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1.
张逸飞  刘小慧  杨平  黄佳芳  郭谦谦  仝川 《生态学报》2018,38(13):4715-4723
2015年12月—2016年10月,每月小潮日原位定期向闽江口塔礁洲淡水感潮野慈姑(Sagittaria trifolia L.)湿地施加剂量为60、120 kg S hm~(-2)a~(-1)的K_2SO_4溶液(分别记做S-60和S-120),探讨模拟硫酸根(SO_4~(2-))沉降对河口淡水感潮湿地甲烷(CH4)排放通量及间隙水SO_4~(2-)浓度的影响。对照、S-60和S-120处理组CH_4排放通量年均值分别为(7.88±1.00)mg h~(-1)m~(-2)、(6.55±0.97)mg h~(-1)m~(-2)和(6.66±1.49)mg h~(-1)m~(-2)。在年尺度上,两个高强度模拟SO_4~(2-)沉降处理组均未显著降低闽江口淡水感潮野慈姑湿地CH_4排放通量(P0.05),即高强度SO_4~(2-)沉降不会对河口淡水感潮湿地CH_4排放通量产生类似于其对泥炭湿地和水稻田的显著抑制效应。在年尺度以及秋、冬季,两个施加K_2SO_4溶液处理显著增加了野慈姑湿地10 cm深度土壤间隙水SO_4~(2-)浓度。对于各个处理组,温度较高的夏、秋季CH_4排放通量均显著高于温度相对较低的冬、春季(P0.05)。不同处理组CH_4排放通量均与土壤温度呈显著正相关关系,温度仍然是影响亚热带河口淡水感潮湿地CH_4排放通量的重要环境因子。  相似文献   

2.
不同施肥处理对土壤活性有机碳和甲烷排放的影响   总被引:5,自引:0,他引:5  
通过采集田间试验区连续3a施入有机肥的稻田耕层土壤,分析土壤中微生物量碳(MBC)、水溶性有机碳(DOC)、易氧化有机碳(ROC)和可矿化有机碳(readily mineralizable carbon,RMC)等活性有机碳的含量,稻田甲烷(CH_4)的排放通量,探讨施用有机肥的土壤活性有机碳变化及与CH_4排放的关系。研究结果显示:(1)施有机肥对土壤中的活性有机碳均有一定的促进作用。3a不同施肥处理土壤中DOC、ROC、MBC和RMC的平均含量分别为383.6、2501.2、640.4 mg/kg和291.7 mg/kg。3a施猪粪(猪粪+化肥,PM)、鸡粪(鸡粪+化肥,CM)和稻草(稻草+化肥,RS)的DOC的含量分别比化肥(CF)处理增加5.6%、6.7%和19.3%,ROC的含量分别比CF增加6.6%、8.4%和9.8%;MBC含量分别比CF增加5.1%、14.8%和21.5%,RMC增加6.8%、22.0%和33.9%。不同施肥处理的稻田土壤活性有机碳为分蘖期高于成熟期。(2)施肥处理显著增加稻田CH_4排放,CH_4分蘖期的排放通量是成熟期的143倍,3a PM、CM和RS处理的CH_4排放分别比CF处理增加37.0%(P0.05)、92.7%(P0.05)和99.4%(P0.05)。(3)不同施肥处理的DOC、ROC、MBC和RMC含量与CH_4排放通量均存在显著正相关关系,ROC与CH_4排放的相关系数最高,为0.754(P0.01),且4种有机碳间关系密切。稻田分蘖期土壤中的活性有机碳与稻田CH_4排放呈显著正相关关系。(4)综合分析,在4种有机碳中,土壤中ROC和MBC的含量直接影响CH_4排放。  相似文献   

3.
为探讨覆膜栽培再生稻对CH_4排放的影响,采用静态箱-气相色谱法观测了川中丘陵区2016和2017年覆膜条件下再生稻田的CH_4排放通量。试验设置覆膜单季中稻(SR)和覆膜中稻-再生稻(SR-RR)两个处理。结果表明:SR-RR处理中稻季提前出现CH_4排放峰,再生季CH_4排放量少,约占两季总排放的8%—10%。全观测期内SR-RR处理两季的CH_4排放总量为103—306 kg/hm~2,比SR处理的单季排放量高11%—16%(P0.05)。SR-RR处理两季稻谷总产量为10.2—10.4 t/hm~2,比SR处理高出19%—22%(P0.05)。SR-RR处理单位产量的CH_4排放量为9.9—30.1 kg/t、,比SR处理减少6%(P0.05)。覆膜条件下种植再生稻,可保证水稻高产稳产,减少单位产量的CH_4排放量,值得推广。  相似文献   

4.
张强  蒋国庆  孙睿  徐自为  刘绍民 《生态学报》2017,37(17):5681-5690
于2012年7月—2014年6月对地处干旱区的张掖湿地甲烷(CH_4)通量进行观测,分析其CH_4通量的变化特征及其影响因子。结果表明:CH_4通量的日变化趋势总体表现为白天大于夜间;不同季节CH_4通量排放特征差异明显,夏季最大,春秋次之,冬季最小;CH_4通量日总量与空气温度、土壤温度之间指数相关关系显著,其中4 cm处土壤温度与之相关性最强;1—6月摩擦风速(U*)与CH_4通量显著正相关;结合CO_2通量观测数据,研究时段张掖湿地净碳吸收量为495.92 g C m~(-2)a~(-1),为明显碳汇。  相似文献   

5.
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   

6.
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   

7.
冬灌田影响水稻生长期甲烷排放量的因素分析   总被引:18,自引:1,他引:17  
冬灌田是CH4排放量最大的一类稻田。对冬灌田6年(1995-2000年)的测定结果表明,越冬期排干,并种植旱作(小麦或油菜)减少后续水稻生长期CH4排放量,水稻垄作并降低冬季垄沟水位也可有效地减少水稻生长期的CH4排放量。对后3年(1998-2000年)不同处理的测定结果分析表明,冬季土壤水分含量与水稻生长期CH4排放量呈显著正相关,可以预测水稻生长期平均CH4排放量56%的年际和处理变化。如果同时考虑水稻生长期的土壤温度,则可预测78%的变化,控制渗漏池地下水位,调节冬季土壤水分,进一步证明冬季土壤水分对后续水稻生长期CH4排放量的影响。由于水稻生长期土壤温度的冬季土壤水分含量与气候因素密切相关,据此,可以认为,冬季降水和水稻生长期温度变化是导致稻田CH4排放量年际变化的主要因素。  相似文献   

8.
长期施肥对双季稻田甲烷排放和关键功能微生物的影响   总被引:3,自引:0,他引:3  
研究不同施肥措施对双季稻田甲烷(CH_4)排放特征的影响及其微生物学机理,对合理利用及评价不同施肥模式对水稻生长的影响具有重要意义。以长期施肥定位试验田为平台,采用静态箱-气相色谱法对施用化肥(MF:mineral fertilizer alone)、秸秆还田配施化肥(RF:rice residues plus mineral fertilizer)、30%有机肥配施70%化肥(LOM:30%organic matter plus 70%mineral fertilizer)、60%有机肥配施40%化肥(HOM:60%organic matter plus 40%mineral fertilizer)和无肥(CK:without fertilizer)条件下双季稻田CH_4排放及其微生物学机理进行了分析。结果表明,早稻和晚稻生长期,不同施肥处理稻田CH_4排放通量均显著高于CK,表现为HOMLOMRFMFCK。各处理间CH_4总排放量差异达显著水平,其大小顺序与排放通量趋势一致,以HOM处理为最高,比CK处理增加105.56%,其次是LOM和RF处理,分别比CK处理增加72.97%和54.17%。关键功能土壤微生物测定结果表明,早稻和晚稻各个主要生育时期,各处理稻田土壤产甲烷古菌的数量变化范围为(3.18—81.07)×10~3cfu/g,土壤甲烷氧化细菌的数量变化范围为(24.82—379.72)×10~3cfu/g。稻田土壤产甲烷古菌和甲烷氧化细菌数量大小顺序为HOMLOMRFMFCK,各施肥处理均显著高于CK;HOM、LOM、RF处理显著高于MF、CK处理。双季稻田CH_4排放与稻田土壤产甲烷古菌、甲烷氧化细菌数量变化关系密切。采用有机无机肥配施促进了双季稻田生态系统CH_4的排放和关键功能微生物的数量。  相似文献   

9.
生物炭与氮肥对旱作春玉米农田CO_2和CH_4排放特征的影响   总被引:1,自引:0,他引:1  
为了研究生物炭与氮肥对旱作春玉米农田CO_2和CH_4排放通量季节变化、累积排放总量及CO_2+CH_4排放强度的影响,试验设置C_0N_0(不加生物炭,不施氮肥)、C_0N_1(不加生物炭,施氮肥225kg·hm~(-2))和C_1N_1(添加生物炭50t·hm~(-2),施氮肥225kg·hm~(-2))3个处理,采用密闭式静态暗箱-气相色谱法对不同生物炭和氮肥输入旱作春玉米农田CO_2和CH_4排放通量进行连续观测,同时对影响通量变化的0~20cm土层温度和水分因子进行测定。结果表明:(1)试验期内不同处理春玉米农田均表现为CO_2累积通量的源,且CO_2排放通量均呈现一定的峰值变化规律。(2)C_1N_1处理减少了春玉米生长季农田CO_2排放通量和累积排放总量,在试验的2个生长季内农田CO_2平均排放通量和累积排放总量各处理均表现为C_0N_0C_0N_1C_1N_1,且C_1N_1处理降低显著。(3)土壤CO_2排放通量与土壤温度变化呈显著正相关关系,可用指数方程和二次方程较好拟合二者关系,且与10cm土层温度的相关性优于0cm土层温度,但土壤CO_2排放通量与土壤含水量呈负相关关系。(4)试验各处理农田土壤CH_4排放通量在-16.08~-73.96μg·m~(-2)·h~(-1)之间,表现为大气CH_4的净吸收库;C_1N_1处理增加了土壤CH_4排放通量和累积排放总量,但作用效果的显著性受年际环境因子的影响;农田土壤CH_4排放通量与土壤含水量呈显著正相关关系,与土壤温度呈显著负相关关系。研究发现,添加生物炭和施氮减少了旱作农田春玉米生长季CO_2排放通量和累积排放总量,增加了CH_4排放通量和累积排放总量,总体上显著增加了春玉米产量,显著减少农田CO_2+CH_4排放强度。  相似文献   

10.
采用静态箱-气相色谱法,于2016年6—11月连续观测辽河口芦苇湿地、翅碱蓬湿地和裸滩湿地的CH_4排放速率,同时测定温度、氧化还原电位(Eh)、pH值和电导率(EC)等相关环境因子的动态变化。结果表明,3种类型湿地的CH_4排放具有明显的季节变化特征,均呈先上升后下降趋势。芦苇湿地、翅碱蓬湿地(涨潮前)和裸滩湿地(涨潮前)CH_4排放通量变化范围分别为0.447—10.40、0.045—0.509 mg m~(-2) h~(-1)和0.016—0.593 mg m~(-2) h~(-1),观测期内排放通量均值相应为(3.699±3.679)、(0.165±0.156) mg m~(-2) h~(-1)和(0.198±0.191) mg m~(-2) h~(-1),不同类型湿地之间差异显著(P0.01),芦苇湿地裸滩湿地(涨潮前)翅碱蓬湿地(涨潮前)。涨潮过程中,翅碱蓬湿地和裸滩湿地的排放速率分别变化在0.009—0.353 mg m~(-2) h~(-1)和0.018—0.335 mg m~(-2) h~(-1),观测期间其排放速率均值分别为(0.119±0.132) mg m~(-2) h~(-1)和(0.131±0.103) mg m~(-2) h~(-1),明显低于涨潮前(P0.01)。不同湿地类型间CH_4排放通量与电导率(EC)呈显著负相关(P0.01)。研究结果表明,潮汐和电导率均为影响辽河口不同类型湿地中CH_4排放的关键因子。  相似文献   

11.
Options for mitigating methane emission from a permanently flooded rice field   总被引:19,自引:0,他引:19  
Permanently flooded rice fields, widely distributed in south and south‐west China, emit more CH4 than those drained in the winter crop season. For understanding CH4 emissions from permanently flooded rice fields and developing mitigation options, CH4 emission was measured year‐round for 6 years from 1995 to 2000, in a permanently flooded rice field in Chongqing, China, where two cultivations with four treatments were prepared as follows: plain‐cultivation, summer rice crop and winter fallow with floodwater layer annually (convention, Ch‐FF), and winter upland crop under drained conditions (Ch‐Wheat); ridge‐cultivation without tillage, summer rice and winter fallow with floodwater layer annually (Ch‐FFR), and winter upland crop under drained conditions (Ch‐RW), respectively. On a 6‐year average, compared to the treatments with floodwater in the winter crop season, the CH4 flux during rice‐growing period from the treatments draining floodwater and planting winter crop was reduced by 42% in plain‐cultivation and by 13% in ridge‐cultivation (P < 0.05), respectively. The reduction of annual CH4 emission reached 68 and 48%, respectively. Compared to plain‐cultivation (Ch‐FF), ridge‐cultivation (Ch‐FFR) reduced annual CH4 emission by 33%, and which was mainly occurred in the winter crop season. These results indicate that draining floodwater layer for winter upland crop growth was not only able to prevent CH4 emission from permanently flooded paddy soils directly in the winter crop season, but also to reduce CH4 emission substantially during the following rice‐growing period. As an alternative to the completely drainage of floodwater layer in the winter crop season, ridge‐cultivation could also significantly mitigate CH4 emissions from permanently flooded rice fields.  相似文献   

12.
Hua Xu  Yasukazu Hosen 《Plant and Soil》2010,335(1-2):373-383
Methane (CH4) emissions from paddy fields are believed to contribute to the greenhouse effect. Yet, in the literature, only a few reports are available on the effects of soil moisture regime and straw application in the non-rice-growing season separately on CH4 emissions during the rice-growing season. The objective of this study was to investigate CH4 emissions during the winter fallow and the following rice-growing season as affected by soil moisture regime and rice straw application during the fallow season. The experiment was designed to have 10 treatments, that is, five soil water contents (18%, 38%, 59%, and 79% of soil water-holding capacity [SWHC] and flooding; hereafter, W18, W38, W59, W79, and W100) and two rice straw application rates (0.91 and 4.55 g kg-1 dry soil; hereafter, Sl and Sh) during the fallow season. Both W100 and W79 showed obvious CH4 emissions during the fallow season, contributing 5.3% and 5.9% (Sl) and 34.8% and 27.8% (Sh), respectively, to their gross CH4 emissions, which increased significantly with the rising soil water content in the fallow season, except for W18. Rice straw application significantly affected gross CH4 emissions, but its effect was strongly influenced by soil moisture. The CH4 emissions per unit weight of rice straw applied of W38 and W59 were 9% and 16%, respectively, as much as that of W100. The findings demonstrate that keeping the soil water content in the range of 38–59% SWHC in the fallow season is important for a reduction in CH4 emissions.  相似文献   

13.
Rice cultivation is an important anthropogenic source of atmospheric methane (CH4), the emission of which is affected by management practices. Many field measurements have been conducted in major rice‐producing countries in Asia. We compiled a database of CH4 emissions from rice fields in Asia from peer‐reviewed journals. We developed a statistical model to relate CH4 flux in the rice‐growing season to soil properties, water regime in the rice‐growing season, water status in the previous season, organic amendment and climate. The statistical results showed that all these variables significantly affected CH4 flux, and explained 68% of the variability. Organic amendment and water regime in the rice‐growing season were the top two controlling variables; climate was the least critical variable. The average CH4 fluxes from rice fields with single and multiple drainages were 60% and 52% of that from continuously flooded rice fields. The flux from fields that were flooded in the previous season was 2.8 times that from fields previously drained for a long season and 1.9 times that from fields previously drained for a short season. In contrast to the previously reported optimum soil pH of around neutrality, soils with pH of 5.0–5.5 gave the maximum CH4 emission. The model results demonstrate that application of rice straw at 6 t ha?1 before rice transplanting can increase CH4 emission by 2.1 times; when applied in the previous season, however, it increases CH4 emission by only 0.8 times. Default emission factors and scaling factors for different water regimes and organic amendments derived from this work can be used to develop national or regional emission inventories.  相似文献   

14.
王颖  娄运生  石一凡  郑泽华  左慧婷 《生态学报》2018,38(14):5099-5108
昼夜不对称增温是全球气候变化的主要特征之一,有关夜间增温对稻田甲烷(CH_4)排放影响的报道尚不多见。通过田间模拟试验,研究了被动式夜间增温下水稻田CH_4排放及高光谱的特征,并用高光谱数据对稻田甲烷排放进行定量模拟。田间试验设夜间增温(NW)和对照处理(CK),夜间增温即在整个水稻生育期的夜间(19:00—6:00)用铝箔反射膜覆盖水稻冠层。结果表明,夜间增温显著促进水稻拔节期和抽穗期-灌浆期CH_4排放。水稻冠层近红外光谱反射率表现为,在分蘖期和拔节期时,NWCK;而在抽穗-灌浆期和成熟期时,CKNW。水稻冠层光谱反射率、一阶导数光谱及光谱特征值均与CH_4排放通量显著相关,相关系数最大可达0.8(P0.01),其中以"蓝边面积"(SD_b)构成的二次多项式模型模拟精度和检验精度综合最佳,决定系数R~2分别为0.70和0.72。研究结果对稻田CH_4排放通量遥感监测的可行性提供了理论依据和技术支持。  相似文献   

15.
稻田土壤氧化态有机碳组分变化及其与甲烷排放的关联性   总被引:5,自引:0,他引:5  
吴家梅  纪雄辉  霍莲杰  彭华  刘勇 《生态学报》2013,33(15):4599-4607
稻田土壤有机碳是甲烷排放的关键底物之一,不同研究者由于采取的有机碳研究方法不同而得出稻田甲烷排放与土壤有机碳关系的结论不一.为明确影响稻田甲烷排放的土壤有机碳组分,设计了稻田施用不同外源有机碳(稻草还田、鸡粪和猪粪)的田间试验,对稻田甲烷排放和土壤有机碳组分的动态变化及其关联性进行监测和分析.结果表明,猪粪处理的甲烷排放与化肥处理无显著差异,而鸡粪和稻草2个处理的甲烷排放分别比化肥增加1.67倍(P<0.05),2.69倍(P<0.05);甲烷排放量与土壤易氧化有机碳含量显示相同顺序:稻草>鸡粪>猪粪>化肥;通径分析表明,土壤易氧化有机碳组分1(被33 mmol/L KMnO4氧化的有机碳)与甲烷排放直接相关,其他有机碳组分仅通过组分1间接作用于水稻生育后期甲烷排放,且排放量较低.由此推断,易氧化有机碳组分1是甲烷排放的主要底物,通过有效措施降低肥源中易氧化态有机碳组分1是减排甲烷的关键技术之一.  相似文献   

16.
Nitrous oxide emission from paddy fields in China   总被引:1,自引:0,他引:1       下载免费PDF全文
The main research results of nitrous oxide (N2O) emission from paddy fields in China were summarized. Paddy fields are an important source of N2O emission. Denitrification process exists not only in the upper flooded cultivated layer in paddy fields but also in the underground saturated soil layer. The cropping system with rice–wheat rotation and the water regime with mid-season aeration (MSA) in paddy fields of China are not only the controlling factors of N2O emission but also the main factors influencing methane (CH4) emission. There is a trade-off relationship between N2O and CH4 emissions from paddy fields. Straw amendment reduced N2O emission but promoted CH4 emission. Therefore, effects of both CH4 and N2O emissions from rice fields on the global warming potential (GWP) should be taken into consideration when any mitigation options are to be established.  相似文献   

17.
Using the free‐air CO2 enrichment (FACE) techniques, we carried out a 3‐year mono‐factorial experiment in temperate paddy rice fields of Japan (1998–2000) and a 3‐year multifactorial experiment in subtropical paddy rice fields in the Yangtze River delta in China (2001–2003), to investigate the methane (CH4) emissions in response to an elevated atmospheric CO2 concentration (200±40 mmol mol?1 higher than that in the ambient atmosphere). No significant effect of the elevated CO2 upon seasonal accumulative CH4 emissions was observed in the first rice season, but significant stimulatory effects (CH4 increase ranging from 38% to 188%, with a mean of 88%) were observed in the second and third rice seasons in the fields with or without organic matter addition. The stimulatory effects of the elevated CO2 upon seasonal accumulative CH4 emissions were negatively correlated with the addition rates of decomposable organic carbon (P<0.05), but positively with the rates of nitrogen fertilizers applied in either the current rice season (P<0.05) or the whole year (P<0.01). Six mechanisms were proposed to explain collectively the observations. Soil nitrogen availability was identified as an important regulator. The effect of soil nitrogen availability on the observed relation between elevated CO2 and CH4 emission can be explained by (a) modifying the C/N ratio of the plant residues formed in the previous growing season(s); (b) changing the inhibitory effect of high C/N ratio on plant residue decomposition in the current growing season; and (c) altering the stimulatory effects of CO2 enrichment upon plant growth, as well as nitrogen uptake in the current growing season. This study implies that the concurrent enrichment of reactive nitrogen in the global ecosystems may accelerate the increase of atmospheric methane by initiating a stimulatory effect of the ongoing dramatic atmospheric CO2 enrichment upon methane emissions from nitrogen‐poor paddy rice ecosystems and further amplifying the existing stimulatory effect in nitrogen‐rich paddy rice ecosystems.  相似文献   

18.

Aims

Two pot experiments in a “walk-in” growth chamber with controlled day and night temperatures were conducted to investigate the influence of elevated temperatures along with rice straw incorporation on methane (CH4) and nitrous oxide (N2O) emissions as well as rice yield.

Methods

Three temperature regimes–29/25, 32/25, and 35/30 °C (Exp. I) and 29/22, 32/25, and 35/28 °C (Exp. II), representing daily maxima/minima were used in the study. Two amounts of rice straw (0 and 6 t ha?1) were applied with four replications in each temperature regime. CH4 and N2O emissions as well as soil redox potential (Eh) were monitored weekly throughout the rice-growing period.

Results

Elevated temperatures increased CH4 emission rates, with a more pronounced effect from flowering to maturity. The increase in emissions was further enhanced by incorporation of rice straw. A decrease in soil Eh to <?100 mV and CH4 emissions was observed early in rice straw–incorporated pots while the soil without straw did not reach negative Eh levels (Exp. I) or showed a delayed decrease (Exp. II). Moreover, soil with high organic C (Exp. II) had higher CH4 emissions. In contrast to CH4 emissions, N2O emissions were negligible during the rice-growing season. The global warming potential (GWP) was highest at high temperature with rice straw incorporation compared with low temperature without rice straw. On the other hand, the high temperature significantly increased spikelet sterility and reduced grain yield (p?<?0.05).

Conclusions

Elevated temperature increased GWP while decreased rice yield. This suggests that global warming may result in a double negative effect: higher emissions and lower yields.  相似文献   

19.
We measured CH4 emissions from ricepaddies managed by farmer's practices inChangsha, Hunan Province, China, from 1995 to1997. During the winter season, rice fieldswere left fallow under either drained(C-Fallow) or flooded conditions (C-Flood), andplanted with either Chinese milk vetch (C-GM)or oil-seed rape (C-Rape). The organic manureproduced in the winter (weeds, Chinese milkvetch, or oil-seed rape straw) was incorporatedin situ before the early-ricetransplanting. Both early-rice and late-ricestraws were removed and the soil was notamended with any exogenous organic manure. For1996 to 1997, the average seasonal CH4emission for the double rice cropping periodwas the highest from the plot that was floodedin the winter (103.5 g CH4 m–2) andlowest from the plot planted and incorporatedwith Chinese milk vetch (32.6 gCH4 m–2). Precipitation in the winternot only affected growth of green manure, whichwas incorporated in situ, but might alsoaffect CH4 emissions during the subsequentrice growing period. Therefore, a simplerelationship could not be found between theincorporated amount of green manure andCH4 emission. In the plots incorporatedwith vetch and oil-seed rape straw CH4emissions were significantly less during thesubsequent late-rice period than during theearly-rice period. This phenomenon might beattributed to a ``priming effect' of greenmanure, which exhausted soil labile organicmatter. Based on the CH4 fluxmeasurements, the total CH4 emissions fromrice fields in Hunan Province during the ricegrowing season were estimated as 1.56 TgCH4 in 1996 and 1.06 Tg CH4 in 1997.Large variation of precipitation in the winterwould be an important factor controlling theannual variation of CH4 emissions from thetreatments.  相似文献   

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