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1.
Using static chamber technique,fluxes of CO2,CH4 and N2O were measured in the alpine grassland area from July 2000 to July 2001,determinations of mean fluxes showed that CO2 and N2O were generally released from the soil,while the alpine grassland accounted for a weak CH4 sink.Fluxes of CO2,CH4 and N2O ranged widely.The highest CO2 emission occurred in August,whereas almost 90?of the whole year emission occurred in the growing season.But the variations of CH4 and N2O fluxes did not show any clear patterns over the one-year-experiment.During a daily variation,the maximum CO2 emission occurred at 16:00,and then decreased to the minimum emission in the early morning.Daily pattern analyses indicated that the variation in CO2 fluxes was positively related to air temperatures(R^2=0.73)and soil temperatures at a depth of 5 cm(R^2=0.86),whereas daily variations in CH4 and N2O fluxes were poorly explained by soil temperatures and climatic variables.CO2 emissions in this area were much lower than other grasslands in plain areas.  相似文献   

2.
青藏高原高寒草原生态系统CO2,CH4和N2O排放通量研究   总被引:4,自引:1,他引:3  
Using static chamber technique, fluxes of CO2, CHh and N2O were measured in the alpinegrassland area from July 2000 to July 2001, determinations of mean fluxes showed that CO2 and N2Owere generally released from the soil, while the alpine grassland accounted for a weak CH4 sink.Fluxes of CO2, CH4 and N2O ranged widely. The highest CO2 emission occurred in August, whereasalmost 90% of the whole year emission occurred in the growing season. But the variations of CH4and N2O fluxes did not show any clear patterns over the one-year-experiment. During a dailyvariation, the maximum CO2 emission occurred at 16:00, and then decreased to the minimumemission in the early morning. Daily pattern analyses indicated that the variation in CO2 fluxes waspositively related to air temperatures (R2=0.73) and soil temperatures at a depth of 5 cm (R2=4).86),whereas daily variations in CH4 and N2O fluxes were poorly explained by soil temperatures andclimatic variables. CO2 emissions in this area were much lower than other grasslands in plain areas.  相似文献   

3.
内蒙古温带半干旱羊草草原N2O通量及其影响因素   总被引:5,自引:2,他引:5  
利用静态箱 -气相色谱法于 2 0 0 1~ 2 0 0 3年对内蒙古锡林河流域羊草草原进行了连续 2年的野外定位试验 ,获得羊草草原原状群落与土壤N2 O年排放通量分别在 3 91~ 4 71μgm- 2h- 1以及 5 5 0~ 10 0 3μgm- 2 h- 1范围内变动 ,证明内蒙古温带半干旱羊草草原生态系统是大气中N2 O的源 ;系统分析了羊草草原N2 O通量的季节变化、源汇特征以及关键的环境因子对草地N2 O通量的影响等 ,建立了N2 O通量与环境因子间的回归方程 ;并利用两年连续完整的观测数据对羊草草原N2 O年排放量进行了估算  相似文献   

4.
草原土壤的碳氮含量及其与温室气体通量的相关性   总被引:61,自引:0,他引:61  
通过采样分析研究内蒙古锡林流域温带草原土壤有机碳及全N的含量特征,探讨它们的含量与温室气体CO2、N2O、CH4通量的相关性。结果表明:沿470-150mm年降水梯度线,土壤表层(0-20cm)有机碳含量从2.38%递减到1.23%,全N含量从0.218%递减到0.136%,而且放牧和开垦都有使有机碳及全N含量降低的趋势;CO2通量与有机碳含量、全N含量、C/N及N2O通量显著相关,N2O通量与有机碳含量、C/N及CO2通量显著相关,且CO2和N2O的通量都有沿降水梯度递减的趋势;CH4通量与有机碳含量、全N含量、C/N、CO2通量及N2O通量都没有显著相关性。  相似文献   

5.
In this paper, the CO2 concentrations profile from 1.5 m depth in soil to 32 m height in atmosphere were measured from July 2000 to July 2001 in an alpine grassland ecosystem located in the permafrost area on the Tibetan Plateau, which revealed that CO2 concentrations varied greatly during this study period. Mean concentrations during the whole experiment in the atmosphere were absolutely lower than the CO2 concentrations in soil, which resulted in CO2 emissions from the alpine steppe soil to the atmosphere. The highest CO2 concentration was found at a depth of 1.5 m in soil while the lowest CO2 concentration occurred in the atmosphere. Mean CO2 concentrations in soil generally increased with depth. This was the compositive influence of the increasing soil moistures and decreasing soil pH, which induced the increasing biological activities with depth. Temporally, the CO2 concentrations at different layers in air remained a more steady state because of the atmospheric turbulent milking. During the seasonal variations, CO2 concentrations at surface soil interface showed symmetrical patterns, with the lowest accumulation of CO2 occurring in the late winter and the highest CO2 concentration in the growing seasons.  相似文献   

6.
In this paper, the CO2 concentrations profile from 1.5 m depth in soil to 32 m height in atmosphere were measured from July 2000 to July 2001 in an alpine grassland ecosystem located in the permafrost area on the Tibetan Plateau, which revealed that CO2 concentrations varied greatly during this study period. Mean concentrations during the whole experiment in the atmosphere were absolutely lower than the CO2 concentrations in soil, which resulted in CO2 emissions from the alpine steppe soil to the atmosphere. The highest CO2 concentration was found at a depth of 1.5 m in soil while the lowest CO2 concentration occurred in the atmosphere. Mean CO2 concentrations in soil generally increased with depth. This was the compositive influence of the increasing soil moistures and decreasing soil pH, which induced the increasing biological activities with depth. Temporally, the CO2 concentrations at different layers in air remained a more steady state because of the atmospheric turbulent milking. During the seasonal variations, CO2 concentrations at surface soil interface showed symmetrical patterns, with the lowest accumulation of CO2 occurring in the late winter and the highest CO2 concentration in the growing seasons.  相似文献   

7.
In this paper, the CO2 concentrations profile from 1.5 m depth in soil to 32 m height in atmosphere were measured from July 2000 to July 2001 in an alpine grassland ecosystem located in the permafrost area on the Tibetan Plateau, which revealed that CO2 concentrations varied greatly during this study period. Mean concentrations during the whole experiment in the atmosphere were absolutely lower than the CO2 concentrations in soil, which resulted in CO2 emissions from the alpine steppe soil to the atmosphere. The highest CO2 concentration was found at a depth of 1.5 m in soil while the lowest CO2 concentration occurred in the atmosphere. Mean CO2 concentrations in soil generally increased with depth. This was the compositive influence of the increasing soil moistures and decreasing soil pH, which induced the increasing biological activities with depth. Temporally, the CO2 concentrations at different layers in air remained a more steady state because of the atmospheric turbulent milking. During the seasonal variations, CO2 concentrations at surface soil interface showed symmetrical patterns, with the lowest accumulation of CO2 occurring in the late winter and the highest CO2 concentration in the growine seasons.  相似文献   

8.
干旱对草地生态系统NEE有深刻影响。基于涡度相关技术提供的碳通量及小气候数据,研究了2009年当雄高寒草地生态系统的碳交换特征及其主控因子,同时分析了干旱的可能影响。5—7月初及9月发生的干旱导致草地GLAI、ALB和GPP较低,6月中旬到7月初碳吸收一度下降。干旱使6、7月份NEE日变化进程发生改变。同时,NEE和GPP的季节变化也受到干旱影响。由于干旱导致生态系统吸收能力降低,75]3日出现NEE日净碳排放最高值(0.9gCm-2d-1)。5-7月的NEE月总量均大于0,且逐月增加。该草地2009年的GPP和NEE分别为-158.1和52.4gCm。日均0〈01时,0成为影响白天NEE变化的主控因子。GLAI、r和目是3个对NEE季节变异影响最大的指标,且其影响程度依次降低。GPP季节变化的主控因子是GLAI、θ、PPT、VPD和瓦,生态系统水分状况(0、PPT或VPD)对GPP的影响大于T20。Rcco主要受控于t、GLAI、PAR和PPT,且其影响力依次降低。GLAI的季节变化可解释NEE和GPP变异的60.7%和76.1%。当雄高寒草地生态系统水分条件的年际变化可能是影响NEE年际变异的主要因子。  相似文献   

9.
利用静态暗箱法对内蒙古半干旱羊草草原不同物候期原状群落与土壤CH4 通量的日变化进行了野外定位试验研究 ,结果表明 :羊草草原土壤为大气CH4 的吸收汇 ,不同观测日CH4 通量的日变化特征存在较大差异 ;气温及表层地温与CH4 吸收通量除果后营养期呈显著或极显著正相关外 ,其余观测日两者的相关性不明显 ;原状群落与土壤CH4 吸收通量间除2 0 0 2年果后营养期以及 2 0 0 3年开花期两者差异分别达到 0 10与 0 0 5的显著性水平外 ,两者在其余观测日差异均不显著 ;不同物候期间CH4 日平均通量除原状群落开花期与结实后期间 ,开花期与 2 0 0 1年果后营养期以及结实后期与 2 0 0 2年果后营养期间差异显著外 ,其它不同物候期之间CH4 吸收通量没有显著差异  相似文献   

10.
利用涡度相关法研究青海湖高寒湿地生态系统2015-2016年生长季CH4通量。结果显示:生长季CH4通量表现为白天排放、夜间微弱吸收或排放的日变化特征,其中2015年CH4通量日平均值为56.67 mg·m-2,2016年CH4通量日平均值为35.92 mg·m-2。7月和8月排放量最大,生长季前期和后期排放较弱,2015年最大排放量出现在7月,为3.76 g·m-2,2016最大排放量出现在8月,为1.67 g·m-2。温度、电导率、土壤体积含水量与CH4通量显著相关,气温和CH4通量线性正相关。生态系统总初级生产力和呼吸及水热通量与CH4通量也存在显著的相关关系,其中生态系统总初级生产力和呼吸是影响甲烷动态变化的主要因子。  相似文献   

11.
中国草原区植被变化及其对气候变化的响应   总被引:4,自引:4,他引:0  
利用1982~2006年GIMMS NDVI和气象数据,探究中国草原区植被变化及对气候的响应。结果表明,近25 a中国草原区植被覆盖总体呈上升趋势,但季节变化空间差异明显。春季温度对温带典型草原、高寒草甸草原和高寒典型草原植被生长有重要影响,而夏季和秋季温度同样对高寒草甸草原影响显著;夏季降水增多能明显促进夏季温带荒漠草原植被生长。除8月份以外,温带草原5~9月NDVI均与前一个月降水显著正相关;在生长季内,高寒草原NDVI与同期温度显著正相关,但8月份除外。此外高寒草原植被在生长最旺盛时期对降水变化存在1~3个月滞后期。  相似文献   

12.
黄磊  张志山  胡宜刚  张鹏  赵洋 《中国沙漠》2012,32(6):1583-1589
对固沙植被区典型分布的藻类结皮、藓类结皮和流沙下不同深度的土壤气体采样,主要研究和讨论了不同类型生物土壤结皮下土壤CO2浓度的变化特征,及土壤温度和土壤水分对它的影响。结果表明,藻类结皮和藓类结皮在0~40 cm处的土壤空气CO2浓度平均值基本保持在600~1 100 μmol·mol-1之间,大于同一深度流沙下土壤CO2浓度值,但三者之间的差异并不显著。土壤温度与土壤CO2浓度呈正相关关系,且在表层相关性最强,具体表现为流沙>藓类结皮>藻类结皮。土壤水分对土壤CO2浓度的影响在表层0~5 cm为流沙>藻类结皮>藓类结皮,但在下层10~40 cm处为藻类结皮>藓类结皮>流沙。  相似文献   

13.
运用静态箱-气相色谱法对中亚热带地区米槠天然林和阿丁枫天然林土壤N2O排放速率进行了1年(2012年1月—2013年1月)原位观测,分析了土壤温度及含水量对土壤N2O排放速率的影响,并探讨土壤无机N含量变化与土壤N2O排放速率的关系。结果表明,观测期间,2种天然林均表现为大气N2O排放源,米槠天然林和阿丁枫天然林平均土壤N2O排放速率分别为7.29μg·m^-2·h^-1、7.41μg·m^-2·h^-1;米槠天然林和阿丁枫天然林土壤N2O排放速率季节变化明显,最高排放速率均出现在夏季6月,分别为16.51μg·m^-2·h^-1、18.86μg·m^-2·h^-1;2个林分N2O排放速率最低值分别出现在2012年1月和2012年9月,分别为3.04μg·m^-2·h^-1和2.17μg·m^-2·h^-1。2种天然林土壤N2O排放速率均与土壤温度无显著相关性,与土壤含水量显著正相关(P〈0.05);2种天然林土壤N2O排放速率与NH4+含量均无显著相关性,米槠天然林和阿丁枫天然土壤N2O排放速率与NO3-含量分别呈显著负相关和显著正相关(P〈0.05)。研究结果表明,土壤含水量及NO3-含量的变化对中亚热带天然林土壤N2O排放速率有着重要的影响。  相似文献   

14.
三江平原不同土地利用方式下湿地土壤CO2通量研究   总被引:6,自引:0,他引:6  
利用暗箱-气相色谱法,同步测量了三江平原几种主要生态类型湿地土壤原始的小叶章草甸白浆土、毛果苔草泥炭沼泽土、已垦旱作草甸白浆土和人工水田草甸白浆土,进行CO2排放通量的对比研究.结果表明不同土地利用方式下,旱作草甸白浆土土壤CO2排放通量最大,平均值为775.38mg/(m2@h);小叶章草甸白浆土土壤次之,平均值为439.02mg/(m2@h);人工水稻田草甸白浆土土壤CO2通量最小,平均值为128.96mg/(m2@h);毛果苔草泥炭沼泽土土壤CO2排放通量介于小叶章草甸白浆土土壤和水稻田草甸白浆土土壤之间,平均值为247.08mg/(m2@h).湿地开垦为旱田,使湿地"碳汇"功能减弱或丧失,变成"碳源";湿地开垦为水田,是比较合理的湿地农业利用方式.  相似文献   

15.
三江平原湿地CH4、N2O的地-气交换特征   总被引:11,自引:0,他引:11  
利用暗箱-气相色谱法对三江平原3种具有代表性的湿地类型(常年积水的毛果苔草沼泽、季节性积水的小叶章湿草甸和灌丛湿地)进行了为期两年的CH4和N2O现场同步观测。结果表明,湿地全年CH4和N2O通量有明显的季节和年际变化,与温度和土壤水分条件密切相关。在发生季节性干旱的年份,生长季(5月10月)CH4排放通量峰值出现在6月和8月,呈双峰型;而在降水充沛的年份,CH4排放通量峰值出现在6、7月份,呈单峰型。冰冻期(11月到次年4月)CH4排放通量十分的微弱,其中灌丛湿地表现为负排放。3种类型湿地N2O通量一般在非冰冻期表现为排放,呈双峰型,5月份融化期为第一个高峰期,7、8月为第二个高峰期,冰雪覆盖期表现为吸收。湿地CH4和N2O通量在春季的融冻期,存在此消彼长的现象。  相似文献   

16.
Potentilla fruticosa scrub, Kobresia humilis meadow and Kobresia tibetica meadow are widely distributed on the Qinghai-Tibet Plateau. During the grass exuberance period from 3 July to 4 September, based on close chamber-GC method, a study on CO2 emissions from different treatments was conducted in these meadows at Haibei research station, CAS. Results indicated that mean CO2 emission rates from various treatments were 672.09±152.37 mgm^-2h^-1 for FC (grass treatment); 425.41±191.99 mgm^-2h^-1 for FJ (grass exclusion treatment); 280.36±174.83 mgm^-2h^-1 for FL (grass and roots exclusion treatment); 838.95±237.02 mgm^-2h^-1 for GG (scrub+grass treatment); 528.48±205.67 mgm^-2h^-1 for GC (grass treatment); 268.97±99.72 mgm^-2h^-1 for GL (grass and roots exclusion treatment); and 659.20±94.83 mgm^-2h^-1 for LC (grass treatment), respectively (FC, FJ, FL, GG, GC, GL, LC were the Chinese abbreviation for various treatments). Furthermore, Kobresia humilis meadow, Potentilla fruticosa scrub meadow and Kobresia tibetica meadow differed greatly in average CO2 emission rate of soil-plant system, in the order of GG>FC>LC>GC. Moreover, in Kobresia hurnilis meadow,heterotrophic and autotrophic respiration accounted for 42% and 58% of the total respiration of soil-plant system respectively, whereas, in Potentilla fruticosa scrub meadow, heterotrophic and autotrophic respiration accounted for 32% and 68% of total system respiration from GG; 49% and 51% from GC. In addition, root respiration from Kobresia humilis meadow approximated 145 mgCO2m^-2h^-1,contributed 34% to soil respiration. During the experiment period, Kobresia humilis meadow and Potentilla fruticosa scrub meadow had a net carbon fixation of 111.11 gm^-2 and 243.89 gm^-2 respectively. Results also showed that soil temperature was the main factor which influenced CO2 emission from alpine meadow ecosystem, significant correlations were found between soil temperature at 5 cm depth and CO2 emission from GG, GC, FC and FJ treatments. In addition, soil moisture maybe the inhibitory factor of CO2 emission from Kobresia tibetica meadow, and more detailed analyses should be done in further research  相似文献   

17.
Potentilla fruticosa scrub, Kobresia humilis meadow and Kobresia tibetica meadow are widely distributed on the Qinghai-Tibet Plateau. During the grass exuberance period from 3 July to 4 September, based on close chamber-GC method, a study on CO2 emissions from different treatments was conducted in these meadows at Haibei research station, CAS. Results indicated that mean CO2 emission rates from various treatments were 672.09±152.37 mgm-2h-1 for FC (grass treatment); 425.41±191.99 mgm-2h-1 for FJ (grass exclusion treatment); 280.36±174.83 mgm-2h-1 for FL (grass and roots exclusion treatment); 838.95±237.02 mgm-2h-1 for GG (scrub+grass treatment); 528.48±205.67 mgm-2h-1 for GC (grass treatment); 268.97±99.72 mgm-2h-1 for GL (grass and roots exclusion treatment); and 659.20±94.83 mgm-2h-1 for LC (grass treatment), respectively (FC, FJ, FL, GG, GC, GL, LC were the Chinese abbreviation for various treatments). Furthermore, Kobresia humilis meadow, Potentilla fruticosa scrub meadow and Kobresia tibetica meadow differed greatly in average CO2 emission rate of soil-plant system, in the order of GG>FC>LC>GC. Moreover, in Kobresia humilis meadow, heterotrophic and autotrophic respiration accounted for 42% and 58% of the total respiration of soil-plant system respectively, whereas, in Potentilla fruticosa scrub meadow, heterotrophic and autotrophic respiration accounted for 32% and 68% of total system respiration from GG; 49% and 51% from GC. In addition, root respiration from Kobresia humilis meadow approximated 145 mgCO2m-2h-1, contributed 34% to soil respiration. During the experiment period, Kobresia humilis meadow and Potentilla fruticosa scrub meadow had a net carbon fixation of 111.11 gm-2 and 243.89 gm-2, respectively. Results also showed that soil temperature was the main factor which influenced CO2 emission from alpine meadow ecosystem, significant correlations were found between soil temperature at 5 cm depth and CO2 emission from GG, GC, FC and FJ treatments. In addition, soil moisture may be the inhibitory factor of CO2 emission from Kobresia tibetica meadow, and more detailed analyses should be done in further research.  相似文献   

18.
Agricultural activities emit substantial amounts of methane (CH4) and nitrous oxides (N2O), the two important greenhouse gases (GHG) with high global warming potentials (GWP). So far, many studies have already been carried out at national and state level, but lack micro‐level (district or block‐level) inventory in India. The present study sheds light on the flux of CH4 and N2O (from all possible sources) from agricultural soil of various blocks in the Murshidabad district, based on the inventory prepared, using the IPCC methodology, with adjusted emission factors and coefficients appropriate for the local level. The economy of the Murshidabad district almost completely rests on agriculture as more than 80 per cent of the population is directly or indirectly dependent on it for their livelihood. Paddy is the dominating crop, cultivated on more than 60 per cent of the gross cropped area. The present work is based on the review of various literature and reports collected from respective state government offices and websites. Results show that CH4 and N2O emission from the agricultural fields are 126.405 Gg and 0.652 Gg respectively for the year 2011?12 with a large scale spatial variation (block‐level) within the district.  相似文献   

19.
苏北盐沼DMS、CS_2和CH_4排放通量沿高程梯度的变化   总被引:2,自引:0,他引:2  
在中国东部海岸带盐沼沿环境梯度采用静态箱技术原位测定CH4、DMS和CS2气体的通量.结果表明,苏北海岸带盐沼整体上表现为CH4、DMS和CS2气体的源,其中,互花米草带(Spartina alternflora)排放率最高.CH4、DMS和CS2排放率之间的正相关关系支持DMS是甲烷生产底物的推断.高等植物地上部分是CH4、DMS和CS2气体的重要源,但植物排放这些气体的机制还不清楚.盐沼CH4、DMS和CS2气体的净排放可能与盐沼丰富的有机质含量有关,有机质为土壤微生物提供充足的碳源和能量.  相似文献   

20.
盐生荒漠地表水、热与CO2输送 的实验研究   总被引:5,自引:0,他引:5  
利用安装在准噶尔盆地南缘多汁盐柴类荒漠上的涡度相关系统与配套的微气象观测系统所得数据,分析了显热、潜热与CO2通量的日过程和季节变化特点及各通量间的相互关系。数据显示了一个明显违背植物水分关系一般规律的现象:当水汽(潜热) 通量明确显示土壤水分亏缺时,净光合(CO2通量) 却未受到影响。因此推测当地原生植物的根系在积盐严重的土壤上层没有发育,所以其水分状况与光合能力不受上层土壤干湿的影响,观测到的水汽通量的变化主要由土壤蒸发的变化造成的。  相似文献   

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