Redistributions of 15N highlight turnover and replenishment of mineral soil organic N as a long-term control on forest C balance

被引:44
作者
Currie, WS [1 ]
Nadelhoffer, KJ
Aber, JD
机构
[1] Univ Michigan, Sch Nat Resource & Environm, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Dept Ecol & Evolutionary Biol, Ann Arbor, MI 48109 USA
[3] Univ New Hampshire, Complex Syst Res Ctr, Durham, NH 03824 USA
关键词
soil organic nitrogen; turnover; stable isotopes; modeling; carbon-nitrogen interactions; biogeochemistry; decomposition; nutrient limitation; nitrogen retention; C sequestration; stoichiometry;
D O I
10.1016/j.foreco.2004.03.015
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
A large-scale N-15 tracer study was initiated at the Harvard Forest in 1991 in two forest types (red pine and mixed hardwoods) as a means to test hypotheses concerning long-term dynamics in ecosystem-level N cycling and carbon-nitrogen interactions. Here we describe the application of a biogeochemical process model TRACE, with the ability to simulate 15N tracer redistributions, to help interpret the field study and explore its ramifications. We had three main goals: (1) to compare field results of 8-year time series in (NH4)-N-15 and (NO3)-N-15 redistributions against previous model predictions; (2) to gain insight into ecosystem C/N interactions through an iterative set of model changes and direct model-data comparisons; and finally (3) to forecast temporal dynamics in the future effects of elevated N inputs on altered C storage in the regionally representative hardwood forest. Model interpretations of field-observed N-15 redistributions indicated that mineral soil organic matter contains a fraction that retains illuviated N-15 rapidly (within 1 year), then releases some of this 15 N for plant uptake through the following 5-8-year period. Our simulations also suggested that the mineral soil supplied a long-term source of N for the aggrading pools of N in vegetation and the O horizon over the course of stand development. The model structure that best fits the decadal-scale field data for pools and fluxes of C, N, and N-15 forecasted an elevated C storage relative to elevated N inputs that is much lower than published estimates based on ecosystem stoichiometry. TRACE forecasted a maximum differential C storage in N-amended plots of 725 g C m(-2), occurring largely in living and dead wood, peaking 30 years after the start of N amendment treatments of +5 ga N m(-2) per year (a cumulative + 150 g N m(-2)). This amounts to a ratio of elevated C storage to cumulative, elevated N inputs of less than 5:1 over the 30-year period. These results imply that mineral soil supplies much of the N needed for forest aggradation, partially regulating changes in ecosystem C storage, and that elevated N deposition may cause relatively small amounts of elevated C storage after a time lag of decades. (C) 2004 Elsevier B.V. All rights reserved.
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页码:109 / 127
页数:19
相关论文
共 66 条
[1]   Inorganic nitrogen losses from a forested ecosystem in response to physical, chemical, biotic, and climatic perturbations [J].
Aber, JD ;
Ollinger, SV ;
Driscoll, CT ;
Likens, GE ;
Holmes, RT ;
Freuder, RJ ;
Goodale, CL .
ECOSYSTEMS, 2002, 5 (07) :648-658
[2]   A GENERALIZED, LUMPED-PARAMETER MODEL OF PHOTOSYNTHESIS, EVAPOTRANSPIRATION AND NET PRIMARY PRODUCTION IN TEMPERATE AND BOREAL FOREST ECOSYSTEMS [J].
ABER, JD ;
FEDERER, CA .
OECOLOGIA, 1992, 92 (04) :463-474
[3]   Modeling nitrogen saturation in forest ecosystems in response to land use and atmospheric deposition [J].
Aber, JD ;
Ollinger, SV ;
Driscoll, CT .
ECOLOGICAL MODELLING, 1997, 101 (01) :61-78
[4]   PLANT AND SOIL RESPONSES TO CHRONIC NITROGEN ADDITIONS AT THE HARVARD FOREST, MASSACHUSETTS [J].
ABER, JD ;
MAGILL, A ;
BOONE, R ;
MELILLO, JM ;
STEUDLER, P ;
BOWDEN, R .
ECOLOGICAL APPLICATIONS, 1993, 3 (01) :156-166
[5]  
ABER JD, 1984, LITTER DECOMPOSTION
[6]  
[Anonymous], 1991, Long-term ecological research in the United States
[7]   Anthropogenic nitrogen sources and relationships to riverine nitrogen export in the northeastern USA [J].
Boyer, EW ;
Goodale, CL ;
Jaworsk, NA ;
Howarth, RW .
BIOGEOCHEMISTRY, 2002, 57 (01) :137-169
[8]   Spatial patterns of aboveground production and mortality of woody biomass for eastern US forests [J].
Brown, SL ;
Schroeder, PE .
ECOLOGICAL APPLICATIONS, 1999, 9 (03) :968-980
[9]   Carbon metabolism of the terrestrial biosphere: A multitechnique approach for improved understanding [J].
Canadell, JG ;
Mooney, HA ;
Baldocchi, DD ;
Berry, JA ;
Ehleringer, JR ;
Field, CB ;
Gower, ST ;
Hollinger, DY ;
Hunt, JE ;
Jackson, RB ;
Running, SW ;
Shaver, GR ;
Steffen, W ;
Trumbore, SE ;
Valentini, R ;
Bond, BY .
ECOSYSTEMS, 2000, 3 (02) :115-130
[10]   PREFERENTIAL USE OF ORGANIC NITROGEN FOR GROWTH BY A NONMYCORRHIZAL ARCTIC SEDGE [J].
CHAPIN, FS ;
MOILANEN, L ;
KIELLAND, K .
NATURE, 1993, 361 (6408) :150-153