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1.
传统活性污泥法与膜生物反应器污泥沉降性能的比较   总被引:5,自引:1,他引:4  
针对污泥沉降性能,在运行条件相同的情况下对膜生物反应器(MBR)与传统活性污泥法(CAS)进行比较。结果表明:CAS工艺污泥沉降性能优于MBR工艺;CAS工艺出水水质受污泥沉降性能影响大;MBR工艺污泥沉降性能主要由反应器中累积的高浓度胞外聚合物(EPS)含量所影响,当EPS浓度大于100mg/g时,污泥沉降性能开始恶化;CAS工艺曝气池中EPS浓度没有累积;MBR工艺污泥颗粒平均粒径小于CAS工艺中污泥颗粒。  相似文献   

2.
对比传统活性污泥法与膜生物反应器MBR的工艺原理,简要阐述了膜生物反应器工艺的优点。对工艺中的设计依据、构型、膜组件和有机负荷、固体停留时间、水力停留时间等生物反应器的技术参数进行了探讨,为膜生物反应器中试设计提供了借鉴。  相似文献   

3.
《中国环保产业》2011,(5):70-71
由惠州市雄越保环科技有限公司开发的用于污水处理和中水回用的可自控膜—生物反应器成套设备,适用于有机废水的处理及回用。主要技术内容一、基本原理膜生物反应器(简称MBR)是指将膜分离技术中的超滤组件与污水处理中的生物反应器相结合而成的一种新型废水处理系统。它利用膜处理单元代替了二沉池,超滤膜将污泥和大分子污染物截留在反应器内,既提高  相似文献   

4.
膜曝气生物膜反应器生物膜影响因素分析   总被引:1,自引:0,他引:1  
膜曝气生物膜反应器(MABR)是一种利用透气膜进行曝气,可以实现同步硝化反硝化的污水生物处理新工艺。本文阐述了膜曝气生物反应器生物膜的原理和特点,总结了国内外在该领域的研究成果,重点介绍了C/N、氧气压力、流速、生物膜厚度、温度和pH对生物膜性能的影响。  相似文献   

5.
兼氧膜生物反应器处理养殖废水技术   总被引:1,自引:0,他引:1  
《中国环保产业》2014,(10):71-71
由江西金达莱环保股份有限公司开发的兼氧膜生物反应器处理养殖废水技术,适用于畜禽养殖废水、生活污水和各类工业有机废水处理。主要技术内容 一、基本原理 通过污泥培养,兼氧膜生物反应器(MBR)内部污泥质量浓度可达1.5万~2万mg/L,形成以高效兼性厌氧菌(约占80%)为优势菌种的特性微生物体系。  相似文献   

6.
在一体式一膜生物反应器处理生活污水的基础上,考察了运行过程中膜污染情况。试验结果表明,膜外表面沉积污泥是造成膜污染的主要因素,在活性污泥混合液中搓洗膜丝,是一种方便而有效的清洗方式。间歇式运行方式的停抽期间最低剩余抽吸压力可用来表征运行过程中膜过滤性能的变化。  相似文献   

7.
在一体式—膜生物反应器处理生活污水的基础上,考察了运行过程中膜污染情况。试验结果表明,膜外表面沉积污泥是造成膜污染的主要因素,在活性污泥混合液中搓洗膜丝,是一种方便而有效的清洗方式。间歇式运行方式的停抽期间最低剩余抽吸压力可用来表征运行过程中膜过滤性能的变化。  相似文献   

8.
膜生物反应器中膜污染问题讨论   总被引:3,自引:2,他引:3  
膜生物反应器是近年新发展起来的高效废水处理工艺,同时不可避免地带来了膜的污染问题。本文综述了近年来国内外对膜污染机理研究的最新成果,介绍了相应的解决措施,展望了今后的发展前景。  相似文献   

9.
活性炭在膜生物反应器中的应用研究进展   总被引:1,自引:0,他引:1  
活性炭是一种非常优良的吸附剂,具有物理吸附和化学吸附的双重特性。本文介绍了近年来向膜生物反应器中投加活性炭的应用研究进展,表明投加活性炭可以提高膜生物反应器的处理效果,同时对改善膜污染有很好的效果。  相似文献   

10.
膜生物反应器(MBR)在中水回用中具有无可比拟的优势。通过分析我国中水回用的现状,指出中水回用的必要性,介绍了MBR在污水处理中的研究及应用,对膜生物反应器的环境效益和经济效益做了分析,并指出了今后膜生物反应器中水处理的应用前景。  相似文献   

11.
好氧颗粒污泥同时脱氮除磷技术研究   总被引:1,自引:0,他引:1  
采用序批式活性污泥法(SBR)处理新疆油田公司准东石油基地污水,作为生物膜的一种特殊形式,介绍了该工艺的优点,在适宜的运行条件下进行实验。讨论了好氧颗粒污泥脱氮以及除磷的过程,分析了该工艺对氮、磷的去除率及好氧颗粒污泥在好氧、缺氧条件下的吸磷情况,当进水氨氮、磷和乙酸碳浓度分别为38.2 mg/L、27.7 mg/L和134.6 mg/L,MLSS和MLVSS分别为7.0 mg/L、6.4 mg/L时,氨氮、总无机氮、磷、乙酸碳的平均去除率分别达到98.8%、90.2%、98.9%、97.2%.  相似文献   

12.
A mathematical model for a hybrid anaerobic reactor (HAR), which uses self-immobilized anaerobic bacterial granules under completely fluidized condition, has been developed. Stoichiometry of glucose fermentation into methane has been considered in this model. The model includes: (1) a biofilm model which describes substrate conversion kinetics within a single granule; (2) a bed fluidization model which describes the distribution of biogranules within the fluidized bed and (3) a reactor model which links the above two to predict the substrate and products concentration profile along the reactor height. Product and pH inhibition for each group of bacteria has been considered in the kinetic model. The spatial distribution of each group of anaerobic bacteria within granules has been found to play a vital role in bringing about the conversion. Experiments were conducted in the reactor using a synthetic effluent containing glucose as the carbon source to study the treatment efficiency. The model was simulated first assuming a 3-layered distribution [MacLeod, F.A., Guiot, S.R., Costerton, J.W., 1990. Layered structure of bacterial aggregates produced in an upflow anaerobic sludge bed and filter reactor. Applied and Environmental Microbiology 56, 1598-1607.] of anaerobic bacteria within granules and then homogeneous distribution [Grotenhuis, J.T.C., Smit, M., Plugge, C.M., Yuansheng, X., van Lammeren, A.A.M., Stams, A.J.M., Zehnder, A.J.B., 1991. Bacterial composition and structure of granular sludge adapted to different substrates. Applied and Environmental Microbiology 57, 1942-1949.] of anaerobic bacteria. The predictions of model simulation with the assumption of layered structure closely represented the experimental data.  相似文献   

13.
A laboratory continuous feed biofilm reactor, comprising a bulk fluid reactor, a biofilm plastic module, a feed tank, and pneumatic devices and controls, was operated for a total period of 257 days, including seeding time, to treat domestic-strength synthetic wastewater under increasing ammonium nitrogen (NH(4)(+)--N) loading rates, ranging from 0.17+/-0.01 (0.71+/-0.06 gm(-2)d(-1)) to 0.70+/-0.02 kgm(-3)d(-1) (2.9+/-0.1 gm(-2)d(-1)). The biofilm plastic module was moved vertically in and out of the wastewater in continuous cycles. The maximum NH(4)(+)-N removal rate was reached during the maximum loading phase, when a NH(4)(+)--N loading rate of 0.70+/-0.02 kgm(-3)d(-1) (2.9+/-0.1 gm(-2)d(-1)) was applied to the system. During this loading period, the average NH(4)(+)--N removal rate was 0.30+/-0.10 kgm(-3)d(-1) (1.30+/-0.40 gm(-2)d(-1)).  相似文献   

14.
Anaerobic treatment has become a technically as well as economically feasible option for treatment of liquid effluents after the development of reactors such as the upflow anaerobic sludge blanket (UASB) reactor, expanded granular sludge bed (EGSB) reactor, anaerobic biofilter and anaerobic fluidized bed reactor (AFBR). Considerable effort has gone into developing mathematical models for these reactors in order to optimize their design, design the process control systems used in their operation and enhance their operational efficiency. This article presents a critical review of the different mathematical models available for these reactors. The unified anaerobic digestion model (ADM1) and its application to anaerobic biofilm reactors are also outlined.  相似文献   

15.
HSMBR系统表现了对于COD高且稳定的去除效果。对于TN、TP,由于不排泥,污泥浓度的升高,并且填料内部的生物膜不断形成,以及在填料内部的污泥受曝气的扰动小,而变的较为密实,反应器内形成好氧、缺氧两种微环境并存,有利于系统对于TN、TP去除率的提高。  相似文献   

16.
In this study, regression analysis based an estimation model for biogas generated from an up-flow anaerobic sludge blanket (UASB) reactor treating landfill leachate is developed using several leachate parameters, such as pH, conductivity, total dissolved solids, chemical oxygen demand, alkalinity, chloride, total Kjeldahl nitrogen, ammonia, total phosphorus. These landfill leachate parameters are monitorized over a period of 1000 days at 35 ± 1°C in the UASB reactor. In order to develop the best model giving highest estimation performance, eight model equations including different input parameter combinations are analyzed. Based on the results of regression analysis, the best coefficients of the model equation are determined. As a conclusion, the developed model in this study can give accurate biogas amount prediction for the USAB reactor-based leachate treatment system.  相似文献   

17.
Anaerobic processes are widely used for treatment of organic wastes. Fixed-film anaerobic processes are capable of handling high organic loads due to higher biomass concentration in the form of biofilms. Anaerobic biofilm reactor startup is greatly influenced by environmental, cellular and surface factors, and is often hindered by low growth rates of anaerobes and their strict environmental requirements. However, these obstacles can be overcome by applying appropriate startup strategies.  相似文献   

18.
The literature has paid scarce attention to the modeling of the denitrification-anaerobic digestion process in packed bed biofilm tubular reactors used to treat wastewater. The present study obtained a steady-state model for industrial salmon fishery wastewater treatment in a biofilm tubular reactor, including pH as a variable and the effect of biomass on hydrolysis. The axial profile of the reactor components and process efficiency were predicted with deviations below 6%. The optimal operating zone for the process was found at hydraulic retention time (HRT)>1.5d and inlet protein concentration (S(prot,0))<3000 mgTOCL(-1). Based on our results, we concluded that the removal of organic matter and nitrogen compounds depended mainly on HRT. The effluent pH was mainly affected by the C/N ratio, where a decrease increases pH. Organic matter removal was related with the anaerobic digestion process, while denitrification influenced mostly nitrate and nitrite removal.  相似文献   

19.
A simplified model for the steady-state biofilm-activated sludge reactor   总被引:1,自引:0,他引:1  
A simplified mathematical model is proposed to describe the steady-state completely mixed biofilm-activated sludge reactor (hybrid reactor). The model is derived based on Monod kinetic expressions and the Fickian diffusion law in biofilm. In addition, it considers all the essential concepts that describe the two types of growth (suspended and attached) and the competition between them for limiting substrate. Also the present study has been extended to investigate simple and accurate mathematical expressions for describing the substrate diffusion in biofilm (J). The expression for substrate flux has an explicit solution, which may be useful in the proposed model and many other applications. The application of the model for the hybrid system has been explained for a given set of data and verified by comparison with another solution. Also the model was applied to experimental results for a trace level of suspended biomass concentration (X). It was found that the biofilm flux (J) is the key factor in the model prediction, hence the accuracy of the model output is influenced by the accuracy of J. Compared with other solutions for such systems the model is simple, easy to use, and provides an accurate tool for describing such systems based on fundamental principles.  相似文献   

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