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1.
挥发性有机物和臭味的生物过滤处理   总被引:36,自引:0,他引:36  
生物过滤法是一种较新的空气污染控制方法,它利用微生物降解或/转化空气中的挥发性有机物以信硫化氢、氨等恶臭物质。本文主要介绍生物过滤法处理废气的基本原理,讨论填料种类、湿度、pH、温度等影响生物过滤法性能参数。同是综述了生物过滤法的应用范围以及对生物过滤法的改进。  相似文献   

2.
生物法处理NOx废气的研究进展   总被引:2,自引:0,他引:2  
氮氧化物 (NOx)是主要的大气污染物之一 ,是治理大气污染的一大难题。对当前国内外生物处理NOx 的研究现状进行了系统的论述 ,介绍了生物过滤法处理氮氧化物的基本原理 ,分析了生物过滤法处理氮氧化物存在的问题 ,并预测该技术的未来发展趋势  相似文献   

3.
生物法处理NOx废气的研究进展   总被引:12,自引:0,他引:12  
氮氧化物(NOx)是主要的大气污染物之一,是治理大气污染的一大难题,以当前国内外生物处理NOx的研究现状进行了系统的论述,介绍了生物过滤法处理氮氧化物的基本原理,分析了生物过滤法处理氮氧化物存在的问题,并预测该技术的未来发展趋势。  相似文献   

4.
生物过滤法净化垃圾填埋场温室气体甲烷的研究进展   总被引:1,自引:0,他引:1  
生物过滤法是一种低费用、无二次污染的减少垃圾填埋场温室气体甲烷排放的方式,是垃圾填埋气净化的一种很好的选择.介绍了净化垃圾填埋场甲烷的生物过滤器类型及甲烷氧化微生物,概述了生物过滤器氧化甲烷的影响因素、操作条件,并分析了其发展趋势.  相似文献   

5.
造纸废水治理技术研究现状及展望   总被引:3,自引:0,他引:3  
介绍了造纸废水的各种处理技术:生物处理技术、絮凝沉淀法、过滤法、气浮法、造纸废水中主要碱回收技术、光催化氧化技术、人工湿地处理系统,并分析了治理技术的发展趋势。  相似文献   

6.
吴丹  朱琳  王俭  刘强  唐音  桂居铎 《环境工程学报》2013,7(3):1065-1071
采用生物过滤法,以鸡粪堆肥和PE混合物为填料,在高气速条件下间歇式处理高负荷H2S废气。空床停留时间为20、15、10、6.7和5 s时,入口浓度3 000 mg/m3下的平均去除率分别为100%、100%、96.5%、89.2%和90.5%。高气速EBRT为5 s时,高入口负荷2 147 g/(m3.h)时的去除负荷为2 023 g/(m3.h),去除率达94%。采用Michaelis-Ment-en模型进行生物降解宏观动力学研究,其中Ks为550 mg/m3,Vm为6.8×104g/(m3.d)。结果表明,在实验温度17~24℃,湿度30%~50%下,生物过滤法间歇式处理高气速高负荷H2S的去除性能好。  相似文献   

7.
餐饮业油烟污染及治理技术浅议   总被引:1,自引:0,他引:1  
餐饮业油烟污染空气 ,影响人体健康 ,应引起高度重视。治理技术设备主要有静电法、过滤法和洗涤法等方法 ,各种设备各有其优点和缺点 ,要不断创新完善 ,尽快使餐饮业油烟达标排放  相似文献   

8.
概述了竖向隔板分油法、蜂窝斜管分油法及磁性颗粒吸附过滤法 ,将这 3种方法结合处理某机修厂的含油污水 ,取得了满意效果。  相似文献   

9.
抗生素的滥用使得其在环境中被频频检出,并且由此导致的抗性基因污染已严重威胁到人类和动物健康。抗生素的吸附/解吸行为是其进入环境后发生迁移转化的重要途径之一。生物炭因具有成本低廉、制备简单、吸附效果好等优点,近年来被学者广泛关注。从动力学、热力学角度阐述生物炭对抗生素的吸附/解吸机理,分析生物炭对抗生素吸附/解吸过程的影响因素,包括生物炭自身特性(比表面积、官能团、微孔结构)、生物炭释放的溶解性有机质(DOM)、生物炭中的持久性自由基以及pH、温度、离子强度、腐殖酸、生物炭老化等环境因素,试图系统探究生物炭对抗生素吸附/解吸的本质。虽然生物炭对抗生素吸附行为的研究已日渐成熟,但有关生物炭对抗生素的解吸机理、生物炭衍生DOM对吸附/解吸过程的影响、生物炭施用后带来的环境风险以及改性生物炭的实际应用等方面的研究还不够完善,今后对这些方面的研究仍有待加强。  相似文献   

10.
生物吸附重金属的研究进展   总被引:35,自引:0,他引:35  
从生物吸附的概念、吸附重金属的机理、吸附剂的种类以及生物细胞的固定化、生物吸附工艺过程等方面进行了综述,同时阐述了生物吸附重金属的技术研究进展和应用前景展望。  相似文献   

11.
Abstract

The kinetic behavior of the toluene biofiltration process was investigated in this research. Toluene was used as a model compound for less water-soluble gas pollutants. The limiting factor in the overall toluene biofiltration process was determined by analyzing the effectiveness factor of the biofilm along the biofilter. Experiments were conducted in three laboratory-scale biofilters packed with mixtures of chaff/compost, D.E. (diatomaceous earth)/compost and GAC (granular activated carbon)/compost, respectively. A mathematical model previously proposed was verified in this study as being applicable to these biofilters packed with different filter materials. Both the experimental and theoretical results confirmed that the biodegradation rate along the biofilter followed the zero order, fractional order to first order kinetics as toluene concentration decreased. Moreover, at higher toluene concentration, biodegradation rate and mass flux of toluene were lower near the bottom of the biofilter due to substrate inhibition. Analysis of the effectiveness factor indicated that biofiltration of a less soluble compound such as toluene should not be operated at high gas flow rates (low gas residence times) due to the mass transfer limitation of such a system. At an approximate constant inlet toluene concentration of 0.9 g/m3, the toluene removal efficiency in these three biofilters would drop below 90% when the gas residence time decreased to 2.5, 2.5, and 2.0 min, respectively.  相似文献   

12.
The purpose of this research was to neutralize livestock-generated ammonia by using biofilters packed with inexpensive inorganic and organic packing material combined with multicultural microbial load at typical ambient temperatures. Peat and inorganic supporting materials were used as biofiltration matrix packed in a perfusion column through which gas was transfused. Results show the ammonia removal significantly fell in between 99 and 100% when ammonia concentration of 200 ppmv was used at different gas flow rates ranged from 0.030 to 0.060 m3 h(-1) at a fluctuating room temperature of 27.5 +/- 4.5 C (Mean +/- SD). Under these conditions, the emission concentration of ammonia that is liberated after biofiltration is less than 1 ppmv (0.707 mg m(-3)) over the period of our study, suggesting the usage of low-cost biofiltration systems for long-term function is effective at wider ranges of temperature fluctuations. The maximum (100%) ammonia removal efficiency was obtained in this biofilter was having an elimination capacity of 2.217 g m(-3) h(-1). This biofilter had high nitrification efficiencies and hence controlled ammonia levels with the reduced backpressure. The response of this biofilter to shut down and start up operation showed that the biofilm has a superior stability.  相似文献   

13.
Effects of nitrogen and oxygen on biofilter performance   总被引:2,自引:0,他引:2  
Three laboratory-scale biofilters packed with inert material were used to study the nitrogen and oxygen requirements for biofiltration of methanol. Mixtures of methanol with inorganic nitrogen (NH3 or NO3) at nitrogen-to-carbon (N:C) ratios ranging from 0.015 to 0.4 were employed to reveal nitrogen effects on biofiltration. In the oxygen study, mixtures of air and oxygen at different oxygen contents were used. At low nitrogen levels, the removal rate increased with increasing N:C ratio for both NH3 and NO3. However, at high concentrations, NH3 had an inhibitory effect on biodegradation while the removal rate reached a plateau at high NO3 concentrations. Biofiltration with 63% oxygen in the inlet gas stream increased the maximum removal rate from 120 to 145 g/m3/hr after 3 days in comparison with biofiltration with air. However, a further increase in oxygen content up to 80% did not lead to a further improvement in biofilter performance, suggesting that both oxygen and biofilm thickness can be the relevant factors limiting biofilter performance and creating the plateau in removal rates at high loadings.  相似文献   

14.
This study was conducted to evaluate the effects of gas inlet concentration and velocity on the biofiltration of gasoline vapor. Gasoline vapor was treated using a compost biofilter operated in an upflow mode for about 3 months. The inlet concentration of gasoline total petroleum hydrocarbon (TPH) ranged from about 300 to 7000 mgm(-3) and gas was injected at velocities of 6 and 15 mh(-1) (empty bed residence time (EBRT)=10 and 4 min, respectively). The maximum elimination capacities of TPH at 6 and 15 mh(-1) found in this research were over 24 and 19 gm(-3) of filling material h(-1), respectively. TPH removal data was fit using a first-order kinetic relationship. In the low concentration range of 300-3000 mg m(-3), the first-order kinetic constants varied between about 0.10 and 0.29 min(-1) regardless of gas velocities. At TPH concentrations greater than 3000 mgm(-3), the first-order kinetic constants were about 0.09 and 0.07 min(-1) at gas velocities of 6 mh(-1) and 15 mh(-1), respectively. To evaluate microbial dynamics, dehydrogenase activity, CO2 generation and microbial species diversity were analyzed. Dehydrogenase activity could be used as an indicator of microbial activity. TPH removal corresponded well with CO2 evolution. The average CO2 recovery efficiency for the entire biofilter ranged between 60% and 70%. When the gas velocity was 6 mh(-1), most of the microbial activity and TPH removal occurred in the first quarter of the biofilter. However, when the gas velocity was 15 mh(-1), the entire column contributed to removal. Spatial and temporal variations in the biofilter microbial population were also observed. Nearly 60% of the colonies isolated from the compost media prior to biofiltration were Bacillus. After 90 days of biofiltration, the predominant species in the lower portion (0-50 cm) of the filter were Rhodococcus, while Pseudomonas and Acinetobacter dominated the upper portion (75-100 cm).  相似文献   

15.
In this study, biofiltration using a natural wood chip medium and a commercial biofiltration medium was evaluated for the removal of moderate concentrations of hydrogen sulfide (H2S) (up to 100 parts per million by volume [ppmv]) in the presence of significant concentrations of ammonia (NH3). These levels were chosen as representative of wastewater lift station emissions in the Brownsville, TX, area. NH3-removing portions of the biofilms may compete with H2S-removing portions and inhibit H2S removal. H2S process removal efficiencies for the commercial and natural media ranged from 90 to 96% depending on inlet loading and media type and bed height. Kinetic analysis of the H2S removal process followed apparent first-order reaction behavior. The average first-order reaction rates were 0.03 sec(-1) for the commercial medium and 0.09 sec(-1) for the natural medium. Pressure drops across the columns ranged from 0.41 in. H2O/ft for the commercial medium to 1.41 in. H2O/ft for the natural medium. NH3 gas levels of up to 80 ppmv did not affect the H2S removal process efficiency, and calculated kinetic rate constants for H2S removal remained almost the same. The NH3 gas also was removed simultaneously with the H2S up to 98% removal efficiency by the commercial medium.  相似文献   

16.
Packing material formulation for odorous emission biofiltration   总被引:1,自引:0,他引:1  
In biological gas treatment, like biofiltration of volatile organic compounds or odorous substances, the microbial nutritional needs could be a key factor of the process. The aim of this work is to propose a new packing material able to provide the lacking nutrients. In the first part of this study, two kinds of material composed of calcium carbonate, an organic binder and two different nitrogen sources, ammonium phosphate and urea phosphate (UP), were compared. The new supports present bulk densities between 0.88 and 1.15g cm(-3), moisture retention capacities close to 50% and 70%, and water cohesion capacities greater than six months for the material with 20% binder. In the second part, oxygen consumption measurements in liquid experiments show that these packing materials could enhance bacterial growth compared to pine bark or pozzolan and have no inhibitory effect. The biodegradation of different substrates (sodium sulfide and ammonia) and the support colonization by the biomass were evaluated. Finally, UP 20 was chosen and tested in a hydrogen sulfide or ammoniac biofiltration process. This showed that, for H2S concentrations greater than 100mg m(-3), UP 20 has a real advantage over pine bark or pozzolan.  相似文献   

17.
ABSTRACT

Thermophilic biodégradation of toluene with active compost biofilters was studied. Thermophilic conditions were maintained either by daily substrate addition (semicontinuous composting) or with a heating system (batch thermophilic composting). The semicontinuous system was designed for the treatment of cool (less than approximately 35 °C) gases under thermophilic conditions, while the extended batch approach was developed for the treatment of warmer gases. When the semicontinuous system was operated at 50 °C (after a one-day start-up period) at an average inlet concentration of 5.5 g m-3, toluene was degraded at a rate ranging from 73 to 110 g C m-3 hr-1. Batch thermophilic treatment was somewhat less effective at the same inlet concentration. Semicontinuous toluene biofiltration at 60 °C was also investigated, but biodegradation rates were significantly lower than at 50 °C. In all systems, toluene biodegradation was proportional to the inlet concentration. Rates of up to 289 g C m-3 hr-1 (at an inlet concentration of 14.7 g m-3) were achieved for semicontinuous and batch operation and 251 g C m-3 hr-1 (at an inlet concentration of 18.4 g m-3) for batch thermophilic at 50 °C. Semicontinuous thermophilic operation at 60 °C showed a maximum rate of 119 g C m-3 hr-1. Active compost ther-mophilic biofiltration was found to be very effective when concentrations are high. At lower concentrations, rates were similar to those obtained with mesophilic biofiltration. Mixing, humidity, and the presence of cosubstrate were important parameters in maintaining high degradation rates. Biofiltration in the batch thermophilic mode could be useful when conventional biofiltration is ineffective due to elevated gas temperatures. Biofiltration in the semicontinuous thermophilic could reduce the biofilter size necessary for treatment of cooler gases containing high concentrations of volatile organic compounds.  相似文献   

18.
Hu JY  Song LF  Ong SL  Phua ET  Ng WJ 《Chemosphere》2005,59(1):127-133
Biofouling control is considered as a major challenge in operating membrane systems. A lab-scale RO system was setup at a local water reclamation plant to study the feasibility of using biofiltration as a pretreatment process to control the biofouling. The biological activity in the RO system (feed, product, reject streams) was tested using the standard serial dilution plating technique. Operational parameters such as differential pressure (DP) and permeate flowrate of the system were also monitored. Effects of biofilter on AOC and DOC removals were investigated. Biofiltration was found to be a viable way of assimilable organic carbon (AOC) and dissolved organic carbon (DOC) removals, with removal efficiencies of 40-49% and 35-45% at an empty bed contact time (EBCT) of 30 min. It was also found that using the biofiltration as a pretreatment reduced the rate of biofouling. It took only about 72 h for biofouling to have a significant impact on the performance of the RO membrane, when the system was operated without using biofiltration as pretreatment. There was, however, a five times increase in operational length to more than 300 h when biofiltration was used. This study presented the suitability of the biofilter as an economical and simple way of biofouling control for RO membrane.  相似文献   

19.
20.
生物过滤技术是一项新兴的废气污染治理技术 ,正在逐步得到应用。本文主要介绍了生物过滤技术处理废气的使用范围、操作的基本原理及目前的应用情况 ,并且预测今后的发展方向。  相似文献   

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