8 resultados para UASB

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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本文报道了一种用于猪场废水处理的新型厌氧发酵反应器(AWE)。它不需外加动力就能进行间歇搅拌,并可防止浮渣增厚,加快发酵速度,提高产气量。在环境温度30℃,水力停留时间1天,处理COD浓度约为5000mg/l左右的猪粪水,AWE的池容产气率为1.81/l·d,COD去除率为85.5%,甲烷含量为76.8%。其池容产气率和COD去除率都比使用较普遍的UASB高12%左右。用这种新型的厌氧发酵装置处理大中型畜牧场的废水效果良好。

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维生素C生产废水有机物浓度高、成分复杂、排放量大,是一种亟待处理的典型工业废水。本研究分别采用实验室规模和中试规模的升流式厌氧颗粒污泥床反应器(UASB)对该制药工业废水的厌氧生物处理工艺进行了较为深入的研究。同时采用两种不依赖于纯培养的分子生物学手段—变性梯度凝胶电泳(DGGE)和扩增核糖体DNA限制性分析(ARDRA)技术揭示了UASB反应器不同运行阶段污泥中微生物群落多样性组成及变化。此外,首次研究了零价铁(Fe0)在厌氧消化过程中对反应器运行及微生物群落结构的影响。 采用城市污水处理厂厌氧消化池絮状污泥和处理啤酒废水的颗粒污泥混合接种,小试中温(35±1℃)UASB反应器在其运行的第65天启动成功。反应器稳定运行阶段,在进水COD浓度为9000mg/L、水力停留时间为12h、容积负荷为13.6 kgCOD/m3.d条件下,其COD去除率稳定在85~90%之间,沼气产率达到4.5 m3/m3.d,沼气甲烷含量平均为72%。中试UASB反应器的接种污泥为厌氧消化污泥,其启动时间相对较长,为90天。在稳定运行期,反应器的进水COD浓度为8000~10000mg/L,水力停留时间和容积负荷分别保持在12~16h和10.6~14.2 kgCOD/m3.d范围,该阶段反应器的平均COD去除率稳定在85%左右,沼气产率平均为5.2m3/m3.d,沼气中甲烷含量为69%。上述结果表明中温UASB工艺用于维生素C生产废水处理是高效、可行的。 与对照反应器相比,添加Fe0的小试UASB反应器的COD去除率和沼气产量分别提高了6.5%和10.2%。同时,磷酸盐平均去除率为79%,比对照提高了64%,目前尚未见类似研究报道。在中试规模的UASB反应器中补充一定量的Fe0可缩短反应器启动时间,促进颗粒污泥的形成,该结果可能具有重要的应用价值。培养试验进一步表明,Fe0可以作为产甲烷菌还原CO2生成甲烷的电子供体。培养实验还表明,当系统中存在硝酸盐(0.40 mM)和硫酸盐(0.26 mM)时,Fe0促产甲烷过程受到一定程度的抑制。 采用细菌通用引物968F/1401R和341F/907R获得的PCR-DGGE指纹图谱均表明UASB反应器不同运行阶段细菌种群结构变化明显。小试和中试稳定期污泥的微生物多样性均高于各自初始接种污泥。产甲烷菌通用引物340F/519R的PCR-DGGE结果显示,虽然接种污泥中产甲烷菌的丰富度系数略低于稳定期,但总体而言,反应器运行期间产甲烷菌的种群组成相对稳定。 通过构建不同处理和不同运行阶段污泥样品的16S rRNA基因文库并对克隆基因进行限制性内切酶消化、测序分析。结果表明,稳定期两个反应器微生物群落结构相似,但与各自接种污泥差异明显。小试UASB反应器接种污泥中细菌的优势菌群分别为变形菌纲的δ亚纲(28.7%)和β亚纲(17.4%),至稳定运行期则演替为革兰氏阳性低GC菌群(21.9%)和变形菌纲的δ亚纲(14.0%)。中试反应器接种污泥Green non-sulfer bacteria(25.9%)和变形菌纲的δ亚纲(16.4%)类群占优势,而稳定期Green non-sulfer bacteria类群(17.9%)、革兰氏阳性低GC菌群(16.2%)和变形菌纲的δ亚纲(15.4%)为优势菌群。 产甲烷菌的优势克隆为SRJ 230、SRJ 26和SRJ 583,前两者分别与Methanosaeta concilii和未培养的Methanobacteria-like克隆Gran7M4的同源性达到97%和98%,后者与Methanomethylovorans. sp同源性为99%。接种污泥中上述类群占总克隆数量的比例较低。小试、中试接种污泥中产甲烷菌分别占7.8%和3.0%,但稳定运行期,该比例明显增加,分别达到21.9%和18.8%。上述结果表明启动期与稳定期污泥产甲烷菌种群组成相对稳定,但各类群数量明显增加。 添加Fe0的UASB反应器稳定运行期污泥中产甲烷菌比例(31.2%)高于对照反应器(24.2%), 革兰氏阳性低GC类群、变形菌纲的δ亚纲比例差异不明显,而变形菌纲β亚纲(6.0%)和Green non-sulfer bacteria(9.2%)的比例均分别低于对照反应器(13.1%和17.1%)。该结果表明,添加Fe0使反应器内微生物群落多样性发生了显著变化。 此外,在添加Fe0的UASB反应器中检测到特异性的克隆SRJ 341和SRJ 320,两者分别同磷酸盐去除和铁氧化有关的克隆子Orbal D41和Clone195的序列相似性达95%和96%。这两个类群可能分别与磷酸盐去除及铁促产甲烷作用密切相关。这一结果尚未见报道。

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本文报道了用分离厌氧发酵新工艺处理大型畜牧场粪便及其低浓度粪水的试验结果。试验系统包括一个粪便酸化器及一个不需外加动力就能进行间歇搅拌的气化器(AWE)。探讨了系统最佳工艺条件,测试了AWE装置的搅拌效果。试验表明,AWE装置在处理低浓度粪水时,提高了传质效率,其COD产气率及去除率优于上流式污泥床(UASB),干物、挥发固体的降解率高于一般农村沼气池的传统发酵工艺。

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猪场废水COD浓度高、氨氮浓度高、悬浮物浓度高,已成为农村面源污染的主要来源,并严重威胁到农村饮用水安全。猪场废水氨氮浓度高、处理难度大,如何采用经济高效的方法,去除氨氮使其达到排放标准,一直是猪场废水处理中面临的重要难题。 厌氧氨氧化是近年受到国内外水处理研究者广泛关注的新型生物脱氮技术,具有不需要外加有机碳源、节省供氧量、降低能耗等优点。虽然国内外研究者对厌氧氨氧化过程的脱氮机理、厌氧氨氧化菌的生理生化特性等进行了多方面的研究,但已有的报道大多以模拟废水为研究对象,以猪场废水为研究对象的报道,在国内外文献中极少有报导。 本论文以猪场废水为主要研究对象,考察了猪场废水的亚硝化过程、厌氧氨氧化的启动过程,并对亚硝化和厌氧氨氧化联合用于猪场废水脱氮进行了探索。 1.论文首先研究了猪场废水的亚硝化过程,考察了废水水质和主要运行条件对亚硝化过程的影响。实验表明:(1)亚硝化阶段反应时间为8到10h时,出水中氨氮和亚硝酸盐浓度比可达到1:1~1:1.23,满足厌氧氨氧化反应对二者比例的要求;达到前述要求时,氨氮去除率达到58.3~65.6 %,亚硝化率在整个过程均保持在97 %以上,COD去除率在59.2~68.6 %;(2)曝气量(溶解氧)对亚硝化过程影响显著,随着曝气量增大,达到厌氧氨氧化要求的氨氮与亚硝酸盐氮浓度比例所需水力停留时间τ越短,pH出现明显下降的时间越短;(3)τ对应的pH在7.8~8.1之间,无需进行pH调节即可满足厌氧氨氧化反应对pH的要求;(4)氨氮和COD降解过程遵循一级反应动力学,氨氮和COD降解的速率常数分别为0.0656~0.0724 1/h和0.0491~0.0664 1/h。 2.在进行亚硝化过程研究的同时,以模拟废水为试验对象,进行厌氧氨氧化启动研究。以反硝化污泥和养殖厂储水池厌氧底泥的混合污泥作为接种污泥,历时大约100天,培育出具有厌氧氨氧化活性的污泥,氨氮和亚硝酸盐氮最高进水浓度分别为223.8 mg/L和171.4 mg/L,去除率最高分别达48%和41.5%,此时二者消耗比例为1.33:1。 3.在猪场废水的亚硝化研究完成和厌氧氨氧化过程初步启动成功后,在模拟废水中逐步加入猪场废水的亚硝化处理出水,逐步实现亚硝化和厌氧氨氧化的组合。亚硝化出水添加到厌氧反应器后,厌氧氨氧化反应仍可继续进行,且去除效率逐步提高。研究发现添加的亚硝化出水中携带的亚硝化细菌在厌氧氨氧化菌膜外层生长并累积,增加了厌氧氨氧化反应基质的传质阻力,妨碍了厌氧氨氧化效率的提高。 4.亚硝化-厌氧氨氧化实际工程应用探索中,生物接触氧化池可在有效去除废水中的有机物的同时实现亚硝化,出水中氨氮和亚硝酸盐比例平均为1.10,可满足后续厌氧氨氧化的要求;在适宜的进水浓度和温度下,ABR池出现了厌氧氨氧化启动的迹象;研究同时发现,水质的波动和气温的变化是工程中影响厌氧氨氧化菌活性的重要因素。 论文的主要创新点在于:(1)以猪场废水为研究对象,以实现厌氧氨氧化为目标,对亚硝化过程进行了比较详细的考察,获得了亚硝化出水满足厌氧氨氧化要求的工艺条件,通过对其COD和氨氮降解过程的考察,得出亚硝化阶段COD降解和氨氮去除的动力学模型;(2)对亚硝化-厌氧氨氧化处理猪场废水进行了探索,确立了影响其污染物去除率稳定的重要因素。 论文的上述研究成果,为厌氧氨氧化技术的实用性研究提供理论依据。 Piggery wastewater, which is characterized by high concentration of COD、ammonium and suspend substance, has become a most important source of non-point source pollution and also severely threats drinking water security in rural area. How to discharge piggery wastewater with the ammonium concentration meeting standard by economical and effective method? This is the most urgent problem in piggery wastewater treatment. As a new biological nitrogen removal technology, Anammox process has been paid more and more attention by researchers all over the world. Anammox has advantages of no need of organic carbon addition, low oxygen consumption and energy consumption. Plenty of investigations have been carried out to the mechanism, physiological and biochemical characteristic of bacteria about Anammox. Most of researches focused on synthetic wastewater, there is rare report about its application in piggery wastewater. In this paper,experimental studies were performed to investigate Sharon process in treatment of piggery wastewater,the start up process of Annammox using synthetic wastewater were studied, the feasibility of applying Sharon-Anammox process in the nitrogen removal of piggery wastewater was evaluated. 1. Sharon process of piggery wastewater was firstly investigated to analyze the effects of water quality and main running parameters, which meet the NH4+-N to NO2--N ratio requirement of successive Anammox. Results showed: (1)During Sharon Process,after 8~10 hours’ reaction the NH4+-N to NO2--N ratio in effluent reached 1:1.0~1:1.23, when the removal percentage of NH4+-N was 58.3~65.6 %, a semi-nitration rate of above 97 % was achieved during the process; meanwhile 59.2~68.6 % of the COD was also removed. (2)The aeration rate(oxygen) had obvious effect on the hydraulic retention time(τ) which met the NH4+-N to NO2--N ratio requirement of Anammox. As aeration rate increased, the hydraulic retention time(τ) was shortened. (3) The pH corresponding to τ was between 7.8 and 8.1, thus it needed no artificial adjustment. (4) The reduction of ammonia and COD followed the first-order reaction kinetics. The velocity constants of ammonia and COD were 0.0656~0.0724 1/h and 0.0491~0.0664 1/h, respectively. 2. The startup of Anammox process using the artificial wastewater was performed simultaneously with Sharon. The aim was to investigate the running parameters of Anammox and make foundation for the combination stage. By using the mixture of denitrifying sludge and anaerobic sludge in tank of the breeding factory, sludge of Anammox activity was cultivated in UASB after 100 days. The removal percentage of NH4+-N and NO2-N were up to 48% and 41.5%, respectively, when the NH4+-N and NO2-N influent concentration were 223.8 mg/L and 171.4 mg/L, respectively, the NH4+-N and NO2-N removal rate was 1.33:1. 3. After investigation of Sharon and startup of Anammox, effluent of Sharon process was added into the synthetic wastewater to combine Sharon and Anammox step by step. It took some time after the addition of Sharon effluent that Anammox reaction continued and the removal rate kept increasing. It indicated that nitrifying bacteria were carried by the Sharon effluent cumulated in the outer layer of Anammox. This enhanced transfer resistance of Anammox reaction and the increasing removal rate was restrained. 4. In the bio-contact oxidation pond of practical project, Sharon process were carried out successfully and organic compounds were removed effectively. An average NO2-N/ NH4+-N rate of 1:1.0 was achieved in the effluent, which met the requirement of successive Anammox. Under condition of suitable influent concentration and temperature, there was evidence that Anammox could start up in ABR. The variety of wastewater and temperature had great affects on Anammox activity in practical engineering. Innovation of this paper: (1) The Sharon process for treating piggery wastewater was discussed in details. Technological parameters that met requirement of Anammox were obtained. The dynamic models of COD and ammonium removal in the process were educed. (2) Sharon-Ananmmox for treatment of piggery wastewater was investigated, and the primary influencing factors was studied. This paper could be a theoretical consult for research of Anammox utility.

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造纸行业是造成我国水环境有机污染物的重要污染源之一,其水污染的特点是小厂多、草浆多、工艺落后、污染扩散面广、造成废 水排放量大,每年排放的废水量约39亿立方米,占全国工业废水排放量的1/6,其中有机污染物(以BOD5计)160万吨左右,约占全 国工业废水中有机污染物总量的1/4。尤以占全国制浆造纸行业90%以上的碱法草浆造纸厂的蒸煮黑液量大面广,除含有机物外,还 含有木质素、残碱、硫化物、氯化物等污染物,属于PH值高、色度深、难于治理的高浓度有机废水,对水体污染特别严重,各地要 求治理呼声很高,急待研究并尽快找出各种有效的治理途径。对于碱法草浆蒸煮,黑液高浓度废水的治理,有各种方法,根据国内 的研究进展和我们已有试验工作表明,最经济有效,具有实用价值,在生产上可获得成功是厌氧处理法。近10多年来,国外关于高 效厌氧处理技术研究进展迅速,并出现了多种多样的工艺设备,如高效厌氧生物反应器,并在实用化方面取得了很大成绩,建立了 生产性装置,达到了高负荷运行,效果良好。本试验是根据我们已有研究基础,针对我国国情,对小型制浆造纸厂水污染防治除了 开发碱回收及各种综合利用技术外,要特别加强废水(废液)实用技术研究的指导思想,本试验采用改进型的上流式厌氧污泥床反应 器,设计了两种试验方案,通过试验结果如下。1. 试验方案I—碱法草浆黑液酸化和厌氧发酵I号UASB反应器动态模型试验结果表 明:(1). 采用中温35℃±1℃高效厌氧反应器USAB内装有填料(陶粒)和三相分离器,具有保持高浓度生物量和防止污泥流失的特点 ,污泥浓度Vs 可达30%以上,因而具有高效、节能、产能、滞留期短的优点,当进水CODcr在7500-10000mg/l,HRT由7天缩短到3天 ,有机容积负荷在1.22gCODcr/l·d-3.43gCODcr/l·d时,CODcr平均去除率可达55%-45.5%,最高CODcr去除率可达60.2-63.5%, BOD5去除率可达75.9-83.2%,沼气容积产气率可达0.29-0.67l/l·d,每克CODcr转化为沼气产率达0.39-0.48l/gCODcr·d,CH4含量 65.8-75.5%。厌氧发酵出水再用化学法进行后处理脱除难降解的木质素,CODcr总去除率达80%以上。(2). 动态试验结果表明:采 用酸化—厌氧发酵处理黑液工艺合理,技术路线可行。2. 试验方案II—黑液用化学法(Hcl)去除木质素进行厌氧发酵,II号UASB反 应器动态模型试验结果表明:(1). 采用中温35℃±1℃高效厌氧反应器UASB(内有软填料),当进水CODcr7000-13000mg/l左右,HRT 由6天缩短到1天,有机负荷由0.98gCODcr/l·d增加到11gCODcr/l·d时,COD平均去除率均可稳定在70-77%,BOD5去除率为87.3- 93.1%,沼气容积产气率0.21-2.6l/l·d,每克CODcr转化为沼气产率为0.39-0.48l/gCODcr·d,高的可达0.53l/gCODcr·d,转化 率较高,CH4含量63-70%。(2). 试验证明碱法草浆黑液物化预处理—厌氧发酵处理的技术路线也是可行的,工艺合理、效果较好。 在有条件的工厂可采用。3.厌氧发酵阶段几大类群微生物计数表明:(1). 当发酵工艺和运行处于相对稳定状态时,微生物群体的 组成也达到相对的稳定,各类微生物之间保持动态平衡关系。当产乙酸菌的数量为107-108个/ml时,产甲烷菌的数量为105-106 个/ml,当产乙酸菌数量为106-107个/ml时,产甲烷菌的数量为103-105个/ml。(2).稳态运行条件下,黑液预处理为甲烷发酵创造 了有利的生态环境,获得了较好的处理效果和较高的COD转化为沼气的产率0.39-0.48l/g·CODcr·d,反应器中形成较为稳定而数 量较下水污泥中高1-2个数量级的厌氧发酵微生物区系组成。这一结果为黑液厌氧发酵提供了微生物理论依据。Paper industry is one of the important pollution source of water environment in our country. Its character of water pollution is many small factories, much grass pulp, disadvantageous technique, large preading area of pullution. Its effluent makes up 1/6 of whole country's industry wastwater. Its organic pollutant accounts 1/4 of whole country's. Alkaline grass paper pulp effluent with pollutants such as ligoin, remaining alkali sulfide, chloride besides organic material, is a kind of high concentrate organic wastewater which has high PH walug, dark colour and is difficult in treatment. There is urgent require to find ways to treat the wastewater. There are different ways to treat alkaline paper grass pulp effluent. According to the research advances and our experiment work, the most economical and useful way is anaerobic degradation which was advanced quick in last ten years. In the control of waste water of small pulp paper mill, the study of wastewater utilization technology should be emphasized, besides alkaline retrieving and different kinds of comprehensive utilization technology. Our experiment used modified UASB(Upflow Anaerobic Sludge Blanket Reactor). Two kinds of plan were disgned. The results are lined below. 1. The first experiment plant-aciding black pulp effluent and methanogenic digestion. The dynamic model experiment results of I-UASB reactor showed: (1)The mesophilic(35℃±1℃)high effect UASB reactor having haydite and threee state seperation in it had the character of keeping high bioimass concentration and preventing losss of sludge. It had advantages of high effect, energe saving, energe prodcing and short HRT(Hydroulic retention time). When the influent COD was 7500-10000mg, HRT was shortened from 7 days to 3days, organic loading rate was 1.22g-3.43COD/l· d, the average COD removal efficiency was 55%-45%. The highest COD efficiency was 60.2-63.5%, BOD removal of 75.9 -83.4% was achieved. Biogass production rate were up to 0.29-0.67l/l·d. Biogass converted efficiency from every gram of COD could reach 0.39-0.48l/gCOD·d. Methane content was 65.0-75.5%. Chemical method was used to deplate lignin in anaerobic digestion effluent. Total COD removal efficiency could be more than 80%. (2)Using aciding annaerobic digestion to treat the black effluent was reseanable in technique and technology. 2. The second experiment plan-anaerobic digestion was used after the chemical method was used to deplate lignin in the black effluent. The result of dynamic experiment of II-UASB reactor showed: (1)High effect mesophilic (35℃±1℃)UASB reactor having soft slaffing in was used. When influent COD was about 7000-13000mg/l, HRT was shortened from 6 days to 1 day and organic loading rate was increased from 0.90 to 11g COD /l·d, average COD removal efficiency remained stable on 70-77%. BOD, removal efficiency was between 87.3-93.1%. Biogass production rate was 0.2-2.6l/l ·d .Biogass converted efficiency from a gram of COD was 0.39-0.481/gCOD·d with the high value of 0.53l/gCOD·d. Methane content was 63-70%. (2)The way that using physical, chemical Pre-treatment-anaerobic digestion to treat alkaline black effluent is feasible and can be used in some factories when the condition exists. 3. Counting of several class of microoganisms in anaerobic digestion stage showed: (1)As the disgestion was in stable motion, the compositon of microorganic colony could get relative stable. Dynamic balance was remaining among different kinds of microorganism such as methanogenic bacteria, Acidogenic bacteria, sulfate reducing bacteria, and heterotrophic bacteria. (2)Under stable motion, the pre-treatment of black effluent produced favourable eco-enviroment for methanegenic digestion. Good treatment effect and high biogass convertent efficiency from COD(0.39-0.48l/g·COD· d)were gotten. Some stable and high quantity(10-100times more than sewage sludge)microorganism colony were formed in the reactor. This result provided theoretical basis for anaerobic digestion of black effluent.

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采用两段式UASB+AF复合厌氧反应器处理生活污水,着重研究了其快速启动的条件。结果表明,水解酸化段无需调节pH,运行20 d后对COD的去除率即可达60%左右且保持稳定;甲烷化段受pH的影响较大,利用Na2CO3和NaHCO3的混合液调节该段进水的pH值在6.8~7.2之间,6 d后对COD的去除率即可稳定地保持在30%左右。启动期内,温度对水解酸化段的影响不大,但显著影响甲烷化段,在试验条件下,甲烷化反应的最佳温度为30℃;在水解酸化段不设混合液回流、甲烷化段设置混合液回流的条件下,最佳的回流方式为:间隔2 h回流10 s。采取上述优化措施后,系统的启动时间可缩短到30 d以内,仅为常规厌氧工艺启动时间(3~6个月)的1/3~1/6,反应器的运行效率得到了大幅度提高。

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天然色素生产废水是一种色度大、难处理的高浓度有机废水,为了寻找该废水的有效处理方法,本文作者采用由升流式厌氧污泥床(UASB)、生物接触氧化、混凝吸附组成的废水处理工艺,对该废水进行了处理试验,结果表明,对稀释4倍的原水,当进水COD为14900mg/L左右时,UASB经过36h的水力停留时间,COD的去除率为58.2%~60.2%、出水色度为180~270倍,SS为119~126mg/L,pH值为6.5~6.8;UASB出水经过24h好氧生物接触氧化反应,COD的去除率超过90%,SS<70mg/L;最终经过Ca(ClO)2氧化和煤渣吸附深度处理,脱色可至无色,出水COD为200mg/L以下。UASB生物接触氧化氧化吸附组合处理工艺处理该类天然色素生产废水是可行的。