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1.
观测了75年长期连续不施肥、施硫酸铵、施熟制水稻秸秆与豆饼混合堆肥、施绿肥苜蓿4种处理下日本单季稻田温室气体N2O和CH4的排放特征及其环境影响.结果表明: 在水稻生长季节,不同处理间N2O排放无显著差异,但CH4排放差异显著;长期连续施用有机肥虽然没有增加N2O排放却促进了CH4排放.各系统排放N2O和CH4所产生的累积全球增温潜势(GWP)以绿肥处理最大(310.7 g CO2e·m-2),熟制有机堆肥次之(151g CO2e·m-2),硫酸铵处理最小(60.6 g CO2e·m-2).稻田系统的GWP主要来自CH4排放,控制和减少稻田系统CH4排放是稻田温室气体减排的核心问题.长期连续施用熟制有机堆肥既能增加土壤有机质,改善地力,满足水稻高产,又能实现CH4减排,是实践中值得推荐的水稻生产模式.  相似文献   

2.
日本长期不同施肥稻田N2O和CH4排放特征及其环境影响   总被引:4,自引:0,他引:4  
观测了75年长期连续不施肥、施硫酸铵、施熟制水稻秸秆与豆饼混合堆肥、施绿肥苜蓿4种处理下日本单季稻田温室气体N2O和CH4的排放特征及其环境影响.结果表明: 在水稻生长季节,不同处理间N2O排放无显著差异,但CH4排放差异显著;长期连续施用有机肥虽然没有增加N2O排放却促进了CH4排放.各系统排放N2O和CH4所产生的累积全球增温潜势(GWP)以绿肥处理最大(310.7 g CO2e·m-2),熟制有机堆肥次之(151g CO2e·m-2),硫酸铵处理最小(60.6 g CO2e·m-2).稻田系统的GWP主要来自CH4排放,控制和减少稻田系统CH4排放是稻田温室气体减排的核心问题.长期连续施用熟制有机堆肥既能增加土壤有机质,改善地力,满足水稻高产,又能实现CH4减排,是实践中值得推荐的水稻生产模式.  相似文献   

3.
中高纬度地区非生长季温室气体排放对生态系统碳、氮循环具有重要影响,但采伐干扰如何影响森林沼泽非生长季土壤温室气体排放尚不明确.本研究采用静态箱-气相色谱法,观测小兴安岭4种森林沼泽(毛赤杨沼泽、白桦沼泽、落叶松苔草沼泽、落叶松藓类沼泽)不同采伐方式下(对照、择伐45%、皆伐,试验处理已10年)非生长季土壤CO2、CH4、和N2O通量及其相关环境因子(温度、湿度及碳氮含量等),分析采伐干扰对温带森林沼泽非生长季土壤温室气体排放的影响规律及主控因子.结果表明: 采伐干扰10年后,4种森林沼泽土壤CO2、CH4和N2O非生长季平均通量分别在53.08~81.31 mg·m-2·h-1、0.09~3.07 mg·m-2·h-1和4.07~8.83 μg·m-2·h-1,其中,皆伐显著提高毛赤杨沼泽和落叶松藓类沼泽非生长季土壤CO2、CH4和N2O排放量,择伐显著提高白桦沼泽、落叶松藓类沼泽及降低毛赤杨沼泽的CO2排放量,且显著降低4种森林沼泽CH4排放量及落叶松苔草沼泽的N2O排放量;天然森林沼泽非生长季土壤CO2排放受土壤温度、有机碳含量及C/N调控,CH4受土壤温度、有机碳含量调控,N2O受气温、土壤pH调控,采伐增加了CO2排放与气温、土壤含水量及积雪深度的相关性,增加了CH4排放与气温、土壤含水量、C/N的相关性,增加了N2O排放与土壤全氮和C/N的相关性;温带天然森林沼泽非生长季土壤CO2、CH4和N2O的年贡献率分别为33.2%~46.5%、6.3%~9.1%和61.5%~68.3%,皆伐提高了白桦沼泽和落叶松藓类沼泽CO2年贡献率和除落叶松藓类沼泽外其他样地的N2O年贡献率,择伐提高了落叶松苔草沼泽、落叶松藓类沼泽CO2、CH4和N2O年贡献率,但降低了白桦沼泽3种气体年贡献率.温带天然森林沼泽非生长季土壤N2O和CO2的年贡献率相对较大,皆伐使两者年贡献率进一步提高,择伐却较大幅度提高了其CH4的年贡献率.  相似文献   

4.
库布齐沙漠东部不同生物结皮发育阶段土壤温室气体通量   总被引:2,自引:0,他引:2  
以流动沙地为对照,采用时空替代法分析库布齐沙漠东部固定沙地上不同发育阶段生物结皮藻类结皮和地衣结皮土壤温室气体通量特征及其与环境因子之间的关系,研究生物结皮发育对荒漠土壤温室气体通量的影响.结果表明: 荒漠土壤CO2排放通量大小为地衣结皮(128.5 mg·m-2·h-1)>藻结皮(70.2 mg·m-2·h-1)>流动沙地(48.2 mg·m-2·h-1),CH4吸收通量大小为地衣结皮(30.4 μg·m-2·h-1)>藻结皮(21.2 μg·m-2·h-1)>流动沙地(18.2 μg·m-2·h-1),N2O排放通量大小为地衣结皮(6.6 μg·m-2·h-1)>藻结皮(5.4 μg·m-2·h-1)>流动沙地(2.5 μg·m-2·h-1).CO2排放具有明显的季节变化,生长季显著大于非生长季;CH4和N2O季节变化差异不显著,前者生长季吸收大于非生长季,后者非生长季排放大于生长季.土壤有机碳和全氮含量、土壤微生物数量均是影响温室气体通量的重要因素,环境水热因子是影响土壤CO2排放的关键因子,但CH4和N2O通量对水热因子的变化不敏感.随着植被恢复和生物结皮发育,荒漠土壤温室气体累积通量的不断增大导致其百年尺度的全球增温潜势亦显著提高,依次为地衣结皮(1135.7 g CO2-e·m-2·a-1)>藻结皮(626.5 g CO2-e·m-2·a-1) >流动沙地(422.7 g CO2-e·m-2·a-1).  相似文献   

5.
为研究大兴安岭重度火烧迹地自然恢复后的林分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,对生长季(6—9月)天然次生林土壤温室气体CO2、CH4、N2O通量进行原位观测.结果表明: 1)生长季内天然次生林土壤为大气CO2、N2O的源,CH4的汇,平均通量分别为575.81 mg·m-2·h-1、17.81 μg·m-2·h-1和-68.69 μg·m-2·h-1;CO2与CH4通量在生长季内表现出明显的双峰变化规律,N2O通量则呈单峰变化,且均在8月达到观测期的最大值.2)土壤温度是影响该区天然次生林土壤温室气体通量的主控因子,土壤湿度和大气湿度在昼夜与季节尺度上与土壤温室气体通量的相关性不同.3)该区天然次生林9:00—12:00时段观测获得的土壤气体通量值经矫正后可代表当日气体通量.研究补充了大兴安岭火烧迹地森林生态系统温室气体通量数据,为该区土壤温室气体源汇的相关研究提供了依据.  相似文献   

6.
采用静态箱-气相色谱法,对科尔沁半干旱地区典型的沙丘-草甸梯级生态系统中半流动沙丘和草甸湿地的温室气体(CO2、CH4、N2O)通量进行了观测,分析了生长季温室气体的动态变化及其与环境影响因子的关系.结果表明: 生长季半流动沙丘和草甸湿地CH4通量均整体表现为吸收,平均值分别为-52.7和-34.7 μg·m-2·h-1,介于-176.1~49.8 μg·m-2·h-1之间变化,8月22日半流动沙丘CH4吸收值达到生长季最大值;8、9月降雨集中时段内草甸湿地CH4通量表现为持续排放,与半流动沙丘呈明显差异.N2O通量在7月21日达到生长季最大值,半流动沙丘N2O通量的月均值表现为7月>8月>9月>6月>5月.土壤温湿度是影响CO2和CH4通量的关键因子,N2O通量主要受土壤温度的影响.样地土壤温度敏感性(Q10)表现为半流动沙丘(1.009)<草甸湿地(1.474),半流动沙丘土壤受到水分胁迫,导致其温室气体通量对土壤温度变化的敏感性明显低于草甸湿地.  相似文献   

7.
用箱法对我国东北稻田CH4和N2O排放进行观测研究表明,东北稻田的CH4排放通量比南方稻田小,平均日排放通量和生长季节排放总量分别为0.07和7.4g·m-2.稻田淹水期几乎没有N2O的净排放,但在非淹水期内却有大量N2O排放(平均通量59μgN2O·m-2·h-1).稻田养萍和施肥明显促进CH4和N2O排放。稻田CH4和N2O排放之间存在消长关系。制定稻田温室气体减排技术措施时应充分注意这一关系。  相似文献   

8.
利用黑龙江省科学院自然与生态研究所三江平原湿地生态定位研究站内的长期模拟氮沉降试验平台,采用静态箱-气相色谱法,设置低氮(40 kg N·hm-2·a-1)和高氮(80 kg N·hm-2·a-1)处理,以及对照(0 kg N·hm-2·a-1),测定小叶章湿地温室气体排放通量及其相关环境因子,研究三江平原小叶章湿地温室气体排放对氮沉降的响应.结果表明: 低氮和高氮输入均显著增加了温室气体的排放通量,低氮和高氮处理使CO2排放通量增加47.5%和47.9%,CH4排放通量增加76.8%和110.1%,N2O排放通量增加42.4%和10.6%.低氮输入改变了N2O排放的季节动态,但对CO2和CH4排放的季节动态没有显著影响,高氮处理对3种气体排放的季节动态均未造成影响.CO2排放通量和CH4排放通量均与土壤温度呈显著正相关,而影响N2O排放的因素较为复杂,未与土壤温度出现显著的相关关系.  相似文献   

9.
森林土壤是CO2、CH4和N2O等温室气体的重要排放源。采用静态箱/色谱分析技术对中国科学院鹤山丘陵综合开放试验站的尾叶桉(Eucalyptus urophylla)林土壤CO2、CH4和N2O排放通量进行了原位测定, 研究剔除林下灌草和添加翅荚决明(Cassia alata)对尾叶桉林土壤温室气体排放的影响。结果表明: 尾叶桉林土壤CO2排放通量在湿季维持在较高水平, 在旱季则明显降低。CH4和N2O在湿季波动幅度较大, 在旱季则相对稳定。土壤CO2和CH4通量峰值均出现在湿季, 但N2O峰值出现在旱季的12月。尾叶桉林土壤在不同处理下可能是CH4的源, 也可能是CH4的汇, 而对于CO2和N2O则主要是源。尾叶桉林下剔除灌草及添加翅荚决明能显著增大土壤CO2和N2O的排放, 但林下灌草剔除后有利于CH4的吸收, 添加翅荚决明有利于CH4的排放。表层土壤温度和湿度是影响土壤温室气体排放的首要因子。呼吸底物(氮源)和土壤微生物量也是影响土壤温室气体排放的重要因子。  相似文献   

10.
城市景观水体是大气CO2与CH4的排放热源,而水生植物作为景观水体的重要组成要素,对水体温室气体排放动态的影响并不清楚。选择重庆市观音塘国家湿地公园为研究区,利用漂浮箱法与顶空平衡法对观音塘水域7种不同水生植物分布区进行水-气界面CO2与CH4排放通量及CO2、CH4溶存浓度进行季节性监测,估算了植物传输对气体通量的贡献。结果表明:1)观音塘水体CO2与CH4浓度范围分别为8.0—341.8μmol/L和0.23—5.26μmol/L,排放通量分别为26.5—869.1 mmol m-2 d-1和0.40—11.15 mmol m-2 d-1,是大气净CO2与CH4排放源;2)观音塘开敞水区CO2与CH4排放通量低于大部分城市湖泊或景观水体...  相似文献   

11.
在FACE(free-aircarbondioxideenrichment)平台上,采用静态暗箱气相色谱法观测研究了大气CO2浓度增加对稻田CH4和N2O排放的影响.结果表明,在150和250kgN·hm-2两种氮肥水平下大气CO2浓度增加200μmol·mol-1均明显促进水稻生长,水稻生物量积累.大气CO2浓度增加对150和250kgN·hm-2两种氮肥水平下稻田CH4排放均无显著影响,并简要分析了与现有文献报道结果不一致的原因.大气CO2浓度增加也未导致150和250kgN·hm-2两种氮肥水平下稻田N2O排放的明显变化,与大多数研究结果一致.  相似文献   

12.
弄清土地利用和降水变化对林地土壤主要温室气体(CO2、CH4和N2O)排放通量变化的影响, 是准确评估森林土壤温室气体排放能力的重要基础。该研究以常绿落叶阔叶混交林原始林、桦木(Betula luminifera)次生林和马尾松(Pinus massoniana)人工林为对象, 采用静态箱-气相色谱法研究了3种土地利用方式(常绿落叶阔叶混交林原始林、桦木次生林和马尾松人工林)和降水减少处理状况下森林土壤CO2、CH4和N2O通量排放特征, 并探讨了其环境驱动机制。研究结果表明: 原始林土壤CH4吸收通量显著高于次生林和人工林, 次生林CH4吸收通量显著高于人工林土壤。人工林土壤CO2排放通量显著高于原始林和次生林土壤。次生林土壤N2O排放通量高于原始林和人工林, 但三者间差异不显著。降水减半显著抑制了3种不同土地利用方式下林地土壤CH4吸收通量; 降水减半处理对原始林和次生林土壤CO2排放通量均具有显著的促进作用, 而对人工林土壤CO2排放通量具有显著的抑制作用; 降水减半处理促进了原始林和人工林林地土壤N2O排放而抑制了次生林林地土壤N2O排放。原始林和次生林林地土壤CH4吸收通量随土壤温度升高显著增加, CH4吸收通量与土壤温度均呈显著相关关系; 原始林、次生林和人工林土壤CO2和N2O排放通量与土壤温度均呈显著正相关关系; 土壤湿度抑制了次生林和人工林土壤CH4吸收通量, 其CH4吸收通量随土壤湿度增加显著减少; 原始林土壤CO2排放通量与土壤湿度呈显著正相关关系。自然状态下, 原始林土壤N2O排放通量与土壤湿度呈显著正相关关系, 原始林和次生林土壤N2O排放通量与硝态氮含量呈显著相关关系。研究结果表明全球气候变化(如降水变化)和土地利用方式的转变将对北亚热带森林林地土壤温室气体排放通量产生显著的影响。  相似文献   

13.
《植物生态学报》2016,40(10):1049
Aims It is important to study the effects of land use change and reduced precipitation on greenhouse gas fluxes (CO2, CH4 and N2O) of forest soils. Methods The fluxes of CO2, CH4 and N2O and their responses to environmental factors of primary forest soil, secondary forest soil and artificial forest soil under a reduced precipitation regime were explored using the static chamber and gas chromatography methods during the period from January to December in 2014. Important findings Results indicate that CH4 uptake of primary forest soil ((-44.43 ± 8.73) μg C·m-2·h-1) was significantly higher than that of the secondary forest soil ((-21.64 ± 4.86) μg C·m-2·h-1) and the artificial forest soil ((-10.52 ± 2.11) μg C·m-2·h-1). CH4 uptake of the secondary forest soil ((-21.64 ± 4.86) μg C·m-2·h-1) was significantly higher than that of the artificial forest ((-10.52 ± 2.11) μg C·m-2·h-1). CO2 emissions of the artificial forest soil ((106.53 ± 19.33) μg C·m-2·h-1) were significantly higher than that of the primary forest soil ((49.50 ± 8.16) μg C·m-2·h-1) and the secondary forest soil ((63.50 ± 5.35) μg C·m-2·h-1) (p < 0.01). N2O emissions of the secondary forest soil ((1.91 ± 1.22) μg N·m-2·h-1) were higher than that of the primary forest soil ((1.40 ± 0.28) μg N·m-2·h-1) and the artificial forest soil ((1.01 ± 0.86) μg N·m-2·h-1). Reduced precipitation (-50%) had a significant inhibitory effect on CH4 uptake of the artificial forest soil, while it enhanced CO2 emissions of the primary forest soil and the secondary forest soil. Reduced precipitation had a significant inhibitory effect on CO2 emissions of the artificial forest soil and N2O emissions of the secondary forest (p < 0.01). Reduced precipitation promotes N2O emissions of the primary forest soil and the artificial forest soil. CH4 uptake of the primary forest and the secondary forest soil increased significantly with the increase of soil temperature under natural and reduced precipitation. CO2 and N2O emission fluxes of the primary forest soil, secondary forest soil and artificial forest soil were positively correlated with soil temperature (p < 0.05). Soil moisture inhibited CH4 uptake of the secondary forest soil and the artificial forest soil (p < 0.05). CO2 emissions of the primary forest soil were significantly positively correlated with soil moisture (p < 0.05). N2O emissions of primary forest soil and secondary forest soil were significantly correlated with the nitrate nitrogen content (p < 0.05). It was implied that reduced precipitation and land use change would have significant effects on greenhouse gas emissions of subtropical forest soils.  相似文献   

14.
《植物生态学报》2017,41(3):290
Aims Desert soils play an important role in the exchange of major greenhouse gas (GHG) between atmosphere and soil. However, many uncertainties existed in understanding of desert soil role, especially in efflux evaluation under a changing environment. Methods We conducted plot-based field study in center of the Gurbantünggüt Desert, Xinjiang, and applied six rates of simulated nitrogen (N) deposition on the plots, i.e. 0 (N0), 0.5 (N0.5), 1.0 (N1), 3.0 (N3), 6.0 (N6) and 24.0 (N24) g·m-2·a-1. The exchange rates of N2O, CH4 and CO2 during two growing seasons were measured for two years after N applications. Important findings The average efflux of two growing seasons from control plots (N0) were 4.8 μg·m-2·h-1, -30.5 μg·m-2·h-1 and 46.7 mg·m-2·h-1 for N2O, CH4 and CO2, respectively. The effluxes varied significantly among seasons. N0, N0.5 and N1 showed similar exchange of N2O in spring and summer, which was relatively higher than in autumn, while the rates of N2O in N6 and N24 were controled by time points of N applications. The uptake of CH4 was relatively higher in both spring and summer, and lower in autumn. Emission of CO2 changed minor from spring to summer, and greatly decreased in autumn in the first measured year. In the second year, the emission patterns were changed by rates of N added. N additions generally stimulated the emission of N2O, while the effects varied in different seasons and years. In addition, no obvious trends were found in the emission factor of N2O. The uptake of CH4 was not significantly affected by N additions. N additions did not change CO2 emissions in the first year, while high N significantly reduced the CO2 emissions in spring and summer of the second year, without affected in autumn. Structure equation model analysis on the factors suggested that N2O, CH4 and CO2 were dominantly affected by the N application rates, soil temperature or moisture and plant density, respectively. Over the growing seasons, both the net efflux and the global warming potential caused by N additions were small.  相似文献   

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