 |a Water-filled pore space  |2 nationallicence 
690 7 |a Gas diffusivity  |2 nationallicence 
690 7 |a Soil  |2 nationallicence 
700 1 |a Rabot  |D E.  |u INRA, UR0272, UR Science du Sol, 45075, Orléans, France  |4 aut 
700 1 |a Cousin  |D I.  |u INRA, UR0272, UR Science du Sol, 45075, Orléans, France  |4 aut 
700 1 |a Hénault  |D C.  |u INRA, UR0272, UR Science du Sol, 45075, Orléans, France  |4 aut 
773 0 |t Biogeochemistry  |d Springer International Publishing  |g 122/2-3(2015-02-01), 395-408  |x 0168-2563  |q 122:2-3<395  |1 2015  |2 122  |o 10533 
856 4 0 |u https://doi.org/10.1007/s10533-014-0048-1  |q text/html  |z Onlinezugriff via DOI 
898 |a BK010053  |b XK010053  |c XK010000 
900 7 |a Metadata rights reserved  |b Springer special CC-BY-NC licence  |2 nationallicence 
908 |D 1  |a research-article  |2 jats 
949 |B NATIONALLICENCE  |F NATIONALLICENCE  |b NL-springer 
950 |B NATIONALLICENCE  |P 856  |E 40  |u https://doi.org/10.1007/s10533-014-0048-1  |q text/html  |z Onlinezugriff via DOI 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Rabot  |D E.  |u INRA, UR0272, UR Science du Sol, 45075, Orléans, France  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Cousin  |D I.  |u INRA, UR0272, UR Science du Sol, 45075, Orléans, France  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Hénault  |D C.  |u INRA, UR0272, UR Science du Sol, 45075, Orléans, France  |4 aut 
950 |B NATIONALLICENCE  |P 773  |E 0-  |t Biogeochemistry  |d Springer International Publishing  |g 122/2-3(2015-02-01), 395-408  |x 0168-2563  |q 122:2-3<395  |1 2015  |2 122  |o 10533