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1.
污水处理过程中产生的剩余污泥富含大量的氮磷元素,从剩余污泥中回收磷是解决磷资源日益缺乏的一种有效途径。探寻出剩余污泥中磷的释放规律是实现剩余污泥中磷回收的首要前提。因此,以实际污水处理厂污泥为研究对象,建立污泥停留时间为5d的中试模型系统。通过系统分析5d停留时间的厌氧条件下污泥中污泥浓度、上清液总磷和氨氮浓度的变化情况,为后续的污泥磷回收提供支撑条件。研究结果表明,在中试系统污泥停留时间5d的厌氧条件下,剩余污泥微生物衰亡自溶或被分解,胞内物质释放,从而使固态物质转化为液态,污泥中磷及相关的氮等物质得到了较大的释放,污泥上清液总磷和氨氮质量浓度可分别达到100和40 mg·L^-1以上。所释放出的氮磷浓度足以满足鸟粪石回收氮磷方法所需的最低经济性要求,为污泥进行厌氧消化后采用鸟粪石的方法回收释放的氮磷提供了重要的基础依据。研究中还发现5d停留时间下, SS和VSS都有不同程度的降低,二者分别减少8.34%和10.14%以上,其中VSS的减少量占SS减少量的65%左右。同时,进入厌氧反应系统的初始污泥浓度对于氮磷的释放有着较大的影响,反应系统的SS在6300~7200 mg·L^-1的条件下,磷和氮的单位质量污泥释放量达到最佳,分别达到单位干污泥0.015和0.006 mg·mg^-1。研究结果为剩余污泥中回收氮磷提供了重要的依据。  相似文献   

2.
添加剂对污泥厌氧消化性能的影响   总被引:1,自引:0,他引:1  
在间歇培养条件下,研究了还原型辅酶Ⅱ(NADPH)、乙酰辅酶A(Acetyl Co A)和对氨基苯甲酸(PABA)3种添加剂对污泥厌氧消化性能的影响.结果表明,3种微生物活性促进剂均能促进污泥厌氧消化产气.其中,NADPH的促进效果最为显著,消化第35 d,产甲烷量比对照组高15.90%.在污泥含固率为3%、未调初始pH(pH=6.7)和温度35℃的厌氧消化条件下,NADPH的最佳添加量为50 mg.L-1,消化第36 d,污泥累积产甲烷量127.13 mL.g-1VSS.在含固率3%、初始pH=8.5、温度55℃和NADPH添加量为50 mg.L-1的工艺条件下,污泥厌氧产气效果最佳,消化第30 d时累积产甲烷量达158.02 mL.g-1VSS.  相似文献   

3.
猪场废水厌氧消化过程中的除磷效果   总被引:6,自引:0,他引:6  
采用序批式半连续厌氧消化试验方法,研究猪场废水厌氧消化过程中磷的去除情况。结果表明,水力停留时间(HRT)为1、3、6和9 d的厌氧反应器平均除磷率分别为65.0%、81.1%、82.7%和83.0%,而COD平均去除率分别为54.5%、82.3%、87.0%和85.9%。厌氧反应器除磷能力随沼气产量的增加而增加,说明厌氧反应器中磷的去除与产甲烷过程密切相关。对厌氧消化前后的污泥进行浸提后发现,厌氧消化过程中,化学反应生成磷酸盐沉淀的除磷作用十分显著,污泥中正磷酸盐,与铁结合的磷化合物(Fe-RP),还原可溶性磷,与钙、镁离子结合的磷化合物(Ca-RP、Mg-RP)以及无机或有机聚合磷增加量分别为0.027 8~0.101 5、0.013 5~0.081 0、0.2165~0.430 5、23.4~54.8和7.2~21.5 mg.g-1;且总体而言,HRT越长,污泥中与不同金属结合的磷增加量就越大。从HRT、磷和有机物的去除效果以及沼气产气速率3个方面综合考虑,猪场废水厌氧消化反应器的HRT控制在3 d为宜。  相似文献   

4.
以实际猪场废水为研究对象,采用MgCl2·6H2O和Na2HPO4·12H2O为沉淀剂,对磷酸铵镁(magnesium ammonium phosphate, MAP) 结晶法去除猪场废水中氮、磷元素的3种工艺条件进行了系统研究.结果表明:只调节pH工艺,最佳pH值范围为9.0~10.0;通过曝气可提高废水pH,曝气时间以60 min为宜,可提升废水pH值至8.9,铵态氮、磷和总氮去除率分别为16.8%、78.4%、21.4%;补加镁源工艺可有效提高磷去除率,最佳pH范围为9.0~10.0,Mg∶P(摩尔比)为1.6,磷去除率为95.4%;同时补加镁源和磷源工艺,可获得较高的铵态氮去除率,最佳pH值为 9.5,P∶N(摩尔比)为1.0,Mg∶N(摩尔比)为1.1,铵态氮去除率为87.4%,余磷质量浓度小于10mg·L-1.  相似文献   

5.
好氧颗粒污泥胞外聚合物的产生及其分布   总被引:15,自引:0,他引:15  
考察了不同操作条件和基质条件对好氧颗粒污泥中胞外聚合物(EPS)产生的影响及其在污泥和体系上清液中的分布.结果表明:随体系操作条件和基质条件的变化,好氧颗粒污泥内部和上清液中的EPS含量呈规律性变化.相对而言,好氧颗粒污泥中EPS含量的变化幅度较小,过多的EPS则释放到上清液中.大量EPS的释放只发生在颗粒污泥解体时,而酸性条件和不适当的C/N比不利于好氧颗粒污泥的形成及形态保持.体系溶解氧为4.5 mg·l-1,pH为中性,污泥负荷小于等于0.37kgCOD·kg-1MLSS·d-1,碳氮比为20∶ 1时,好氧颗粒污泥中EPS的含量约占污泥总质量的9%-12%,与厌氧颗粒污泥(0.6%-20%)相近,但远低于絮状活性污泥(80%),此时,EPS在上清液中的含量最低或接近最低,为14-26 mg·l-1.  相似文献   

6.
以城市污水为水源,进行了污泥转移SBR工艺的除磷机制研究.实验结果表明,通过污泥转移方式实现在生物选择器中强化对聚磷菌的筛选,从而显著提升了传统SBR工艺的除磷性能.污泥转移量对系统释磷性能影响显著,污泥转移量为30%条件下活性污泥PHB(poly-β-hydroxybutyric acid)含量达到细胞干重的24.3%,生物选择器中厌氧释磷与污泥中PHB合成呈现良好的正相关性.污泥转移量分别为15%、30%和40%下生物选择器中的平均释磷速率分别为7.00、11.17、8.83 mg TP·(g MLSS·h)-1.通过物料衡算表明,系统中传统PAO除磷机制起主要作用,并存在较弱的反硝化除磷过程.在污泥转移量30%、泥龄10 d条件下,传统PAO(Phosphorus accumulating organisms)代谢模式除磷量占76.81%,同化除磷量占15.43%,反硝化除磷量占7.76%.  相似文献   

7.
污泥转移序批式间歇活性污泥法(SBR)工艺除磷特性   总被引:2,自引:0,他引:2  
污泥转移序批式间歇活性污泥法(SBR)工艺是由连续运行的生物选择器和数个并联的SBR主反应器构成的,通过污泥回流的方式提高了SBR反应阶段的活性污泥量并削减了沉淀阶段的污泥总量,从而强化其除污能力,并提高其容积利用率.新工艺处理城市生活污水的试验结果表明,污泥转移量对系统除磷影响显著;当污泥转移量为0、15%和30%时系统出水总磷的平均去除率分别为16.5%、74%和93%;生物选择器中厌氧释磷量与污泥中PHB(聚-β-羟基丁酸)含量呈现良好的正相关性.在适宜的运行模式下,SBR充水比45%、污泥龄10 d、污泥转移量30%,系统对总磷的平均去除率能达到93%以上,出水总磷浓度可控制在0.30 mg.L-1以下,且其它出水各项水质指标均能达到国家排放标准的要求.  相似文献   

8.
考察了不同进水有机物浓度下厌氧/好氧序批式移动床生物膜反应器(SBMBBR)污染物去除特性,实验结果表明,SBMBBR能够实现低碳源污水中氮和磷的同步去除,在进水TN和TP浓度分别为116.7 mg.L-1和11.5 mg.L-1、COD浓度为456 mg.L-1的条件下,TN和TP去除率分别达到94.3%和92.2%以上.反应器除磷是基于常规生物除磷和反硝化除磷过程实现的,脱氮主要是基于好氧段发生的同时硝化反硝化(SND)作用而完成.由于生物膜内部存在的DO扩散梯度,在好氧阶段混合液DO浓度不断提高的条件下反应器内具有良好SND反应的发生.进水COD浓度由149 mg.L-1提高至456 mg.L-1的过程中,反应器硝化效果不变,反硝化和除磷效果改善.反应器在好氧阶段pH值基本维持在7.0—7.1之间,为各类菌群的生长创造了条件.碱度变化较pH值更能反映硝化和反硝化反应发生的程度.反应器中微生物相丰富,生物膜以丝状菌为骨架,其上附着大量的球状菌和杆状菌,而悬浮活性污泥中丝状菌较少,形成了由细菌、真菌到原生动物和后生动物的复杂的生态体系,为系统取得稳定的污水处理效果提供了有效的保证.  相似文献   

9.
厌氧-好氧生物除磷影响因素的控制   总被引:2,自引:0,他引:2  
李捷  熊必永  张杰 《生态环境》2004,13(4):506-507,511
采用厌氧-好氧生物除磷工艺,研究了两个关键因子--化学需氧量与磷的比值和污泥负荷对系统除磷效果的影响及其控制.结果表明,原污水中化学需氧量与磷的比值越高,厌氧放磷越多,越有利于除磷;厌氧放磷与厌氧吸收碳源呈正相关;并且,进水化学需氧量与磷的比值的变化对整个系统碳源污染物的去除效果不会产生明显的影响.试验发现,厌氧条件下聚磷菌贮存碳源的多寡并不完全依赖于高能磷酸键水解提供的能量,原污水中化学需氧量越多,越有利于厌氧碳源的贮存.若要达到好的除磷效果,系统的污泥负荷必须控制在0.21~0.5 kg/(kg·d)之间,且污泥负荷越高,除磷效果越佳.  相似文献   

10.
采用室内模拟培养试验方法,研究不同磷初始浓度对紫萍生长及磷吸收效率的影响。结果表明,水体初始ρ(磷)为3.0 mg.L-1时,紫萍相对生长率最高,生长繁殖速度最快。当初始ρ(磷)为0.3~3.0 mg.L-1时,紫萍对水体中磷的去除率在70%以上。紫萍累积吸磷量和磷吸收能力均随磷初始浓度的升高而增加,但当初始ρ(磷)为45.0 mg.L-1时,紫萍累积吸磷量和单位鲜质量紫萍吸磷量均明显下降。当初始ρ(磷)≤1.5 mg.L-1时,紫萍体内酸性磷酸酶活性升高,但随着低磷胁迫时间的延长,低磷条件和高磷条件间酸性磷酸酶活性差异减小。  相似文献   

11.
厌氧除磷是一种高效、节能、低耗的方法。获取经济、方便、高效的种泥是实现该方法的前提,种泥中产生磷化氢功能菌株的组成及特性是提高处理效能和开发新工艺的基础,目前此研究未见有关报道。本研究依据厌氧除磷理论,利用厌氧培养反应瓶、筛选培养基和微生物筛选、分离、鉴定的方法。以A2/O厌氧池、污泥浓缩池污泥、养殖场新鲜猪粪、鸡粪、牛粪及鸭粪为研究种泥,通过跟踪厌氧培养过程培养液中总磷的去除率和吸收液中磷化氢的生成量筛选出最佳种泥,并对最佳种泥的菌株进行筛选、分离和鉴定。结果表明,6种泥中鸡粪的厌氧除磷能力最强,鸭粪能力最弱,浓缩池中的污泥和猪粪次之,牛粪及厌氧池污泥有一定的作用。本试验条件下鸡粪是厌氧除磷的最佳种泥。经过3个周期的厌氧培养,6种泥培养液总磷的去除率和吸收液中磷化氢的含量随培养时间增长都有不同程度增加。鸡粪的最佳培养时间为5d。鸡粪培养液经21d培养后分离到1株芽孢杆菌属、1株假单胞菌属及2株肠杆菌科,明确了2株肠杆菌科中1株为埃希氏菌属另1株为柠檬酸杆菌属。  相似文献   

12.
In this paper, a study was conducted on the effect of polyhydroxyalkanoates (PHA) and glycogen transformations on biologic nitrogen and phosphorus removal in low dissolved oxygen (DO) systems. Two laboratory-scale sequencing batch reactors (SBR1 and SBR2) were operating with anaerobic/aerobic (low DO, 0.15–0.45 mg·L-1) configurations, which cultured a propionic to acetic acid ratio (molar carbon ratio) of 1.0 and 2.0, respectively. Fewer poly-3-hydroxybutyrate (PHB), total PHA, and glycogen transformations were observed with the increase of propionic/acetic acid, along with more poly-3-hydroxyvalerate (PHV) and poly-3-hydroxy-2-methyvalerate (PH2MV) shifts. The total nitrogen (TN) removal efficiency was 68% and 82% in SBR1 and SBR2, respectively. In the two SBRs, the soluble ortho-phosphate (SOP) removal efficiency was 94% and 99%, and the average sludge polyphosphate (poly-P) content (g·g-MLVSS-1) was 8.3% and 10.2%, respectively. Thus, the propionic to acetic acid ratio of the influent greatly influenced the PHA form and quantity, glycogen transformation, and poly-P contained in activated sludge and further determined TN and SOP removal efficiency. Moreover, significant correlations between the SOP removal rate and the (PHV+ PH2MV)/PHA ratio were observed (R2>0.99). Accordingly, PHA and glycogen transformations should be taken into account as key components for optimizing anaerobic/aerobic (low DO) biologic nitrogen and phosphorus removal systems.  相似文献   

13.
Enhanced biological phosphorus removal (EBPR) is a commonly used and sustainable method for phosphorus removal from wastewater. Poly-β-hydroxybutyrate (PHB), polyphosphate, and glycogen are three kinds of intracellular storage polymers in phosphorus accumulation organisms. The variation of these polymers under different conditions has an apparent influence on anaerobic phosphorus release, which is very important for controlling the performance of EBPR. To obtain the mechanism and kinetic character of anaerobic phosphorus release, a series of batch experiments were performed using the excessively aerated sludge from the aerobic unit of the biological phosphorus removal system in this study. The results showed that the volatile suspended solid (VSS) had an increasing trend, while the mixed liquid suspended sludge (MLSS) and ashes were reduced during the anaerobic phosphorus release process. The interruption of anaerobic HAc-uptake and phosphorus-release occurs when the glycogen in the phosphorus-accumulating-organisms is exhausted. Under the condition of lower initial HAc-COD, HAc became the limiting factor after some time for anaerobic HAc uptake. Under the condition of higher initial HAc-COD, HAc uptake was stopped because of the depletion of glycogen in the microorganisms. The mean ratio of Δρ Pρ PHB, Δρ GLYρ PHB, Δρ P/ΔCOD, was 0.48, 0.50, 0.44, and 0.92, respectively, which was nearly the same as the theoretical value. The calibrated kinetic parameters of the HAc-uptake and phosphorus-release model were evaluated as follows: Q HAc,max was 164 mg/(g · h), Q P,max was 69.9 mg/(g · h), K gly was 0.005, and KCOD was 3 mg/L. An apparently linear correlation was observed between the ratio of Δρ P/ΔCOD and pH of the solution, and the equation between them was obtained in this study.  相似文献   

14.
The short-term effect of anaerobic reaction time (AnRT) (i.e., 90, 120 and 150 min) on the denitrifying phosphorus (P) removal performance and N2O production was examined using a denitrifying enhanced biologic phosphorus removal (EBPR) sludge acclimatized with mixed acetate (HAc) and propionate (Pro) (in the molar ratio 3:1) as carbon sources. The results showed that when the AnRT was prolonged from 90 to 150 min, the anaerobic polyhydroxyalkanoate (PHA) synthesis was decreased by 15.3%. Moreover, the ineffective PHA consumption occurred in anaerobic phases and contributed to an increased NO 2 ? -N accumulation and higher free nitrous acid (FNA) concentrations (?0.001–0.0011 mg HNO2-N/L) in the subsequent anoxic phases, causing a severe inhibition on anoxic P-uptake and denitrification. Accordingly, the total nitrogen (TN) and total phosphorus (TP) removal efficiencies dropped by approximately 6.3% and 85.5%, respectively; and the ratio of anoxic N2O-N production to TN removal increased by approximately 3.8%. The fluorescence in situ hybridization (FISH) analysis revealed that the sludge was mainly dominated by Accumulibacter (62.0% (SEmean = 1.5%)). In conclusion, the short-term excessive anaerobic reaction time negatively impacted denitrifying P removal performance and stimulated more N2O production, and its effect on P removal was more obvious than that on nitrogen removal.  相似文献   

15.
序批式生物膜法同步除磷脱氮特性研究   总被引:6,自引:0,他引:6  
对淹没序批式生物膜法去除有机物和磷及同步部分脱氮的特性进行了研究。其适合的载体装填密度为30%,水力停留时间为9h,其中厌氧3h,好氧6h,进水COD负荷从0.27kg/(m^3.d)到1.32kg/(m^3.d)均可使除磷率达90%以上,脱氮率达50%-60%。淹没式生物膜法除磷脱氮工艺中的优势菌属为假单胞菌属,其次依顺序为气单胞菌属,芽孢杆菌属,微球菌属,硝化矸菌属,生物膜具有生物量大(MLVSS达5531.7mg/L),脱落污泥含磷量高(达5.67%),沉降性好(SVI为101.7)的特点,污泥产率为0.1996kg干泥/kgCOD。  相似文献   

16.
An anaerobic-oxic (A/O) biological phosphorus removal reactor was operated to study the effect of nitrite on phosphate uptake. The phosphorus uptake profile was determined under different operating conditions. The results indicated that in addition to oxygen and nitrate (DPBNa, nitrate denitrifying phosphorus removal), to some extent, nitrite could also serve as an electron acceptor to achieve nitrite denitrifying phosphorus removal (DPBNi). The quantity and rate of phosphorus uptake of DPBNi, however, were evidently lower than that of DPBNa. The experiment results revealed that nitrite would bring toxic action to phosphate-accumulating organisms (PAOs) when NO2 ?-N ? 93.7 mg/L. The nitrite existing in the anoxic reactor made no difference to the quantity and rate of denitrifying phosphorus removal, but it could reduce the consumption of nitrate. Moreover, the data showed that the aerobic phosphate uptake of DPBNi was lower than that of anaerobic phosphorus-released sludge in a traditional A/O process. However, there was not much difference between these two kinds of sludge in terms of the total phosphorus uptake quantity and the effluent quality.  相似文献   

17.
● A new adsorption-membrane separation strategy is used for phosphate removal. ● PVC/Zr-BT shows a selective adsorption ability to low-concentration phosphate. ● Low concentration of P below 0.05 mg/L was achieved in actual wastewater treatment. ● Algal biomass production served as a demonstration of phosphorus recycling. Enhanced phosphorus treatment and recovery has been continuously pursued due to the stringent wastewater discharge regulations and a phosphate supply shortage. Here, a new adsorption-membrane separation strategy was developed for rational reutilization of phosphate from sea cucumber aquaculture wastewater using a Zr-modified-bentonite filled polyvinyl chloride membrane. The as-obtained polyvinyl chloride/Zr-modified-bentonite membrane was highly permeability (940 L/(m2·h)), 1–2 times higher than those reported in other studies, and its adsorption capacity was high (20.6 mg/g) when the phosphate concentration in water was low (5 mg/L). It remained stable under various conditions, such as different pH, initial phosphate concentrations, and the presence of different ions after 24 h of adsorption in a cross-flow filtration system. The total phosphorus and phosphate removal rate reached 91.5% and 95.9%, respectively, after the membrane was used to treat sea cucumber aquaculture wastewater for 24 h and no other water quality parameters had been changed. After the purification process, the utilization of the membrane as a new source of phosphorus in the phosphorus-free f/2 medium experiments indicated the high cultivability of economic microalgae Phaeodactylum tricornutum FACHB-863 and 1.2 times more chlorophyll a was present than in f/2 medium. The biomass and lipid content of the microalgae in the two different media were similar. The innovative polyvinyl chloride/Zr-modified-bentonite membrane used for phosphorus removal and recovery is an important instrument to establish the groundwork for both the treatment of low concentration phosphate from wastewater as well as the reuse of enriched phosphorus in required fields.  相似文献   

18.
A laboratory-scale anaerobic-anoxic-aerobic process (A2O) with a small aerobic zone and a bigger anoxic zone and biologic aerated filter (A2O-BAF) system was operated to treat low carbon-to-nitrogen ratio domestic wastewater. The A2O process was employed mainly for organic matter and phosphorus removal, and for denitrification. The BAF was only used for nitrification which coupled with a settling tank Compared with a conventional A2O process, the suspended activated sludge in this A2O-BAF process contained small quantities of nitrifier, but nitrification overwhelmingly conducted in BAF. So the system successfully avoided the contradiction in sludge retention time (SRT) between nitrifying bacteria and phosphorus accumulating organisms (PAOs). Denitrifying phosphorus accumulating organisms (DPAOs) played an important role in removing up to 91% of phosphorus along with nitrogen, which indicated that the suspended activated sludge process presented a good denitrifying phosphorus removal performance. The average removal efficiency of chemical oxygen demand (COD), total nitrogen (TN), total phosphorus (TP), and NH 4 + -N were 85.56%, 92.07%, 81.24% and 98.7% respectively. The effluent quality consistently satisfied the national first level A effluent discharge standard of China. The average sludge volume index (SVI) was 85.4 mL·g?1 additionally, the volume ratio of anaerobic, anoxic and aerobic zone in A2O process was also investigated, and the results demonstrated that the optimum value was 1:6:2.  相似文献   

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