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1.
Understanding greenhouse gases (GHG) emissions is becoming increasingly important with the climate change. Most previous studies have focused on the assessment of soil organic carbon (SOC) sequestration potential and GHG emissions from agriculture. However, specific experiments assessing tillage impacts on GHG emission from double-cropped paddy fields in Southern China are relatively scarce. Therefore, the objective of this study was to assess the effects of tillage systems on methane (CH4) and nitrous oxide (N2O) emission in a double rice (Oryza sativa L.) cropping system. The experiment was established in 2005 in Hunan Province, China. Three tillage treatments were laid out in a randomized complete block design: conventional tillage (CT), rotary tillage (RT) and no-till (NT). Fluxes of CH4 from different tillage treatments followed a similar trend during the two years, with a single peak emission for the early rice season and a double peak emission for the late rice season. Compared with other treatments, NT significantly reduced CH4 emission among the rice growing seasons (P<0.05). However, much higher variations in N2O emission were observed across the rice growing seasons due to the vulnerability of N2O to external influences. The amount of CH4 emission in paddy fields was much higher relative to N2O emission. Conversion of CT to NT significantly reduced the cumulative CH4 emission for both rice seasons compared with other treatments (P<0.05). The mean value of global warming potentials (GWPs) of CH4 and N2O emissions over 100 years was in the order of NT<RT<CT, which indicated NT was significantly lower than both CT and RT (P<0.05). This suggests that adoption of NT would be beneficial for GHG mitigation and could be a good option for carbon-smart agriculture in double rice cropped regions.  相似文献   

2.
To date, few studies are conducted to quantify the effects of reduced ammonium (NH4 +) and oxidized nitrate (NO3 ) on soil CH4 uptake and N2O emission in the subtropical forests. In this study, NH4Cl and NaNO3 fertilizers were applied at three rates: 0, 40 and 120 kg N ha−1 yr−1. Soil CH4 and N2O fluxes were determined twice a week using the static chamber technique and gas chromatography. Soil temperature and moisture were simultaneously measured. Soil dissolved N concentration in 0–20 cm depth was measured weekly to examine the regulation to soil CH4 and N2O fluxes. Our results showed that one year of N addition did not affect soil temperature, soil moisture, soil total dissolved N (TDN) and NH4 +-N concentrations, but high levels of applied NH4Cl and NaNO3 fertilizers significantly increased soil NO3 -N concentration by 124% and 157%, respectively. Nitrogen addition tended to inhibit soil CH4 uptake, but significantly promoted soil N2O emission by 403% to 762%. Furthermore, NH4 +-N fertilizer application had a stronger inhibition to soil CH4 uptake and a stronger promotion to soil N2O emission than NO3 -N application. Also, both soil CH4 and N2O fluxes were driven by soil temperature and moisture, but soil inorganic N availability was a key integrator of soil CH4 uptake and N2O emission. These results suggest that the subtropical plantation soil sensitively responses to atmospheric N deposition, and inorganic N rather than organic N is the regulator to soil CH4 uptake and N2O emission.  相似文献   

3.
苏南丘陵区稻田氧化亚氮的排放特点   总被引:9,自引:0,他引:9  
氧化亚氮(N2O)是一种重要的温室气体,又能破坏臭氧层[1,2]。土壤是大气N2O的主要来源[3],研究结果表明,我国1990年排放的N2O有9236%来自于农田土壤。各种类型稻田N2O-N排放量占化肥施氮量的0031%~048%[4,5],稻...  相似文献   

4.
The effects of elevated concentrations of atmospheric CO2 on CH4 and N2O emissions from rice soil were investigated in controlled-environment chambers using rice plants growing in pots. Elevated CO2 significantly increased CH4 emission by 58% compared with ambient CO2. The CH4 emitted by plant-mediated transport and ebullition–diffusion accounted for 86.7 and 13.3% of total emissions during the flooding period under ambient level, respectively; and for 88.1 and 11.9% of total emissions during the flooding period under elevated CO2 level, respectively. No CH4 was emitted from plant-free pots, suggesting that the main source of emitted CH4 was root exudates or autolysis products. Most N2O was emitted during the first 3 weeks after flooding and rice transplanting, probably through denitrification of NO3 contained in the experimental soil, and was not affected by the CO2 concentration. Pre-harvest drainage suppressed CH4 emission but did not cause much N2O emission (< 10 μg N m−2 h−1) from the rice-plant pots at both CO2 concentrations.  相似文献   

5.
Winter CO2 CH4 and N2O fluxes on some natural and drained boreal peatlands   总被引:7,自引:0,他引:7  
CO2 and CH4 fluxes during the winter were measured at natural and drained bog and fen sites in eastern Finland using both the closed chamber method and calculations of gas diffusion along a concentration gradient through the snowpack. The snow diffusion results were compared with those obtained by chamber, but the winter flux estimates were derived from chamber data only. CH4 emissions from a poor bog were lower than those from an oligotrophic fen, while both CO2 and CH4 fluxes were higher in theCarex rostrata- occupied marginal (lagg) area of the fen than in the slightly less fertile centre. Average estimated winter CO2-C losses from virgin and drained forested peatlands were 41 and 68 g CO2-C m–2, respectively, accounting for 23 and 21% of the annual total CO2 release from the peat. The mean release of CH4-C was 1.0 g in natural bogs and 3.4 g m–2 in fens, giving rise to winter emissions averaging to 22% of the annual emission from the bogs and 10% of that from the fens. These wintertime carbon gas losses in Finnish natural peatlands were even greater than reported average long-term annual C accumulation values (less than 25g C m–2). The narrow range of 10–30% of the proportion of winter CO2 and CH4 emissions from annual emissions found in Finnish peatlands suggest that a wider generalization in the boreal zone is possible. Drained forested bogs emitted 0.3 g CH4-C m–2 on the average, while the effectively drained fens consumed an average of 0.01 g CH4-C m–2. Reason for the low CH4. efflux or net oxidation in drained peatlands probably lies in low substrate supply and thus low CH4 production in the anoxic deep peat layers. N2O release from a fertilized grassland site in November–May was 0.7 g N2O m–2, accounting for 38% of the total annual emission, while a forested bog released none and two efficiently drained forested fens 0.09 (28% of annual release) and 0.04 g N2O m–2 (27%) during the winter, respectively.  相似文献   

6.
开放式空气CO2增高对稻田CH4和N2O排放的影响   总被引:9,自引:3,他引:9  
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N2 O排放的影响 .结果表明 ,在 15 0和 2 5 0kgN·hm-2 两种氮肥水平下大气CO2 浓度增加 2 0 0 μmol·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 15 0和 2 5 0kgN·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 15 0和 2 5 0kgN·hm-2 两种氮肥水平下稻田N2 O排放的明显变化 ,与大多数研究结果一致 .  相似文献   

7.
Lanfang Yang  Zucong Cai 《Plant and Soil》2006,283(1-2):265-274
The effect of photosynthesis on N2O emission from soil was investigated by shading soybean (Gycline max. L) plant at flowering, pod-setting and grain-filling stages. The results showed that by stopping photosynthesis through shading the plants stimulated N2O emission significantly at flowering stage and pod-setting stage, and suppressed N2O emission dramatically at grain-filling stage. At flowering stage, soybean species seem to rely mainly on fertilizer N and shaded plants decreased the N uptake. Interaction between the relative increase in available N for N2O production by shading and the presence of root exudates promoted N transformation (nitrification/denitrification) and N2O emission. At pod-setting stage, the available soil nitrogen seems to be a critical limiting factor and without substantial release of symbiotically fixed N through plant roots, resulted in a weak effect of shading on N2O emission. At grain-filling stage, available N for N2O production was derived from symbiotically fixed N and was greatly affected by photosynthesis. These results indicated that the effect of soybean growth on N2O emission from soil varies with plant growth stages as available N for N2O production is mainly from fertilizer N and organic mineralization during the early growth of soybean plants, while N2O emission is controlled by the quantity and perhaps also the quality of root exudates, which is closely related with plant photosynthesis in the late season of soybean growth.  相似文献   

8.
华南丘陵区2种土地利用方式下地表CH4和N2O通量研究   总被引:4,自引:1,他引:4  
采用静态箱-气相色谱法对华南丘陵区马尾松林和果园地表CH4和N2O通量及其主要影响因子进行了观测(马尾松Pinus massoniana林为期16个月,果园15个月),比较和分析了不同土地利用方式下地表CH4,和N2O通量的季节变化,地表CH4和N2O通量与温度和土壤含水量的关系以及凋落物对地表CH4和N2O通量的影响.结果表明,在有凋落物覆盖下,马尾松林和果园年均地表CH4通量分别为-3.41±0.3和-3.24±0.44 kg CH,hm-2a-1;年均地表N2O通量分别为4.57±0.50和11.99±0.67 kg N2O-N hm-2a-1;去除凋落物情况下,马尾松林和果园年均地表CH4通量分别为-2.98±0.44和-1.93±0.53 kg CH4 hm-2a-1;年均地表N2O通量分别为3.12±0.28和9.42±0.56 kg N2O-N hm-2a-1.2种土地利用方式对地表CH4影响较小,对N2O通鼍的影响较大,果园地表N2O通量显著大于马尾松林(P<0.01).马尾松林和果园土壤对CH4的吸收在旱季(10~3月)高而雨季(4~9月)低,N2O排放雨季较高而旱季较低.土壤含水量对地表CH4和N2O通量的影响比温度要大.凋落物对地表CH4通量的影响较小,对N2O通量的影响较大,凋落物对马尾松林和果园N2O排放的贡献率分别为31.71%和21.40%.研究还表明,地表N2O)通量存在明显的降雨驱动效应.  相似文献   

9.
外源氮对沼泽湿地CH4和N2O通量的影响   总被引:4,自引:0,他引:4  
三江平原沼泽湿地受到大气沉降、地表径流、农业排水等外源氮素的输入,对湿地生态系统CH4和N2O通量有重要影响。采用野外原位施肥试验模拟外源氮输入,设0,60,120,240kgN·hm^-24种试验处理,探讨外源氮对沼泽湿地CH4和N2O通量的影响。结果表明,外源氮促进了CH4和N2O排放。与对照处理比较,各施氮水平CH4平均排放通量分别增加了181%,254%和155%,N2O排放通量分别增加了21%,100%和533%。外源氮输入对CH4排放的季节变化形式影响不大,而N2O的季节变化形式随着氮输入表现出波动变化的趋势。不同施氮水平对CH4排放的促进作用与植物生长阶段和产CH4的微生物过程密切相关,N2O排放通量随氮输入量呈指数增加(R^2=0.97,P〈0.01)。外源氮通过影响湿地微生物过程来进一步影响CH4和N2O的排放。  相似文献   

10.
The main focus of this study was to evaluate the effects of soil moisture and temperature on temporal variation of N2O, CO2 and CH4 soil-atmosphere exchange at a primary seasonal tropical rainforest (PF) site in Southwest China and to compare these fluxes with fluxes from a secondary forest (SF) and a rubber plantation (RP) site. Agroforestry systems, such as rubber plantations, are increasingly replacing primary and secondary forest systems in tropical Southwest China and thus effect the N2O emission in these regions on a landscape level. The mean N2O emission at site PF was 6.0 ± 0.1 SE μg N m−2 h−1. Fluxes of N2O increased from <5 μg N m−2 h−1 during dry season conditions to up to 24.5 μg N m−2 h−1 with re-wetting of the soil by the onset of first rainfall events. Comparable fluxes of N2O were measured in the SF and RP sites, where mean N2O emissions were 7.3 ± 0.7 SE μg N m−2 h−1 and 4.1 ± 0.5 SE μg N m−2 h−1, respectively. The dependency of N2O fluxes on soil moisture levels was demonstrated in a watering experiment, however, artificial rainfall only influenced the timing of N2O emission peaks, not the total amount of N2O emitted. For all sites, significant positive correlations existed between N2O emissions and both soil moisture and soil temperature. Mean CH4 uptake rates were highest at the PF site (−29.5 ± 0.3 SE μg C m−2 h−1), slightly lower at the SF site (−25.6 ± 1.3 SE μg C m−2 h−1) and lowest for the RP site (−5.7 ± 0.5 SE μg C m−2 h−1). At all sites, CH4 uptake rates were negatively correlated with soil moisture, which was also reflected in the lower uptake rates measured in the watering experiment. In contrast to N2O emissions, CH4 uptake did not significantly correlate with soil temperature at the SF and RP sites, and only weakly correlated at the PF site. Over the 2 month measurement period, CO2 emissions at the PF site increased significantly from 50 mg C m−2 h−1 up to 100 mg C m−2 h−1 (mean value 68.8 ± 0.8 SE mg C m−2 h−1), whereas CO2 emissions at the SF and RP site where quite stable and varied only slightly around mean values of 38.0 ± 1.8 SE mg C m−2 h−1 (SF) and 34.9 ± 1.1 SE mg C m−2 h−1 (RP). A dependency of soil CO2 emissions on changes in soil water content could be demonstrated for all sites, thus, the watering experiment revealed significantly higher CO2 emissions as compared to control chambers. Correlation of CO2 emissions with soil temperature was significant at the PF site, but weak at the SF and not evident at the RP site. Even though we demonstrated that N and C trace gas fluxes significantly varied on subdaily and daily scales, weekly measurements would be sufficient if only the sink/ source strength of non-managed tropical forest sites needs to be identified.  相似文献   

11.
12.
There are limited data for greenhouse gas (GHG) emissions from smallholder agricultural systems in tropical peatlands, with data for non-CO2 emissions from human-influenced tropical peatlands particularly scarce. The aim of this study was to quantify soil CH4 and N2O fluxes from smallholder agricultural systems on tropical peatlands in Southeast Asia and assess their environmental controls. The study was carried out in four regions in Malaysia and Indonesia. CH4 and N2O fluxes and environmental parameters were measured in cropland, oil palm plantation, tree plantation and forest. Annual CH4 emissions (in kg CH4 ha−1 year−1) were: 70.7 ± 29.5, 2.1 ± 1.2, 2.1 ± 0.6 and 6.2 ± 1.9 at the forest, tree plantation, oil palm and cropland land-use classes, respectively. Annual N2O emissions (in kg N2O ha−1 year−1) were: 6.5 ± 2.8, 3.2 ± 1.2, 21.9 ± 11.4 and 33.6 ± 7.3 in the same order as above, respectively. Annual CH4 emissions were strongly determined by water table depth (WTD) and increased exponentially when annual WTD was above −25 cm. In contrast, annual N2O emissions were strongly correlated with mean total dissolved nitrogen (TDN) in soil water, following a sigmoidal relationship, up to an apparent threshold of 10 mg N L−1 beyond which TDN seemingly ceased to be limiting for N2O production. The new emissions data for CH4 and N2O presented here should help to develop more robust country level ‘emission factors’ for the quantification of national GHG inventory reporting. The impact of TDN on N2O emissions suggests that soil nutrient status strongly impacts emissions, and therefore, policies which reduce N-fertilisation inputs might contribute to emissions mitigation from agricultural peat landscapes. However, the most important policy intervention for reducing emissions is one that reduces the conversion of peat swamp forest to agriculture on peatlands in the first place.  相似文献   

13.
In a field experiment using microplots, a flooded Crowley silt loam (Typic Albaqualfs) rice soil was fertilized with 15N labelled (60–74 atom %) urea and KNO3. Emission of N2, N2O and CH4 and accumulation in soil were measured for 21 d after fertilizer application.Emission of 15N2-N measured from the urea and KNO3 treated plots ranged from <15 to 570 and from 330 to 3,420 g ha–1 d–1, respectively. Entrapped 15N2-N in the urea treated microplots was significantly lower (<15 g to 2.1 kg ha–1) on all sampling dates compared to the 15N2-N gas accumulation in the KNO3 treated plots (6.4 to 31.5 kg ha–1). Emissions of N2O-N were low and did not exceed 4 g ha–1 d–1. Fluxes of CH4 from the fertilizer and control plots were low and never exceeded 33 g ha–1 d–1. Maximum accumulation of CH4 in the flooded soil measured 460 and 195 g ha–1 for the urea and KNO3 treatments, respectively.  相似文献   

14.
氢醌和双氰胺对种稻土壤N2O和CH4排放的影响   总被引:13,自引:1,他引:13  
通过盆栽试验,研究了脲酶抑制剂氢醌(HQ)、硝化抑制剂双氰胺(DCD)及二者的组合(HQ+DCD)对种稻土壤N2O和CH4排放的影响.结果表明,在未施麦秸粉时,所有施抑制剂的处理均较单施尿素的能显著减少水稻生长期供试土壤N2O和CH4的排放.特别是HQ+DCD处理,其N2O和CH4排放总量分别约为对照的1/3和1/2.而在施麦秸粉后,该处理的N2O排放总量为对照的1/2,但CH4排放总量却较少差别.不论是N2O还是CH4的排放总量,施麦秸粉的都比未施的高出1倍和更多.因此,单从土壤源温室气体排放的角度看,将未腐熟的有机物料与尿素共施,并不是一种适宜的施肥制度.供试土壤的N2O排放通量,与水稻植株的NO-3N含量和土表水层中的矿质N量分别呈显著的指数正相关和线性正相关;CH4的排放通量则与水稻植株的生长量和土表水层中的矿质N量呈显著的线性负相关.在N2O与CH4的排放间,未施麦秸粉时存在着定量的相互消长关系;施麦秸粉后,虽同样存在所述关系,但难以定量化.  相似文献   

15.
黑土稻田CH4与N2O排放及减排措施研究   总被引:11,自引:0,他引:11  
岳进  梁巍  吴杰  史奕  黄国宏 《应用生态学报》2003,14(11):2015-2018
通过对黑土稻田CH4和N2O排放的观测,发现水稻生长季CH4和N2O排放量低于全国其它地区稻田CH4和N2O排放之间存在互为消长关系(r=-0.513,P<0.05),但在同样施肥水平条件下,间歇灌溉与长期淹灌相比,CH4排放明显减少而N2O略有增加,其相对综合温室效应被大大减少且水稻产量未受影响。为此,间歇灌溉可作为减少稻田温室气体排放的水分管理措施。另外,通过对CH4和N2O排放的相关微生物过程探讨,揭示产甲烷菌数与CH4排放问呈显著性正相关(R2=0.82,P<0.05),硝化菌数和反硝化菌数与N2O排放有重要关系。  相似文献   

16.
Butterbach-Bahl  K.  Rothe  A.  Papen  H. 《Plant and Soil》2002,240(1):91-103
Complete annual cycles of N2O and CH4 flux in forest soils at a beech and at a spruce site at the Höglwald Forest were followed in 1997 by use of fully automatic measuring systems. In order to test if on a microsite scale differences in the magnitude of trace gas exchange between e.g. areas in direct vicinity of stems and areas in the interstem region at both sites exist, tree chambers and gradient chambers were installed in addition to the already existing interstem chambers at our sites. N2O fluxes were in a range of –4.6–473.3 g N2O-N m–2 h–1 at the beech site and in a range of –3.7–167.2 g N2O-N m–2 h–1 at the spruce site, respectively. Highest N2O emissions were observed during and at the end of a prolonged frost period, thereby further supporting previous findings that frost periods are of crucial importance for controlling annual N2O losses from temperate forests. Fluxes of CH4 were in a range of +10.4––194.0 g CH4 m–2 h–1 at the beech site and in a range of –4.4––83.5 g CH4 m–2 h–1 at the spruce site. In general, both N2O-fluxes as well as CH4-fluxes were higher at the beech site. On a microsite scale, N2O and CH4 fluxes at the beech site were highest within the stem area (annual mean: 49.6±3.3 g N2O-N m–2 h–1; –77.2±3.1 g CH4 m–2 h–1), and significantly lower within interstem areas (18.5±1.4 g N2O-N m–2 h–1; –60.2±1.8 g CH4 m–2 h–1). Significantly higher values of total N, C and pH in the organic layer, as well as increased soil moisture, especially in spring, in the stem areas, are likely to contribute to the higher N2O fluxes within the stem area of the beech. Also for the spruce site, such differences in trace gas fluxes could be demonstrated to exist (mean annual N2O emission within (a) stem areas: 9.7±0.9 g N2O-N m–2 h–1 and (b) interstem areas: 6.2±0.6 g N2O-N m–2 h–1; mean annual CH4 uptake within (a) stem areas: –26.1±0.6 g CH4 m–2 h–1 and (b) interstem areas: –38.4±0.8 g CH4 m–2 h–1), though they were not as pronounced as at the beech site.  相似文献   

17.
18.
为揭示不同灌水量对温室番茄土壤CO2、N2O和CH4排放及作物产量的影响,提出有效的减排措施,试验设置充分灌溉(1.0W,W1.0;W为充分供水的灌水量)、亏缺20%灌溉(0.8W,W0.8)和亏缺40%灌溉(0.6W,W0.6)3个灌水水平,采用静态暗箱/气相色谱法于2017年4—12月对两茬温室番茄土壤CO2、N2O和CH4进行全生长季监测,分析土壤CO2、N2O和CH4排放对不同灌水量的响应.结果表明: 番茄两个生长季中,土壤CO2、N2O和CH4排放量均随着灌水量增加呈现逐渐增加的趋势(W1.0>W0.8>W0.6),除W0.6和W1.0处理间土壤N2O排放具有显著差异外,其他各处理间气体排放差异均不显著.与W1.0处理相比,W0.6和W0.8处理土壤CO2排放分别减小了12.2%和8.3%,N2O分别减小了19.1%和8.0%,CH4分别减小了11.0%和6.2%.番茄产量和由土壤N2O和CH4引起的全球增温潜势(GWP)均随灌水量增加而增加;与W1.0处理相比,W0.6处理产量和GWP显著减小,降幅分别为17.0%和22.9%,而W0.8处理对两者未产生显著影响.单位产量GWP随灌水量增加表现为先增加后降低的趋势(W0.8>W1.0>W0.6),处理间差异不显著.灌溉水利用效率(IWUE)随灌水量增加而降低,与W1.0处理相比,W0.6和W0.8处理IWUE分别增加了38.3%和9.4%.回归分析表明,土壤CO2排放通量与土壤水分呈指数负相关关系;土壤CH4通量与土壤水分呈线性正相关关系;当土壤温度小于18 ℃和大于18 ℃时,土壤N2O排放通量与土壤温度间均呈指数负相关关系.灌水增加了番茄产量和温室气体排放,但降低了IWUE.综合考虑番茄产量、IWUE和温室效应,推荐W0.8处理为较佳的灌溉模式.  相似文献   

19.
通过田间试验,研究了太湖地区不同轮作模式下稻季温室气体排放规律.结果表明: 水稻生长季CH4排放呈先升高后降低趋势,CH4排放主要集中在水稻生育前期,烤田后至水稻收获期间CH4排放量较低;N2O的排放主要集中在3次施肥及烤田期.稻季排放的CH4对全球增温潜势(GWP)的贡献远高于N2O,各处理所占比例为94.7%~99.6%,是温室气体减排的主要对象.不同轮作模式下,稻季CH4排放总量及其GWP存在显著差异,表现为小麦-水稻>紫云英-水稻>休闲-水稻轮作;稻季N2O排放总量及其GWP没有显著性差异.与不施肥处理相比,紫云英-水稻轮作模式下施加氮肥显著降低了CH4排放量和GWP,但不同氮肥用量下的CH4排放量和GWP没有显著性差异,而紫云英还田稻季施氮240 kg·hm-2下的水稻产量却最高.综合经济效益和环境效益,紫云英还田稻季施氮240 kg·hm-2下的增产减排综合效果更好,是值得当地推广的耕作制度.  相似文献   

20.
在广东鹤山大叶相思(Acacia auriculaeformis)人工林内设置外来蚯蚓西土寒宪蚓(Ocnerodrilus occidentalis)和乡土植物三叉苦(Evodia lepta)野外控制实验,用静态箱-气相色谱法对土壤N2O和CH4通量进行15 d的原位测定,研究蚯蚓和三叉苦对土壤N2O和CH4通量的影响。结果表明,三叉苦并未明显增加土壤N2O和CH4的通量,而假植物(模拟三叉苦的物理效应)则显著促进了土壤N2O的释放通量。整个实验阶段,蚯蚓效应分别使无植物对照和三叉苦处理土壤N2O通量增加了26.7%和66.3%,而在种假植物条件下,添加蚯蚓使土壤N2O通量降低了39.7%;同时,蚯蚓效应使对照处理土壤CH4吸收通量增加了10.3%,使假植物处理土壤CH4吸收通量降低了90.6%,而使三叉苦处理土壤CH4释放通量增加了301.8%。可见,蚯蚓能够促进人工林土壤N2O释放;同时促进人工林土壤从CH4“汇”向“源”转变。三叉苦的物理过程促进土壤N2O的释放,而三叉苦的生物过程抑制土壤N2O的排放。如何减缓人工林中土壤N2O和CH4的排放,必须综合考虑植物物理过程、生物过程以及蚯蚓对土壤N2O和CH4排放过程影响的独立效应和交互效应。  相似文献   

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