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滇黔桂地区土壤有机碳储量与影响因素研究 总被引:13,自引:1,他引:12
土壤有机碳(SOC)库在陆地生态系统中具有重要作用.由于土壤剖面数量和采用的土壤图比例尺等的限制,目前土壤有机碳库估箅尚存在很大不确定性.为了提高SOC库估算的精确性,利用798个土壤剖面及1:50万土壤图估算了滇黔桂地区(云南省、贵州省和广西壮族自治区)的SOC储量,并采用逐步回归分析和通径分析方法分析了影响SOC密度的主要因子.结果表明,滇黔桂地区表土层(0-20 cm)和土壤剖面(0-100 cm)的SOC储量分别为4.39 Pg和10.91 Pg;SOC密度分别为56.2Mg·hm-2和139.8 Mg·hm-2.高于全国平均水平.环境因子(海拔、经度、纬度、气温和降雨)、成土母质和土地利用方式对表土层和土壤剖面SOC密度变异性的解释度分别为37.9%和30.7%;环境因子为影响SOC密度的主要因子.环境因子中.气温对SOC密度的影响大干降雨,其中气温和降雨的变化分别主要由海拔和纬度的变化引起的.除气温和降雨外,还有其它随海拔或经纬度而变化的因子也对SOC密度产生显著影响,这种影响要大于降雨的影响. 相似文献
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黄土丘陵区不同有机碳背景下侵蚀坡面土壤呼吸特征 总被引:4,自引:1,他引:3
以黄土丘陵区5个不同有机碳背景的坡面S型小区(坡顶为对照区、坡中为侵蚀区、坡脚为沉积区)为研究对象,通过对土壤呼吸速率的动态观测,分析坡面不同类型区土壤呼吸特征及其与土壤温湿度、有机碳和坡位的关系.结果表明,土壤温度的变化对沉积区土壤呼吸影响较大,土壤湿度的变化对侵蚀区土壤呼吸影响较大.有机碳是影响土壤呼吸的首要因子,可解释土壤呼吸变异的54.72%;其次是土壤湿度、坡位和土壤温度,分别可解释土壤呼吸变异的18.86%、16.13%和10.29%.侵蚀对坡面土壤呼吸的影响具有明显的原位和异位效应,侵蚀导致坡面侵蚀区土壤呼吸减小了21.14%,沉积区土壤呼吸增大了21.93%.侵蚀坡面土壤碳排放的源汇效应与有机碳水平有关,当土壤有机碳含量大于6.82 g·kg-1时,坡面侵蚀趋向于碳汇过程;当有机碳含量小于3.03 g·kg-1时,坡面侵蚀趋向于碳源过程.文中模型可以较好地反映有机碳和土壤温湿度与土壤呼吸的关系. 相似文献
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The effect of soil organic matter on fate of polycyclic aromatic hydrocarbons in soil: A microcosm study 总被引:1,自引:0,他引:1
Y. Yang N. Zhang D.Y. Zhang X.Q. Li 《Environmental pollution (Barking, Essex : 1987)》2010,158(5):1768-1774
A microcosm study was conducted to address the influences of air-soil partition and sequestration on the fate of polycyclic aromatic hydrocarbons (PAHs) in soil. Sterilized and unsterilized soils with soil organic carbon (SOC) content ranging from 0.23 to 7.06% were incubated in a chamber with six PAHs supplied through air. After 100 d of incubation when the system approached pseudo-steady state, the PAHs concentrations in the unsterilized soils still correlated with SOC significantly, while the association did not exist for those sterilized. The lower degradation rate in the soil with higher SOC was likely the major reason for the association between SOC and PAHs concentrations, while the decreased surface porosity likely suppressed such correlation for the sterilized samples. The results indicated that the sequestration was likely the major mechanism for the accumulation of PAHs in soils, while both of the soil porosity and PAHs properties had observed influences. 相似文献
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为探明黄土高原次生林演替过程中土壤有机碳库及其化学组成演化特征,选取陕北黄土高原黄龙山林区次生林演替初级阶段(山杨林)、过渡阶段(山杨、辽东栎混交林)和顶级阶段(辽东栎林)样地为研究对象,分析不同土层深度(0~10、 10~20、 20~30、 30~50和50~100 cm)土壤有机碳含量、储量和化学组成变化特征.结果表明:(1)土壤有机碳含量和储量随次生林演替过程显著增加(P<0.05),土壤有机碳含量随土层深度增加显著降低,土壤有机碳储量从初级阶段的64.8Mg·hm-2增加至顶级阶段的129.2Mg·hm-2,增加了99%.(2)次生林演替过程中,表层(0~30 cm)土壤有机碳中结构简单、相对易分解的脂肪族碳组分相对含量减少,结构复杂、相对难分解的芳香族碳组分相对含量增加,表明表层土壤有机碳化学组成稳定性随次生林演替过程显著提高,而深层(30~100cm)土壤有机碳化学组成稳定性表现为先增加后降低,即过渡阶段>顶级阶段>初级阶段.(3)次生林演替过程中,初级阶段和过渡阶段土壤有机碳化学组成稳定性随土层深度增加显著增... 相似文献
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生物炭作为一种土壤改良剂,已广泛用于农田土壤的改善.为明确生物炭对我国农田土壤固碳效应的影响,基于已公开发表的文献数据,利用Meta分析法研究生物炭施用在不同试验条件下对土壤团聚体、团聚体碳和土壤有机碳的响应.结果表明,与不施生物炭相比,施用生物炭显著增加土壤大团聚体比例(10.8%)和平均重量直径(MWD,13.3%),对土壤微团聚体和粉黏粒组分无显著作用;施用生物炭能够显著增加土壤各粒径团聚体碳和土壤总有机碳含量,土壤有机碳增幅为56.9%.通过亚组分析和Meta回归分析表明,华北地区施用生物炭土壤有机碳增幅最大(39.4%);不同试验类型下施用生物炭均能显著提高土壤有机碳含量;相比不施肥,施肥条件下施用生物炭能显著改善土壤结构,提升土壤肥力;生物炭在施用>2 a条件下,能显著提高大团聚体比例(15.7%)、MWD (21.2%)、大团聚体碳(31.7%)和土壤有机碳含量(40.0%);相比木材、木屑等原料制备的生物炭,农作物秸秆制备的生物炭对土壤的改良效果更佳;在高氮土壤中施用生物炭更有利于提高土壤团聚体稳定性.综上所述,生物炭施用可以改善土壤团聚结构,促进土壤有机碳积累,对农田肥力维持与提升具有重要意义. 相似文献
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廊坊市是北京市及周边传输通道“2+26”城市之一.为研究廊坊市开发区冬季颗粒物中碳组分污染特征,于2018年1月5日—2月5日在廊坊市开发区国控点位同步开展PM2.5及PM10样品采集,使用DRI分析OC(有机碳)与EC(元素碳)的质量浓度.结果表明:廊坊开发区冬季ρ(PM2.5)、ρ(PM10)分别为(54.5±46.0)(91.0±58.2)μg/m3.PM2.5中ρ(OC)、ρ(EC)分别为14.64、3.54 μg/m3,PM10中分别为17.07、4.58 μg/m3;PM2.5、PM10中ρ(OC)与ρ(EC)相关性均较好,R2均为0.91(P < 0.01),表明二者具有相似的来源;在PM2.5和PM10中OC/EC〔ρ(OC)/ρ(EC),下同〕分别为4.46和4.16,ρ(SOC)(SOC为二次有机碳)分别为6.15和5.88 μg/m3,分别占ρ(OC)的42.1%和37.7%,表明二次污染较严重.碳组分丰度及主成分分析结果表明,PM2.5与PM10中碳组分来源基本一致,主要来源于汽车尾气、水溶性极性化合物、生物质燃烧及燃煤的混合源,柴油车排放,以及道路扬尘.后向气流轨迹聚类结果表明,颗粒物及碳组分质量浓度受途径内蒙古自治区及河北省中部、北京市南部气团的影响较大;对于碳组分来源,道路扬尘及汽车尾气受气团传输的影响较大,而生物质燃烧、燃煤等受气团传输的影响较小.研究显示,汽车尾气、燃烧源及道路扬尘为廊坊市开发区冬季碳组分的主要来源. 相似文献
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以上海市4条具有城市化梯度差异的城市样带为研究对象,于2013年-2014年沿样带选取典型城市绿地进行土壤采样调查.研究区域内设置121个样点,包含7种不同的土地利用/功能区类型,采集0~15,15~30,30~50 cm深度梯度的土壤样品对土壤有机碳(SOC)含量进行测定,分析上海城市绿地SOC含量格局特征,并讨论其潜在影响因素.研究结果表明:(1)SOC含量在水平方向呈现空间异质性,城市化进程潜在影响了绿地土壤碳含量的空间格局;(2)伴随土地利用和功能区划的人为干扰作用是驱动上海城市土壤SOC储量变化的关键因素;(3)上海城市绿地土壤0~15 cm深度层的SOC含量显著大于下面两层(15~30和30~50 cm),表现出SOC含量在垂直方向上递减的规律. 相似文献
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A. Bhatia A. GhoshV. Kumar R. TomerS.D. Singh H. Pathak 《Agriculture, ecosystems & environment》2011,144(1):21-28
Physiological changes in crop plants in response to the elevated tropospheric ozone (O3) may alter N and C cycles in soil. This may also affect the atmosphere-biosphere exchange of radiatively important greenhouse gases (GHGs), e.g. methane (CH4) and nitrous oxide (N2O) from soil. A study was carried out during July to November of 2007 and 2008 in the experimental farm of Indian Agricultural Research Institute, New Delhi to assess the effects of elevated tropospheric ozone on methane and nitrous oxide emissions from rice (Oryza sativa L.) soil. Rice crop was grown in open top chambers (OTC) under elevated ozone (EO), non-filtered air (NF), charcoal filtered air (CF) and ambient air (AA). Seasonal mean concentrations of O3 were 4.3 ± 0.9, 26.2 ± 1.9, 59.1 ± 4.2 and 27.5 ± 2.3 ppb during year 2007 and 5.9 ± 1.1, 37.2 ± 2.5, 69.7 ± 3.9 and 39.2 ± 1.8 ppb during year 2008 for treatments CF, NF, EO and AA, respectively. Cumulative seasonal CH4 emission reduced by 29.7% and 40.4% under the elevated ozone (EO) compared to the non-filtered air (NF), whereas the emission increased by 21.5% and 16.7% in the charcoal filtered air (CF) in 2007 and 2008, respectively. Cumulative seasonal emission of N2O ranged from 47.8 mg m−2 in elevated ozone to 54.6 mg m−2 in charcoal filtered air in 2007 and from 46.4 to 62.1 mg m−2 in 2008. Elevated ozone reduced grain yield by 11.3% and 12.4% in 2007 and 2008, respectively. Global warming potential (GWP) per unit of rice yield was the least under elevated ozone levels. Dissolved organic C content of soil was lowest under the elevated ozone treatment. Decrease in availability of substrate i.e., dissolved organic C under elevated ozone resulted in a decline in GHG emissions. Filtration of ozone from ambient air increased grain yield and growth parameters of rice and emission of GHGs. 相似文献
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Changes in soil organic matter composition after afforestation of arable farmland in northeast China
Since the 1970s, a substantial area of arable farmland in a semi-humid area of northeast China has been planted as deciduous forests (Populus tomentosa Carr.). This study investigates the effects of afforestation on soil organic carbon (SOC) content and the chemical composition of the soil. Soil samples (Calcic chernozem) were collected from the upper 10?cm of paired arable land and secondary forests established 5 and 25 years previously. Carbon isotope analysis and pyrolysis–gas chromatography/mass spectrometry were used to determine SOC composition. The results show that (i) compared to the arable land, five years of afforestation caused a decrease in SOC and N concentration, while 25 years of afforestation resulted in an increase in SOC content; (ii) stable isotope δ13C analyses of the forest soils show gradual loss of crop-derived C and an accumulation of forest-derived C; and (iii) afforestation increased lignin abundance and decreased decompositional activity in the 25-year-old forest topsoil. Higher amounts of short-/mid-chain aliphatic compounds were observed in the 5-year-old forest (5–10?cm); and (iv) the arable soil contained substantially higher amounts of decomposed plant material and microbially derived substances. The results obtained suggest that long-term afforestation increases the SOC concentration, and alters the chemical composition of SOC. 相似文献