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1.
To understand the effects of long-term amendment of organic manure and N fertilizer on N2O emission in the North China Plain, a laboratory incubation at different temperatures and soil moistures were carried out using soils treated with organic manure (OM), half organic manure plus half fertilizer N (HOM), fertilizer NPK (NPK), fertilizer NP (NP), fertilizer NK (NK), fertilizer PK (NK) and control (CK) since 1989. Cumulative N2O emission in OM soil during the 17 d incubation period was slightly higher than in NPK soil under optimum nitrification conditions (25℃ and 60% water-filled pore space, WFPS), but more than twice under the optimum denitrification conditions (35℃ and 90% WFPS). N2O produced by denitrification was 2.1-2.3 times greater than that by nitrification in OM and HOM soils, but only 1.5 times greater in NPK and NP soils. These results implied that the long-term amendment of organic manure could significantly increase the N2O emission via denitrification in OM soil as compared to NPK soil. This is quite different from field measurement between OM soil and NPK soil. Substantial inhibition of the formation of anaerobic environment for denitrification in field might result in no marked difference in N2O emission between OM and NPK soils. This is due in part to more rapid oxygen diffusion in coarse textured soils than consumption by aerobic microbes until WFPS was 75% and to low easily decomposed organic C of organic manure. This finding suggested that addition of organic manure in the tested sandy loam might be a good management option since it seldom caused a burst of N2O emission but sequestered atmospheric C and maintained efficiently applied N in soil.  相似文献   

2.
人为干扰对闽江河口湿地土壤硝化-反硝化潜力的影响   总被引:3,自引:0,他引:3  
选择闽江河口芦苇湿地为研究对象,研究了人为干扰活动(养殖塘、污染物排放和农业活动)对湿地土壤硝化-反硝化潜力的影响.结果表明,人类干扰活动对湿地土壤硝化和反硝化潜力均具有显著影响,4种土壤的硝化潜力表现为水稻田>养殖塘>排污闸口>芦苇湿地,其最大硝化率分别为103.45%、99.38%、12.58%和4.16%,而反硝化作用的变化规律则与之相反,24d内的最大反硝化率分别为21.89%、26.95%、78.15%和88.28%,说明人类干扰和管理程度越大,土壤硝化潜力越大,反硝化潜力越弱.土壤NO3--N含量是闽江河口地区不同人为干扰方式下土壤硝化-反硝化作用差异的重要指示指标,土壤pH值与土壤硝化-反硝化作用也具有密切关系,而土壤有机质、全氮、全磷和可溶性碳含量以及电导率等则与土壤硝化-反硝化作用不具有显著的相关关系.人类干扰活动导致土壤硝化能力的提高,反硝化能力的降低,能够增加土壤氮素以硝态氮形式淋失的风险.  相似文献   

3.
南方丘陵地区竹林河岸系统的氮矿化、反硝化作用研究   总被引:1,自引:0,他引:1  
方婧  曹文志  苏彩霞 《环境科学学报》2011,31(12):2822-2829
采用原位培养法和乙炔抑制-静态土柱培养法,对南方丘陵地区竹林河岸系统的矿化、反硝化作用进行了研究.结果表明,研究区土壤氮矿化速率为-0.28~0.30mg·kg^1·d^-1(以N计,下同),且与土壤含水量存在显著正相关(p〈0.05).在系统中,与入口区与中部区的土壤氮矿化作用平均强度相比,毗邻河道的河岸区更为强烈....  相似文献   

4.
The mechanisms for the effects of ammonium-based fertilizers on soil acidification in subtropical regions are not well understood. Two Ultisols collected from cropland and a tea garden in Anhui and Jiangxi Provinces in subtropical southern China, respectively, were used to study the effects of urea and (NH4)2SO4 on the nitrification and acidification of soils with incubation experiments. Nitrification occurred at very low pH with no N fertilizer added and led to lowering of the soil pH by 0.53 and 0.30 units for the soils from Jiangxi and Anhui, respectively. Addition of urea accelerated nitrification and soil acidification in both Ultisols; while nitrification was inhibited by the addition of (NH4)2SO4, and greater input of (NH4)2SO4 led to greater inhibition of nitrification. Ammonia-oxidizing bacteria (AOB) played an important role in nitrification in cropland soil under acidic conditions. Addition of urea increased the soil pH at the early stages of incubation due to hydrolysis and stimulated the increase in the AOB population, and thus accelerated nitrification and soil acidification. At the end of incubation, the pH of Ultisol from Jiangxi had decreased by 1.25, 1.54 and 1.84 units compared to maximum values for the treatments with 150, 300 and 400 mg/kg of urea-N added, respectively; the corresponding figures were 0.95, 1.25 and 1.69 for the Ultisol from Anhui. However, addition of (NH4)2SO4 inhibited the increase in the AOB population and thus inhibited nitrification and soil acidification. Soil pH for the treatments with 300 and 400 mg/kg of (NH4)2SO4-N remained almost constant during the incubation. AOB played an important role in nitrification of the cropland soil under acidic conditions. Addition of urea stimulated the increase in the AOB population and thus accelerated nitrification and soil acidification; while addition of (NH4)2SO4 inhibited the increase in the AOB population and thus inhibited nitrification.  相似文献   

5.
To investigate the nitrifying activities of di erent soil types, soil samples collected from 8-, 50- and 90-year old tea orchards, the adjacent wasteland, and 90-year old forest were measured for their nitrification potentials using the conventional soil incubation and the liquid incubation method. Among di erent soil types, the nitrification potential of soil in tea orchards was higher than that of wasteland and forest soils. The slurry shaken liquid incubation method was confirmed to be more accurate and have reliable results than the soil incubation. Interestingly, experimental result revealed that the generally applied pH value of 7.2 for the liquid media was not the optimal pH for these acid soils with a strong bu er capacity. This suggested that tea orchard soils may have nitrifiers requiring pHneutral condition for the best activity. Our data also showed that treatment with the commonly used nitrogen fertilizer urea significantly improved nitrification potential of the soils; such enhancement e ect was stronger on all of three tea orchard soils than on wasteland and forest soils, and also stronger on the younger (8- and 50-year old) tea orchard soils than on the older one (90-year old).  相似文献   

6.
A facility of BaPS (Barometric Process Separation) was used to determine soil respiration, gross nitrification and denitrification in a winter wheat field with depths of 0-7, 7--14 and 14-21 cm. N2O production was determined by a gas chromatograph. Crop root mass and relevant soil parameters were measured. Results showed that soil respiration and gross nitrification decreased with the increase of soil depth, while denitrification did not change significantly. In comparison with no-plowing plot, soil respiration increased significantly in plowing plot, especially in the surface soil of 0-7 cm, while gross nitrification and denitrification rates were not affected by plowing. Cropping practice in previous season was found to affect soil gross nitrification in the following wheat-growing season. Higher gross nitrification rate occurred in the filed plot with preceding crop of rice compared with that of maize for all the three depths of 0-7, 7-14 and 14-21 cm. A further investigation indicated that the nitrification for all the cases accounted for about 76% of the total nitrogen transformation processes of nitrification and denitrification and the N2O production correlated with nitrification significantly, suggesting that nitrification is a key process of soil N2O production in the wheat field. In addition, the variations of soil respiration and gross nitrification were exponentially dependent on root mass (p〈0.00l).  相似文献   

7.
为探明在土壤环境有利于氨氧化作用发生的条件下,稻壳生物炭对酸性农田土壤N2O排放的影响,将生物炭分别按质量比0%(对照)、2%、5%和10%与土壤充分混匀,开展为期17d的室内静态土壤培养实验,研究土壤N2O排放速率的日变化以及整个培养期间的N2O累积排放量.同时,测定了培养终态土壤样品的pH值、NH4+-N、NO3--N、NO2--N和溶解性有机碳(DOC)含量,分析稻壳生物炭对土壤N2O排放影响的机理.结果表明,不同稻壳生物炭添加量均显著抑制了酸性农田土壤的N2O排放(P<0.001),且以5%和10%处理的抑制作用最明显;与对照处理相比,2%、5%和10%处理的N2O累积排放量分别减少了87.68%、94.59%和96.90%.培养前后土壤pH值、NH4+-N和NO3--N含量的变化表明,稻壳生物炭显著促进了土壤的硝化作用,尤其是5%和10%处理.线性回归分析表明,土壤N2O排放速率与NO2--N含量显著正相关(P<0.01),且NO2--N含量对N2O排放速率的解释程度为45%.由于稻壳生物炭促进了土壤的硝化作用,使NO2-更易转化为NO3-,减少了NO2-积累,进而减少了通过硝化菌反硝化作用途径产生的N2O.培养结束时,5%和10%处理的DOC含量显著高于对照处理,但培养过程中,稻壳生物炭并未显著促进土壤有机碳矿化.  相似文献   

8.
为研究臭氧浓度升高对农田土壤呼吸、硝化和反硝化作用的影响,采用开顶箱(OTC)法设置3个臭氧浓度处理,分别为对照CK、T1(100 nL.L-1臭氧)和T2(150 nL.L-1臭氧).以便携式土壤CO2通量观测仪测定不同臭氧浓度处理下的冬小麦田土壤呼吸速率,并采用气压过程分离(BaPS)法测定不同处理的土壤CO2产生速率、硝化速率和反硝化速率.结果表明,在本实验阶段内,CK、T1、T2处理的土壤呼吸速率之间无显著差异(p0.05),其平均土壤呼吸速率分别为(5.36±0.72)、(5.08±0.04)、(4.94±0.18)μmol.(m2.s)-1.CK和T2处理的硝化速率和反硝化速率也均无显著差异(p0.05).不同臭氧浓度处理下的土壤呼吸速率与土壤温度的指数回归关系均达显著水平(p0.05),CK、T1和T2处理的土壤呼吸的Q10值分别为1.72、1.58和1.51.Pearson相关分析结果表明,CK处理中土壤硝化速率与反硝化速率和土壤含水量之间均存在显著相关关系(p0.05),其相关系数分别为0.828和0.890;T2处理中硝化速率与土壤含水量之间存在显著相关关系(p0.05),其相关系数为0.772.本研究表明,臭氧浓度升高未显著改变冬小麦田土壤呼吸、硝化和反硝化速率,但臭氧浓度升高显著降低了土壤呼吸的温度敏感性.  相似文献   

9.
利用SBR(序批式反应器)研究了不同ρ(NaCl)、曝气时间、ρ(CODCr)、进水ρ(NH4+-N)对AGS(好氧颗粒污泥)短程硝化反硝化的影响. 结果表明,在pH、温度和ρ(DO)为8.0、30 ℃和3 mg/L条件下,以及ρ(NaCl)、曝气时间、ρ(CODCr)和ρ(NH4+-N)为20 g/L、8 h、600 mg/L和70 mg/L时,ηA(NH4+-N去除率)和NAR(NO2--N积累率)达到最佳. 当进水ρ(NaCl)为10 g/L时,NOB(亚硝酸盐氧化菌)被完全抑制,AOB(氨氧化菌)能够保持正常活性. ρ(CODCr)较高时能够促进NAR的提高. 经过116 d的培养,AGS短程硝化反硝化的耐盐极限为50 g/L,此时ηA小于50%,AOB被严重抑制,AGS丧失硝化能力. AGS的同步硝化反硝化作用明显,SND(同步硝化反硝化率)平均值为24.2%,SNDV(同步硝化反硝化比速率)平均值为0.63 h-1,低ρ(DO)比高ρ(DO)下的SND同步硝化反硝化作用更为明显.   相似文献   

10.
Impact of triazophos insecticide on paddy soil environment   总被引:2,自引:0,他引:2  
IntroductionRiceisthestapledietaround 3 0 %oftheworldpopulationandaround 60 %oftheAsianpopulation .Thiscropispreferentiallyorgenerallycultivatedundersubmergedsoilconditionsforreasonsofbetteryieldsandtopographicalsituations(Reichardt,1 997) .Theimportanceofsoilm…  相似文献   

11.
周慧  史海滨  张文聪  王维刚  苏永德  闫妍 《环境科学》2021,42(10):5010-5020
以内蒙古河套灌区轻度盐渍土S1(EC=0.62 dS·m-1)及中度盐渍土S2(EC=1.17 dS·m-1)为对象,研究硝化和反硝化进程对盐渍化程度和有机无机氮配施比例的响应及其影响因素.本试验设置了6个处理,包括不施氮(CK)、单施无机氮(U1)以及用有机氮(U3O1、U1O1、U1O3和O1)替代25%、50%、75%和100%的无机氮.结果表明,盐度升高会降低土壤硝化势而提高土壤反硝化能力,同一处理S1土壤硝化潜势较S2土壤高出28.81%~69.67%,而反硝化能力降低17.16%~88.91%.盐度升高会降低AOB丰度及硝化贡献率,但会增加AOA丰度和硝化贡献率;盐度增加会提高土壤nirKnirS型菌丰度,同时会增加N2O/(N2O+N2)产物比,但会抑制nosZ丰度.S1土壤,以U1O1处理硝化势和反硝化能力最大,较单施化肥增幅分别达到18.59%和15.87%;S2土壤,各施肥处理之间土壤硝化势差异不显著,反硝化能力以O1处理最大,较单施化肥提高88.26%.S1和S2盐渍土分别以U1O1及O1处理获得较高的AOB基因丰度及硝化贡献率,且增大了nirSnosZ基因丰度,并显著降低N2O/(N2O+N2)产物比.综上,相比单施无机氮,轻度盐渍土以有机无机氮各半配施,中度盐渍土以单施有机氮更加利于土壤硝化反硝化过程进行.  相似文献   

12.
本研究采集鄱阳湖湿地3种典型植被(虉草、苔草、芦苇)土壤,在室内分别设置30%WHC(最大持水量)、50%WHC和80%WHC 3种水分条件培养1个月,分别模拟重度干旱、轻度干旱和适宜水分环境,然后添加水分到200%WHC模拟干湿转化过程;基于~(15)N同位素稀释法计算干化-干湿转化过程中湿地土壤的总氨化速率和总硝化速率.土壤干化过程中,芦苇带土壤总氨化速率最高,虉草带土壤总硝化速率最高;土壤总氨化速率和总硝化速率都随干旱程度增强而降低,轻度干旱条件下总硝化速率的降低比总氨化速率更明显;除水分条件外,总氨化速率主要受土壤碳含量影响,总硝化速率主要受pH值影响.土壤湿化过程中,苔草带和芦苇带土壤氮总氨化速率在1 d内变化较小,1~5 d不断下降;虉草带重度干旱土壤氮总氨化速率在湿化后呈上升趋势,轻度干旱土壤只在湿化后1 d内明显增大;3种植被土壤总硝化速率都在1 d内明显下降,此后维持较低水平.干化过程中,氨氧化古菌(AOA)和氨氧化细菌(AOB)丰度对土壤总硝化速率的影响相近,湿化过程中AOB丰度的影响相对增大.  相似文献   

13.
河北平原潮土中微生物对氮降解特征   总被引:1,自引:1,他引:0  
了解土壤中微生物对氮素降解规律,对于土壤氮污染修复具有重要现实意义.从河北平原潮土中筛选出8种高效氨化细菌、硝化细菌、异养硝化好氧反硝化细菌,对所筛菌种进行16S r DNA分析,选出最适菌株通过固定化载体将菌种制成菌剂.探讨了用加入所筛菌种及拮抗菌的菌液和地表水分别滴灌小白菜对土壤中的氮降解产生的影响,并测定土样磷脂脂肪酸(PLFA)的值.结果表明:以硅藻土为载体硝化细菌的氨氮降解率达到38%,硝态氮合成率为205%;以硅藻土为载体的氨化细菌氨氮合成率为1 711%,异养硝化好氧反硝化细菌的硝态氮降解率达到367%.加所筛菌液滴灌对土壤总氮和氨氮的降解效果较好,硝化作用也较强,加菌后土壤中微生物量明显增加,且更快到达峰值.对不同土样不同时间磷脂脂肪酸数据分析发现,在白菜生长过程中,土壤中的微生物含量均产生了1次峰值,且加入所筛菌的先到达峰值.对于任丘和阜城土样来说,加入所筛菌后,土壤中微生物种类相应增多,对土壤微生物环境有所改善,微生物也比较活跃.  相似文献   

14.
土壤呼吸与硝化特性是控制土壤生态系统中氮素转化和面源氮流失的关键因子,也是土壤氮循环的重要组成部分.选取位于巢湖北部的柘皋河流域作为案例研究区,应用BaPS技术测定林地和农田土壤呼吸、硝化和反硝化特性,运用SWAT模型分析农业面源氮污染输出的时空特征,并初步探讨土壤呼吸和硝化特性与农业面源氮污染的相互作用关系.结果表明,由于土地利用和施肥量的变化,1996~2012年间的年均和月均面源氮污染负荷明显大于1980~1995年间的模拟结果,不同月份的面源氮污染输出负荷均存在显著性差异,月均氮负荷受降雨量影响密切.1996~2012年流域面源总氮流失平均负荷为10.40 kg·hm-2,明显大于1980~1995年的8.10 kg·hm-2,方差分析表明两个时期面源总氮流失负荷的空间分布存在一定的差异.林地的呼吸速率远大于农田的呼吸速率.农田较高的总硝化速率和反硝化速率导致土壤氮库中的氮素减少,从而在一定程度上使得面源氮污染的输出负荷减小.农田土壤的总硝化速率大于反硝化速率,导致农田硝态氮的面源污染流失量增加,而有机氮的流失量有所减少.因此,土壤呼吸与硝化特性的研究有利于从土壤生物学角度深入分析土壤氮循环,对农业面源氮污染的防治具有重要的理论和现实意义.  相似文献   

15.
多年蔬菜连作对土壤氨氧化微生物群落组成的影响   总被引:7,自引:2,他引:5  
为揭示农业生产中长期大量施用化学肥料对土壤硝化过程微生物种群的影响及其与土壤硝化能力的偶联关系,本研究通过在长沙黄兴蔬菜基地采集长期连作蔬菜(20 a以上,VL)和短期蔬菜种植地(2 a左右,VS)表层土壤(0~20 cm),利用末端限制性片段多态性(T-RFLP)和实时定量PCR(Q-PCR)等手段系统研究了蔬菜连作对氨氧化细菌(ammonia-oxidizingbacteria,AOB)和氨氧化古菌(ammonia-oxidizing archaea,AOA)的组成和丰度的影响及其与土壤硝化势的偶联关系.结果表明,长期蔬菜连作显著使得土壤中AOB amoA的组成趋于单一,同时也影响了土壤中AOA amoA的群落组成;RDA分析结果表明,影响AOB amoA群落结构的主要土壤因素为土壤pH以及Olsen-P的含量.土壤中AOA amoA基因拷贝数明显高于AOB,平均为细菌丰度的6倍,但土壤硝化势(PNF)与土壤中AOB amoA基因丰度成显著的正相关,而与土壤中AOA amoA基因丰度没有显著的相关性.尽管多年蔬菜连作对AOB和AOA丰度的影响还不清楚,却使得AOB优势种群富集,土壤硝化能力增强.  相似文献   

16.
长期施肥酸性旱地土壤硝化活性及自养硝化微生物特征   总被引:7,自引:1,他引:6  
构建微域培养结合梯度凝胶电泳(DGGE)、Illumina MiSeq高通量测序、生物信息学分析等分子生态学技术,以不施肥土壤为对照(CK),研究长期施化肥(NPK)和有机肥(OM)对酸性旱地土壤硝化活性及自养硝化微生物群落的影响,并认知其与土壤理化因子间的关系.结果表明,施化肥和有机肥显著提高土壤有机碳和无机氮含量,施有机肥提高土壤pH和总氮含量、降低C/N;供试土壤自养硝化作用占据主导(73.60%~85.32%),施肥显著提升土壤自养硝化活性,且施有机肥提升效果更为明显;微域培养后,OM土壤氨氧化古菌(AOA)和细菌(AOB)amoA基因绝对丰度及16S rRNA基因相对丰度显著上升,而CK和NPK土壤仅AOA相对丰度显著上升,即3种土壤AOA均有明显活性(主要类群为Nitrososphaera,99.30%),而AOB仅在OM土壤有活性(主要类群为Nitrosospira,99.99%),另外还发现OM土壤中亚硝酸盐氧化细菌(NOB)有较强活性(主要类群为Nitrospira,96.69%);逐步回归分析显示自养硝化活性显著受总氮含量影响,AOA和AOB amoA基因丰度分别受有机碳含量和pH影响,Nitrososphaera相对丰度与NO_3~--N含量显著正相关,而Nitrosospira和Nitrospira相对丰度则与C/N显著负相关.可见,长期施肥后土壤总氮含量的提升显著刺激自养硝化活性;以Nitrososphaera为主的AOA在酸性旱地土壤硝化作用中发挥了重要作用,施有机肥土壤pH上升及C/N下降刺激了Nitrosospira(AOB)生长,从而改变了酸性旱地土壤中活跃的自养硝化微生物类群.  相似文献   

17.
IntroductionNitrousoxide (N2 O)isoneoftheenvironmentallyimportanttracegases ,currentlyaccountingfor 2 %—4 %oftotalGreenhouseWarmingPotential (GWP ) .Itisalsoinvolvedinthedepletionofstratosphericozone .SoilhasbeenknownasthemajorsourceofN2 O ,accountingfor 6 5 %oftotalglobalemissions(Prather,1995 ) .Thus,reducingN2 Oemissionsfromsoilsisamaintaskfortheprotectionoftheglobalatmosphere .N2 Oisproducedastheresultofsoilmicrobialprocesses ,primarillybynitrification ,whentheoxidationhappensofNH+…  相似文献   

18.
亚热带红壤硝化特性的干土效应响应   总被引:1,自引:0,他引:1  
钱琛  蔡祖聪 《环境科学》2010,31(5):1379-1385
风干处理常对土壤中的硝化细菌数量和活性造成显著影响.为研究土壤硝化作用的干土效应,以分别发育于第四纪红土(quaternary red earth,Q)和红砂岩(tertiary red sandstone,S),利用方式为水稻(rice,R)与旱地(upland,U)的4个农田土壤的新鲜土与风干土为供试材料,进行35d的室内培养试验.结果表明,对于无外源铵输入的处理而言,旱地土壤QU的新鲜土和风干土的硝化率分别为48%和54%,SU则分别为76%和78%,硝化作用的干土效应均不显著(p0.05);但干土效应却显著影响了水稻土的硝化作用(QR的新鲜土和风干土的硝化率分别为40%和89%,SR分别为76%和94%,p0.01),且其风干土样的硝化作用表现出明显的微生物激活过程.外源铵的加入促进了土壤的硝化作用强度且使得旱地土壤的干土效应显著,所有供试土壤新鲜土的硝化率均显著高于风干土的硝化率.总之,土壤利用方式显著影响了硝化作用对干土效应的响应,而且利用方式和加铵对硝化作用的干土效应有着极显著的交互作用.  相似文献   

19.
利用方式对红壤硝化作用的水分效应的影响   总被引:2,自引:0,他引:2  
钱琛  蔡祖聪 《环境科学》2010,31(10):2417-2422
风干过程是土壤水分丢失的过程,研究亚热带酸性土壤硝化作用对水分水平的响应,有助于分析干土效应对硝化作用影响.本试验以分别发育于第四纪红土(Quaternary red earth,Q)和红砂岩(Tertiary red sandstone,S)、利用方式为水稻(rice,R)与旱地(upland,U)的4个农田土壤的风干土为供试材料,分别加入铵态氮0和150mg·kg-1,在5个即时水分含量下室内培养35d.结果表明,土壤水分水平显著影响供试土壤的硝化作用(p0.01),但影响程度因利用方式而异.对供试条件下无外源铵输入的处理而言,旱地土壤QU和SU硝化率的极差分别为11%和8%,显著低于水稻土的硝化率极差(QR与SR分别为35%和20%).外源铵的加入增加了土壤硝化率的极差,土壤QR、QU、SR和SU硝化率的极差分别达到56%、26%、31%、26%,且随水分水平的增高,加铵有促进土壤酸化的趋势.总之,利用方式显著影响了土壤硝化作用对水分效应的响应,进而体现为干土效应的差异.  相似文献   

20.
实际生活污水短程/全程硝化反硝化处理中试研究   总被引:7,自引:0,他引:7  
马勇  彭永臻  陈伦强  吴学蕾 《环境科学》2006,27(12):2477-2482
常温条件下,用A/O生物脱氮工艺中试试验装置处理实际生活污水,控制好氧区低DO浓度(0.5 mg/L),实现了短程硝化反硝化反应,亚硝酸氮平均积累率可达85%或更高.研究了低DO短程硝化反硝化、低DO全程硝化反硝化和高DO全程硝化反硝化3种运行方式或状态在总氮去除率、耗氧量、污泥性能和反应机理上的差别.结果表明,短程硝化反硝化是生物脱氮的最优运行方式,它可有效提高系统脱氮率、降低运行费用.短程硝化反硝化过程中缺氧区和好氧区的pH值变化幅度较大;而全程硝化反硝化过程中,缺氧区pH值变化很小或基本不变化,好氧区pH值变化幅度较大.全程硝化和短程硝化的硝化速率相差不大,但短程反硝化速率和全程反硝化速率相比增加了15%.可以应用DO和pH在线控制A/O工艺硝化反应过程.  相似文献   

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