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1.
Nitrous oxide emissions from black soils with different pH   总被引:1,自引:0,他引:1  
N2O fluxes as a function of incubation time from soil with different available N contents and pH were determined. Cumulative carbon dioxide (CO2) emissions were measured to indicate soil respiration. A 144-hr incubation experiment was conducted in a slightly acidic agricultural soil (pHH2O 5.33) after the pH was adjusted to four different values (3.65, 5.00, 6.90 and 8.55). The experiments consisted of a control without added N, and with NH4+-N and NO3--N fertilization. The results showed that soil pH contributed significantly to N2O flux from the soils. There were higher N2O emissions in the period 0-12 hr in the four pH treatments, especially those enhanced with N-fertilization. The cumulative N2O-N emission reached a maximum at pH 8.55 and was stimulated by NO3--N fertilization (70.4 μg/kg). The minimum emissions appeared at pH 3.65 and were not stimulated by NO3--N or NH4+-N fertilization. Soil respiration increased significantly due to N-fertilization. Soil respiration increased positively with soil pH (R2 = 0.98, P < 0.01). The lowest CO2-C emission (30.2 mg/kg) was presented in pH 3.65 soils without N-fertilization. The highest CO2-C emissions appeared in the pH 8.55 soils for NH4+-N fertilization (199 mg/kg). These findings suggested that N2O emissions and soil respiration were significantly influenced by low pH, which strongly inhibits soil microbial nitrification and denitrification activities. The content of NO3--N in soil significantly and positively affected the N2O emissions through denitrification.  相似文献   

2.
利用生物炭吸附面源污染水体NH4+-N并将其进行还田可实现此氮资源由水体到农田的安全有效迁移,而探索负载NH4+-N生物炭对N2O-N排放和NH3-N挥发的影响则对于减施化肥和降低土壤氮素损失意义重大.本研究采用土柱试验,设置4个处理:对照(不施氮肥,CK)、单施化肥(NPK)、负载氮+化学磷钾肥(N-BC+PK)和生物炭+化肥(BC+NPK).结果表明,相较NPK和BC+NPK处理,N-BC+PK处理N2O-N累积排放量、NH3-N累积挥发量、气态氮素累积损失量(以N计)分别显著降低了33.62%和24.64%、70.64%和79.29%、64.97%和73.75%(P<0.05).特别需要说明的是,BC+NPK处理相比NPK处理显著增加了NH3-N累积挥发量(P<0.05).综上所述,负载NH4+-N生物炭可显著减少N2O-N排放和NH3-N挥发,且其减排效果显著优于传统的生物炭化肥配施.本研究结果将为富营养化水体NH4+-N农田回用和土壤气态氮素减排提供理论依据和数据支持.  相似文献   

3.
生物质炭对双季稻田土壤反硝化功能微生物的影响   总被引:10,自引:6,他引:4  
目前,基于田间条件下生物质炭添加对稻田反硝化微生物的调控效应还不甚明确.为此,本研究采用小区试验,通过在双季稻田添加不同量的小麦秸秆生物质炭(0、24和48 t·hm-2,分别用CK、LC和HC代表),结合实时荧光定量PCR(q PCR)和末端限制性片段长度多态性(T-RFLP)分析技术,研究了生物质炭添加对双季稻田休闲季和水稻季土壤反硝化微生物相关功能基因(调控硝酸还原酶的nar G基因,亚硝酸还原酶的nir K基因和氧化亚氮还原酶的nos Z基因)的影响.由于生物质炭呈碱性,添加到土壤后,可提高稻田休闲季土壤p H 0. 2~0. 8个单位.生物质炭本身含有部分可溶性N,因此,添加生物质炭可增加休闲季土壤铵态氮(NH_4~+-N)和硝态氮(NO_3~--N)含量,增幅分别达21. 1%~32. 5%和63. 0%~176. 0%,但由于其吸附作用,降低了水稻季NH_4~+-N含量48. 8%~60. 1%.生物质炭添加增加了休闲季微生物生物量氮(MBN)含量,这可能是由于生物质炭较大的比表面积为微生物生存提供了适宜的环境,可利用养分的增加促进了微生物的生长.与对照相比,休闲季生物质炭引起的NH_4~+-N和NO_3~--N含量增加,促进NH_4~+-N向NO_3~--N的转化,进而增加nar G和nos Z的基因丰度(P0. 05),同时,生物质炭处理p H的提高促进了nos Z的基因丰度的增加,显著改变了反硝化功能基因nar G和nos Z的群落结构,并以此对反硝化作用产生影响,但未对休闲季氧化亚氮(N_2O)排放产生影响.而在水稻季,生物质炭增加了土壤nos Z的基因丰度(P 0. 05),HC处理增加了nir K基因丰度(P 0. 05),这也是导致水稻季HC处理N_2O排放增加的重要原因.生物质炭通过降低水稻季土壤NH_4~+-N含量,改变了nir K和nos Z基因的群落结构,而nar G基因群落结构的变化影响了土壤N_2O排放.综上所述,生物质炭可通过改变双季稻田土壤性质,来影响参与土壤反硝化作用的相关微生物,进而影响土壤N_2O排放及NO_3~--N的淋失.  相似文献   

4.
Wastewater with relatively high nitrogen concentrations is a major source of nitrous oxide (N2O) and methane (CH4) emissions and exerts multiple stresses on the environment. Studies have shown that plant diversity plays an important role in ecosystem functioning. However, the effects of plant species diversity on CH4 and N2O emissions under high ammonium (NH4+-N) loading rates remain unclear. In this study, a microcosm experiment simulating vertical constructed wetlands supplied with high NH4+-N water levels was established. The treatments included four species richness levels (1, 2, 3, 4) and 15 species compositions. There was no significant relationship between species richness and N2O emissions. However, N2O emissions were significantly reduced by specific plant species composition. Notably, the communities with the presence of Rumex japonicus L. reduced N2O emissions by 62% compared to communities without this species. This reduction in N2O emissions may have been a result of decreased N concentrations and increased plant biomass. CH4 emissions did not respond to plant species richness or species identity. Overall, plant species identity surpassed species richness in lowering N2O emissions from constructed wetlands with high NH4+-N water. The results also suggest that communities with R. japonicus could achieve higher N removal and lower greenhouse gas emissions than other wetland species.  相似文献   

5.
垄作覆膜条件下田间氨挥发及影响因素   总被引:12,自引:4,他引:8  
通过大田试验,采用密闭法研究了垄沟覆膜栽培条件下冬小麦生育期内土壤氨挥发动态过程及相关土壤理化性质.结果表明,生育期内垄沟覆膜处理氨挥发累积量(以N计)为(1.66±0.3)~(3.28±0.51)kg.hm-2,常规栽培为(4.68±0.35)kg.hm-2,垄作栽培比常规栽培减少了29.8%~63.8%,氮肥损失率从常规栽培的1.9%下降到了0.3%~0.8%.小麦生育期内土壤氨挥发速率先升后降,冬前高、冬后低.常规栽培土壤氨挥发主要发生在越冬前,其挥发量占总挥发量的82%;而垄作栽培的越冬前挥发量只占挥发总量的49%~61%.越冬前常规栽培土壤氨挥发速率受土壤铵态氮浓度和土壤含水量的共同影响;而垄作条件下土壤氨挥发主要受土壤铵态氮浓度影响,地表温度和土壤含水量通过土壤铵态氮间接影响氨挥发.返青后2种栽培模式下的氨挥发主要受土壤铵态氮浓度的影响.常规栽培和垄沟覆膜高施氮量条件下土壤氨挥发累积量动态过程符合对数函数;而不施肥和垄沟覆膜低施氮量条件下的动态过程可以用线性函数表示.垄沟覆膜栽培在一定程度上改变了土壤氨挥发机制和过程,显著降低土壤氨挥发和氮肥损失.  相似文献   

6.
为探究长期平衡施肥和秸秆覆盖对紫色土坡耕地土壤养分及其化学计量比的影响,以垫江县长期农田氮磷流失监测点为研究样地,设置3个处理:常规模式(CK)、平衡施肥模式(M1)和平衡施肥+秸秆覆盖模式(M2),每个处理各设3个重复,共建立9个小区(长7 m×宽3 m),并于2018、2019和2020年采集土样,研究不同处理下碳(C)、氮(N)、磷(P)和钾(K)含量及其化学计量变化特征.结果表明,2018年不同处理之间K含量差异显著,大小顺序为:CK>M2>M1;2019年不同处理之间硝态氮(NO3--N)、铵态氮(NH4+-N)含量差异显著,表现为:M1>M2>CK;其他养分含量在同一年份不同处理之间差异均不显著.不同年份间各处理的土壤C和N含量差异不显著.2018年各处理中K含量均显著高于其他年份,其中,2018年的CK、M1和M2分别比2019年和2020年高78.26%和98.79%,19.13%和35.4%,54.49%和41.76%.P含量在CK和M2处理中均随着年份增大而减小,且2018年分别比2019年高20.29%和10.67%,比2020年高39.68%和17.33%.各处理不同年份间速效钾(AK)含量无显著差异,而NO3--N和NH4+-N和速效磷(AP)含量差异显著,且均在2020年最高.土壤C :P、C :K、N :P、N :K和P :K在不同年份间都表现出显著差异(P<0.05).土壤C :K、N :K和AN :AP分别于2018年和2019年在不同施肥模式间差异显著(P<0.05).土壤C与N及P与K之间呈显著的线性正相关;土壤C :K与C :P、N :K、N :P和P :K之间,N :K与C :P、P :K和N :P之间,N :P与C :P之间都呈显著的线性正相关;土壤P与C :K和N :K之间呈显著的线性负相关.土壤NO3--N与NH4+-N、AN :AP和AN :AK之间,NH4+-N与AN :AP和AN :AK之间,AP与AK和AP :AK之间,AN :AP与AN :AK之间都呈极显著正相关.研究发现平衡施肥+秸秆覆盖是紫色土坡耕地较为适宜的管理模式.  相似文献   

7.
Tillage practices affect the fate of fertilizer nitrogen (N) through influencing transformations of N, but few studies have examined N2O and NH3 emissions, and N leaching from different rice tillage systems. Thus the objective of this study was to assess N2O emission, NH3 volatilization and N leaching from direct seeded rice in conventional tillage (CT) and no-tillage (NT) production systems in the subtropical region of China during the 2008 and 2009 rice growing seasons. Treatments were established following a split-plot design of a randomized complete block with tillage practices as the main plot and N fertilizer level as the sub-plot treatment, and there were four treatments: NT + no fertilizer (NT0), CT + no fertilizer (CT0), NT + compound fertilizer (NTC) and CT + compound fertilizer (CTC), respectively. Results showed that N fertilization significantly increased (p < 0.01) N2O emissions, NH3 volatilization and N leaching from rice fields in both years. In general, there was no significant difference in N2O emissions and NH3 volatilization between NT0 and CT0 in both years, while NTC had significantly higher (p < 0.05) N2O emissions and NH3 volatilization compared to CTC. Over the two rice growing seasons, NTC showed 32% and 47% higher N2O emissions, and 29% and 52% higher NH3 losses than CTC. Higher (p < 0.05) N2O emissions from NTC than CTC were presumably due to higher soil organic C and greater denitrification. Total N and NO3? concentrations were higher (p < 0.05) in CTC than NTC, but larger volumes of percolation water in NTC than CTC resulted in no significant difference in leakage of total N and NO3?. Hence, application of N fertilizer in combination with NT appeared to be ineffective in reducing N losses from N fertilizer in paddy fields.  相似文献   

8.
洱海流域稻鸭共作对稻田温室气体排放和水稻产量的影响   总被引:5,自引:0,他引:5  
稻季是水旱轮作生态系统温室气体排放的主要时期,探索有效措施实现稻季温室气体减排和水稻增产已成为当前研究的热点.稻鸭共作是减少稻季温室气体排放的有效措施之一,而确定合理的稻鸭共作密度对确保洱海流域水稻产量基础上实现温室气体减排具有重要意义.该研究通过设置不同稻鸭共作密度试验,采取密闭静态箱—气相色谱法研究了稻鸭共作对温室气体排放规律、排放量及全球增温潜势(GWP)的影响.结果表明:水稻生育期,CH_4和N_2O均在分蘖期和结实期出现排放峰;CH_4排放通量、累计排放量和总排放量大小均为常规处理(CT)低密度鸭处理(LDD)高密度鸭处理(HDD)空白处理(CK),而N_2O为HDDLDDCTCK.与CT相比,CK、LDD、HDD的CH_4排放总量分别降低45%、18%、25%,N_2O排放总量分别降低8%、增加11%和37%,温室气体综合增温潜势分别降低41%、14%、17%.田面水DO、NH~+_4-N、NO~-_3-N及土壤温度是引起温室气体CH_4和N_2O排放差异的主要因素.不同处理的水稻产量为LDDCKCTHDD.合理的稻鸭共作密度降低CH_4排放,增加N_2O排放,减缓全球增温潜势,提高了水稻产量.兼顾水稻产量和温室气体减排效果,LDD处理综合效益最好.  相似文献   

9.
椰糠生物炭对热区双季稻田N2O和CH4排放的影响   总被引:3,自引:1,他引:2  
基于稻菜轮作模式,选择海南双季稻田为对象进行氧化亚氮(N2O)和甲烷(CH4)排放的原位监测,探究椰糠生物炭对该系统稻田温室气体排放的影响.试验设当地常规施肥对照(CON)、氮肥配施20 t·hm-2生物炭(B1)、氮肥配施40 t·hm-2生物炭(B2)及不施氮对照(CK)4个处理,采用静态箱-气相色谱法监测整个水稻种植季稻田N2O和CH4排放,并估算增温潜势(GWP)和温室气体排放强度(GHGI).结果表明,早稻季N2O排放动态与土壤矿质氮含量密切相关,排放集中在水稻苗期与分蘖期施肥后,各处理早稻季N2O累积排放量为0.18~0.76 kg·hm-2,相较于CON处理,生物炭处理减排18%~43%,其中B2处理达显著水平;生物炭可能通过促进N2O的还原减少早稻苗期N2O排放;提高土壤硝态氮含量而增加了早稻分蘖期N2O排放.晚稻季N2O排放集中在抽穗期和成熟期,累积排放量为0.17~0.34 kg·hm-2,B1处理减排37%,B2增加3%,差异均不显著.稻田CH4排放高峰出现在早稻季后期与晚稻季前期.各处理早稻季CH4累积排放量为3.11~14.87 kg·hm-2,CK较CON处理增排39%,生物炭处理可能提高土壤通气性限制早稻季产CH4能力,B1和B2处理分别较CON减排28%和71%;晚稻季CH4累积排放量为53.1~146.3 kg·hm-2,排放动态与NH4+-N含量极显著正相关,CK和B1分别较CON处理增加52%和99%,B2处理显著增加176% CH4排放.早稻季B1和B2处理较CON分别增产12.0%和14.3%,晚稻季分别增产7.6%和0.4%.由于晚稻季甲烷排放的增加,施用生物炭增加了双季稻田总增温潜势(GWP),其中高量生物炭达显著水平;不同施用量生物炭对双季稻田温室气体排放强度(GHGI)无显著影响.椰糠生物炭在热区稻田温室气体减排方面的应用仍需进一步研究.  相似文献   

10.
Minimizing soil ammonia (NH3) and nitrous oxide (N2O) emission factors (EFs) has significant implications in regional air quality and greenhouse gas (GHG) emissions besides nitrogen (N) nutrient loss. The aim of this study was to investigate the impacts of different N fertilizer treatments of conventional urea, polymer-coated urea, ammonia sulfate, urease inhibitor (NBPT, N-(n-butyl) thiophosphoric triamide)-treated urea, and nitrification inhibitor (DCD, dicyandiamide)-treated urea on emissions of NH3 and GHGs from subtropical wheat cultivation. A field study was established in a Cancienne silt loam soil. During growth season, NH3 emission following N fertilization was characterized using active chamber method whereas GHG emissions of N2O, carbon dioxide (CO2), and methane (CH4) were by passive chamber method. The results showed that coated urea exhibited the largest reduction (49%) in the EF of NH3-N followed by NBPT-treated urea (39%) and DCD-treated urea (24%) over conventional urea, whereas DCD-treated urea had the greatest suppression on N2O-N (87%) followed by coated urea (76%) and NBPT-treated urea (69%). Split fertilization of ammonium sulfate-urea significantly lowered both NH3-N and N2O-N EF values but split urea treatment had no impact over one-time application of urea. Both NBPT and DCD-treated urea treatments lowered CO2-C flux but had no effect on CH4-C flux. Overall, application of coated urea or urea with NPBT or DCD could be used as a mitigation strategy for reducing NH3 and N2O emissions in subtropical wheat production in Southern USA.  相似文献   

11.
王永明  徐永记  纪洋  冯彦房 《环境科学》2021,42(12):6025-6037
以我国华东地区典型单季稻水稻田(江苏宜兴)的原柱状土为研究对象,通过两年土柱观测试验,研究不同灌溉管理模式(长期淹水CF、间隙灌溉Ⅱ、控制灌溉CI)和氮肥施用(不施氮CK、尿素Urea和控释肥CRF)耦合措施对水稻生长期内CH4和N2O排放和产量的影响,以期优选典型单季稻田减排增效的水肥管理模式.结果表明,两种节水灌溉方式(CI和Ⅱ)均显著影响稻田土壤CH4和N2O排放量及二者的综合温室效应(GWP)和排放强度(GHGI),与CF相比,Ⅱ和CI均显著提高了 N2O排放量(P<0.05),降低了 CH4排放量(P<0.05),进而二者的GWP和GHGI分别显著降低28.9%~71.4%和14.3%~70.4%(P<0.05);两种节水灌溉模式相比,CI较Ⅱ模式呈现较好的CH4减排优势,排放总量降低了 57.7%~91.8%,而二者的N2O排放量无显著性差异(P>0.05),最终CI对GWP和GHGI的减排效应略优于Ⅱ模式2.0%~56.2%.施用氮肥(Urea和CRF)均显著促进N2O排放18.4%~2547.8%(P<0.05),其中CRF处理N2O排放量均略高于Urea处理32.7%~78.6%,但无显著性差异(P>0.05);CH4排放总量对施氮处理的响应随水分管理模式的不同而不同,总体而言,施用CRF较Urea对稻田土壤GWP和GHGI均无显著影响(P>0.05).相关分析表明,2018年CF模式的Urea处理和Ⅱ模式的Urea、CRF处理中N2O排放通量与田面水NH4+-N浓度分别呈现显著(P<0.05)和极显著的正相关关系(P<0.01),而二者在2019年CI模式的CK和CRF处理中呈现相反规律;2018年CI模式下CK、CRF处理的N2O排放通量与田面水NO3--N浓度呈极显著的正相关关系(P<0.01).节水灌溉和氮肥施用对水稻产量均呈显著影响(P<0.05),与CF相比,两种节水灌溉模式(Ⅱ、CI)水稻产量均下降了 14.7%~37.7%;CRF处理较Urea处理略提高水稻产量2.5%~7.4%(P<0.05).综合考虑稻田土壤GWP、GHGI和水稻产量,节水模式与控释肥施用对稻田土壤减排增产的耦合效应仍有待进一步研究.  相似文献   

12.
选取内蒙古河套灌区轻度盐渍土S_1(EC为0.46 dS·m~(-1))及中度盐渍土S_2(EC为1.07 dS·m~(-1))为研究对象,在等施氮量条件下,采用静态箱-气相色谱法研究了不同有机无机肥配施比例:CK(不施肥)、U_1(240 kg·hm~(-2)化肥)、U_3O_1(180 kg·hm~(-2)化肥+60 kg·hm~(-2)有机肥)、U_1O_1(120 kg·hm~(-2)化肥+120 kg·hm~(-2)有机肥)、U_1O_3(60 kg·hm~(-2)化肥+180 kg·hm~(-2)有机肥)和O_1(240 kg·hm~(-2)有机肥)对春玉米农田土壤N_2O排放的影响,旨在明确不同施肥策略下土壤N_2O排放特征,为制定盐渍化农田合理的减排措施提供理论依据.结果表明, 2种不同程度盐渍化土壤N_2O排放存在显著差异,同一处理S_2土壤N_2O排放总量较S_1土壤高出11.86%~47.23%(P0.05).各施肥处理对土壤N_2O排放通量影响趋势基本一致,即施肥后出现排放高峰,基肥和追肥后累积排放量占整个生育期排放量60%左右.适当施入有机肥可以显著降低土壤N_2O排放,S_1和S_2盐渍土分别以U_1O_1及O_1处理N_2O排放量最小,较U_1处理显著降低33.62%和28.51%(P0.05),同时可以获得较高的玉米产量.各施肥处理N_2O排放通量与土壤NH~+_4-N呈极显著正相关关系(P0.01),而与土壤NO~-_3-N含量呈负相关关系,表明硝化作用是盐渍化玉米农田N_2O产生的主要途径,配施有机肥可以持续减少土壤NH~+_4-N供给而减少N_2O的排放.从玉米产量及减少温室效应的角度,得到本地区适宜的施肥管理模式:轻度盐渍土为120 kg·hm~(-2)有机肥+120 kg·hm~(-2)化肥,中度盐渍土为240 kg·hm~(-2)有机肥.  相似文献   

13.
生物炭具有一定的增产和减少N2O排放效果,但关于其相关氮循环微生物作用的动态变化过程了解较少.为探明热带地区生物炭的增产减排效应潜力及相关微生物动态作用机制,通过辣椒盆栽试验对比添加生物炭(B)、常规施肥(CON)和不施氮(CK)处理对辣椒产量、氧化亚氮(N2O)的排放及相关功能基因丰度的影响.结果表明,CON处理产量高于CK处理;与CON处理相比,生物炭显著增加辣椒产量18.0%(P<0.05),添加生物炭在辣椒生长的大部分时期增加土壤NH+4-N和NO-3-N含量;在辣椒的生长周期内,相比CON处理,生物炭处理显著减少土壤N2O累积排放量18.3%(P<0.05).N2O排放通量与氨氧化古菌(AOA)和氨氧化细菌(AOB)的amoA基因丰度呈极显著负相关(P<0.01);与nosZ基因丰度呈显著负相关(P<0.05),表明N2O排放可能主要来自反硝化过程;在辣椒生...  相似文献   

14.
High nitrous oxide(N2O) emissions during freeze-thawing period(FTP) have been observed in many different ecosystems. However, the knowledge about the dynamic of soil N_2O emissions and its main driving mechanism during the freeze-thawing processes in grassland ecosystem is still limited. An in-situ experiment was conducted during the FTP on the sites with 0 and 15% surplus of the average rainfall and two levels of N addition(0,10 g N/(m~2·year)) during growing season(marked as W0N0, W15N0, W0N10, W15N10, respectively) to explore the effects of water and N background on soil N_2O emissions during FTPs and the relationship between soil N_2O emissions and environmental factors. The results indicated that water and N treatments conducted during growing season did not show significant effect on the N_2O effluxes of FTP, but the soil mineral N contents of W0N10 treatment were significantly higher than those of W0N0, W15N0, W15N10treatments(p 0.05). The soil PLFA concentrations of microbial groups monitored during 2015 spring freeze-thawing period(2015S-FTP) were lower than those during winter freeze-thawing period of 2014(2014W-FTP), while cumulative soil N_2O emissions of 2015S-FTP were higher than those of 2014W-FTP. The correlations between soil N_2O effluxes and most of the measured environmental factors were insignificant, multiple stepwise regression analysis indicated that the soil temperature, soil NH_4~+-N content and air temperature were the major environmental factors which significantly influenced the N_2O effluxes during 2014W-FTP, and air temperature and soil water content were the significant influencing factors during 2015S-FTP.  相似文献   

15.
基于低剂量、多形态的N添加控制实验,以大兴安岭寒温带针叶林为研究对象,通过长期持续的原位增N处理,测定了2010年、2012年和2013年生长季初期(5月)和生长旺季(8月)0~10 cm土壤有效氮(NH+4-N和NO-3-N)含量以及土壤p H值.结果表明,生长季初期和生长旺季土壤有效氮均以NH+4-N为主,NO-3-N含量较低,其中NH+4-N含量占无机氮含量的96%以上.随着增N时间的延长,同生长旺季相比,增N对生长季初期0~10 cm土壤NH+4-N影响较为明显,且主要受施N类型影响.与此相反,生长旺季0~10 cm土壤NO-3-N含量高于生长季初期.N输入对生长季初期和生长旺季土壤NO-3-N影响较为明显,且低N处理更倾向于促进0~10 cm土壤NO-3-N的富集.随着时间的延长,土壤NH+4-N和NO-3-N对增N的响应都由前期的不显著向后期的显著转变.增N对生长季初期和生长旺季0~10 cm土壤p H值影响显著,其中低N处理的土壤和生长旺季阶段土壤p H值相对较低.随着增N时间的延长,土壤p H值对增N的响应也由前期的不显著向后期的显著转变.长期持续的增N处理已经使大兴安岭寒温带针叶林0~10 cm土壤产生了明显的酸化.  相似文献   

16.
生物炭对塿土土壤温室气体及土壤理化性质的影响   总被引:23,自引:12,他引:11  
通过田间小区试验,分别向塿土土壤中添加0、20、40、60、80 t·hm~(-2)的苹果果树枝条生物炭后,分析了生物炭对土壤温度、土壤团聚体、NO_3~--N、NH_4~+-N、微生物量碳以及土壤温室气体排放的影响.结果表明,生物炭可以缓解土壤温度的变化,增加土壤大团聚体的数量,尤其是5 mm、5~2 mm和1~0.5 mm的团聚体数量.与对照相比,随着生物炭施用量的增加,土壤NO_3~--N、NH_4~+-N、微生物量碳分别增加了4.9%~33.9%、9.1%~41.1%和11.8%~38.5%.本研究中生物炭对土壤温室气排放的影响主要表现为:添加生物炭后,土壤CO_2的排放量以及CH_4的吸收汇分别增加了6.73%~23.35%和3.62%~14.17%;施用20 t·hm~(-2)和40 t·hm~(-2)的生物炭降低了土壤N_2O的排放和综合增温潜势(GWP),而当生物炭施用量大于等于60 t·hm~(-2)时反而增加了土壤N_2O的排放和综合增温潜势(GWP).说明生物炭作为一种土壤改良剂和碳减排剂,能够改善土壤质量,提高土壤肥力,提高农田土壤增汇减排的作用,此外,选择合适的生物炭施用量至关重要.  相似文献   

17.
Rice-paddies are regarded as one of the main agricultural sources of N 2O and NO emissions. To date, however, specific N2O and NO production pathways are poorly understood in paddy soils. ^15N-tracing experiments were carded out to investigate the processes responsible for N2O and NO production in two paddy soils with substantially different soil properties. Laboratory incubation experiments were carried out under aerobic conditions at moisture contents corresponding to 60% of water holding capacity. The relative importance of nitrification and denitrification to the flux of NaO was quantified by periodically measuring and comparing the enrichments of the N2O, NH~-N and NO3-N pools. The results showed that both N2O and NO emission rates in an alkaline paddy soil with clayey texture were substantially higher than those in a neutral paddy soil with silty loamy texture. In accordance with most published results, the ammonium N pool was the main source of N2O emission across the soil profiles of the two paddy soils, being responsible for 59.7% to 97.7% of total N2O emissions. The NO3-N pool of N2O emission was relatively less important under the given aerobic conditions. The rates of N2O emission from nitrification (N2On) among different soil layers were significantly different, which could be attributed to both the differences in gross N nitrification rates and to the ratios of nitrified N emitted as NzO among soil layers. Furthermore, NO fluxes were positively correlated with the changes in gross nitrification rates and the ratios of NO/N2O in the two paddy soils were always greater than one (from 1.26 to 6.47). We therefore deduce that, similar to N2O, nitrification was also the dominant source of NO in the tested paddy soils at water contents below 60% water holding capacity.  相似文献   

18.
淡水资源短缺是干旱区农业可持续发展所面临的严峻问题,合理利用咸水灌溉是缓解淡水资源不足的重要手段.长期咸水灌溉会导致土壤盐分积累,进而影响氮素的转化和N_2O的排放.本研究通过10 a咸水灌溉试验,探究咸水灌溉对棉田土壤N_2O排放、反硝化细菌丰度和群落结构组成的影响.试验采用灌溉水盐度和施氮量两因子2×2随机区组设计,其中灌溉水盐度(以电导率表示)设置2个水平:0.35 dS·m~(-1)和8.04 dS·m~(-1),施氮量设2个水平:0 kg·hm~(-2)和360 kg·hm~(-2)(分别用SFN0、SHN0、SFN360和SHN360表示).结果表明,长期咸水滴灌棉田土壤盐分、含水量和NH~+_4-N含量显著增加,pH值、NO~-_3-N、有机质和全氮含量显著降低.咸水灌溉处理显著抑制N_2O排放,不施氮肥和施氮肥处理下分别较淡水灌溉降低45.19%和43.50%.氮肥施用显著增加N_2O排放,施肥处理N_2O排放较不施肥处理增加161%.不施肥条件下,咸水灌溉显著降低反硝化酶活性、nirK、nirS和nosZ基因丰度,α多样性.施肥条件下,咸水灌溉对nosZ型反硝化细菌的丰度无显著影响,但显著降低反硝化酶活性和nirK、nirS基因丰度.咸水灌溉和氮肥施用共同改变nirK、nirS和nosZ型反硝化细菌群落结构,灌溉水盐度对于反硝化细菌群落结构的影响要大于施肥.Lefse分析显示nirK、nirS和nsoZ型反硝化细菌差异物种随着灌溉水盐度的增加而增加,咸水灌溉显著改变反硝化细菌群落结构,导致优势种群数量增加.上述结果表明,长期咸水灌溉降低土壤N_2O排放,但会导致土壤盐分的持续上升,nosZ、nirK和nirS丰度的增加会促进N_2O排放.  相似文献   

19.
汪军  王德建  张刚  王远 《环境科学》2013,34(1):27-33
利用原状土柱在田间试验条件下,比较了麦秸还田下乌栅土和黄泥土稻季氮素氨挥发损失规律,每种试验土壤均设对照、氮肥、氮肥加麦秆这3个处理,同步测定施肥后氨挥发、田面水铵态氮浓度与pH、以及表层土壤Eh.结果表明,乌栅土氨挥发速率及其累积氨挥发量显著高于黄泥土,两种土壤的稻季平均氨挥发的氮素损失量分别为41.8 kg·hm-2和11.2kg·hm-2,分别占氮肥用量的15.2%和3.8%;在3个施肥时期中,分蘖肥期氨挥发损失率最高,乌栅土和黄泥土分别占氮肥用量的29.4%和8.3%;麦秸还田显著增加了氮肥的氨挥发损失,麦秸还田下乌栅土和黄泥土稻季氨挥发损失比单施氮肥处理分别增加了19.8%和20.6%.两种土壤氨挥发速率均与田面水NH4+-N浓度、pH呈正相关关系,但与表层土壤Eh的关系还需进一步研究.  相似文献   

20.
秸秆还田是有效利用资源、增加土壤有机质含量和培肥地力的有效措施,但也会影响土壤NH3挥发和N2O的排放.探索不同秸秆还田方式对NH3挥发和N2O排放的影响对于减少土壤氮素损失和保护生态环境具有重要意义.采用田间小区试验,利用Los Gatos Research(LGR)超便携NH3分析仪和密闭式静态箱-气相色谱法探究不同秸秆还田方式下土壤NH3挥发和N2O排放的特征,试验设4个处理(覆盖还田,即表面覆盖玉米秸秆,0~20和20~40 cm土壤分层扰动后填回,记为JG0-0;常规还田,即秸秆与0~20 cm土壤混合,20~40 cm土壤扰动后填回,记为JG0-20;深还田,秸秆与20~40 cm土壤混合,0~20 cm土壤挖出后填回,记为JG20-40;对照处理,即无玉米秸秆还田,0~20和20~40 cm土壤分层扰动后填回,记为CK).结果表明:①相比于CK,不同秸秆还田方式均显著降低了土壤NH3挥发量,增加了土壤N2O排放量.与CK相比,JG0-0、JG0-20和JG20-40处理下土壤NH3累积排放量分别减少了12.38%、9.87%和5.73%;土壤N2O累积排放量分别增加了30.19%、82.82%和36.53%,其中JG0-0和JG20-40处理之间无显著性差异.②JG20-40处理下玉米产量显著高于其他处理,比CK增加了23.15%,JG0-0处理下玉米产量高于CK和JG0-20处理,但并未达到显著水平.③对于NH3和N2O这两种气体的总累积排放量,各处理间均达到显著性差异.与CK相比,JG0-0、JG0-20和JG20-40处理下NH3和N2O总累积排放量分别增加了16.67%、52.08%和22.92%.④不同秸秆还田方式下的氮素气态损失率均高于CK,JG0-0、JG0-20和JG20-40处理下氮素气态损失率分别比CK增加了17.50%、52.50%和22.50%.因此,综合考虑土壤NH3挥发量、N2O排放量和玉米产量等因素,JG0-0处理优于JG20-40、JG0-20处理.   相似文献   

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