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1.
以干旱区典型绿洲农田区——玛纳斯县中部农田为研究区,以土壤有机碳为研究对象,结合野外土壤调查及实验室分析数据研究了土壤有机碳的垂直分布特征,并分析土壤质地、地形、土地利用、作物类型等不同因子对农田土壤有机碳的影响。结果表明:玛纳斯县中部农田土壤有机碳是自然环境综合因素的结果,土壤有机碳含量随着土壤深度的增加不断减小;不同土壤质地土壤有机碳含量的特征为:粘壤土粉壤土沙壤土;不同地形因子中坡向与农田0~30、30~60 cm层的土壤有机碳含量呈显著正相关,海拔与农田60~100 cm层的土壤有机碳含量呈显著正相关;不同土地利用方式下土壤有机碳含量有较大差异,果园的土壤有机碳含量最高,荒地的土壤有机碳含量最低;不同作物类型土壤有机碳含量特征为:玉米地酒葡萄地棉花地,且差异显著。  相似文献   

2.
中国土壤有机碳密度和储量的估算与空间分布分析   总被引:136,自引:5,他引:136       下载免费PDF全文
基于 1∶40 0万的《中华人民共和国土壤图》和第二次土壤普查数据 ,运用地理信息系统技术 ,对中国土壤有机碳密度及储量做出估算 ,并且分析了土壤有机碳密度的空间分布差异。结果表明 :10 0cm深度的土壤有机碳密度介于 1 19kgm- 2 到 176 46kgm- 2 之间 ,2 0cm深度的土壤有机碳密度介于 0 2 7kgm- 2 到53 46kgm- 2 之间 ;10 0cm和 2 0cm深度的土壤有机碳储量分别为 84 4Pg (1Pg =10 15 g)和 2 7 4Pg ;土壤有机碳密度具有高度的空间变异性 ,东北地区、青藏高原的东南部、云贵高原等森林、草甸分布的地区有机碳密度最高 ,准噶尔盆地、塔里木盆地、阿拉善高原与河西走廊、柴达木盆地等沙漠化地区的土壤有机碳密度最低 ;土壤有机碳密度的空间分布主要受气候、植被以及人类活动的影响  相似文献   

3.
土壤有机碳研究进展   总被引:11,自引:2,他引:9  
回顾了国内外土壤有机碳研究进展及趋势,阐述了全球土壤有机碳库存量及分布、我国土壤有机碳库储量概况、农田土壤有机碳组成及其影响因素、农田土壤有机碳转化规律及影响因素,指出了我国在土壤有机碳研究方面存在的问题及今后的发展方向.  相似文献   

4.
海南岛红树林湿地土壤有机碳分布规律及影响因素研究   总被引:5,自引:0,他引:5  
辛琨  颜葵  李真  邱明红  胡杰龙 《土壤学报》2014,51(5):1078-1086
以海南岛为例,选择环岛东、西、南、北四个方向的典型红树林群落,对土壤进行取样,测定土壤有机碳含量,计算土壤有机碳密度。通过对比群落结构、土壤理化性质、不同区域的自然条件,探讨红树林土壤有机碳的分布规律以及影响碳储量的主要因素。研究表明,土壤有机碳分布特征在垂直方向上差异显著,土壤有机碳含量最大值出现在20~40 cm,土壤有机碳密度最大值出现在0~20cm;不同群落类型土壤有机碳含量存在明显差异,以东寨港红树林为例,海莲群落土壤有机碳含量最高,为20.89±6.75 g kg-1,人工无瓣海桑林最低,为12.71±3.62 g kg-1,进一步相关分析显示,土壤有机碳含量与群落植株胸径和基盖度呈显著正相关,与株高无关;在空间分布上,表现为东方四泌湾文昌清澜港儋州新英湾海口东寨港三亚湾。最后结合海南岛红树林面积,得出海南岛红树林土壤有机碳总储量为2.39×106t。  相似文献   

5.
陕西省土壤有机碳密度空间分布及储量估算   总被引:2,自引:1,他引:2  
土壤有机碳是反映土壤质量以及土壤缓冲能力的一个重要指标,对于温室效应与全球气候变化具有重要的控制作用。研究以陕西省第二次土壤普查数据为主要资料,结合多年的相关研究数据,对陕西省土壤碳密度及储量进行估算,并分析了陕西省土壤有机碳密度的空间分布特征。结果表明:榆林、延安地区北部以及商洛等地区分布的风沙土、黄绵土、石质土等土壤有机碳密度最小,小于4 kg m-2;陕西南部地区的土壤有机碳密度主要在4~9 kg m-2之间;咸阳地区及渭南地区土壤有机碳密度也较高,主要在9~12 kg m-2之间;关中地区渭河及其两岸、秦岭部分山区土壤有机碳密度最大,最高达30 kg m-2以上;陕西省平均土壤有机碳密度为6.87 kg m-2,在全省的22个土壤类型中,有13个土壤有机碳密度低于全国平均水平,占全省土壤总面积的77.42%,全省土壤有机碳储量约为1.41×1012kg。本研究为我国土壤碳库和碳平衡的研究提供基础数据。  相似文献   

6.
土壤有机碳是陆地碳库的重要组成部分,土地利用/覆被变化及土地管理通过影响土壤有机碳储量、组分、时空分布,进而影响全球碳循环和全球气候变化,是当前的研究热点。土地利用变化对土壤有机碳影响的研究已有很多,但基于文献计量视角的分析报道较少。以Web of Science数据库和CNKI数据库为数据源,通过文献计量学方法和Citespace软件平台,分析了1991~2014年土地利用变化与管理对土壤有机碳影响的研究进展及热点。研究表明:森林、草地、农田等土地利用类型及土地利用变化与管理对土壤有机碳的影响是研究的重点;森林、草地生态系统主要通过土地利用变化(林地转化为次生林、草地、耕地;草地过渡放牧或转化为耕地)影响土壤有机碳变化;农田主要通过土地管理(退耕还林还草、耕作方式、施肥等)来影响土壤有机碳变化;土壤有机碳变化研究选取的指标越来越具体化,模型多样化,但土壤有机碳模型研究还未成体系,土壤有机碳变化趋势预测是未来研究的重点。  相似文献   

7.
以中国土种志资料为基础,分析了耕地和非耕地表层土壤有机碳含量的变异性,以及各大区域土壤有机碳含量在耕地和非耕地、水田和旱地之间的差异;同时结合非耕地有机碳含量和耕地面积数据,估算了由于耕地的开垦而导致的土壤表层有机碳贮量的变化。结果表明,耕地土壤有机碳含量的变异性小于非耕地,水田小于旱地;耕地土壤有机碳含量明显低于非耕地土壤,平均减少了51.5%,水田却明显高于旱地;水田和旱地的开垦分别导致土壤表层有机碳贮量减少了0.67,3.63 Pg,共计4.3 Pg。最后还分析了土壤有机碳库减少量的空间分布格局,探讨了东北和华北这两大区域土壤有机碳贮量下降程度最大的原因,是由于黑土、黑钙土、暗棕壤等富含有机碳的草原草甸和湿地土壤大量开垦以及耕作管理措施粗放所致。  相似文献   

8.
土壤有机碳储量研究进展   总被引:7,自引:0,他引:7  
如何有效进行土壤有机碳储量估算,世界各国都做了有益地探索和研究。本文通过对比分析目前国内外土壤有机碳相关研究成果,系统总结了土壤有机碳的研究背景、研究方法、评价指标及储量等主要成果,并指出了我国在土壤有机碳储量研究方面存在的若干问题。最后提出目前需要深入的几个研究方向,包括采用大比例尺地形图,进一步提高不同海拔地块土壤碳储量估算精度,加强土壤有机碳与气候相互作用机理分析,综合分析土地利用/覆盖变化对土壤有机碳的影响,并寻求不同时空条件下土壤有机碳估算方法。  相似文献   

9.
火干扰对森林生态系统土壤有机碳影响研究进展   总被引:1,自引:0,他引:1  
森林生态系统土壤有机碳作为陆地碳循环研究的重要内容,在全球变化和全球碳收支的研究中占据了重要地位。火干扰能改变森林生态系统中土壤与大气的碳素交换,是森林生态系统碳循环的重要影响因子。为此,加强火干扰下森林生态系统土壤有机碳循环研究,了解火干扰与森林生态系统土壤有机碳循环之间的交互关系,有助于揭示火干扰下土壤碳库动态机理。本研究简要综述了火干扰对森林生态系统土壤有机碳影响研究进展,探讨了不同强度林火对土壤有机碳的影响,分析了其产生机理;阐述了火干扰不同时间后土壤有机碳变化、火干扰对不同土层土壤有机碳的影响,并分析了其原因。最后讨论了火干扰对森林土壤有机碳影响研究中存在的相关问题,提出了在今后研究中应关注的问题,并对未来的研究方向进行了展望。  相似文献   

10.
荒漠草原沙漠化对土壤无机碳和有机碳的影响   总被引:1,自引:0,他引:1  
以空间代替时间的方法,通过对宁夏荒漠草原不同沙漠化阶段土壤有机碳(SOC)和无机碳(SIC)的研究,探讨荒漠草原沙漠化对土壤SIC、SOC及不同粒径组分土壤SIC、SOC分布特征的影响。结果表明:(1)随着荒漠草原沙漠化程度的加剧,0—10cm土层各粒径组分土壤SIC和SOC含量呈下降趋势。半固定沙地和流动沙地各粒径组分土壤SIC含量均表现为黏粉粒无机碳(CSIC)>细砂粒无机碳(FIC)>粗砂粒无机碳(CIC),而SOC含量均表现为细砂粒有机碳(FOC)>粗砂粒有机碳(COC)>黏粉粒有机碳(CSOC)。(2)随着荒漠草原沙漠化程度的加剧,0—30cm土层土壤无机碳(SICD)、土壤有机碳(SOCD)和土壤总碳(STCD)密度均表现为荒漠草原>固定沙地>半固定沙地>流动沙地。固定沙地、半固定沙地和流动沙地土壤SOCD、SICD分别比荒漠草原降低了18.5%,57.7%,60.5%和6.7%,35.9%,47.0%。(3)0—10cm土层各粒径组分土壤SOC和SIC含量、全土SOC含量与0—30cm土层SOC和SIC均呈显著正相关关系,其中土壤粗砂粒有机碳和粗砂粒无机碳对SOC影响最大,而土壤黏粉粒有机碳和黏粉粒无机碳与全土SIC含量呈显著负相关关系。因此,沙漠化防治对于减少荒漠草原土壤碳损失极为重要。  相似文献   

11.
大尺度散体组构分维和SOC判据研究   总被引:3,自引:0,他引:3  
介绍了15组散粒体自组织临界性与粒径的非均匀性有关的真实沙堆模型,分析了实验表现出来的3种动力学行为:即准周期分布、正态分布和负幂律分布;进而研究了非均匀系数不能描述系统组构的自相似性和作为自组织临界性的判据。应用分形理论研究了沙堆组构的分形特征。研究结果表明,非均匀系数为1.53~5.0时,沙堆组构具有良好的分形特征,分维数在非均匀系数<2.85时增长较快,>2.85时增长较慢,但分维数不超过3.0。分析了沙堆组构的分形特征与自组织临界性的内在联系,指出呈现出自组织临界性的系统具有稳健的分形结构,并讨论了自组织临界性的判据。最后探讨了SOC理论在山地灾害预测预报和防治工程设计中的应用。  相似文献   

12.
红壤区土壤有机碳时间变异及合理采样点数量研究   总被引:4,自引:0,他引:4  
相对于土壤有机碳(soil organic carbon,SOC)空间变异性及合理采样点数量的研究,其时间变异性及揭示特定时段SOC变化所需采样点数量的研究较少。选择红壤丘陵区的江西省余江县为研究区,分析了1982—2007年SOC含量的时间变异特征,并估算了揭示该时段SOC变化所需土壤采样点数量。结果表明,1982—2007年SOC含量均值由14.18增至16.27 g kg-1,增幅为14.74%,其变异系数则由0.22上升为0.44。各土地利用方式中,水田和林地SOC含量分别增加了2.93和3.12g kg-1,而旱地则降低了2.55 g kg-1;同时各利用方式的SOC含量变异系数均出现较大幅度的提高。基于两时段的全部样点,在95%和90%置信区间上,计算得到揭示该时段全县SOC时间变异所需的采样点数量分别为186和147。基于各土地利用方式的SOC变化,计算得到水田、旱地和林地所需采样点数量分别为68、44和144(95%置信区间)及54、34和112(90%置信区间);揭示旱地SOC变化所需采样点数量应为水田的60%以上,而林地所需样点则为水田的2倍以上。该研究结果可为红壤区SOC时间变异性及其调查采样提供参考。  相似文献   

13.
荒漠化重建地区土壤有机碳动态研究   总被引:3,自引:1,他引:3  
土壤有机碳(Soilorganiccarbon,SOC)是反映土地荒漠化的重要指标。本研究以陕西省榆林市为例,开展小区域沙漠化重建地区SOC动态的实证研究。SOC数据来源于1982年土壤普查和2003年重复采样,土样的采集、分析和统计方法分别为土钻取土法、重铬酸钾氧化法、吸管法和面积加权法。研究结果表明:SOC含量与粗砂粒显著负相关(R=-0.50,a=0.01),与粘粒显著正相关(R=-0.45,a=0.05),20年间土壤颗粒细化趋势比较明显;20年间原始剖面、1m深和耕层SOC含量、密度和储量都有不同程度的增加,其中对人类活动最敏感的耕层土壤变化最显著,SOC含量、密度和储量分别增加了0.55g/kg,0.15kg/m2,10.07GgC。该研究结果表明防风固沙、可持续性农耕等措施会卓有成效地促进土地沙漠化的恢复和重建。  相似文献   

14.
Climate, soil physical–chemical characteristics, land management, and carbon (C) input from crop residues greatly affect soil organic carbon (SOC) sequestration. According to the concept of SOC saturation, the ability of SOC to increase with C input decreases as SOC increases and approaches a SOC saturation level. In a 12‐year experiment, six semi‐arid cropping systems characterized by different rates of C input to soil were compared for ability to sequester SOC, SOC saturation level, and the time necessary to reach the SOC saturation level. SOC stocks, soil aggregate sizes, and C inputs were measured in durum wheat monocropping with (Ws) and without (W) return of aboveground residue to the soil and in the following cropping systems without return of aboveground residue to soil: durum wheat/fallow (Wfall), durum wheat/berseem clover, durum wheat/barley/faba bean, and durum wheat/Hedysarum coronarium. The C sequestration rate and SOC content were lowest in Wfall plots but did not differ among the other cropping systems. The C sequestration rate ranged from 0.47 Mg C ha−1 y−1 in Ws plots to 0.66 Mg C ha−1 y−1 in W plots but was negative (−0.06 Mg C ha−1 y−1) in Wfall plots. Increases in SOC were related to C input up to a SOC saturation value; over this value, further C inputs did not lead to SOC increase. Across all cropping systems, the C saturation value for the experimental soil was 57.7 Mg ha−1, which was reached with a cumulative C input of 15 Mg ha−1. Copyright © 2015 John Wiley & Sons, Ltd.  相似文献   

15.
The importance of soil aggregation in determining the dynamics of soil organic carbon (SOC) during erosion, transportation and deposition is poorly understood. Particularly, we do not know how aggregation contributes to the often-observed accumulation of SOC at depositional sites. Our objective was to assess how aggregation affects SOC stabilization in comparison to interactions of SOC with minerals. We determined and compared aggregate size distributions, SOC distribution in density fractions, and lignin-derived phenols from aggregated soil samples at both eroding and depositional sites. The stabilization effect of aggregation was quantified by comparing mineralization from intact and crushed macro-aggregates. Deposition of eroded soil material resulted in carbon (C) enrichment throughout the soil profile. Both macro-aggregate associated SOC and C associated with minerals (heavy fraction) increased in their importance from the eroding to the depositional site. In the uppermost topsoil (0–5 cm), SOC mineralization from intact aggregates was larger at the depositional site than at the eroding site, reflecting the large input of labile organic matter (plant residues) promoting aggregation. Contrastingly, in the subsoil, mineralization rates were lower at the depositional site because of effective stabilization by interactions with soil minerals. Aggregate crushing increased SOC mineralization by 10–80% at the eroding site, but not at the depositional site. The content of lignin-derived phenols did not differ between eroding and depositional sites in the topsoil (24.6–30.9 mg per g C) but was larger in the subsoil of the eroding site, which was accompanied by higher lignin oxidation. Lignin data indicated minor effects of soil erosion and deposition on the composition of SOC. We conclude that SOC is better protected in aggregates at the eroding than at the depositional site. During transport disaggregation and consequently SOC mineralization took place, while at the depositional site re-aggregation occurred mainly in the form of macro-aggregates. However, this macro-aggregation did not result in a direct stabilization of SOC. We propose that the occlusion of C inside aggregates serves as a pathway for the eroded C to be later stabilized by organo-mineral interaction.  相似文献   

16.
Uncertainties in estimates of soil carbon (C) stocks and sequestration result from major gaps in knowledge of C storage in soils, land‐use history, the variability of field measurements, and different analytical approaches applied. In addition, there is a lack of long‐term datasets from relevant land‐use systems. As in many European countries, a national database on soil organic carbon (SOC) including all relevant information for the determination of soil C stocks is likewise missing in Germany. In this paper, we summarize and evaluate the present state of knowledge on organic‐C contents/pools in soils of Germany and discuss the need for the acquisition and access to new data on soil organic carbon. Despite the number of agricultural sites under permanent soil monitoring, regional surveys on SOC, comprehensive ecosystem studies, and long‐term field experiments, there is a striking lack of data in Germany particularly with regard to agricultural soils. Apart from a missing standardization of methods and homogeneous baseline values, the implementation of a periodic, nation‐wide soil inventory on agricultural soils is required in order to simultaneously record information on land use, land‐use change, and agricultural practice. In contrast, the existing national inventory of forest soils provides information on C‐stock changes in forest soils, although there is some concern with regard to the representativeness of the sampling design to adequately address the problem of spatial heterogeneity and temporal variability. It is concluded that the lack of comprehensiveness, completeness, actuality, data harmonization, and standardized sampling procedures will further prevent the establishment of a SOC database in Germany with regard to the monitoring of trends in soil C pools and fluxes and the assessment of long‐term C‐sequestration potentials of soils under different land use. A future soil inventory should represent the heterogeneity of organic matter through functionally different SOC pools, topsoil characteristics as well as content, pool, and flux data for the deeper mineral‐soil compartments.  相似文献   

17.
Soil organic carbon (SOC) is an important component in agricultural soil, and its stock is a major part of global carbon stocks. Estimating the SOC distribution and storage is important for improving soil quality and SOC sequestration. This study evaluated the SOC distribution different land uses and estimated the SOC storage by classifying the study area by land use in a small watershed on the Loess Plateau. The results showed that the SOC content and density were affected by land use. The SOC content for shrubland and natural grassland was significantly higher than for other land uses, and cropland had the lowest SOC content. The effect of land use on the SOC content was more significant in the 0-10 cm soil layer than in other soil layers. For every type of land use, the SOC content decreased with soil depth. The highest SOC density (0-60 cm) in the study area was found in shrublandII (Hippophae rhamnoides), and the other land uses decreased in the SOC density as follows: natural grassland > shrublandI (Caragana korshinskii) > abandoned cropland > orchard > level ground cropland > terrace cropland > artificial grassland. Shrubland and natural grassland were the most efficient types for SOC sequestration, followed by abandoned cropland. The SOC stock (0-60 cm) in this study was 23,584.77 t with a mean SOC density of 4.64 (0-60 cm).  相似文献   

18.
安徽省几种主要土壤有机碳含量及其组分研究   总被引:2,自引:0,他引:2  
研究了安徽省4种主要类型土壤(砂姜黑土、潮土、水稻土和红壤)有机碳(SOC)、可溶性有机碳(DOC)和微生物量碳(MBC)的含量剖面分布及其相互关系.结果表明,4种土壤SOC,DOC和MBC含量存在明显差异,但其剖面分布规律基本一致,表层含量较高.随着土壤层次加深而依次递减;表层土壤SOC含量顺序为:水稻土>砂姜黑土>潮土>红壤,DOC含量顺序为:砂姜黑土>潮土>水稻土>红壤,MBC含量顺序为:潮土>砂姜黑土>红壤>水稻土.DOC和MBC分别只占SOC的4.92%~18.97%和1.86%~5.68%.土壤SOC,DOC与MBC之间存在着密切的关系,3者之间的相关性均分别达到了10%,5%或1%的显著或极显著水平.  相似文献   

19.
Mapping soil organic carbon (SOC) and establishing any change over time are important because of CO2 fluxes between soil and atmosphere and cropland decreases in SOC. The latter is one of the main causes of soil fertility decline and increased erodibility. As most analytical methods underestimate total SOC content, correction factors are needed to avoid methodological bias when comparing SOC data from sampling campaigns using different analytical procedures. The traditional method for SOC analysis used to be, and in most cases still is wet oxidation in potassium dichromate, better known as the Walkley & Black method. In this study, we aim to estimate correction factors for the classic and modified version of the Walkley & Black method for different land use and soil type combinations for agricultural soils in north Belgium. General correction factors of 1.47 for the classic Walkley & Black method and 1.20 for the modified Walkley & Black method are proposed. The results show that sandy grassland soils are characterised by lower recoveries than silt loam grassland soils. Furthermore, the correction factor appears to increase with soil wetness.  相似文献   

20.
There are a number of uncertainties in the use of 137Cs as a marker for deriving soil erosion rates. However, this should not limit other potential uses of this anthropogenic radionuclide in the study of soil landscape processes. This study outlines a sampling methodology which aids in the assessment of the history of erosion and depositional processes within a landscape unit. The depth distribution of 137Cs and soil organic carbon (SOC) was utilized as a means of determining the erosion and depositional history of a conventionally tilled agricultural field in southern Ontario, Canada. Three transects oriented along the slope of a large field had five soil profiles excavated at the summit, sideslope, shoulder slope, footslope and toeslope landscape positions. The soils were sampled in 5 cm increments, and 137Cs and SOC were determined on the samples. The results show that soil redistribution within landscape units of agricultural fields has been substantial both before and after fallout of 137Cs to the soil surface. Soils in depositional areas contained significant 137Cs and SOC at depths beyond which the plow can attain at present. This implies that a significant amount of carbon is being sequestered beneath the present plow layer, and the characterization of this pool must be considered in deriving the dynamics of SOC in agroecosystems.  相似文献   

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