Steady state turnover time of carbon in the Australian terrestrial biosphere

被引:102
作者
Barrett, DJ [1 ]
机构
[1] CSIRO Plant Ind, Canberra, ACT 2601, Australia
关键词
terrestrial carbon cycle; mean residence time; model parameterization; genetic algorithm;
D O I
10.1029/2002GB001860
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
[1] The turnover time of terrestrial carbon was estimated using a multiobjective parameterization method that combined data sets of plant production, biomass, litter and soil-C observations in the calibration of a C-cycle model for the Australian continent (VAST1.1; Vegetation and Soil carbon Transfer). The method employed a genetic algorithm to minimize model-data deviations and maximize consistency between estimated model parameters and all available data. Based on the parameterization, the turnover time of biosphere C for Australia was estimated to be 78 years which is longer than global C-turnover estimates (of 26-60 years) due entirely to slower turnover of C in the upper 20 cm of soil. Turnover times of litter and deeper soil-C were similar to global values. By splitting total C in the upper 20 cm between labile and nonlabile fractions (based on published data) the turnover time of the labile pool was at least 44 years which is still longer than global estimates (9-25 years). Longer C-turnover in Australian surface soils was attributed to (1) limited soil moisture slowing decomposition more than net primary production, (2) frequent fires leading to a large fraction of nonlabile charcoal C in soil, and (3) strong adsorbing capacity for organic-C in these highly weathered soils. It was found that >89% of the C flux to the atmosphere from decomposition of organic matter originated from fine litter, coarse woody debris and the upper 20 cm of soil in all biomes.
引用
收藏
页数:21
相关论文
共 142 条
[121]   Variation in measured values of photosynthetic quantum yield in ecophysiological studies [J].
Singsaas, EL ;
Ort, DR ;
DeLucia, EH .
OECOLOGIA, 2001, 128 (01) :15-23
[122]   Non-living soil organic matter: what do we know about it? [J].
Skjemstad, JO ;
Janik, LJ ;
Taylor, JA .
AUSTRALIAN JOURNAL OF EXPERIMENTAL AGRICULTURE, 1998, 38 (07) :667-680
[123]   TURNOVER OF SOIL ORGANIC-MATTER UNDER PASTURE AS DETERMINED BY C-13 NATURAL ABUNDANCE [J].
SKJEMSTAD, JO ;
LEFEUVRE, RP ;
PREBBLE, RE .
AUSTRALIAN JOURNAL OF SOIL RESEARCH, 1990, 28 (02) :267-276
[124]   The chemistry and nature of protected carbon in soil [J].
Skjemstad, JO ;
Clarke, P ;
Taylor, JA ;
Oades, JM ;
McClure, SG .
AUSTRALIAN JOURNAL OF SOIL RESEARCH, 1996, 34 (02) :251-271
[125]  
SMITH GF, 1997, SO AFRICAN BOT DIVER, V2, P1
[126]   SCLEROPHYLLY AND FOLIAR NUTRIENT STATUS OF MEDITERRANEAN-CLIMATE PLANT-COMMUNITIES IN SOUTHERN AUSTRALIA [J].
SPECHT, RL ;
RUNDEL, PW .
AUSTRALIAN JOURNAL OF BOTANY, 1990, 38 (05) :459-474
[127]   SEPARATING THE DIFFUSE AND DIRECT COMPONENT OF GLOBAL RADIATION AND ITS IMPLICATIONS FOR MODELING CANOPY PHOTOSYNTHESIS .1. COMPONENTS OF INCOMING RADIATION [J].
SPITTERS, CJT ;
TOUSSAINT, HAJM ;
GOUDRIAAN, J .
AGRICULTURAL AND FOREST METEOROLOGY, 1986, 38 (1-3) :217-229
[128]   Impulse response functions of terrestrial carbon cycle models: method and application [J].
Thompson, MV ;
Randerson, JT .
GLOBAL CHANGE BIOLOGY, 1999, 5 (04) :371-394
[129]   Mineral control of soil organic carbon storage and turnover [J].
Torn, MS ;
Trumbore, SE ;
Chadwick, OA ;
Vitousek, PM ;
Hendricks, DM .
NATURE, 1997, 389 (6647) :170-173
[130]  
Trumbore S, 2000, ECOL APPL, V10, P399, DOI 10.1890/1051-0761(2000)010[0399:AOSOMA]2.0.CO