首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 203 毫秒
1.
《生态环境》2001,10(4):273-276
在北京潮土上研究了冬小麦夏玉米轮作体系下土壤硝化反硝化作用以及N2O排放情况.结果表明,小麦生育期土壤温度及含水量较低,无论是反硝化损失氮量还是土壤的N2O生成排放量均不高.土壤的N2O生成排放量与反硝化氮量相当或低于反硝化氮量.玉米生育期土壤温度升高以及孔隙含水量有较大的改善,反硝化损失氮量、N2O生成排放量有明显上升.通常情况下土壤反硝化损失氮量与N2O排放氮量基本处于同一水平.在玉米十叶期追肥后的较短时间内,N2O总排放量明显高于反硝化损失氮量,说明至少在这一阶段中,硝化作用在北方旱地土壤N2O的排放中发挥了主要作用.在评价北方旱地农田土壤氮素硝化反硝化损失中,硝化作用的氮素损失是不可忽视的重要方面.  相似文献   

2.
葛潇霄  田昆  郭雪莲  王胜龙  赖建东 《生态环境》2011,20(12):1846-1852
选取纳帕海常见湿地植物茭草(Zizania caduciflora)和水葱(Scirpus validus)]及其生长土壤为对象,通过培养实验,研究了3个不同氮输入水平[0g-m^2(对照,NO)、20g-m^2(N20)、40g-m^2。(N40)]对茭草和水葱湿地土壤氨挥发和反硝化的影响。结果表明:氮输入促进了茭草和水葱湿地土壤氨挥发化作用,增加了湿地土壤氨挥发的累积量。适量的氮输入对湿地土壤氨挥发促进显著。在培养前期适量氮输入下的氨挥发积累量高于高水平氮输入的,随着培养时间的延长,后期适量氮输入下的积累量明显下降;而高水半氮输入处理下氨挥发积累量的明显增加,适量氮输入下茭草氨挥发积累大于水葱。氮输入增强了菱草和水葱湿地土壤反硝化作用,加快了反硝化N2O的排放。适量的氮输入促进茭草反硝化作用和反硝化损失量增加明显,培养的前期的适量氮输入处理下的反硝化作用和反硝化N2O的排放增强不明显,随着培养时间的延长,高水平氮输入处理下的反硝化损失量越明显,并且水葱较茭草更为明显。后期适量氮输入下的反硝化损失速率和反硝化损失量高于高水平氮输入,适量氮输入较高水平氮输人促进明显,高水平的氮输入限制了反硝化损失,反硝化N2O的排放总量下降,土壤中氮富集增大。  相似文献   

3.
采用田间试验研究不同施肥处理对棕壤N2O排放量的影响。结果表明,N2O释放量随着耕层土壤硝态氮含量增加而上升。不同施肥处理对N2O排放量影响不同,低氮处理(N1)排放量(整个玉米生育期按185d计算)为1.18kg·hm-2,高氮处理(N2)为2.39kg·hm-2。随着施氮量的增加,反硝化作用加强,N2O排放量上升,以N2O形式损失加剧。相同施氮水平条件下,随着有机肥施入量的增加土壤N2O排放量上升,其中以高氮高有机肥处理(M2N2)N2O排放量最高,达到了7.05kg·hm-2,占所投入氮肥的2.34%。相同氮素供应水平条件下增施磷、钾肥,也会增加N2O排放量。整个玉米生育时期通过N2O排放损失的肥料占投入氮肥比例为0.99%~2.46%。  相似文献   

4.
基于中国农业科学院红壤实验站红壤旱地小麦-玉米轮作长期定位试验,采用静态箱/气相色谱法,研究红壤旱地连续施肥16 a后,不同施肥条件下小麦季和玉米季土壤CO2和N2O的排放特征。结果表明,CO2和N2O排放具有明显的季节性,施肥对土壤CO2和N2O排放有明显影响,且有机肥的施用显著促进了土壤CO2和N2O排放。不施肥对照(CK)、氮磷配施(NP)、氮钾配施(NK)、氮磷钾配施(NPK)和有机无机肥配施(NPKM)处理小麦季和玉米季土壤CO2累积排放量分别为5 904、8 062、4 298、9 235、14 098和4 708、7 530、5 435、7 089、15 472 kg.hm-2,土壤N2O累积排放量分别为0.34、0.63、0.44、0.62、1.00和0.25、0.39、0.35、0.52、1.73 kg.hm-2,小麦休闲期土壤CO2和N2 O累积排放量平均占小麦生长季的63.52%和28.43%,玉米休闲季平均占玉米生长季的49.98%和32.72%,说明休闲期土壤CO2和N2O累积排放量不容忽视。除玉米季NP、NK、NPK处理外,其他各处理小麦季和玉米季土壤CO2排放通量与5 cm深处土壤温度显著相关;而土壤N2O排放通量与土壤温度间均未表现出显著相关性;除NPKM处理外,其他各处理土壤CO2或N2O排放通量与土壤水分间相关性均未达显著水平。  相似文献   

5.
亚热带可变电荷土壤化学性质与温带地区恒电荷土壤有诸多不同特点,使得反硝化具有一些与温带土壤不同的特性,进一步深入研究亚热带土壤反硝化气体产物的组成比例、主要影响因素和机理,将有助于加深对亚热带环境条件下土壤N循环的理解和认识,以及为正确评价亚热带土壤反硝化环境效应提高科学依据。因此,就亚热带土壤厌氧培养条件下反硝化的气态产物问题进行了探讨。土样采自江西典型亚热带红壤地区,在加入K15NO3(10 atom%15N,加入N量为200 mg·kg-1)条件下进行了7 d 30℃、密闭、淹水、充N2的严格厌氧培养试验。试验结果表明:随培养时间推移,15N回收率逐渐下降,土壤总残留的15NO3-质量分数和回收率之间存在显著正相关关系(p〈0.001),表明反硝化作用越弱的土样回收率越高。总气态氮损失率的估计值和实测值都随培养时间延长呈上升趋势,两者之间存在显著正相关性(p〈0.001)。根据稳定性同位素15N示踪试验结果初步估计,厌氧培养7 d内反硝化作用产生的气态产物中N2O占总气态氮损失的17.1%,N2占8.7%,估计NO可能是主要的反硝化产物之一。以未能回收的氮计算,NO约占总气态氮损失的67.5%~78.6%,平均为74.1%。反硝化气态产物中NO和N2O总量占总气态氮损失的91.3%。NO、N2O和N2分别占总施入氮量的18.6%、4.4%、2.0%。因此,亚热带土壤氮素反硝化过程中主要气态产物可能为NO和N2O,而非对环境无害的N2。  相似文献   

6.
施用不同尿素对稻季不同层次土壤溶液中氮形态的影响   总被引:1,自引:0,他引:1  
在太湖地区乌栅土上,利用大型原状土柱比较研究了不同尿素品种、施肥量(0、普通尿素150、300和包膜尿素100、150 kg·hm-2,以N计算)处理对稻季不同层次(30、65、80 cm)土壤氮素动态变化的影响.结果表明:所有处理渗漏水中NO3--N质量浓度均低于饮用水标准,常规施肥未显著增加氮的淋溶损失;各处理在不同层次土壤均发生反硝化作用;包膜尿素促进土壤反硝化强度,在65 cm和80 cm处尤为明显.施用包膜尿素可能增强浅层地下水的反硝化作用而降低水体NO3--N质量浓度.其影响机理及在对其它类型土壤上氮素淋失和反硝化的影响,值得进一步研究.  相似文献   

7.
土壤中的反硝化作用由于直接影响到肥料氮的利用率和环境问题,仍然是氮素研究领域的热点和难点之一,而反硝化作用研究的进展在很大程度上依赖与土壤反硝化的田间测定方法的建立。文章就目前反硝化研究领域常用的15N平衡差值法、15N示踪气体通量法、乙炔抑制气室法、乙炔抑制土柱法的原理、气体样的采集、测定和计算作了综述,以期为土壤反硝化的研究提供依据。  相似文献   

8.
灰泥土中不同氮肥品种反硝化损失与N2O排放量的差异   总被引:4,自引:0,他引:4  
在实验室培养条件下,采用土壤培养-乙炔抑制法测定尿素、碳酸氢铵、硫酸铵和氯化铵4种氮肥品种在灰泥土中反硝化损失和N2O排放量的差异。结果表明,氮肥品种间的N2O排放量和反硝化损失量存在极显著差异。尿素、碳铵和氯化铵的N2O排放量极显著高于硫铵,占施肥量的3.88%-4.14%;尿素和碳铵的反硝化损失量分别为施肥量的5.8%和3.7%,极显著高于硫铵和氯化铵;但氯化铵的反硝化损失量显著低于CK。  相似文献   

9.
基于BaPS技术的高山草甸土硝化和反硝化季节变化   总被引:4,自引:0,他引:4  
高永恒  罗鹏  吴宁  陈槐 《生态环境》2008,17(1):384-387
应用气压分离(BaPS)技术测定了川西北高山草甸土硝化和反硝化季节动态变化.结果表明:植物生长季节内,土壤总硝化、反硝化和N2O释放率的变化趋势一致,即从6月份(硝化率:N 8.40 mg kg-1 d-1;反硝化率:N 0.48 mg kg-1 d-1;N2O释放率:N 84.48 靏 kg-1 d-1)开始增加,7月份(N 19.36 mg kg-1 d-1;N 0.60 mg kg-1 d-1;N 100.13 靏 kg-1 d-1)达到最大值,然后开始下降,到9月份(N 1.81 mg kg-1 d-1;N 0.24 mg kg-1 d-1;N 40.09 靏 kg-1 d-1)降为最小值.氮素物质基础(NO3--N和NH4 -N)不是影响该高山草甸土硝化和反硝化的主要因素,土壤温度和湿度是该高山草甸土硝化、反硝化作用的主要影响因子.  相似文献   

10.
热带亚热带土壤氮素反硝化研究进展   总被引:4,自引:0,他引:4  
热带亚热带独特的土壤性质可能使得反硝化机理有别于温带土壤.文章综述了热带亚热带地区土壤氮素生物反硝化的研究进展,试图更好地了解该地区土壤反硝化在全球氮(N)循环以及在全球环境变化和生态系统响应互作中的角色.热带亚热带土壤反硝化强度普遍较温带地区弱,且随着土地利用方式和耕作管理措施的不同而呈现较大的时空变异性.影响土壤水分状况和土壤碳(C)、N 转化特性和速率的因素即为区域和农田尺度上的反硝化影响因素.湿润型热带亚热带土壤由于含有丰富的氧化物而致使土壤氧化还原势较高,这也是导致该地区土壤反硝化势较温带地区较低的关键土壤因素之-.然而土壤pH 值不是该地区土壤反硝化势较低的主要限制因素.有机C 矿化过程较土壤全氮含量和土壤C/N 比在决定湿润型亚热带土壤反硝化势方面更为重要.愈来愈多的证据表明热带亚热带土壤反硝化的生态环境效应不同于温带地区,热带亚热带地区土壤反硝化对全球变暖的贡献应综合考虑其对其它温室气体(如CH4,CO2)排放和氮沉降的影响.热带亚热带土壤生态系统具有-些防止土壤氮素反硝化损失的机制和保氮策略.然而,热带亚热带生态系统对全球变化的响应机制及其生物地球化学调控机制仍然不清楚,这些研究对于反硝化和其它同时发生的氮转化过程模型的精确构建至关重要.  相似文献   

11.
Nitrous oxide (N2O) is a greenhouse gas that can be released during biological nitrogen removal from wastewater. N2O emission from a sequencing batch reactor (SBR) for biological nitrogen and phosphorus removal from wastewater was investigated, and the aims were to examine which process, nitrification or denitrification, would contribute more to N2Oemission and to study the effects of heterotrophic activities on N2O emission during nitrification. The results showed that N2O emission was mainly attributed to nitrification rather than to denitrification. N2O emission during denitrification mainly occurred with stored organic carbon as the electron donor. During nitrification, NaO emission was increased with increasing initial ammonium or nitrite concentrations. The ratio of N2O emission to the removed ammonium nitrogen (N2O- N/NH4-N) was 2.5% in the SBR system with high heterotrophic activities, while this ratio was in the range from 0.14% to 1.06% in batch nitrification experiments with limited heterotrophic activities.  相似文献   

12.
试验采用密闭室间歇通气法研究华北平原冬小麦(Triticum aestivum Linneaus)-夏玉米(Zea mays Linneaus)轮作体系在不同施氮水平下农田氨挥发和N2O排放。结果表明:冬小麦季和夏玉米季的氨挥发速率与N2O排放通量呈现出季节性动态变化,且随着施氮量的增加而增加,均在施肥后第2~3天出现峰值。玉米季氨挥发量和N2O排放量均高于小麦季,分别占整个轮作周期气态损失的53.5%~68.9%和54.7%~82.3%。轮作体系中氨挥发净损失量(以N计)为4.28~31.31 kg.hm-2,占施氮量的3.17%~5.80%;N2O净排放损失量(以N计)为50.95~1051.03 g.hm-2,占施氮量的比例为0.04%~0.23%。因此,施氮量是影响冬小麦-夏玉米轮作体系气态损失重要因素,且夏玉米季是控制控制气态损失的关键时期。  相似文献   

13.
The isotopic signatures of 15N and 18O in N2O emitted from tropical soils vary both spatially and temporally, leading to large uncertainty in the overall tropical source signature and thereby limiting the utility of isotopes in constraining the global N2O budget. Determining the reasons for spatial and temporal variations in isotope signatures requires that we know the isotope enrichment factors for nitrification and denitrification, the two processes that produce N2O in soils. We have devised a method for measuring these enrichment factors using soil incubation experiments and report results from this method for three rain forest soils collected in the Brazilian Amazon: soil with differing sand and clay content from the Tapajos National Forest (TNF) near Santarém, Pará, and Nova Vida Farm, Rond?nia. The 15N enrichment factors for nitrification and denitrification differ with soil texture and site: -111 per thousand +/- 12 per thousand and -31 per thousand +/- 11 per thousand for a clay-rich Oxisol (TNF), -102 per thousand +/- 5 per thousand and -45 per thousand +/- 5 per thousand for a sandier Ultisol (TNF), and -10.4 per thousand +/- 3.5 per thousand (enrichment factor for denitrification) for another Ultisol (Nova Vida) soil, respectively. We also show that the isotopomer site preference (delta15Nalpha - delta15Nbeta, where alpha indicates the central nitrogen atom and beta the terminal nitrogen atom in N2O) may allow differentiation between processes of production and consumption of N2O and can potentially be used to determine the contributions of nitrification and denitrification. The site preferences for nitrification and denitrification from the TNF-Ultisol incubated soils are: 4.2 per thousand +/- 8.4 per thousand and 31.6 per thousand +/- 8.1 per thousand, respectively. Thus, nitrifying and denitrifying bacteria populations under the conditions of our study exhibit significantly different 15N site preference fingerprints. Our data set strongly suggests that N2O isotopomers can be used in concert with traditional N2O stable isotope measurements as constraints to differentiate microbial N2O processes in soil and will contribute to interpretations of the isotopic site preference N2O values found in the free troposphere.  相似文献   

14.
We investigated N cycling and denitrification rates following five years of N and dolomite amendments to whole-tree harvested forest plots at the long-term soil productivity experiment in the Fernow Experimental Forest in West Virginia, USA. We hypothesized that changes in soil chemistry and nutrient cycling induced by N fertilization would increase denitrification rates and the N2O:N2 ratio. Soils from the fertilized plots had a lower pH (2.96) than control plots (3.22) and plots that received fertilizer and dolomite (3.41). There were no significant differences in soil %C or %N between treatments. Chloroform-labile microbial biomass carbon was lower in fertilized plots compared to control plots, though this trend was not significant. Extractable soil NO3- was elevated in fertilized plots on each sample date. Soil-extractable NH4+, NO3-, pH, microbial biomass carbon, and %C varied significantly by sample date suggesting important seasonal patterns in soil chemistry and N cycling. In particular, the steep decline in extractable NH4+ during the growing season is consistent with the high N demands of a regenerating forest. Net N mineralization and nitrification also varied by date but were not affected by the fertilization and dolomite treatments. In a laboratory experiment, denitrification was stimulated by NO3- additions in soils collected from all field plots, but this effect was stronger in soils from the unfertilized control plots, suggesting that chronic N fertilization has partially alleviated a NO3- limitation on denitrification rates. Dextrose stimulated denitrification only in the whole-tree-harvest soils. Denitrification enzyme activity varied by sample date and was elevated in fertilized plots for soil collected in July 2000 and June 2001. There were no detectable treatment effects on N2O or N2 flux from soils under anaerobic conditions, though there was strong temporal variation. These results suggest that whole-tree harvesting has altered the N status of these soils so they are less prone to N saturation than more mature forests. It is likely that N losses associated with the initial harvest and high N demand by aggrading vegetation is minimizing, at least temporarily, the amount of inorganic N available for nitrification and denitrification, even in the fertilized plots in this experiment.  相似文献   

15.
施肥及秸秆还田处理下玉米季温室气体的排放   总被引:14,自引:0,他引:14  
以华北地区冬小麦-夏玉米轮作农田为研究对象,在玉米整个生长季,运用静态箱法针对正常施肥及正常施肥结合秸秆还田处理进行了为期3年N2O排放通量的连续观测,并开展了1季CO2和CH4交换通量的研究.在玉米整个生长过程中施肥阶段N2O的排放量占到了总排放量的83%—96%,表明现有化肥的使用明显导致了农田N2O排放增加.与控制地相比,施肥和耕种可导致玉米田CO2排放明显增加,且正常施肥及秸秆还田样地CO2排放主要集中在苗期至吐丝期.控制地、正常施肥样地及施肥结合秸秆还田样地CH4的累积排放量均为负值,说明旱地土壤是CH4的一个汇.秸秆还田在一定程度上增加了玉米季N2O和CO2的排放量,但对CH4的吸收有所抑制.正常施肥样地和秸秆还田样地全球净增温潜势分别为-1392.8 kg C.hm-2和-179.2 kg C.hm-2,表明华北农田在现有耕作方式下是大气温室气体的一种重要汇.  相似文献   

16.
ABSTRACT

Treatment with nitrification inhibitors, such as dicyandiamide (DCD) and 3,4-dimethylpyrazole phosphate (DMPP) have been strongly indicated to increase grassland biomass and mitigate soil N2O emission rates. However, the responses of both alpine meadow aboveground biomass and N2O emission rates to nitrification inhibitors remains unclear. We separately applied three doses of DCD and DMPP to alpine grassland soils with three duplicates. The biomass and N2O emission rates were subsequently measured by a clear-cut method and in-situ static chamber gas chromatography during the growing season. Our findings indicated that aboveground biomass increased significantly, and N2O emission rate decreased significantly at 6.8?kg?ha?1 DCD and DMPP. Furthermore, the biomass increase effect was more significant than the N2O emission rate mitigation effect (p?<?0.05). The highest ratios of DCD treatments on meadow production increase and N2O emission rate decrease were 27.2% and 36.3%, respectively. Our findings provide insight into the enhanced grassland primary production and decreased N2O flux by nitrification inhibitor treatment in alpine meadows, which may be beneficial to help mitigate global warming.  相似文献   

17.
氧化亚氮形成的微生物学分子机制研究进展   总被引:1,自引:0,他引:1  
1 氧化亚氮 (N2 O)的形成N2 O是继CO2 、CH4之后的第三大温室气体 ,它能破坏大气中的臭氧层 .在过去的 2 0~ 30年间 ,N2 O以每年 0 .2 %~ 0 .3%的速率增长 ,并且有进一步增长的趋势[1 ] .地球上人类和其他生物的活动是N2 O产生的主要来源 ,而微生物是其中最重要的生物源 .微生物产生N2 O的机理主要是通过硝化作用和反硝化作用过程进行的 ,如图 1所示 .反硝化过程中N2 O的形成 :硝化过程中N2 O的形成 :图 1 N2 O的形成Fig.1 FormationofN2 O  催化反硝化过程的酶有 4种 :硝酸还原酶 (Nar)、亚…  相似文献   

18.
不同种植制度对稻田旱作季节CH4和N2O排放的影响   总被引:2,自引:0,他引:2  
通过大田试验研究了稻田旱作季节几种典型种植制度对CH4和N2O排放的影响,包括休闲(fallow)、油菜对照(OR-ck)、小麦对照(W-ck)、油菜施N(OR-N)和小麦施N(W-N)5个处理。试验结果表明,稻田旱作季节N2O排放明显,CH4排放量较低,甚至表现为弱的CH4汇。稻田旱作季节N2O排放除受到N肥和种植制度影响外,还受土壤含水量影响,施N处理显著促进了N2O排放,降雨后N2O排放明显。小麦和油菜施N处理N2O平均排放通量分别为18.51和13.47μg·m^-2·h^-1,季节累积排放量分别为87.31和59.48 mg·m^-2,均显著高于对照和休闲处理。不同作物种类间N2O平均排放通量无显著差异,N2O季节累积排放量则表现为小麦显著高于油菜。各处理综合温室效应(100 a)依次为:OR-N〉W-N〉W-ck〉fallow〉OR-ck。各施N处理综合温室效应以N2O为主,但各无N处理则以CH4为主,也不容忽视。  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