焊剂(冶金)
同位素
稳定同位素比值
土壤水分
扩散
化学
土壤科学
大气科学
环境科学
环境化学
地质学
热力学
物理
量子力学
有机化学
作者
Ronald Amundson,Jennifer V. Mills,Laura N. Lammers,Matti Barthel,Nora Gallarotti,Johan Six,Gerhard Gebauer,G. E. Maurer
摘要
Abstract The stable N and O isotope composition of soil and soil‐respired N 2 O is increasingly measured, yet a solid theoretical framework for interpreting the data remains to be developed. Here, the physical processes that affect soil N 2 O and its isotopes are embedded in a diffusion/reaction model. Numerical experiments are compared to data to demonstrate how various soil processes influence depth profiles and surface fluxes of soil N 2 O, δ 15 N N2O , and δ 18 O N2O . Model predictions and data suggest that the isotope composition of the net N 2 O soil flux, in soils that have N 2 O consumption, is a function of the net flux rate, and the isotope differences between the atmosphere and the biological source. Asymptotically large negative or positive δ 15 N flux and δ 18 O flux values occur as the net soil N 2 O flux approaches zero from positive or negative flux rates, respectively. This implies that the isotopic imprint of soil fluxes on the global atmospheric N 2 O pool is more variable than previously suggested. Additionally, the observed isotope values in static flux chambers are possibly complicated by the fact that consumption fluxes increase as the concentration in the chambers increases. This work reveals that even simple chamber flux measurements may possess isotope effects imparted by consumption during the chamber measurement and suggests ways to experimentally test this possibility. Additionally, simple methods to estimate depth‐dependent net production/consumption and its isotope effects are suggested. However, understanding the gross rates of the production and consumption of soil N 2 O remains an elusive goal.
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