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1.
土壤是陆地生态系统碳储存的重要场所,其养分变化与全球陆地碳循环密切相关。土壤养分是植物生长的重要保证,而土壤各养分之间是紧密联系的。理解土壤养分变化与环境因素的关系有助于更好地了解陆地生态系统碳、氮、磷循环。本研究以东北北部自东向西沿降水量梯度变化纬度带上的温带森林与干草地生态系统为研究对象,利用气象数据和野外土壤实测数据,分析了纬度带上不同植被类型土壤的有机碳、全氮、碳氮比、速效磷的空间分布格局及其与环境因子(年降水量、年均温、土壤pH值)的关系。研究纬度带上降水量自东向西逐渐减少,植被类型从温带森林过渡到干草原,与降水量和植被类型对应,植被生物量也自东向西呈现从高到低的分布梯度。研究结果表明:从整个研究带上来说,降水量与土壤pH值是土壤养分空间分布的决定因素,沿纬度带从东到西,随着降水量逐渐减少,土壤pH值逐渐增加,而土壤有机碳、全氮、碳氮比、速效磷含量逐渐减少。但如果将森林和草地分别讨论则发现,森林和草地生态系统的土壤养分环境控制因素有较大差别。对于草地生态系统而言,降水量和土壤pH值仍然是其土壤养分含量的控制因子,但森林生态系统由于所处区域降水量充足,降水量不再是其土壤养分的控制因子,降水量只与森林土壤碳氮比呈显著正相关。研究还发现森林土壤的速效磷含量与温度呈正相关,与土壤pH值呈负相关,说明温度对东北北部温带森林的土壤养分含量具有一定的控制作用。  相似文献   

2.
农田土壤固碳作用对温室气体减排的影响   总被引:7,自引:0,他引:7  
王树涛  门明新  刘微  许皞 《生态环境》2007,16(6):1775-1780
温室气体排放引起的全球气候变暖和平流层臭氧空洞已成为当前人们关注的环境问题之一。土壤碳库作为地表生态系统中最活跃的碳库之一,是甲烷、二氧化碳、一氧化二氮等温室气体的重要释放源,也是重要的吸收汇。因此,寻找农田土壤系统碳管理的有效方法已经成为缓解温室效应的重要科学问题。西方发达国家已将固碳农业作为环境管理的重要导向,应用颗粒分组13CNMR或CPMAS-NMR技术对土壤碳固定的机制研究指出微团聚体与矿物-粘粒复合体的相互作用是土壤有机碳稳定存在的主要方式,揭示了土壤有机碳的腐殖质转化及其与土壤矿物、金属氧化物结合的微观水平,且从土壤物理结构、化学组成和生物学特性等多学科交叉研究土壤有机碳的固定机理及其稳定机制。长期传统的土地利用方式和管理措施所导致的土壤有机碳含量、密度及垂直分布的变化是造成土壤碳库损失的主要原因,为了增加农业生态系统土壤有机碳的含量,土地利用方式和农业管理措施应该从增加有机碳输入量和减少有机碳矿化两方面着手,加强对农业土壤固碳潜力和土壤碳库稳定性影响因素的多角度研究。  相似文献   

3.
Soil is believed to be the most important sink for sequestering atmospheric carbon. Hence, estimating soil carbon sequestration potential has been carried out for different regions and agricultural practices. However, soil carbon saturation (SCS), a fundamental concept for estimating soil carbon sequestration potential, has not been estimated for countries or regions. In this study, we estimated SCS of agricultural land for most provinces in China for 1990 by the DNDC model, a carbon and nitrogen biogeochemical cycle model, in order to provide a basis for farmers to select the land use, tillage and fertilization regimes to sequester more carbon. The result showed that SCS was as low as 0.48% in Tianjin and up to 5.14% in Tibet. There was a positive correlation between SCS and the proportion of paddy field in a province. In 1990, cropland soil carbon sequestration potential (SCSP) in China was -0.969 Gt C (-2.706 to 0.767 Gt C). This suggests that agricultural soil will be a carbon source to the atmosphere if agricultural practices are not altered. However, SCSP differed between provinces in China. SCSP was highest in Tibet (7.9 t C ha-1) and lowest in Heilongjiang Province (-60.8 t C ha-1), with a gradual decrease from south to north in China.  相似文献   

4.
热带山地雨林土壤球囊霉素的分布特征   总被引:1,自引:0,他引:1  
球囊霉素(GRSP)作为土壤有机碳的重要组分,对土壤质量和土壤碳库有着重要的指示作用。选择我国保存最完好的热带雨林海南尖峰岭为研究对象,通过不同海拔(300、600、900、1200 m)的样品采集,研究了热带山地雨林丛枝菌根(AM)的重要分泌物球囊霉素的空间分布特征,并结合土壤因子,进一步探讨了其分布机制,旨在阐明球囊霉素对热带山地雨林土壤碳库和土壤质量的贡献,丰富丛枝菌根的功能多样性理论基础。结果表明,4个海拔的植物都具有较高的菌根侵染水平,平均为82.92%。不同海拔间,土壤总提取球囊霉素(T-GRSP)和易提取球囊霉素(EE-GRSP)含量具有相同的变化规律,都在海拔1200 m时最高,显著高于其它3个海拔。尖峰岭T-GRSP的质量分数在1.79-3.11 mg·g^-1之间,平均2.205 mg·g^-1;EE-GRSP则为0.75-1.13 mg·g^-1,平均0.904 mg·g^-1。T-GRSP和EE-GRSP占土壤全碳比值的规律在4个海拔也一致,都是在海拔1200 m时最低。在4个海拔中,T-GRSP和EE-GRSP分别占到土壤全碳质量分数的4.33%-8.87%和1.58%-4.12%。对T-GRSP和EE-GRSP的影响因素分析则表明,土壤全碳、全氮和C/N都影响着GRSP的含量;无论是T-GRSP还是EE-GRSP都随着土壤全碳、全氮和C/N的增大而增加;三者对T-GRSP变异的解释率(63.16%、58.94%和36.05%)要远远高于对EE-GRSP变异的解释率(39.59%、32.19%和19.08%)。但土壤pH则仅影响着EE-GRSP的含量变化,全磷则对T-GRSP和EE-GRSP都没有影响。可见,热带雨林土壤中,GRSP含量较高,对土壤碳库具有重要的贡献,且受到土壤全碳和全氮及二者比例的显著影响。  相似文献   

5.
长期定位施肥对土壤的碳氮共济效应情景分析   总被引:1,自引:0,他引:1  
碳氮共济的概念体现了二者间共同依赖、共同转化、共同协作的关系,将土壤碳和氮均作为改善土壤质量的主动因素,这一概念有别于其它碳氮关系论述时只考虑元素间的被动耦合机制。土壤碳和氮之间存在着相互依存和相互制约的关系,土壤碳、氮在数量上和结构上需要处于什么样的状态才能够实现土壤碳氮的共济关系,土壤碳对氮有多大的承载能力等是值得探讨的问题。文章利用我国长期定位试验中的土壤碳氮数据,分析土壤的碳氮质量分数变化特征、施肥对土壤w(C)/w(N)比的影响、土壤碳对氮素的储存能力、碳氮共济关系及其情景分析,以便为充分挖掘土壤碳氮的生物学潜力、提高土壤生产力、改善环境和实现碳氮的良性循环提供依据。通过检索文献数据库,选取了69篇记载有土壤碳氮数据的有代表性的文章,获得土壤碳氮数据1782项。分析结果表明:土壤碳氮关系可以用yC=7.66xN+1.8162(r2=0.734**, n=737)表达,土壤平均全氮质量分数为1.17 g·kg-1,变化范围在0.08~3.52 g·kg-1之间,土壤平均有机碳质量分数为10.8 g·kg-1,变化范围在0.64~32.08 g·kg-1之间;土壤w(C)/w(N)比集中在7.6~10.7之间,占总样本的80%左右,有机无机配施有利于提高土壤的w(C)/w(N)比,单施化肥,特别是偏施某一种化肥时,将显著降低土壤的w(C)/w(N)比;在土壤氮素储存率为N 20 kg·hm-2·a-1,目标w(C)/w(N)比为9、10、11的情景下,目前已经处于碳饱和的土壤分别占:52.7%、72.1%、87.5%;储存率为N 50 kg·hm-2·a-1的情景下分别占:58.2%、78.2%、91.4%;储存率为N 100 kg·hm-2·a-1的情景下分别占68.7%、87.6%、95.8%。土壤碳氮质量分数变异很大,总体碳氮比稳定在7.66左右,偏施化肥将显著降低土壤的w(C)/w(N)比,较低的土壤w(C)/w(N)比和较高的氮素储  相似文献   

6.
浙北典型稻作区近30年表层土壤碳氮含量变化   总被引:3,自引:0,他引:3  
农业土壤碳库作为表生碳库的重要组成部分,对研究陆地生态系统碳循环具有重要意义。水稻土作为农业土壤的重要类型之一,其固碳能力研究对研究陆地生态系统碳循环具有现实意义。文章通过嘉善县20世纪80年代、2002年、2008年3次土壤调查数据,对嘉善县表层土壤中有机碳、氮含量及分布进行了分析,有机碳平均值在80年代到2002年呈下降趋势,2002—2008年微弱上升。全氮的平均值在80年代到2002年亦呈下降趋势,2002—2008年呈较快上升。以高密度网格化(1点/4km2)实测数据,计算得到2008年表层土壤有机碳、氮平均密度为44.36t·hm-2和5.3t·hm-2,平均容量为22.182kg·m-3和2.67kg·m-3,总储量分别为1.122×109kg和0.135×109kg,依据2002年、2008年两次可对比的实测数据,采用GIS和地统计学工具,进行了含量的空间分析,以1点/4km2精度,计算了2002—2008年县域内农用地表层土壤的有机碳、氮的变化。2002—2008年每年平均储碳速率为30.8kg·hm-2,储氮速率为156kg·hm-2。2002—2008年碳氮比平均值下降了2.3,依据土壤粒级数据和Hassink的碳保持容量公式,计算出嘉善县土壤平均固定容量为2.478%,初步估算,全县耕地表层土壤还具有42.43万t的固碳潜力,影响表土有机碳储汇的自然因素主要为土壤含水量和质地。  相似文献   

7.
Industrial agriculture is yearly responsible for the loss of 55–100 Pg of historical soil carbon and 9.9 Tg of reactive nitrogen worldwide. Therefore, management practices should be adapted to preserve ecological processes and reduce inputs and environmental impacts. In particular, the management of soil organic matter (SOM) is a key factor influencing C and N cycles. Soil microorganisms play a central role in SOM dynamics. For instance, microbial diversity may explain up to 77 % of carbon mineralisation activities. However, soil microbial diversity is actually rarely taken into account in models of C and N dynamics. Here, we review the influence of microbial diversity on C and N dynamics, and the integration of microbial diversity in soil C and N models. We found that a gain of microbial richness and evenness enhances soil C and N dynamics on the average, though the improvement of C and N dynamics depends on the composition of microbial community. We reviewed 50 models integrating soil microbial diversity. More than 90 % of models integrate microbial diversity with discrete compartments representing conceptual functional groups (64 %) or identified taxonomic groups interacting in a food web (28 %). Half of the models have not been tested against an empirical dataset while the other half mainly consider fixed parameters. This is due to the difficulty to link taxonomic and functional diversity.  相似文献   

8.
稳定的土壤团聚结构对种子发芽、根系发育、作物生长以及有机碳保护有着重要的影响,深入了解人为扰动下土壤团聚体稳定性影响因素有着重要意义.选择两种不同母质发育土壤上长期施用畜禽粪便和化肥5个田块耕层土壤团聚体为供试土壤,采用相关分析、因子分析和回归分析方法探讨了土壤有机碳库、土壤养分和理化性质与团聚体稳定性间的关系.研究结果表明,与施用化肥比较,施用畜禽粪便显著提高了土壤团聚体稳定性;不同母质类型土壤上,海相沉积物母质土壤上团聚体稳定性显著高于河相冲积物母质土壤.相关分析结果表明溶解性有机碳(包括DOC和HWOC)和总磷含量与土壤团聚体稳定性显著或极显著相关;因子分析结果显示,土壤化学因子是第一影响因素,土壤碳库因子是第二影响因素,其中海相沉积物母质土壤上团聚体稳定性主要受土壤化学因子影响;河相冲积物母质土壤团聚体稳定性主要受土壤碳库因子影响,施用化肥土壤受两个因素影响均较小.回归分析结果显示热水提取态有机碳和钙是本研究条件中影响土壤团聚体稳定性的主要因素.  相似文献   

9.
曹宏杰  倪红伟 《生态环境》2013,(11):1846-1852
土壤有机碳是陆地碳库的重要组成部分,其积累和分解的变化直接影响全球的碳平衡。据估计,全球土壤(表层1m)有机碳积累总量相当于大气中碳总量的2~3倍。土壤是温室气体的源或汇,土壤碳库的变化将影响大气C02的浓度,因此,土壤碳库对人类活动的响应也是全球碳循环和全球变化研究的热点。在全球变化的大背景下,大气CO2升高导致植被生态系统碳平衡的改变进而对土壤碳循环产生影响。总结了陆地生态系统碳循环对大气C02浓度升高响应的主要生物学机制及过程,简述了大气C02浓度升高对影响土壤碳输入和输出的各因素的研究进展,并指出未来研究的主要方向。在大气C02浓度升高条件下,陆地生态系统碳循环的变化主要反映在以下几个方面:1)不同类型植物群落的净初级生产力(NPP)显著增加,但湿地植物的净初级生产力也有可能降低;2)光合产物向根系分配的数量增加,地上/地下生物量降低,根系形态发生变化,根系周转速率和根系分泌等过程的碳流量提高;3)植物含氮量降低,C/N提高,次生代谢产物增加,微生物生长受到抑制,植物残体分解速率降低;4)土壤呼吸速率显著增加,提高幅度受植物类型与土壤状况的影响;5)进入土壤的植物残体及分泌物的数量和性质影响土壤酶的活性,脱氢酶和转化酶活性增加,酚氧化酶和纤维素酶受植物类型与环境条件的影响;6)土壤中真菌的数量的增加幅度要高于细菌;7)CH4释放量增加,在植物的生长期表现更为明显。由于陆地生态系统碳循环的复杂性,研究结果仍有很大的不确定性。大气C02浓度升高与全球变化的其它表现间的交互作用将是今后研究的重点,同时由于土壤碳循环是一个由微生物介导的生物地球化学循环过程,因此,加强陆地生态系统碳循环的微生物机制研究也将为全面理解碳循环的过程提供更加准确的研究理论基础。  相似文献   

10.
In order to evaluate the effects of different maize straw returning modes on humus composition and humic acid (HA) structural, a field experiment was designed to have five treatments, i.e. Treatment CK (no straw returned), Treatment EIS (straw incorporated evenly into the soil using the crashing-ridging technique), Treatment SP (straw plowed into the soil), Treatment SM (straw returned as mulch) and Treatment SG (straw returned as pellets). Our results showed that Treatment EIS significantly increased the content of soil organic carbon (SOC), soil humus substances (HEC), soil humic acid carbon (HAC) and fulvic acid carbon (FAC) by 27.8%, 47.6%, 63.3% and 33.8%, respectively, as compared with CK. Among all the straw returning treatments, Treatment EIS was the most significant in effect of increasing the content of HEC, HAC and FAC. Moreover, Treatment EIS altered the composition of humus more significantly than all the other treatments, by increasing the proportion of alkyl C and the ratio of aliphatic C/aromatic C. These results suggest that straw returning accelerated the accumulation of soil organic C and various components of humus, significantly improved the structure of soil HA, with the practice of EIS in particular.  相似文献   

11.
The interaction between nitrogen cycling and carbon sequestration is critical in predicting the consequences of anthropogenic increases in atmospheric CO2 (hereafter, Ca). The progressive N limitation (PNL) theory predicts that carbon sequestration in plants and soils with rising Ca may be constrained by the availability of nitrogen in many ecosystems. Here we report on the interaction between C and N dynamics during a four-year field experiment in which an intact C3/C4 grassland was exposed to a gradient in Ca from 200 to 560 micromol/mol. There were strong species effects on decomposition dynamics, with C loss positively correlated and N mineralization negatively correlated with Ca for litter of the C3 forb Solanum dimidiatum, whereas decomposition of litter from the C4 grass Bothriochloa ischaemum was unresponsive to Ca. Both soil microbial biomass and soil respiration rates exhibited a nonlinear response to Ca, reaching a maximum at approximately 440 micromol/mol Ca. We found a general movement of N out of soil organic matter and into aboveground plant biomass with increased Ca. Within soils we found evidence of C loss from recalcitrant soil C fractions with narrow C:N ratios to more labile soil fractions with broader C:N ratios, potentially due to decreases in N availability. The observed reallocation of N from soil to plants over the last three years of the experiment supports the PNL theory that reductions in N availability with rising Ca could initially be overcome by a transfer of N from low C:N ratio fractions to those with higher C:N ratios. Although the transfer of N allowed plant production to increase with increasing Ca, there was no net soil C sequestration at elevated Ca, presumably because relatively stable C is being decomposed to meet microbial and plant N requirements. Ultimately, if the C gained by increased plant production is rapidly lost through decomposition, the shift in N from older soil organic matter to rapidly decomposing plant tissue may limit net C sequestration with increased plant production.  相似文献   

12.
Turnover rates of soil carbon for 20 soil types typical for a 3.7 million km2 area of European Russia were estimated based on 14C data. The rates are corrected for bomb radiocarbon which strongly affects the topsoil 14C balance. The approach is applied for carbon stored in the organic and mineral layers of the upper 1 m of the soil profile. The turnover rates of carbon in the upper 20 cm are relatively high for forest soils (0.16–0.78% year−1), intermediate for tundra soils (0.25% year−1), and low for grassland soils (0.02–0.08% year−1) with the exception of southern Chernozems (0.32% year−1). In the soil layer of 20–100 cm depth, the turnover rates were much lower for all soil types (0.01–0.06% year−1) except for peat bog soils of the southern taiga (0.14% year−1). Combined with a map of soil type distribution and a dataset of several hundred soil carbon profiles, the method provides annual fluxes for the slowest components of soil carbon assuming that the latter is in equilibrium with climate and vegetation cover. The estimated carbon flux from the soil is highest for forest soils (12–147 gC/(m2 year)), intermediate for tundra soils (33 gC/(m2 year)), and lowest for grassland soils (1–26 gC/(m2 year)). The approach does not distinguish active and recalcitrant carbon fractions and this explains the low turnover rates in the top layer. Since changes in soil types will follow changes in climate and land cover, we suggest that pedogenesis is an important factor influencing the future dynamics of soil carbon fluxes. Up to now, both the effect of soil type changes and the clear evidence from 14C measurements that most soil organic carbon has a millennial time scale, are basically neglected in the global carbon cycle models used for projections of atmospheric CO2 in 21st century and beyond.  相似文献   

13.
土壤碳(C),特别是土壤有机碳(SOC),对于提高作物产量和减少温室气体排放具有重要影响,深入理解 SOC 空间分布特征对于未来区域生态环境和农业的可持续发展也具有重要作用。黄河下游引黄灌区是我国重要的粮、棉生产基地,具有50年以上的引黄灌溉历史,长期引黄灌溉对区域土壤C储量和分布的改变毋庸置疑。以往关于土壤C的估算多集中于较大尺度,受采样数据量和大区域环境因素复杂变异影响,结果经常出现较大差异,并且对于大型水利灌溉对土壤 C 分布的长期影响研究较少,尤其对于我国黄河下游引黄灌区土壤 C 分布的研究稀缺。本文通过收集黄河下游鲁、豫灌区相关统计资料,灌区土壤、水文资料等,分7层(0~5 cm、5~10 cm、10~20 cm、20~40 cm、40~60 cm、60~80 cm、80~100 cm)采集0~1 m剖面土壤样品,利用GIS空间差值、空间统计方法,分析不同土层、土地利用、土壤类型碳储量和碳密度(CD)空间分布特征,为研究区长期引黄灌溉条件下生态农业的发展提供依据。结果表明研究区(面积54153 km2)1 m土层总碳(TC)储量为1045.13 Tg,SOC储量达815.76 Tg,其0~20 cm,20~40 cm,40~60 cm,60~80 cm和80~100 cm分别占23.44%,20.06%,18.95%,18.83%,18.72%。估算1 m土层耕地和荒地SOC储量分别约为610 Tg和18.99 Tg,而草地和林地仅为25.97 Tg和16.41 Tg;不同土壤成土类型之间,半水成土所占的比例最大(约77.82%),初育土最小(约5.49%)。1 m土层平均总碳密度(TCD)为(19.37±1.48) kg·m^-2,而平均有机碳密度(SCD)为(15.12±1.14) kg·m^-2,其变化范围从荒地的(14.98±0.91) kg·m^-2到林地的(16±1.15) kg·m^-2,同一或不同土地利用类型各层储量变化略有不同,主要是受人类活动、植被凋落物输入以及地下水环境等影响。不同的土壤类型间SCD则介于?  相似文献   

14.
土壤生态系统中黑碳研究的几个关键问题   总被引:2,自引:0,他引:2  
胡学玉  易卿  禹红红 《生态环境》2012,21(1):153-158
因人类活动的影响,全球大气C02浓度自1750年以来呈现逐步上升的趋势。农业生产活动与气候变化紧密相关,因土地利用方式的改变以及高度集约化的粮食、食物生产等农业活动都有可能增加CO2等温室气体的排放。如何遏制和减少大气中的CO2浓度是当前的热点问题,黑碳这一物质形式有可能为这一问题的缓解或解决提供新途径。生物质黑碳是生物质材料在低氧或无氧状态下经热裂解而形成的一种富含碳元素的有机连续体,其中碳(C)元素的含量高达70%-80%,并且大多以稳定的芳香环形式而存在。人类生存环境中所形成黑碳的80%以上最终都要归于土壤,且由于其较强的抗分解能力而长期滞留于土壤环境中。利用黑碳的这些特性及其碳封存能力,实施积极而有效的土壤管理措施,有可能增加土壤生态系统中的碳储存,从而为人类社会应对全球气候变化提供新的机遇。在文献资料调研的基础上,描述了土壤中黑碳的来源及其增加土壤碳储存、减缓陆地生态系统碳循环的潜力;阐释了量化土壤中黑碳的重要性以及精确测定土壤黑碳含量的关键所在;揭示了黑碳在土壤环境中的稳定性,探讨了外源黑碳与土壤本体有机碳的相互作用关系,并分析了黑碳对土壤温室气体排放的影响及其不确定性。揭示这些问题有助于客观评价黑碳能否作为一个有效的土壤有机碳库,也益于明确黑碳在全球碳循环以及中国农业减排过程中的作用与地位。  相似文献   

15.
To better understand agricultural carbon fluxes in California, USA, we estimated changes in soil carbon and woody material between 1980 and 2000 on 3.6 x 10(6) ha of farmland in California. Combining the CASA (Carnegie-Ames-Stanford Approach) model with data on harvest indices and yields, we calculated net primary production, woody production in orchard and vineyard crops, and soil carbon. Over the 21-yr period, two trends resulted in carbon sequestration. Yields increased an average of 20%, corresponding to greater plant biomass and more carbon returned to the soils. Also, orchards and vineyards increased in area from 0.7 x 10(6) ha to 1.0 x 10(6) ha, displacing field crops and sequestering woody carbon. Our model estimates that California's agriculture sequestered an average of 19 g C x m(-2) x yr(-1). Sequestration was lowest in non-rice annual cropland, which sequestered 9 g C x m(-2) x yr(-1) of soil carbon, and highest on land that switched from annual cropland to perennial cropland. Land that switched from annual crops to vineyards sequestered 68 g C x m(-2) x yr(-1), and land that switched from annual crops to orchards sequestered 85 g C x m(-2) x yr(-1). Rice fields, because of a reduction in field burning, sequestered 55 g C x m(-2) x yr(-1) in the 1990s. Over the 21 years, California's 3.6 x 10(6) ha of agricultural land sequestered 11.0 Tg C within soils and 3.5 Tg C in woody biomass, for a total of 14.5 Tg C statewide. This is equal to 0.7% of the state's total fossil fuel emissions over the same time period. If California's agriculture adopted conservation tillage, changed management of almond and walnut prunings, and used all of its orchard and vineyard waste wood in the biomass power plants in the state, California's agriculture could offset up to 1.6% of the fossil fuel emissions in the state.  相似文献   

16.
三峡库区不同植被覆盖对土壤碳的影响   总被引:4,自引:1,他引:3  
植被覆盖变化对三峡库区生态环境产生重要影响.土壤有机碳在陆地生态系统的发育和运行等方面均起着极其重要的作用,所以本课题研究宜昌点军区柏树地,橘树地以及菜地的土壤性质状况.结果表明:土壤含水量是柏树林最大.菜地的最小,而土壤容重的大小顺序是:柑橘树地>柏树地>菜地.土壤有机碳、易氧化碳和二者的比值都是柏树地的最大,柑橘地的最小,菜地的处于中间状态.而微生物碳和微生物墒含量大小顺序是柏树地>柑橘树>菜地;微生物代谢墒的大小顺序是:柑橘地>菜地>柏树地.由此说明柏树生长有利于土壤活性碳源含量的提高和土壤质量的改善.  相似文献   

17.
不同混交类型对毛竹林土壤有机碳和土壤呼吸的影响   总被引:1,自引:0,他引:1  
为了解不同混交类型对毛竹林土壤有机碳含量和组成以及土壤呼吸的影响,为武夷山地区毛竹林土壤环境改善和可持续生产经营积累实验数据,以武夷山地区毛竹(Phyllostachys edulis J.Houz.)纯林、毛竹-阔叶树混交林、毛竹-油茶(Camellia oleifera Abel.)混交林、毛竹-杉木[Cunnin...  相似文献   

18.
During the past few decades, urban and suburban developments have grown at unprecedented rates and extents with unknown consequences for ecosystem function. Carbon pools of soil and vegetation on landscaped properties were examined in the Front Range of Colorado, USA, in order to characterize vegetation and soils found in urban green spaces; analyze their aboveground biomass, vegetative C storage, and soil C storage; and compare these suburban ecosystem properties to their counterparts in native grassland and cultivated fields. Anthropogenic activities leave clear signatures on all three C compartments measured. Management level dominates the response of grass production, biomass, and N tissue concentration. This, in turn, influences the amount of C and N both stored in and harvested from sites. The site age dominates the amount of woody biomass as well as soil C and N. Soil texture only secondarily affects total soil carbon and total bulk density. Established urban green spaces harbor larger C pools, more than double in some cases, than native grasslands or agricultural fields on a per-area basis. Lawn grass produces more biomass and stores more C than local prairie or agricultural fields. Introduced woody vegetation comprises a substantial C pool in urban green spaces and represents a new ecosystem feature. After an initial decrease with site development, soil organic carbon (SOC) pools surpass those in grasslands within two decades. In addition to the marked increase of C pools through time, a shift in storage from belowground to aboveground occurs. Whereas grasslands store approximately 90% of C belowground, urban green spaces store a decreasing proportion of the total C belowground in soils through time, reaching approximately 70% 30-40 years after construction. Despite the substantial increase in C pools in this urban area, it is important to recognize that this shift is distinct from C sequestration since it does not account for a total C budget, including increased anthropogenic C emissions from these sites.  相似文献   

19.
Soil organic matter (SOM) often increases when agricultural fields are converted to perennial vegetation, yet decadal scale rates and the mechanisms that underlie SOM accumulation are not clear. We measured SOM accumulation and changes in soil properties on a replicated chronosequence of former agricultural fields in the midwestern United States that spanned 40 years after perennial-grassland establishment. Over this time period, soil organic carbon (SOC) in the top 10 cm of soil accumulated at a constant rate of 62.0 g x m(-2) x yr(-1), regardless of whether the vegetation type was dominated by C3 or C4 grasses. At this rate, SOC contents will be equivalent to unplowed native prairie sites within 55-75 years after cultivation ceased. Both labile (short turnover time) and recalcitrant (long turnover time) carbon pools increased linearly for 40 years, with recalcitrant pools increasing more rapidly than expected. This result was consistent across several different methods of measuring labile SOC. A model that investigates the mechanisms of SOM formation suggests that rapid formation of stable carbon resulted from biochemically resistant microbial products and plant material. Former agricultural soils of the Great Plains may function as carbon sinks for less than a century, although much of the carbon stored is stable.  相似文献   

20.
福建省建瓯市毛竹林生态系统固碳状态研究   总被引:1,自引:0,他引:1  
毛竹林是碳汇的重要陆地生态系统类型,研究毛竹林系统的碳库及潜力是评价其固碳增汇的重要基础。以福建省建瓯市为研究对象,通过典型样点采样调查,对建瓯市的毛竹林生态系统碳储状态进行了分析。结果表明:建瓯市毛竹林单株平均碳量为11.5 kg C,竹秆约占60%;单位面积的土壤碳储量平均为C 90.6 t.hm-2(0~60 cm);毛竹林生态系统单位面积的总碳量平均为C 150 t·hm-2;由此可以推算,建瓯市的毛竹林总碳储量为12.9 Tg C;如果以此为基础,则可以估算,目前全国竹林生态系统碳储量为870 Tg C。  相似文献   

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