53 resultados para Soil carbon cycle

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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The carbon cycle of lower trophic level in the Bohai Sea is studied with a three-dimension-al biological and physical coupled model. The influences of the processes (including horizontal advection,river nutrient load, active transport etc. ) on the phytoplankton biomass and its evolution are estimated.The Bohai Sea is a weak sink of the CO2 in the atmosphere. During the cycle, 13.7% of the gross pro-duction of the phytoplankton enter the higher trophic level and 76.8 % of it are consumed by the respira-tion itself. The nutrient reproduction comes mainly from the internal biogeochemical loop and the rem-ineralization is an important mechanism of the nutrient transfer from organic form to inorganic. Horizon-tal advection decreases the total biomass and the eutrophication in some sea areas. Change in the nutrientload of a river can only adjust the local system near its estuary. Controlling the input of the nutrient,which limits the alga growth, can be very useful in lessening the phytoplankton biomass.

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Afforestation in China's subtropics plays an important role in sequestering CO2 from the atmosphere and in storage of soil carbon (C). Compared with natural forests, plantation forests have lower soil organic carbon (SOC) content and great potential to store more C. To better evaluate the effects of afforestation on soil C turnover, we investigated SOC and its stable C isotope (delta C-13) composition in three planted forests at Qianyanzhou Ecological Experimental Station in southern China. Litter and soil samples were collected and analyzed for total organic C, delta C-13 and total nitrogen. Similarly to the vertical distribution of SOC in natural forests, SOC concentrations decrease exponentially with depth. The land cover type (grassland) before plantation had a significant influence on the vertical distribution of SOC. The SOC delta C-13 composition of the upper soil layer of two plantation forests has been mainly affected by the grass biomass C-13 composition. Soil profiles with a change in photosynthetic pathway had a more complex C-13 isotope composition distribution. During the 20 years after plantation establishment, the soil organic matter sources influenced both the delta C-13 distribution with depth, and C replacement. The upper soil layer SOC turnover in masson pine (a mean 34% of replacement in the 10 cm after 20 years) was more than twice as fast as that of slash pine (16% of replacement) under subtropical conditions. The results demonstrate that masson pine and slash pine plantations cannot rapidly sequester SOC into long-term storage pools in subtropical China.

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Grazing intensity may alter the soil respiration rate in grassland ecosystems. The objectives of our study were to (1) determine the influence of grazing intensity on temporal variations in soil respiration of an alpine meadow on the northeastern Tibetan Plateau; and (2) characterise, the temperature response of soil respiration under different grazing intensities. Diurnal and seasonal soil respiration rates were measured for two alpine meadow sites with different grazing intensities. The light grazing (LG) meadow site had a grazing intensity of 2.55 sheep ha(-1), while the grazing intensity of the heavy grazing (HG) meadow site, 5.35 sheep ha(-1), was approximately twice that of the LG site. Soil respiration measurements - showed that CO2 efflux was almost twice as great at the LG site as at the HG site during the growing season, but the diurnal and seasonal patterns of soil respiration rate were similar for the two sites. Both exhibited the highest annual soil respiration rate in mid-August and the lowest in January. Soil respiration rate was highly dependent on soil temperature. The Q(10) value for annual soil respiration was lower for the HG site (2.75) than for the LG site (3.22). Estimates of net ecosystem CO2 exchange from monthly measurements of biomass and soil respiration revealed that during the period from May 1998 to April 1999, the LG site released 2040 g CO2 m(-2) y(-1) to the atmosphere, which was about one third more than the 1530g CO2 m(-2) y(-1) released at the HG site. The results suggest that (1) grazing intensity alters not only soil respiration rate, but also the temperature dependence of soil CO2 efflux; and (2) soil temperature is the major environmental factor controlling the temporal variation of soil respiration rate in the alpine meadow ecosystem. (C) 2003 Elsevier Ltd. All fights reserved.

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本文综述了全球碳循环研究、中国陆地生态系统碳循环研究及国内外草地生态系统碳循环研究的理论、方法、最新进展及主要成果。根据碱液吸收法对大针茅草原整个生长季土壤呼吸和地表凋落物分解的CO2排放速率的测定结果,分析了大针茅草原土壤呼吸和凋落物分解的CO2排放速率季节动态,并比较了二者对大针茅草原土壤呼吸和凋落物分解共同的CO2排放量的贡献。探讨了大针茅草原土壤呼吸和凋落物分解的CO2排放速率与各种生物因子、环境因子的关系,以及生物因子、环境因子对大针茅草原土壤呼吸和凋落物分解的CO2排放速率的协同作用;建立了土壤呼吸和凋落物分解的CO2释放速率与各种生物因子、环境因子及与它们的协同效应的回归模型。根据所建立的模型估算了大针茅草原土壤呼吸和凋落物分解CO2年排放速率。最后,计算了大针茅草原生态系统各碳库的贮量及它们之间的流量,建立了大针茅草原生态系统的碳循环模式,初步评价了大针茅草原目前对于大气碳库的源汇功能。 本文初步得出以下结论: 1)在整个观测期内,大针茅草原由土壤呼吸和地表凋落物分解的CO2排放速率的季节动态呈梯形曲线型,它在8月下旬达到最大值2.51gCm-2d-l; 2)大针茅草原土壤呼吸和凋落物分解速率的CO2排放速率季节变化趋势与地上生物量,尤其是地上绿色生物量部分的季节动态有一‘定同步性;地表凋落物层有减缓土壤向大气排放CO2的作用; 3)建立了大针茅草原土壤呼吸和凋落物分解速率的CO2排放速率y(gCm-2d-1)与绿色生物量x1(g)、降水量X2 (mm)的回归模型: Y= -1.556+0.0171 x+0.0169 X2 (当y≤1.5867时) Y= 0.6395 - 0.0059 x+0.0103 X2 (当y>1.5867时) 其相关系数r为0.9954。 4)根据建立的模型估算大针茅草原土壤呼吸和凋落物分解C02年排放速率为367.81gCm-2Y-1; 5)大针茅草原目前对于大气碳库来说是一个碳汇,它每年从大气中净吸收C02速率平均为147.5gCm-2Y-1。