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用水解酸化池-膜生物反应器处理活性艳红X-3B废水 总被引:1,自引:0,他引:1
采用水解酸化池-膜生物反应器处理含活性艳红X-3B的模拟废水,研究了水力停留时间(HRT)对水解酸化池废水处理效果的影响,考察了水解酸化池-膜生物反应器对废水的处理效果及膜生物反应器中污泥沉降性能对膜污染的影响。实验结果表明:水解酸化池HRT为16h时,废水的可生化性最好,挥发性脂肪酸质量浓度与COD比值为0.5;HRT为17h时,废水脱色率达69%,而COD的去除率受HRT影响较小;膜生物反应器主要起去除废水中COD的作用;水解酸化池-膜生物反应器处理后废水的脱色率和COD去除率分别为83%和97%;膜生物反应器中活性污泥沉降性能的变化直接影响膜污染的速率。 相似文献
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隔离曝气生物反应器处理含硫含酚碱渣 总被引:4,自引:3,他引:1
采用隔离曝气生物反应器(简称反应器)处理含硫含酚碱渣(简称碱渣),探讨了碱渣中硫化物的去除机理.研究了反应器中的挂膜驯化过程,考察了水力停留时间、气水体积比(简称气水比)及反冲洗周期等对碱渣中硫化物、挥发酚、COD和油等污染物处理效果的影响。实验结果表明,在碱渣处理量为1m^3/h、气水比为36:1、水力停留时间为12.0h,反冲洗周期为3~5d的条件下,经过隔离曝气生物氧化工艺处理后碱渣的COD、硫化物、油和挥发酚的去除率分别为88%,99%,89%,85%,出水BOD,约为30mg/L,BOD,/COD小于0.1,处理1t碱渣的产泥量为0.17~0.26kg。 相似文献
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EGSB—MBBR处理高浓度聚酯废水 总被引:1,自引:0,他引:1
采用膨胀床颗粒污泥反应器(EGSB)—移动床生物膜反应器(MBBR)处理高浓度、难降解(COD≥10000mg/L,BOD5/COD0.3)聚酯废水。实验结果表明:在(37±1)℃、停留时间(HRT)为15.4h、进水COD为10000mg/L的条件下,EGSB反应器容积负荷达5.31kg/(m3.d),COD去除率达95%以上;在室温、HRT为48.0h的条件下,MBBR反应器出水COD100mg/L,BOD530mg/L,出水水质达到GB8978—1996《污水综合排放标准》中的一级排放标准。 相似文献
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杨一帆 《再生资源与循环经济》2013,6(9)
以焦末为载体的生物流化床反应器处理模拟生活污水,考察了水力停留时间HRT、曝气强度、进水COD浓度、回流速率和进水pH值等因素对生物流化床短期内的影响.现条件下,生物流化床处理模拟生活污水的最佳工艺条件为:HRT 2.5~3.0 h、曝气强度45.9 m3/(m2·h)、进水COD浓度不超过2 000 mg/L、回流液速2.48 cm/s、pH值7.0~8.0,此时COD去除率达90%以上. 相似文献
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用好氧-厌氧反复耦合固定床生物反应器处理肌苷生产废水 总被引:3,自引:0,他引:3
利用由多孔微生物载体构建的好氧-厌氧反复耦合固定床生物反应器进行了高浓度肌苷生产废水处理中试研究。连续84d的运行结果表明,当进水COD为1500-2700mg/L、水力停留时间为22.1h时,出水COD可维持在150mg/L左右,COD去除率达90%~95%。装置运行稳定后,未经沉淀的出水中的固体悬浮物质量浓度小于50mg/L,表明该反应器可避免剩余污泥的产生。中试结果验证了该反应器处理高浓度肌苷废水的可行性和优势,同时为装置放大提供了理论依据。 相似文献
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铁炭微电解-生化法处理电镀废水 总被引:8,自引:1,他引:7
采用铁炭微电解-生化法处理含铬电镀废水(简称废水),铁炭微电解法处理废水时,考察了进水pH、Cr^5浓度、废水停留时间对废水预处理效果的影响;生化法处理废水时,考察了搅拌转速、废水停留时间对废水处理效果的影响。在进水pH约为3、废水在铁炭微电解反应柱内的停留时间为30min、生物反应器内搅拌器的搅拌转速为40r/min、废水在生物反应器内的停留时间为3h的最佳工艺条件下,废水经铁炭微电解一生化法连续处理后,出水中Cr^6+、Cu^2+和Ni^2+的质量浓度分别为0.05,0.08,0.06mg/L,其去除率分别为99.0%,99.7%,99.3%,出水水质达到GB8978-1996《污水综合排放标准》的要求,且不存在二次污染问题。 相似文献
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活性污泥工艺中加代谢解偶联剂降低污泥产率的研究 总被引:6,自引:2,他引:4
2,4,5-三氯苯酚(TCP)作为代谢解偶联剂投加到连续曝气分批培养的活性污泥工艺中,在30d的运行期间,TCP质量浓度为2.0mg/L和4.0mg/L的污泥产率分别比对照反应下降了约25%和50%,而基质的去除率及出水的氮和磷浓度均未受很大影响,污泥的沉降性能也未受影响。镜检发现,30d运行后对照实验的反应器中仍有丝状菌,而投加TCP反应器的污泥中几乎未发现丝状菌的存在。应用TCP作为代谢解偶联剂投加到活性污泥工艺中可减少剩余污泥的产量。 相似文献
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采用好氧颗粒污泥技术处理味精废水.实验结果表明:前置缺氧段对反应器脱氮效果影响较小,脱氮过程主要是在好氧段实现;曝气段的最佳工艺条件为曝气量0.38 m3/h,曝气时间5.5 h;在进水COD、p(NH3-N)和TN分别为l000.00~1300.00,70.00~130.00,100.00~200.00 mg/L的条件下,COD、NH3-N和TN的去除率可分别维持在90%、99%和85%以上,实现了味精废水的高效脱氮处理.有机物主要在曝气初期的1.5 h内被去除,其在微生物体内以聚β-羟基丁酸形式储存,以提供反硝化过程中所需要的碳源.与普通SBR相比,接种好氧颗粒污泥后的反应器对味精废水具有更好的处理效果. 相似文献
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采用臭氧氧化—包埋菌流化床生物处理组合工艺对煤气化废水进行深度处理。实验结果表明:当臭氧的质量浓度20 mg/L、臭氧进气流量1.5 L/min、臭氧通气时间30 min、包埋菌流化床水力停留时间24 h时,臭氧氧化工序的COD去除率达到30.0%~40.0%,总酚去除率达到100.0%;包埋菌流化床工序的COD去除率达到60.0%以上,氨氮的去除率大于95.0%;经组合工艺处理后,出水COD<60 mg/L,ρ(氨氮)<1.0 mg/L,ρ(总酚)未检出,色度小于50倍,达到GB8978—1996《污水综合排放标准》中的一级排放标准。 相似文献
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The removal of nitrogen and organics from municipal landfill leachate in sequencing batch reactors (SBR) was investigated in the present study. The influence of hydraulic retention time (HRT), sludge age, manner of leachate dosage (short filling period of SBR and filling during the reaction period), and operational conditions with and without a mixing phase in the SBR cycle was explored. Four series were performed. In each series, the HRT used in the four SBRs was 12, 6, 3 and 2 days, respectively. Series 1 and 2 were characterized by a short leachate filling period, whereas series 3 and 4 were characterized by filling during the 4 h duration of the reaction in the SBR cycle. In series 1-3 SBR reactors worked with mixing and aeration phases, whereas in series 4 they worked only with an aeration phase. The effectiveness of the removal of organics increased with the extension of the HRT of leachate, particularly under operational conditions with the mixing and aeration phases in the SBR cycle. At 12 days HRT, the SBRs with the mixing and aeration phases in the cycle (series 1-3) showed better results than those with only an aeration phase (series 4). However, at 2 days HRT the operational conditions in SBR reactors with leachate filling over the reaction period (series 3 and 4) were more suitable. The highest efficiency of ammonium removal was obtained in series 1 with a short leachate filling period. In this series, at an HRT of 3-12 days, the ammonium concentration in the effluent did not exceed 1 mg NNH4 L(-1). Nitrogen removal proceeded mainly in the aeration phase as a result of ammonium losses and, to a lesser extent, dissimilative nitrate reduction over the mixing phase. The highest percentage of nitrogen removal as a result of ammonium losses was observed in series with a short filling period and long sludge age (series 1) and also in series without a mixing phase and filling over the aeration phase (series 4), whereas the highest nitrogen consumption for biomass production occurred in series 3 with filling during the reaction period and mixing phase of the cycle. 相似文献
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This study is aimed at estimating organic compounds removal and sludge production in SBR during treatment of landfill leachate. Four series were performed. At each series, experiments were carried out at the hydraulic retention time (HRT) of 12, 6, 3 and 2d. The series varied in SBR filling strategies, duration of the mixing and aeration phases, and the sludge age. In series 1 and 2 (a short filling period, mixing and aeration phases in the operating cycle), the relationship between organics concentration (COD) in the leachate treated and HRT was pseudo-first-order kinetics. In series 3 (with mixing and aeration phases) and series 4 (only aeration phase) with leachate supplied by means of a peristaltic pump for 4h of the cycle (filling during reaction period) - this relationship was zero-order kinetics. Activated sludge production expressed as the observed coefficient of biomass production (Y(obs)) decreased correspondingly with increasing HRT. The smallest differences between reactors were observed in series 3 in which Y(obs) was almost stable (0.55-0.6 mg VSS/mg COD). The elimination of the mixing phase in the cycle (series 4) caused the Y(obs) to decrease significantly from 0.32 mg VSS/mg COD at HRT 2d to 0.04 mg VSS/mg COD at HRT 12d. The theoretical yield coefficient Y accounted for 0.534 mg VSS/mg COD (series 1) and 0.583 mg VSS/mg COD (series 2). In series 3 and 4, it was almost stable (0.628 mg VSS/mg COD and 0.616 mg VSS/mg COD, respectively). After the elimination of the mixing phase in the operating cycle, the specific biomass decay rate increased from 0.006 d(-1) (series 3) to 0.032 d(-1) (series 4). The operating conditions employing mixing/aeration or only aeration phases enable regulation of the sludge production. The SBRs operated under aerobic conditions are more favourable at a short hydraulic retention time. At long hydraulic retention time, it can lead to a decrease in biomass concentration in the SBR as a result of cell decay. On the contrary, in the activated sludge at long HRT, a short filling period and operating cycle of the reactor with the mixing and aeration phases seem the most favourable. 相似文献
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采用两相厌氧+A/O工艺处理腈纶和丙烯酰胺混合废水。实验结果表明:在混合进水中V(腈纶废水)∶V(丙烯酰胺废水)=1、产酸反应器HRT为20 h、产甲烷反应器HRT为36 h、A/O池HRT为24 h、DO为4~5 mg/L、混凝池进水COD为(4 000±300) mg/L的条件下,总COD去除率为87%~89%,A/O池出水COD低于500 mg/L,出水达到GB 8978—1996《污水综合排放标准》中的三级标准;在混凝池进水BOD5/COD为0.20~0.30的条件下,产甲烷反应器出水BOD5/COD为0.55~0.65,说明两相厌氧可明显提高废水的可生化性。 相似文献
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Landfill leachate treatment using a rotating biological contactor and an upward-flow anaerobic sludge bed reactor 总被引:2,自引:0,他引:2
This paper describes the feasibility of an aerobic system (rotating biological contactor, RBC) and a biological anaerobic system (upward-flow anaerobic sludge bed reactor) at small scale for the treatment of a landfill leachate. In the first phase of the aerobic system study, a cyclic-batch RBC system was used to select perforated acetate discs among three different acetate disc configurations. These discs were chosen on the basis of high COD removal (65%) and biological stability. In the second phase, the RBC system (using four stages) was operated continuously at different hydraulic retention times (HRT), at different rotational speeds, and with varying organic concentrations of the influent leachate (2500-9000mgL(-1)). Forty percent of the total surface area of each perforated disc was submerged in the leachate. A COD removal of about 52% was obtained at an HRT of 24h and a rotational speed of 6rpm. For the anaerobic system, the reactor was evaluated with a volumetric organic load of 3273g-COD m(-3) day(-1) at an HRT of 54, 44, 39, 24 and 17h. At these conditions, the system reached COD removal efficiencies of 62%, 61%, 59%, 44% and 24%, respectively. 相似文献
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The performance of a moving-bed biofilm reactor (MBBR) system with an anaerobic-aerobic arrangement was investigated to treat landfill leachate for simultaneous removal of COD and ammonium. It was found that the anaerobic MBBR played a major role in COD removal due to methanogenesis, and the aerobic MBBR acted as COD-polishing and ammonium removal step. The contribution of the anaerobic MBBR to total COD removal efficiency reached 91% at an organic loading rate (OLR) of 4.08 kgCOD/(m3d), and gradually decreased to 86% when feed OLR was increased to 15.70 kgCOD/(m3d). Because of the complementary function of the aerobic reactor, the total COD removal efficiency of the system had a slight decrease from 94% to 92% even though the feed OLR was increased from 4.08 to 15.70 kgCOD/(m3d). Hydraulic retention time (HRT) had a significant effect on NH+4-N removal; more than 97% of the total NH+4-N removal efficiency could be achieved when the HRT of the aerobic MBBR was more than 1.25 days. The anaerobic-aerobic system had a strong tolerance to shock loading. A decrease in COD removal efficiency of only 7% was observed when the OLR was increased by four times and shock duration was 24 h, and the system could recover the original removal efficiency in 3 days. The average sludge yield of the anaerobic reactor was estimated to be 0.0538 gVSS/gCOD rem. 相似文献
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