long residence times of rapidly decomposable soil organic matter: application of a multi-phase, multi-component, and vertically resolved model (bams1) to soil carbon dynamics
Clicks: 232
ID: 128977
2014
Article Quality & Performance Metrics
Overall Quality
Not rated
Combines reader engagement with the AI quality analysis. This
article has not been analysed, so there is no overall score —
reader engagement is measured and shown alongside.
Reader Engagement
Popular Article
30.0
/100
232 views
25 readers
AI Quality Assessment
Not analyzed
Readership in this journal
PopularRanked #8 of 133 articles by views in international journal of quantum chemistry
Most read
Least read
Bar heights use a square-root scale. Only the 120 most-read articles are drawn; the journal has 133 in total.
Mint this article as an NFT
Not yet mintedCreate a permanent, verifiable on-chain record of this article on the Scimatic Network. The NFT is held in your Journament account, and you can withdraw it to your own wallet at any time.
5
SUSD
one-off · no wallet required
Abstract
Accurate representation of soil organic matter (SOM) dynamics in Earth
system models is critical for future climate prediction, yet large
uncertainties exist regarding how, and to what extent, the suite of proposed
relevant mechanisms should be included. To investigate how various
mechanisms interact to influence SOM storage and dynamics, we developed an
SOM reaction network integrated in a one-dimensional, multi-phase, and
multi-component reactive transport solver. The model includes
representations of bacterial and fungal activity, multiple archetypal
polymeric and monomeric carbon substrate groups, aqueous chemistry, aqueous
advection and diffusion, gaseous diffusion, and adsorption (and protection)
and desorption from the soil mineral phase. The model predictions reasonably
matched observed depth-resolved SOM and dissolved organic matter (DOM)
stocks and fluxes, lignin content, and fungi to aerobic bacteria ratios. We
performed a suite of sensitivity analyses under equilibrium and dynamic
conditions to examine the role of dynamic sorption, microbial assimilation
rates, and carbon inputs. To our knowledge, observations do not exist to
fully test such a complicated model structure or to test the hypotheses used
to explain observations of substantial storage of very old SOM below the
rooting depth. Nevertheless, we demonstrated that a reasonable combination
of sorption parameters, microbial biomass and necromass dynamics, and
advective transport can match observations without resorting to an arbitrary
depth-dependent decline in SOM turnover rates, as is often done. We conclude
that, contrary to assertions derived from existing turnover time based model
formulations, observed carbon content and Δ14C vertical
profiles are consistent with a representation of SOM consisting of carbon
compounds with relatively fast reaction rates, vertical aqueous
transport, and dynamic protection on mineral surfaces.
| Reference Key |
riley2014geoscientificlong
Use this key to autocite in the manuscript while using
SciMatic Manuscript Manager or Thesis Manager
|
|---|---|
| Authors | ;W. J. Riley;F. Maggi;M. Kleber;M. S. Torn;J. Y. Tang;D. Dwivedi;N. Guerry |
| Journal | international journal of quantum chemistry |
| Year | 2014 |
| DOI |
10.5194/gmd-7-1335-2014
|
| URL | |
| Keywords |
Citations
No citations found. To add a citation, contact the admin at info@scimatic.org
Comments
No comments yet. Be the first to comment on this article.