首页 | 官方网站   微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 78 毫秒
1.
我国亚热带地区是全球氮沉降的热点区域。氮沉降会影响氨氧化微生物的丰度和群落结构,进而改变土壤微生物驱动的养分循环。目前对新近发现的完全氨氧化菌认识不足,极大地制约了对森林土壤氨氧化微生物响应氮沉降的整体认识。本研究以福建省三明市辛口镇格氏栲自然保护区长期模拟氮沉降处理土壤为研究对象,利用实时定量PCR方法,研究氨氧化微生物(包括氨氧化细菌AOB、氨氧化古菌AOA和完全氨氧化菌comammox Nitrospira),尤其是完全氨氧化菌的amoA基因丰度。模拟氮沉降处理包括:不添加N(CK)、低氮(添加40 kg N·hm-2·a-1,LN)和高氮(添加80 kg N·hm-2·a-1,HN)。结果表明: 8年的氮添加降低了土壤pH值和有机碳含量,提高了土壤硝态氮含量。供试土壤的AOB丰度低于检测限,无法获得目的片段。高氮处理显著提高了AOA丰度,但对完全氨氧化菌clade A和clade B丰度无显著影响。两种氮添加处理均降低了完全氨氧化菌/AOA值,表明氮添加降低了完全氨氧化菌在亚热带森林土壤氨氧化微生物类群中的相对竞争力。针对完全氨氧化菌clade A和clade B的扩增都存在非特异性产物,表明针对森林土壤的高特异性和覆盖度设计引物的必要性。Clade A和clade B丰度与总氮和铵态氮含量呈显著正相关,clade B丰度还与有机碳含量呈显著正相关。总之,模拟氮沉降提高了AOA在亚热带米槠天然林土壤硝化过程中的相对重要性,这些发现可为该地区应对全球变化和氮沉降的风险评估提供理论依据。  相似文献   

2.
施氮和玉米生长对土壤氧化亚氮排放的影响   总被引:11,自引:2,他引:11  
运用土壤盆栽试验、静态箱法采样和气相色谱分析技术研究了种植玉米土壤和裸土在两种土壤施氮水平 (低氮:150 mg·kg-1土,和高氮:300 mg·kg-1土) 下对土壤排放N2O的影响.结果表明,在种植玉米的土壤中,N2O排放率的峰值出现在苗期,且氮肥施用量的影响显著,土壤N2O排放率与温度没有显著的相关性.在裸土中,土壤N2O排放率的峰值出现在试验后期,土壤N2O排放率与温度呈极显著指数相关.土壤施氮量增加,土壤N2O排放总量增加,裸土N2O增加尤其显著,种植玉米比裸土减少87%~92%的N2O排放量.这一结果表明种植作物与否,不仅改变了土壤N2O排放的季节变化和排放量,而且改变了温度与土壤N2O排放之间的关系.  相似文献   

3.
应用C2H2抑制原状土柱培育法研究了三江平原典型小叶章湿地土壤N2O排放速率及反硝化速率的变化,分析了它们与环境因子的关系,并估算了N2O排放量及反硝化损失量.结果表明:草甸沼泽土和腐殖质沼泽土N2O排放速率的变化基本一致,其范围分别为0.020~0.089 kg N·hm-2·d-1和0.012~0.033 kg N·hm-2·d-1,前者的N2O排放速率均明显高于后者(平均为1.79±1.07倍),且其差异达到显著水平(P<0.05);二者反硝化速率的变化并不一致,其范围分别为0.024~0.127 kg N·hm-2·d-1和0.021~0.043 kg N·hm-2·d-1,前者的反硝化速率一般也要高于后者(平均为1.67±1.56倍),但其差异并未达到显著水平(P>0.05);硝化作用在前者N2O排放和氮素损失过程中发挥了重要作用,而反硝化作用则是导致后者N2O排放和氮素损失的重要过程;氮素物质基础不是影响二者硝化-反硝化作用的重要因素;温度对前者硝化 反硝化作用的影响比后者更为明显,其反硝化速率与5、10和15 cm地温均呈显著正相关(P<0.05);二者所处湿地水分条件的差异是导致其N2O排放速率及反硝化速率差异的重要原因.生长季内,前者的N2O排放量和反硝化损失量分别为5.216 kg N·hm-2和6.166 kg N·hm-2,而后者分别为3.196 kg N·hm-2和4.407 kg N·hm-2;在二者的反硝化产物中,N2O/N2的比率最高,分别为5.49和3.76,表明N2在后者反硝化产物中所占的比例明显高于前者,说明季节积水条件会导致N2O/N2比例降低.  相似文献   

4.
等氮滴灌对宿根蔗产量及土壤氧化亚氮排放的影响   总被引:1,自引:0,他引:1  
为得到合理的水肥管理措施,研究等氮量下不同滴灌施肥比例对宿根蔗产量以及不同生育期蔗田土壤氧化亚氮(N2 O)通量和无机氮含量的影响,并分析蔗田土壤N2 O通量与无机氮含量之间的关系.该文以自然降雨W0为对照,设置2种滴灌灌水量水平W1(田间持水量的75%)和W2(田间持水量的85%),等量氮肥(N 300 kg·hm-...  相似文献   

5.
丁琦  白红英  李西祥  路莉 《生态学报》2007,27(7):2823-2831
以冬小麦田耕作层原状土为研究对象,采用了室内培养实验的方法,观测了小麦生长期不同阶段根系对土壤N2O排放的影响,及对土壤N2O排放的水、热效应的影响。结果表明,在实验的各个时期土壤N2O平均排放通量麦田均高于休耕地,在孕穗期麦田N2O排放通量出现最大值;而随根系质量和活性下降,生殖后期N2O排放量减少。小麦主根区与行间土壤N2O排放量存在差异,其主要表现在孕穗期,行间N2O排放通量是主根区的5.64倍,但开花期和成熟期差异表现并不明显。在小麦开花期和成熟期土壤N2O排放温度效应受作物根系的影响显著,而孕穗期不明显。小麦根系对水分效应影响主要集中表现在15~20cm的土层。同时,研究还发现种植小麦使土壤中N2O排放的主要区域扩大。  相似文献   

6.
牲畜排泄物返还被认为是对草地的一种天然的施肥措施,也是草地养分归还的一种重要途径,对于维持土壤肥力和植被生产力具有十分重要的生态学意义。论述了放牧牲畜粪便和尿液自身降解及其氮素变化、粪尿返还对草地土壤氮转化和氧化亚氮(N2O)排放的作用机制及影响效应,指出排泄物氮输入使粪尿斑块成为草地土壤氮转化和N2O排放的活跃点,且不同排泄物类型、土壤理化特性和气候条件等使土壤氮素矿化、固持、硝化及反硝化等关键过程具有复杂性和差异性,进而导致不同类型草地生态系统N2O排放对牲畜排泄物返还的响应不尽相同。建议未来在全球气候变化背景下,应加强草地牲畜排泄物-植被-土壤体系氮素生物地球化学循环过程的系统研究,进一步加深天然草地关键氮素转化过程和N2O排放的微生物作用机制方面的认识,从而有助于为优化放牧牲畜排泄物的管理模式、制定科学合理的草地土壤养分调控策略和维持草地生态系统可持续发展提供科学有效的理论指导。  相似文献   

7.
森林土壤氮素转换及其对氮沉降的响应   总被引:40,自引:5,他引:40  
近几十年人类活动向大气中排放的含氮化合物激增 ,并引起大气氮沉降也成比例增加。目前 ,氮沉降的增加使一些森林生态系统结构和功能发生改变 ,甚至衰退。近 2 0 a欧洲和北美有关氮沉降及其对森林生态系统的影响方面的研究较多 ,而我国少有涉及。森林土壤氮素转换是森林生态系统氮素循环的一个重要的组成部分 ,而矿化、硝化和反硝化作用是其核心过程 ,氮沉降作为驱动因子势必改变森林土壤氮素转换速度、方向和通量。根据国外近 2 0 a有关研究 ,首先介绍了森林土壤氮素转换过程和强度 ,论述森林土壤氮素在生态系统氮素循环中的作用 ,然后在此基础上 ,介绍了氮沉降对森林土壤氮素循环的研究途径 ,探讨了氮沉降对森林土壤氮素矿化、硝化和反硝化作用的影响及其机理  相似文献   

8.
刘鑫军  魏洪杰 《广西植物》2022,42(7):1077-1087
土壤氮(N)的有效性是影响土壤微生物群落结构以及土壤氮循环的重要因子。为探索N添加对樟子松人工林氮素转化及N功能基因(NFGs)表达的影响及其作用机制,该文以塞罕坝千层板林场的樟子松人工林为研究对象,进行了2年的氮添加处理,设置4个不同氮添加水平0、1、5、10 g N·m-2·a-1,分别记作N0、N1、N5、N10,采用功能基因微阵GeoChip 5.0系统及室内土壤培养法,探讨了土壤NFGs对氮添加的反应及其对氮转化过程的影响。结果表明:(1)与N0相比,中低N添加处理(N1、N5)促进了氨化(ureCnirAnrfA)、硝化(amoA)和反硝化(norB)相关基因的相对丰度,高N处理(N10)则抑制了所有NFGs的表达。(2)相关分析表明,N1、N5的促进作用与土壤有机碳(SOC)、硝态氮(NO3--N)和微生物生物量碳(MBC)显著相关,N10处理显著降低了所有氮转化过程NFGs的相对丰度,这种负面影响与溶解性有机碳(DOC)、MBC含量的减少有关。(3)与氮转化基因丰度规律趋势相似,N1和N5处理显著增加了净N硝化、净N矿化以及N2O的排放速率,但N10促进作用不明显,表明氮添加对氮转化的促进作用存在阈值。(4)多元回归分析进一步表明,amoA-AOB和MBC是影响净N硝化的关键因素,ureCnirK和MBC是影响净氮矿化的关键因素,narGnirS是影响N2O排放的关键因素。综上,N添加可提高促进樟子松人工林的氮转化及提高部分特定酶功能基因的相对丰度,但氮添加水平存在阈值,当施用10 g N·m-2·a-1时,氮转化受到抑制,添加5 g N·m-2·a-1是促进樟子松人工林土壤N转化的较佳水平。  相似文献   

9.
农田和森林土壤中氧化亚氮的产生与还原   总被引:14,自引:2,他引:12  
采用土壤淤浆方法对丹麦农田和山毛榉森林土壤反硝化过程中N2O的产生与还原进行了研究。同时考察了硝酸根和铵离子对反硝化作用的影响。结果表明,森林土壤反硝化活性大于农田土壤,但农田土壤中N2O还原活性大于森林土壤,表现在农田和森林土壤中N2O/N2的产生比率分别为0.11和3.65。硝酸根和铵离子能促进两种土壤中的N2O产生,但可降低农田土壤中的N2O还原速率,与农田土壤相比,硝酸根可降低森林土壤N2  相似文献   

10.
垃圾填埋场氧化亚氮排放控制研究进展   总被引:3,自引:0,他引:3  
填埋是国内外城市生活垃圾处理的一种主要方式.垃圾填埋场是温室气体氧化亚氮(N2O)和甲烷(CH4)的重要排放源.作为一种高效痕量的温室气体,N2O具有极高的潜在增温效应,其每分子潜在的增温作用是二氧化碳(CO2)的296倍.而且N2O能在大气中长期稳定存在,对臭氧层具有较强的破坏作用.本文针对垃圾填埋场N2O排放的控制研究,概述了垃圾填埋处理过程中主要排放源的N2O排放及其影响因素,提出了现阶段适应我国垃圾填埋场N2O排放控制的一系列措施,并展望了垃圾填埋场温室气体N2O排放控制理论和技术的研究方向.  相似文献   

11.
El Niño–La Niña cycles strongly influence dry and wet seasons in the tropics and consequently nitrous oxide (N2O) emissions from tropical rainforest soils. We monitored whole‐system and soil chamber N2O fluxes during 5‐month‐long droughts in the Biosphere 2 tropical forest to determine how rainfall changes N2O production. A consistent pattern of N2O flux changes during drought and subsequent wetting emerged from our experiments. Soil surface drying during the first days of drought, presumably increased gas transport out of the soil, which increased N2O fluxes. Subsequent drying caused an exponential decrease in whole‐system (4.0±0.1% day?1) and soil chamber N2O flux (8.9±0.8% day?1; south chamber; and 13.7±1.1% day?1; north chamber), which was highly correlated with soil moisture content. Soil air N2O concentration ([N2O]) and flux measurements revealed that surface N2O production persisted during drought. The first rainfall after drought triggered a N2O pulse, which amounted to 25% of drought‐associated reduction in N2O flux and 1.3±0.4% of annual N2O emissions. Physical displacement of soil air by water and soil chemistry changes during drought could not account for the observed N2O pulse. We contend that osmotic stress on the microbial biomass must have supplied the N source for pulse N2O, which was produced at the litter–soil interface. After the pulse, N2O fluxes were consistently 90% of predrought values. Nitrate change rate, nutrient, [N2O], and flux analyses suggested that nitrifiers dominated N2O production during the pulse and denitrifiers during wet conditions. N2O flux measurements in Biosphere 2, especially during the N2O pulse, demonstrate that large‐scale integration methods, such as flux towers, are essential for improving ecosystem N2O flux estimates.  相似文献   

12.
Changes in precipitation in the Amazon Basin resulting from regional deforestation, global warming, and El Niño events may affect emissions of carbon dioxide (CO2), methane (CH4), nitrous oxide (N2O), and nitric oxide (NO) from soils. Changes in soil emissions of radiatively important gases could have feedback implications for regional and global climates. Here we report results of a large‐scale (1 ha) throughfall exclusion experiment conducted in a mature evergreen forest near Santarém, Brazil. The exclusion manipulation lowered annual N2O emissions by >40% and increased rates of consumption of atmospheric CH4 by a factor of >4. No treatment effect has yet been detected for NO and CO2 fluxes. The responses of these microbial processes after three rainy seasons of the exclusion treatment are characteristic of a direct effect of soil aeration on denitrification, methanogenesis, and methanotrophy. An anticipated second phase response, in which drought‐induced plant mortality is followed by increased mineralization of C and N substrates from dead fine roots and by increased foraging of termites on dead coarse roots, has not yet been detected. Analyses of depth profiles of N2O and CO2 concentrations with a diffusivity model revealed that the top 25 cm soil is the site of most of the wet season production of N2O, whereas significant CO2 production occurs down to 100 cm in both seasons, and small production of CO2 occurs to at least 1100 cm depth. The diffusivity‐based estimates of CO2 production as a function of depth were strongly correlated with fine root biomass, indicating that trends in belowground C allocation may be inferred from monitoring and modeling profiles of H2O and CO2.  相似文献   

13.
Changes in precipitation in the Amazon Basin resulting from regional deforestation, global warming, and El Niño events may affect emissions of carbon dioxide (CO2), methane (CH4), nitrous oxide (N2O), and nitric oxide (NO) from soils. Changes in soil emissions of radiatively important gases could have feedback implications for regional and global climate. Here, we report the final results of a 5‐year, large‐scale (1 ha) throughfall exclusion experiment, followed by 1 year of recovery with natural throughfall, conducted in a mature evergreen forest near Santarém, Brazil. The exclusion manipulation lowered annual N2O emissions in four out of five treatment years (a natural drought year being the exception), and then recovered during the first year after the drought treatment stopped. Similarly, consumption of atmospheric CH4 increased under drought treatment, except during a natural drought year, and it also recovered to pretreatment values during the first year that natural throughfall was permitted back on the plot. No treatment effect was detected for NO emissions during the first 3 treatment years, but NO emissions increased in the fourth year under the extremely dry conditions of the exclusion plot during a natural drought. Surprisingly, there was no treatment effect on soil CO2 efflux in any year. The drought treatment provoked significant tree mortality and reduced the allocation of C to stems, but allocation of C to foliage and roots were less affected. Taken together, these results suggest that the dominant effect of throughfall exclusion on soil processes during this 6‐year period was on soil aeration conditions that transiently affected CH4, N2O, and NO production and consumption.  相似文献   

14.
Our understanding and quantification of global soil nitrous oxide (N2O) emissions and the underlying processes remain largely uncertain. Here, we assessed the effects of multiple anthropogenic and natural factors, including nitrogen fertilizer (N) application, atmospheric N deposition, manure N application, land cover change, climate change, and rising atmospheric CO2 concentration, on global soil N2O emissions for the period 1861–2016 using a standard simulation protocol with seven process‐based terrestrial biosphere models. Results suggest global soil N2O emissions have increased from 6.3 ± 1.1 Tg N2O‐N/year in the preindustrial period (the 1860s) to 10.0 ± 2.0 Tg N2O‐N/year in the recent decade (2007–2016). Cropland soil emissions increased from 0.3 Tg N2O‐N/year to 3.3 Tg N2O‐N/year over the same period, accounting for 82% of the total increase. Regionally, China, South Asia, and Southeast Asia underwent rapid increases in cropland N2O emissions since the 1970s. However, US cropland N2O emissions had been relatively flat in magnitude since the 1980s, and EU cropland N2O emissions appear to have decreased by 14%. Soil N2O emissions from predominantly natural ecosystems accounted for 67% of the global soil emissions in the recent decade but showed only a relatively small increase of 0.7 ± 0.5 Tg N2O‐N/year (11%) since the 1860s. In the recent decade, N fertilizer application, N deposition, manure N application, and climate change contributed 54%, 26%, 15%, and 24%, respectively, to the total increase. Rising atmospheric CO2 concentration reduced soil N2O emissions by 10% through the enhanced plant N uptake, while land cover change played a minor role. Our estimation here does not account for indirect emissions from soils and the directed emissions from excreta of grazing livestock. To address uncertainties in estimating regional and global soil N2O emissions, this study recommends several critical strategies for improving the process‐based simulations.  相似文献   

15.
真菌对土壤N2O释放的贡献及其研究方法   总被引:1,自引:4,他引:1  
黄莹  龙锡恩 《生态学杂志》2014,25(4):1213-1220
N2O是一种重要的温室气体,而土壤作为N2O的重要来源之一,其N2O主要产生于硝化和反硝化作用的生物过程.研究表明细菌和古菌是这些生物过程的主要参与者,然而在特定土壤生态系统中,真菌在N循环过程中起主要作用.但真菌对土壤N2O释放贡献的研究报道甚少.本文阐述了土壤真菌N2O产生机制的研究进展,介绍了自养硝化、异养硝化和反硝化过程的发生机理、关键微生物和功能基因.详细介绍了与真菌有关的N2O产生过程,真菌的异养硝化作用和反硝化作用,并且比较了真菌和细菌反硝化系统的差异.此外,本文重点总结了研究土壤真菌N2O产生的主要方法,包括选择抑制剂法、15N标记、分离和纯培养以及免培养的分子生态学方法,对各种方法的优势和弊端进行了探讨,并对今后的研究工作提出了展望.  相似文献   

16.
全球森林土壤N2O排放通量的影响因子   总被引:1,自引:0,他引:1  
韩琳  王鸽  王伟  赵熙 《生态学杂志》2012,31(2):446-452
森林生态系统在全球变暖格局下的地位和作用,尤其是土壤氮库对大气氮沉降增加的响应逐渐成为全球变化研究的热点。本文通过对已有文献资料的调研和整理,分析了1984—2009年间全球38个森林土壤N2O排放通量的野外原位观测结果的分布特征,评估了森林土壤N2O年排放累积通量对大气氮素沉降量和水热条件等因子变化的响应。结果表明,全球森林土壤N2O排放通量的平均值为0.47kgN·hm-2·a-1,而且土壤N2O释放通量随着纬度增加逐渐降低。作为一个复杂的生态过程,土壤N2O累积释放量同样受到年均温、年降水量以及土壤属性的显著影响。其中全球森林土壤N2O释放温度敏感性系数(Q10值)约为1.5。另外,森林土壤N2O排放通量也随着氮沉降量的增加而显著增大,大气氮沉降量可解释土壤N2O排放通量在不同区域之间53%的差异;土壤pH、年均温和大气氮沉降量可以解释区域森林土壤N2O排放通量变化的55%。  相似文献   

17.
氮(N)、磷(P)等养分添加是提高草地生态系统生产力的重要策略, 但其对土壤氧化亚氮(N2O)排放的影响尚不明确。该研究以南疆昆仑山北坡高山草地为研究对象, 设置氮添加、磷添加、氮磷交互以及不施肥(CK) 4个处理, 采用静态箱-气象色谱法连续监测2017年生长季草地的N2O排放, 研究不同氮、磷添加处理下的N2O排放特征, 并利用Pearson相关分析对影响N2O排放的主要环境因子进行定性识别及定量解析。结果表明: 氮添加处理与氮磷交互处理在施肥后约3周引起显著的N2O排放峰, 分别为42.3和15.4 g N·hm -2·d -1。与其他处理相比, 氮添加处理生长季N2O排放通量显著增加了1.8-3.2倍, 而磷添加以及氮磷交互处理与CK之间没有显著差异。Pearson相关分析结果表明: N2O排放与微生物生物量碳呈负相关关系, 与溶解性有机碳含量、pH值呈正相关关系, 而与其他环境因子关系不显著。以上结果表明, 与单施氮肥相比, 在该地区草场采用氮磷混施可显著减少N2O的排放。  相似文献   

18.
氮磷添加对亚热带常绿阔叶林土壤氮素矿化的影响   总被引:2,自引:0,他引:2  
赵阳  张驰  赵竑绯  徐小牛 《生态学杂志》2013,32(7):1690-1697
设计了2种处理(即氮添加,100 kg N·hm-2·a-1;氮磷添加,100 kgN·hm-2·a-1+50kgP·hm-2·a-1),研究了氮磷添加对亚热带北部常绿阔叶林土壤无机氮和氮素矿化的影响.结果表明,不同处理0 ~ 10 cm和10 ~ 20 cm土层无机氮(铵态氮+硝态氮)含量年平均值分别为:对照7.27和6.80 mg·kg-1、氮添加13.94和8.92 mg·kg-1、氮磷添加11.20和7.13 mg·kg-1,其中铵态氮分别占90.66%和91.15%、65.78%和72.85%、84.64%和85.08%.不同处理0~10 cm和10 ~20 cm土层的净氨化、净硝化和净氮矿化速率具有相似的季节性变化规律,即夏季氮素净转化速率最高,冬季氮素净转化速率最低,春季和秋季氮素净转化速率有一定差异,但不显著.研究表明,养分添加使土壤年平均净氮矿化速率下降,氮添加使土壤硝化速率下降,氨化速率上升;而氮磷添加使硝化速率上升,氨化速率下降.养分添加对森林生态系统的氮动态影响效应尚需长期定位观测.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司    京ICP备09084417号-23

京公网安备 11010802026262号