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1.
目前,国内尚无亚热带森林地区生物土壤结皮-土壤系统温室气体通量特征的研究,给区域尺度上温室气体通量的估算带来很大的不确定性。本研究选择中亚热带杉木人工林中地面广布的苔藓覆盖形成的结皮层及其下覆土壤为研究对象,采用对气体排放速率影响较小的等压取样法,探究去除苔藓土壤(BG)和苔藓覆盖土壤(BSCs)在光照和暗处理下其温室气体通量的变化特征,来模拟自然环境下白昼和黑夜时段苔藓覆盖的影响,同时采用随机森林模型来衡量光照与苔藓覆盖对温室气体通量的重要度。结果表明:苔藓覆盖、光照处理及其互作对CO_2通量有极显著的影响(P0.001),苔藓覆盖和光照处理对CH_4的吸收通量有极显著的影响(P0.001),光照及光照与苔藓覆盖交互作用对N_2O通量有极显著的影响(P0.001);暗处理下,与BG土壤相比,苔藓覆盖具有抑制土壤CO_2排放的趋势,苔藓覆盖略微增加N_2O的排放通量,但显著增加CH_4的吸收通量(P0.01);光照处理下BSCs的CO_2、CH_4和N_2O三种温室气体均出现负通量,苔藓覆盖显著降低CO_2、CH_4和N_2O的排放通量(P0.01),表明光照条件下苔藓-土壤系统是这三种温室气体重要的汇;由光照导致的BSCs的CO_2和N_2O的吸收通量显著高于BG土壤温室气体的吸收量(P0.01),但光照对CH_4吸收通量的影响无显著差异;随机森林分析表明,光照对于CO_2和N_2O通量的影响的重要性大于苔藓覆盖,而苔藓覆盖对CH_4通量的影响的重要性大于光照,表明CO_2和N_2O的通量与苔藓中的光能自养生物的代谢活性关联更大,CH_4通量与苔藓中的化能自养生物代谢活性有关联。  相似文献   

2.
为揭示固氮树种土壤养分转化的酶学机制,对固氮树种[厚荚相思(Acacia crassicarpa)、黑木相思(A. melanoxylon)、卷荚相思(A.cincinnata)、大叶相思(A.auriculiformis)和马占相思(A.mangium)]及非固氮树种尾巨桉(Eucalyptusurophylla×E.grandis)人工林的土壤养分含量、酶活性及其相关性进行研究。结果表明,相思林40~60cm土层的pH均高于尾巨桉林;5种相思林土壤各土层的TP、TK含量均低于尾巨桉林,而20~40 cm土层的TC、TN含量均高于尾巨桉林,黑木相思林和马占相思林各土层的有效养分均显著高于尾巨桉林(P0.05)。0~10 cm土层中,相思林的土壤酸性磷酸酶和纤维素酶活性均高于尾巨桉林,大叶相思林的土壤脲酶、蔗糖酶、纤维素酶和芳基硫酸酯酶活性显著高于尾巨桉林(P0.05),卷荚相思林的土壤脲酶、纤维素酶、几丁质酶和淀粉酶活性显著高于尾巨桉林(P0.05)。相关分析结果表明,土壤脲酶、蔗糖酶和几丁质酶活性与AP显著负相关(P0.05),蔗糖酶和纤维素酶活性与NH4+-N显著负相关(P 0.05),脲酶、纤维素酶、芳基硫酸酯酶与土壤TK显著负相关(P0.05),几丁质酶活性与TN含量呈显著正相关(P0.05),土壤淀粉酶活性与NH4+-N呈显著正相关(P 0.05),过氧化氢酶活性与土壤TK含量呈显著正相关。可见,与尾巨桉人工林相比,在我国南方退化山地引种相思树可提高土壤关键酶的活性,对土壤有效养分具有明显改良作用,有利于退化地土壤的生态修复及人工林长期生产力的维持。  相似文献   

3.
博斯腾湖人工和天然芦苇湿地土壤CO2、CH4和N2O排放通量   总被引:1,自引:0,他引:1  
为研究干旱区淡水湖泊人工、天然芦苇湿地土壤温室气体源汇强度及其影响因素,采用静态箱-气相色谱法,于2015年1月—12月对博斯腾湖人工和天然芦苇湿地土壤CO_2、CH_4和N_2O通量进行全年观测。结果表明,人工芦苇湿地土壤CO_2、CH_4和N_2O排放通量变化范围分别为:10.1—588.4mg m~(-2)h~(-1)、2.9—82.4μg m~(-2)h~(-1)和1.32—29.7μg m~(-2)h~(-1),天然芦苇湿地土壤CO_2、CH_4和N_2O排放通量变化范围分别为10.3—469.6mg m~(-2)h~(-1)、3.1—64.8μg m~(-2)h~(-1)和1.9—14.3μg m~(-2)h~(-1)。人工和天然芦苇湿地夏季土壤CO_2排放通量均明显高于其他季节,而土壤CH_4和N_2O排放通量较大值多集中在春末夏初。全年观测期间,人工芦苇湿地土壤CO_2、CH_4和N_2O排放通量高于天然芦苇湿地(P0.05);温度是影响人工、天然芦苇湿地土壤CO_2和N_2O排放通量的关键因素,近地面温度和5cm土壤温度与CO_2和N_2O排放通量呈现极显著的正相关关系(P0.01)。土壤CH_4排放通量是温度和水分二者共同影响的,由近地表温度、5cm土壤温度和土壤含水量共同拟合的方程可以分别解释人工、天然芦苇湿地土壤CH_4排放通量的71%、74.5%;土壤有机碳、pH、盐分、NH_4~+-N、NO_3~--N也是人工、天然芦苇湿地土壤CO_2、CH_4和N_2O排放通量的影响因素;人工和天然芦苇湿地土壤均是CO_2、CH_4和N_2O的"源"。基于100年尺度,由3种温室气体计算全球增温潜势得出,人工芦苇湿地全球增温潜势大于天然芦苇湿地(15150.18kg/hm~212484.21kg/hm~2)。  相似文献   

4.
神农架主要森林土壤CH4、CO2和N2O排放对降水减少的响应   总被引:1,自引:0,他引:1  
研究降水格局改变后森林土壤温室气体排放格局,可为森林温室气体排放清单制定提供科学依据。以神农架典型森林类型常绿落叶阔叶混交林和2种人工林马尾松和杉木林为研究对象,研究了降水格局改变后,其土壤CH_4吸收、CO_2和N_2O的排放格局和可能机制。结果表明:常绿落叶阔叶混交林吸收CH_4通量为(-36.79±13.99)μg Cm~(-2)h~(-1),显著大于马尾松和杉木两种人工林的CH_4吸收通量,其吸收通量分别为(-14.10±3.38)μg Cm~(-2)h~(-1)和(-7.75±2.80)μg Cm~(-2)h~(-1)。马尾松和杉木两种人工林CO_2排放通量分别为(107.03±12.11)μg Cm~(-2)h~(-1)和(80.82±10.29)μg Cm~(-2)h~(-1),显著大于常绿落叶阔叶混交林(71.27±10.59)μg Cm~(-2)h~(-1)。常绿落叶阔叶混交林N_2O排放通量为(8.88±6.75)μg Nm~(-2)h~(-1),显著大于杉木人工林(5.93±2.79)μg Nm~(-2)h~(-1)和马尾松人工林(1.64±1.02)μg Nm~(-2)h~(-1)。分析3种森林土壤CH_4吸收量与其环境因子之间的关系发现,常绿落叶阔叶混交林的CH_4吸收通量与其土壤温度呈现显著的指数负相关关系(P0.01)。常绿落叶阔叶混交林、马尾松林和杉木林的土壤CO_2排放通量与其空气温度和土壤温度之间均呈现显著的指数正相关关系(P0.01)。常绿落叶阔叶混交林和马尾松林土壤N_2O排放通量与空气温度之间均呈现显著的指数正相关关系(P0.01),而马尾松林与土壤温度之间呈显著正相关(P0.05),与土壤湿度之间均无显著相关。降水减半后,减少降水对常绿落叶阔叶混交林和马尾松林土壤CH_4吸收通量均具有明显的促进作用,但对杉木林土壤CH_4吸收量具有抑制作用,对常绿落叶阔叶混交林和杉木林土壤CO_2平均排放通量均具有明显的促进作用,而对马尾松林土壤CO_2平均排放通量明显抑制作用,对常绿落叶阔叶混交林、马尾松和杉木林土壤N_2O排放量具有明显的抑制作用。  相似文献   

5.
大兴安岭永久冻土区7种沼泽类型土壤温室气体排放特征   总被引:1,自引:0,他引:1  
气候变暖及永久冻土退化将会增加冻土湿地的温室气体排放,但关于大兴安岭永久冻土区沼泽湿地温室气体通量及主控因子尚不明确。采用静态箱-气相色谱法,同步原位观测大兴安岭永久冻土区7种天然沼泽类型(草丛沼泽-C、灌丛沼泽-G、毛赤杨沼泽-M、白桦沼泽-B、落叶松苔草沼泽-LT、落叶松藓类沼泽-LX、落叶松泥炭藓沼泽-LN)土壤CO_2、CH_4和N_2O通量及土壤温度、水位、化冻深度及土壤碳氮含量、碳氮比、pH值及含水量,揭示永久冻土区沼泽土壤温室气体通量及其主控因子。结果表明:1) 7种沼泽类型土壤CO_2年均通量(125.12—163.33 mg m~(-2) h~(-1))相近;2) CH_4年均通量(-0.007—0.400 mg m~(-2) h~(-1))呈草丛显著高于其他沼泽5.6—65.7倍(P0.01);3) N_2O年均通量(1.52—37.90μg m~(-2) h~(-1))呈阔叶林沼泽显著高于其他类型2.0—23.9倍,针叶林沼泽显著高于草丛、灌丛沼泽2.9—6.2倍(P0.05);4) CO_2主控因子为土壤温度和水位;CH_4主控因子为土壤温度和化冻深度;N_2O受到多种环境因子综合调控,共同可以解释N_2O变化的26%—99%;5)土壤增温潜势(11.05—15.37 t CO_2 hm~(-2) a~(-1))相近,且均以CO_2占绝对优势地位,但草丛以CH_4占次要地位,森林沼泽则以N_2O占次要地位。综合对比国内外现有研究结果发现目前大兴安岭永久冻土区沼泽土壤仍处于CO_2、CH_4和N_2O低排放阶段。  相似文献   

6.
盛宣才  吴明  邵学新  李长明  梁雷  叶小齐 《生态学报》2016,36(15):4792-4800
水位是影响湿地温室气体排放的重要因子。采用静态箱-气相色谱法研究了模拟条件下不同水位(0、5、10 cm和20 cm)对芦苇湿地温室气体(CO_2、CH_4、N_2O)夏季昼夜通量变化的影响。结果表明,1)4种不同水位CO_2通量日变化均表现为昼低夜高,且白天为汇,夜间为源,整体均表现为CO_2的汇;不同水位CH_4通量日变化则均表现为昼高夜低,且整体上均表现为CH_4的源;N_2O通量总体上水淹后均表现为昼高夜低而0cm水位表现为昼低夜高;2)随着水位的增加CH_4和CO_2平均通量呈现先增加后降低的趋势,且10cm水位下CH_4和CO_2平均通量最高,N_2O通量则在5cm水位最高;3)通过相关性和主成分分析表明,气温、水温是土壤CH_4、N_2O通量日变化的主导因子,而土壤温度是CO_2日变化通量的主导因子,同时,土壤p H、Eh及水体p H、Eh是CO_2通量日变化的重要因子之一。  相似文献   

7.
荒漠土壤温室气体排放是陆地碳氮循环的重要组成部分,目前人工建植促进植被恢复对非生长季荒漠土壤CH_4、N_2O通量的影响尚不明确。本研究采用静态暗箱-气相色谱和时空替代法,分析非生长季库布齐沙漠东部不同植被恢复阶段土壤CH_4、N_2O通量特征及其与环境因子之间的关系,探讨植被恢复对非生长季荒漠土壤温室气体排放的影响。结果表明:非生长季荒漠土壤是CH_4的吸收汇,也是N_2O的排放源。不同植被恢复阶段CH_4平均吸收量和N_2O排放量均表现为:苔藓结皮固定沙地(47.6μg CH_4 m~(-2) h~(-1), 13.5μg N_2O m~(-2) h~(-1))地衣结皮固定沙地(32.2μg CH_4 m~(-2) h~(-1), 9.1μg N_2O m~(-2) h~(-1))藻结皮固定沙地(23.7μg CH_4 m~(-2) h~(-1), 8.7μg N_2O m~(-2) h~(-1))半固定沙地(22.4μg CH_4 m~(-2) h~(-1), 5.0μg N_2O m~(-2) h~(-1))流动沙地(18.7μg CH_4 m~(-2) h~(-1), 3.9μg N_2O m~(-2) h~(-1))。荒漠土壤在不同冻结时期温室气体排放存在较大差异,融冻期CH_4吸收贡献率最大,在结冻期N_2O排放贡献率最大。非生长季荒漠土壤存在明显的水热同期现象,土壤水热因子对N_2O通量的影响较小,仅半固定沙地土壤温度与N_2O通量呈显著正相关;而在藻类、地衣和苔藓结皮固定沙地中,土壤温度和含水量均与CH_4通量呈显著负相关。植被恢复过程中,生物量的积累和土壤理化性质的改善,能够显著影响荒漠土壤CH_4、N_2O通量的变化。因此,人工建植促进植被恢复实现沙漠化逆转可改变荒漠生态系统的温室气体排放格局。  相似文献   

8.
森林在调控温室气体排放方面有重要作用,随着人工林的迅速发展,其温室气体通量和对施肥的响应逐渐引起广泛关注。为了解施氮对桉树人工林生长季和非生长季土壤温室气体通量的影响,在广西东门林场尾巨桉人工林样地设置低(84.2 kg N·hm-2)、中(166.8 kg N·hm-2)、高(333.7 kg N·hm-2)3个施氮水平和不施氮对照,采用静态箱-气相色谱法监测土壤CO2、N2O和CH4通量。结果表明:(1)不同施氮处理的桉树人工林土壤CO2、CH4和N2O年均排放通量分别为214~271 mg CO2·m-2·h-1、-47~-37 kg CH4·m-2·h-1和16~203 kg N2O·m-2·h-1;土壤CO2排放通量在生长季高于非生长季,CH4和N2O通量未表现出明显季节变化。(2)施氮显著增加了土壤CO2和N2O年均排放通量,其促进效应主要集中在生长季(施氮后的4个月,即6—9月),且随时间增加,效应减弱。(3)施氮显著降低了土壤CH4年均吸收通量。因此,在维持桉树人工林生产力的基础上,结合季节变化,合理调控施氮量将有助于减少桉树林土壤温室气体排放。  相似文献   

9.
基于DNDC模型的稻田温室气体排放通量模拟   总被引:1,自引:0,他引:1  
理解土地利用方式转变过程影响生态系统生物地球化学循环及温室气体排放的机理,并利用模型模拟土地利用方式转变过程对温室气体通量的影响是一项长期、艰巨的科学任务。本研究基于国际上广泛应用的生物地球化学过程模型(DNDC模型),结合气象、土壤和管理措施等数据,模拟了旱田转水田土地利用方式转变后稻田CH_4、CO_2和N_2O三种温室气体的通量和常年种植水稻的稻田温室气体通量,并将模拟值与观测值进行比较。结果表明:DNDC模型能够较好地模拟新、老稻田温室气体通量的季节变化,但对老稻田温室气体的排放通量模拟效果(R~20. 89,n=40,P0. 01)优于新转稻田(R~20.79,n=265,P0.01),且对CH_4和CO_2的模拟效果优于对N_2O的模拟效果;根据田间观测数据,改变模型模拟土地利用方式转换前后土壤SOC浓度和p H值,并不能完全模拟土地利用变化对温室气体的影响,微生物群落在土地利用方式转变过程中可能发生较大变化,需要在模型中进一步体现。通过模型模拟土地利用方式改变对温室气体排放的影响,可为国家温室气体、碳排放清单的编制及管理政策的制定提供参考依据。  相似文献   

10.
沙漠土壤在全球土壤主要温室气体通量中扮演着重要角色,但是在环境变化条件下的通量估算结果存在很大的不确定性。在新疆古尔班通古特沙漠设定N0、N0.5、N1、N3、N6和N24 6个样方,以0、0.5、1.0、3.0、6.0和24.0 g·m~(–2)·a~(–1) 6个不同模拟氮(N)沉降浓度进行N处理,两年后开始对施N样方进行为期两个生长季的N_2O、CH_4和CO_2通量测定。研究表明生长季对照样方(N0)的N_2O、CH_4和CO_2的平均通量分别为4.8μg·m~(–2)·h~(–1)、–30.5μg·m~(–2)·h~(–1)和46.7 mg·m~(–2)·h~(–1),季节变化显著影响3种气体的通量。N0、N0.5和N1在春季和夏季具有相似的N_2O排放速率,排放速率高于秋季,而N6和N24的N_2O排放主要受N输入时间影响;CH_4的吸收在春季和夏季相对较高,秋季较低;CO_2的排放量在第一年春季和夏季之间变化较小,但高于秋季排放量,第二年CO_2动态与N浓度相关。N增加通常能显著促进N_2O的排放,但受测定季节和年度的影响,且各处理的N_2O排放因子大小无明显规律;CH_4的吸收受N增加影响不显著;CO_2的排放在第一年不受N增加的影响,第二年高浓度N增加对春季和夏季CO_2排放具有限制作用,对秋季影响不显著。结构方程模型的研究表明,对N_2O、CH_4和CO_2的动态变化影响较大的因子分别是施N浓度、土壤温度或土壤含水量和植株密度。整个生长季由N带来的净通量和增温潜力非常小。  相似文献   

11.
The magnitude, temporal, and spatial patterns of soil‐atmospheric greenhouse gas (hereafter referred to as GHG) exchanges in forests near the Tropic of Cancer are still highly uncertain. To contribute towards an improvement of actual estimates, soil‐atmospheric CO2, CH4, and N2O fluxes were measured in three successional subtropical forests at the Dinghushan Nature Reserve (hereafter referred to as DNR) in southern China. Soils in DNR forests behaved as N2O sources and CH4 sinks. Annual mean CO2, N2O, and CH4 fluxes (mean±SD) were 7.7±4.6 Mg CO2‐C ha?1 yr?1, 3.2±1.2 kg N2O‐N ha?1 yr?1, and 3.4±0.9 kg CH4‐C ha?1 yr?1, respectively. The climate was warm and wet from April through September 2003 (the hot‐humid season) and became cool and dry from October 2003 through March 2004 (the cool‐dry season). The seasonality of soil CO2 emission coincided with the seasonal climate pattern, with high CO2 emission rates in the hot‐humid season and low rates in the cool‐dry season. In contrast, seasonal patterns of CH4 and N2O fluxes were not clear, although higher CH4 uptake rates were often observed in the cool‐dry season and higher N2O emission rates were often observed in the hot‐humid season. GHG fluxes measured at these three sites showed a clear increasing trend with the progressive succession. If this trend is representative at the regional scale, CO2 and N2O emissions and CH4 uptake in southern China may increase in the future in light of the projected change in forest age structure. Removal of surface litter reduced soil CO2 effluxes by 17–44% in the three forests but had no significant effect on CH4 absorption and N2O emission rates. This suggests that microbial CH4 uptake and N2O production was mainly related to the mineral soil rather than in the surface litter layer.  相似文献   

12.
Canopy soils can significantly contribute to aboveground labile biomass, especially in tropical montane forests. Whether they also contribute to the exchange of greenhouse gases is unknown. To examine the importance of canopy soils to tropical forest‐soil greenhouse gas exchange, we quantified gas fluxes from canopy soil cores along an elevation gradient with 4 yr of nutrient addition to the forest floor. Canopy soil contributed 5–12 percent of combined (canopy + forest floor) soil CO2 emissions but CH4 and N2O fluxes were low. At 2000 m, phosphorus decreased CO2 emissions (>40%) and nitrogen slightly increased CH4 uptake and N2O emissions. Our results show that canopy soils may contribute significantly to combined soil greenhouse gas fluxes in montane regions with high accumulations of canopy soil. We also show that changes in fluxes could occur with chronic nutrient deposition.  相似文献   

13.
温带针阔混交林土壤碳氮气体通量的主控因子与耦合关系   总被引:3,自引:0,他引:3  
中高纬度森林地区由于气候条件变化剧烈,土壤温室气体排放量的估算存在很大的不确定性,并且不同碳氮气体通量的主控因子与耦合关系尚不明确。以长白山温带针阔混交林为研究对象,采用静态箱-气相色谱法连续4a(2005—2009年)测定土壤二氧化碳(CO2)、甲烷(CH4)和氧化亚氮(N2O)净交换通量以及温度、水分等相关环境因子。研究结果表明:温带针阔混交林土壤整体上表现为CO2和N2O的排放源和CH4的吸收汇。土壤CH4、CO2和N2O通量的年均值分别为-1.3 kg CH4hm-2a-1、15102.2 kg CO2hm-2a-1和6.13 kg N2O hm-2a-1。土壤CO2通量呈现明显的季节性规律,主要受土壤温度的影响,水分次之;土壤CH4通量的季节变化不明显,与土壤水分显著正相关;土壤N2O通量季节变化与土壤CO2通量相似,与土壤水分、温度显著正相关。土壤CO2通量和CH4通量不存在任何类型的耦合关系,与N2O通量也不存在耦合关系;土壤CH4和N2O通量之间表现为消长型耦合关系。这项研究显示温带针阔混交林土壤碳氮气体通量主要受环境因子驱动,不同气体通量产生与消耗之间存在复杂的耦合关系,下一步研究需要深入探讨环境变化对其耦合关系的影响以及内在的生物驱动机制。  相似文献   

14.
Tropical forests on upland soils are assumed to be a methane (CH4) sink and a weak source of nitrous oxide (N2O), but studies of wetland forests have demonstrated that tree stems can be a substantial source of CH4, and recent evidence from temperate woodlands suggests that tree stems can also emit N2O. Here, we measured CH4 and N2O fluxes from the soil and from tree stems in a semi‐evergreen tropical forest on upland soil. To examine the influence of seasonality, soil abiotic conditions and substrate availability (litter inputs) on trace greenhouse gas (GHG) fluxes, we conducted our study during the transition from the dry to the wet season in a long‐term litter manipulation experiment in Panama, Central America. Trace GHG fluxes were measured from individual stem bases of two common tree species and from soils beneath the same trees. Soil CH4 fluxes varied from uptake in the dry season to minor emissions in the wet season. Soil N2O fluxes were negligible during the dry season but increased markedly after the start of the wet season. By contrast, tree stem bases emitted CH4 and N2O throughout the study. Although we observed no clear effect of litter manipulation on trace GHG fluxes, tree species and litter treatments interacted to influence CH4 fluxes from stems and N2O fluxes from stems and soil, indicating complex relationships between tree species traits and decomposition processes that can influence trace GHG dynamics. Collectively, our results show that tropical trees can act as conduits for trace GHGs that most likely originate from deeper soil horizons, even when they are growing on upland soils. Coupled with the finding that the soils may be a weaker sink for CH4 than previously thought, our research highlights the need to reappraise trace gas budgets in tropical forests.  相似文献   

15.
梁东哲  赵雨森  曹杰  辛颖 《生态学报》2019,39(21):7950-7959
为研究大兴安岭重度火烧迹地在不同恢复方式下林地土壤CO2、CH4和N2O排放特征及其影响因素,采用静态箱/气相色谱法,在2017年生长季(6月-9月)对3种恢复方式(人工更新、天然更新和人工促进天然更新)林地土壤温室气体CO2、CH4、N2O通量进行了原位观测。研究结果表明:(1)3种恢复方式林地土壤在生长季均为大气CO2、N2O的源,CH4的汇;生长季林地土壤CO2排放通量大小关系为人工促进天然更新((634.40±246.52)mg m-2 h-1) > 人工更新((603.63±213.22)mg m-2 h-1) > 天然更新((575.81±244.12)mg m-2 h-1),3种恢复方式间无显著差异;人工更新林地土壤CH4吸收通量显著高于人工促进天然更新;天然更新林地土壤N2O排放通量显著高于其他两种恢复方式。(2)土壤温度是影响3种恢复方式林地土壤温室气体通量的关键因素;土壤水分仅对人工更新林地土壤N2O通量有极显著影响(P < 0.01);3种恢复方式林地土壤CO2通量与大气湿度具有极显著的响应(P < 0.01);土壤pH仅与天然更新林地土壤CO2通量显著相关(P < 0.05);土壤全氮含量仅与人工促进天然更新林地土壤CH4通量显著相关(P < 0.05)。(3)基于100年尺度,由3种温室气体计算全球增温潜势得出,人工促进天然更新(1.83×104 kg CO2/hm2) > 人工更新(1.74×104 kg CO2/hm2) > 天然更新(1.67×104 kg CO2/hm2)。(4)阿木尔地区林地土壤年生长季CO2和N2O排放量为8.85×106 t和1.88×102 t,CH4吸收量为1.05×103 t。  相似文献   

16.
Wetlands contribute considerably to the global greenhouse gas (GHG) balance. In these ecosystems, groundwater level (GWL) and temperature, two factors likely to be altered by climate change, exert important control over CO2, CH4 and N2O fluxes. However, little is known about the temperature sensitivity (Q10) of the combined GHG emissions from hydromorphic soils and how this Q10 varies with GWL. We performed a greenhouse experiment in which three different (plant‐free) hydromorphic soils from a temperate spruce forest were exposed to two GWLs (an intermediate GWL of ?20 cm and a high GWL of ?5 cm). Net CO2, CH4 and N2O fluxes were measured continuously. Here, we discuss how these fluxes responded to synoptic temperature fluctuations. Across all soils and GWLs, CO2 emissions responded similarly to temperature and Q10 was close to 2. The Q10 of the CH4 and N2O fluxes also was similar across soil types. GWL, on the other hand, significantly affected the Q10 of both CH4 and N2O emissions. The Q10 of the net CH4 fluxes increased from about 1 at GWL = ?20 cm to 3 at GWL = ?5 cm. For the N2O emissions, Q10 varied around 2 for GWL = ?20 cm and around 4 for GWL = ?5 cm. This substantial GWL‐effect on the Q10 of CH4 and N2O emissions was, however, hardly reflected in the Q10 of the total GHG emissions (which varied around 2), because the contribution of these gases was relatively small compared to that of CO2.  相似文献   

17.
不同施氮水平对巨桉幼树耐旱生理特征的影响   总被引:1,自引:0,他引:1       下载免费PDF全文
采用盆栽方法,研究了巨桉幼树在N0(不施氮)、N1(1.4g尿素·盆-1)、N2(2.8g尿素·盆-1)3个氮处理水平下,连续干旱不同时间[分别停水0(D0)、3、6、9、12、15、18d]时巨桉的生理响应。结果显示:(1)除D0外,试验期内N1和N2处理的巨桉叶片含水量(LWC)、叶片相对含水量(LRWC)和叶片保水力(LWHC)基本低于N0水平,尤其在干旱中期最为明显,表明在干旱胁迫前施氮可能对巨桉叶片水分生理产生负面作用。(2)干旱初期,氮处理间的可溶性蛋白(SP)和可溶性糖(SS)含量的差异不大,而干旱处理后期(9~18d),N0处理的SP和SS较初期明显增加,但N1和N2处理相对于N0变化较为平缓,表明施氮不利于SP和SS积累;N1和N2处理下脯氨酸(Pro)含量的增幅随着干旱胁迫时间的延长明显大于N0处理。(3)随干旱时间延长干旱程度加重,N1、N2处理巨桉叶片过氧化氢(H2O2)和丙二醛(MDA)含量明显高于N0处理,表明施氮使得巨桉在干旱条件下水分缺乏更为严重,产生更多的活性氧(ROS)。(4)整个干旱处理期内,施氮并未显著改变巨桉的超氧化物歧化酶(SOD)活性和抗坏血酸(AsA)含量,但N1和N2的过氧化物酶(POD)活性明显高于N0。(5)施氮增加了巨桉叶片的色素含量并在干旱初期和中期保持较高水平,在干旱初期(0~3d)增加了巨桉叶片的净光合速率(Pn),但随着干旱时间的延长而迅速下降;施氮(N1、N2)的蒸腾速率(Tr)和气孔导度(Gs)在干旱初期均显著小于N0,但在干旱中后期(6d以后)各处理间差异不显著且均处于极低水平。研究表明,水分充足时施氮有助于增强巨桉的光合同化能力,促进其生长,但遇到持续干旱时施氮更易面临水分亏缺,降低其抵抗干旱的能力,因此在巨桉人工林的经营管理过程中,不应在干旱或季节性干旱即将到来之前施氮,若干旱过程中需施氮则应采取灌溉等途径保证其充足的水分供应。  相似文献   

18.
Zhang W  Mo J M  Fang Y T  Lu X K  Wang H 《农业工程》2008,28(5):2309-2319
Nitrogen (N) deposition can alter the rates of microbial N- and C- turnover, and thus can affect the fluxes of greenhouse gases (GHG, e.g., CO2, CH4, and N2O) from forest soils. The effects of N deposition on the GHG fluxes from forest soils were reviewed in this paper. N deposition to forest soils have shown variable effects on the soil GHG fluxes from forest, including increases, decreases or unchanged rates depending on forest type, N status of the soil, and the rate and type of atmospheric N deposition. In forest ecosystems where biological processes are limited by N supply, N additions either stimulate soil respiration or have no significant effect, whereas in “N saturated” forest ecosystems, N additions decrease CO2 emission, reduce CH4 oxidation and elevate N2O flux from the soil. The mechanisms and research methods about the effects of N deposition on GHG fluxes from forest soils were also reviewed in this paper. Finally, the present and future research needs about the effects of N deposition on the GHG fluxes from forest soils were discussed.  相似文献   

19.
Wetland catchments are major ecosystems in the Prairie Pothole Region (PPR) and play an important role in greenhouse gases (GHG) flux. However, there is limited information regarding effects of land-use on GHG fluxes from these wetland systems. We examined the effects of grazing and haying, two common land-use practices in the region, on GHG fluxes from wetland catchments during 2007 and 2008. Fluxes of methane (CH4), nitrous oxide (N2O), and carbon dioxide (CO2), along with soil water content and temperature, were measured along a topographic gradient every other week during the growing season near Ipswich, SD, USA. Closed, opaque chambers were used to measure fluxes of soil and plant respiration from native sod catchments that were grazed or left idle, and from recently restored catchments which were seeded with native plant species; half of these catchments were hayed once during the growing season. Catchments were adjacent to each other and had similar soils, soil nitrogen and organic carbon content, precipitation, and vegetation. When compared with idle catchments, grazing as a land-use had little effect on GHG fluxes. Likewise, haying had little effect on fluxes of CH4 and N2O compared with non-hayed catchments. Haying, however, did have a significant effect on combined soil and vegetative CO2 flux in restored wetland catchments owing to the immediate and comprehensive effect haying has on plant productivity. This study also examined soil conditions that affect GHG fluxes and provides cumulative annual estimates of GHG fluxes from wetland catchment in the PPR.  相似文献   

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