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61.
以柠檬酸废水厌氧颗粒污泥为接种物,在不同pH值调控条件下开展柠檬酸生产废水剩余活性污泥厌氧发酵产酸研究.通过对发酵液挥发性脂肪酸(VFAs)、有机质、氮磷和污泥脱水性能的分析,探讨了柠檬酸污泥厌氧产酸机制.结果表明,pH≥10的碱性条件更有利于有机质的溶出从而促进VFAs的产生.三维荧光光谱分析发现在恒定pH值下腐殖酸(HA)和富里酸(FA)会大量溶出降低VFAs的产量.初始pH=10是柠檬酸污泥厌氧产酸的最佳p H值,发酵4d的VFAs浓度最高达(6681.47±126.82)mgCOD/L,是文献报道中市政污泥产酸量的近2倍,其中乙酸占比49.8%,发酵后产酸功能菌Chloroflexi、Bacteroidota的相对丰度分别由初始的9.52%、10.87%增至16.84%、14.39%,污泥归一化毛细吸水时间(nCST)为(11.34±0.27)s·L/g,脱水性能良好,发酵液TP浓度为(20.45±0.33) mg/L.研究表明,利用柠檬酸剩余活性污泥碱性厌氧发酵产酸作为污水处理过程中的外加碳源具有较大潜力. 相似文献
62.
不同温度下微生物和纤维素酶对发酵猪粪理化特性的影响 总被引:3,自引:0,他引:3
采用恒温发酵培养试验,研究了5℃和25℃时分别接种纤维素酶(X)、枯草芽孢杆菌(K)和EM菌(E)及其组合对新鲜猪粪发酵中的全氮、铵态氮、有机质、p H及微生物数量的影响.结果表明,5℃条件下,猪粪中微生物生长受抑制,细菌、真菌、放线菌数量均明显低于25℃,发酵终期猪粪有机质含量为70%~83%,p H值为7.16~7.36;25℃条件时,发酵终期猪粪有机质含量降至61%~72%,p H值升至8.09~8.94.与对照相比较,25℃下添加微生物和纤维素酶的处理有机质含量降低了2.95%~7.70%(除了K和XE处理),C/N值降低了4.04%~37.59%(除了XK处理),p H值增加了1.7%~26.8%.在总的添加量一致的条件下,发酵剂组合KE、XE、XK、XKE对猪粪发酵的效果优于单一发酵剂的X、K、E处理. 相似文献
63.
pH和发酵时间对厨余垃圾发酵产乳酸及光学特性的影响 总被引:1,自引:0,他引:1
通过间歇实验探讨了在中温、非灭菌条件下,pH和发酵时间对厨余垃圾发酵产乳酸及其光学特性的影响.结果表明,采用非灭菌的厨余垃圾发酵产乳酸,发酵液中还原糖浓度低,pH调节到近中性和偏碱性(pH为6~8)的各组还原糖浓度高于偏酸性组(pH=5和pH=4的对照组);在控制pH为7时,总乳酸产生速率达到0.59 g·(L·h)-1,单位挥发性固体的乳酸产量达到0.62 g·g-1;控制pH为7和8时,以有机碳表示的乳酸分别占发酵液总有机碳的78%和89%;控制pH为8时,L-乳酸是主要的异构体形式,单位挥发性固体L-乳酸产量达到0.48 g·g-1;响应面分析结果表明,发酵时间在120 h前,随着pH升高和发酵时间的延长,发酵液中L-乳酸浓度增大,120 h后则下降;pH和发酵时间对L-乳酸占总乳酸的比例有明显影响:偏酸性条件(未调pH及pH=5),发酵前120 h,该比例随发酵时间逐渐增大,L-乳酸在总乳酸中的比例达到0.9,其后,则逐渐下降;偏碱性条件下(pH=8),L-乳酸在总乳酸中的比例在整个发酵时间段内都保持在0.86以上,在发酵时间48 h时达到0.93,而在pH中性条件下,该比例在发酵后期显著下降;控制pH为8时,可以同时获得高的乳酸产量和光学纯度. 相似文献
64.
采用PCR-DGGE等分析手段,研究了餐厨垃圾乳酸发酵过程中的微生物种群动态变化.结果表明,餐厨垃圾不灭菌而接种的开放式发酵体系中微生物的多样性高于灭菌后接种的非开放式发酵体系,而乳酸产量也是前者高于后者.说明发酵体系中的微生物多样性与乳酸产量有很大的相关性.通过对部分条带的测序可知,餐厨垃圾开放式发酵体系中除含有接种用的嗜淀粉乳杆菌外,还含有很多土著乳酸菌,如Lactobacillus sp.、Lactobacillus casei和Lactobacillus plantarum,以及土著水解菌,如假单胞菌属(Pseudomonas sp.)等,这些土著菌的存在是促进乳酸发酵的重要因素.PCR-DGGE结合技术对于成分复杂的餐厨垃圾中的细菌种群结构的动态变化分析是可行的. 相似文献
65.
66.
A new procedure of determining optimal C/N (the rate of carbon source to nitrogen source) of mixed distillers' grains for combined bacteria synergic fermentation is established. At the same time an improved method evaluating bacteria growth, called method of dry cell weighing by filtering is developed. For each combination of C and N , their initial and residual contents before and after fermentation respectively are determined. Then followed the calculation of utilization of C and N sources by the compound bacteria. The optimal C/N is finally located from among the utilization of C and N of several combinations and the weight of produced mass of oven-dried thallus The conditions of fermentation are: inoculum size 10%, temperature 30.0℃, rotational speed 170 r/min, shake culture time 48h. The best results obtained from orthogonal experiments are: maximum mass of oven dried thallus is 14.693g in a liter liquid medium, maximum utilization rate of carbon source is 98.13% and maximum utilization rate of nitrogen is 78.14%. Optimal C/N is 5.1. 相似文献
67.
针对我国农村地区污水量波动和断流的排放特性,提出了一种在断流时段补给污水处理系统自身产出的尾水与污泥发酵液混合液的运行模式,以中试A2/O为对象,研究了系统在该运行模式下的污染物去除特性,以期为今后我国农村地区污水处理装置的设计和运行提供新的思路.结果表明,尾水与发酵液以12:1的比例混合后作为碳源与原水相比具有更好的反硝化和释/吸磷特性,具有强化脱氮除磷的功能;以尾水与发酵液混合液在断流时段作为补给碳源可改善系统对TN和TP的去除效率,其平均去除率分别由69.27%和86.94%提升到73.34%和89.94%,相应地平均出水浓度分别由15.77 mg ·L-1和0.80 mg ·L-1降低到13.76 mg ·L-1和0.64 mg ·L-1.16S rRNA基因测序结果表明,随着实验的进行,系统中5种常见的水解酸化菌属、6种聚磷菌属和4种反硝化菌属的相对丰度得到提升;通过对系统活性污泥性状的长期监测可以看出,以尾水与发酵液混合液在断流时段作为补给碳源会恶化系统活性污泥的沉降性能,系统活性污泥的平均SVI由阶段Ⅰ的106 mL ·g-1上升至阶段Ⅱ的131 mL ·g-1,然而这种恶化程度并不会对系统的污泥活性和污染物去除性能造成不利影响,在整个实验过程中系统均未出现污泥膨胀的现象. 相似文献
68.
Shortage in phosphorus (P) resources and P wastewater pollution is considered as a serious problem worldwide. The application of modified biochar for P recovery from wastewater and reuse of recovered P as agricultural fertilizer is a preferred process. This work aims to develop a calcium and magnesium loaded biochar (Ca–Mg/biochar) application for P recovery from biogas fermentation liquid. The physico-chemical characterization, adsorption efficiency, adsorption selectivity, and postsorption availability of Ca-Mg/biochar were investigated. The synthesized Ca–Mg/biochar was rich in organic functional groups and in CaO and MgO nanoparticles. With the increase in synthesis temperature, the yield decreased, C content increased, H content decreased, N content remained the same basically, and BET surface area increased. The P adsorption of Ca–Mg/biochar could be accelerated by nano-CaO and nano-MgO particles and reached equilibrium after 360 min. The process was endothermic, spontaneous, and showed an increase in the disorder of the solid–liquid interface. Moreover, it could be fitted by the Freundlich model. The maximum P adsorption amounts were 294.22, 315.33, and 326.63 mg/g. The P adsorption selectivity of Ca–Mg/biochar could not be significantly influenced by the typical pH level of biogas fermentation liquid. The nano-CaO and nano-MgO particles of Ca–Mg/biochar could reduce the negative interaction effects of coexisting ions. The P releasing amounts of postsorption Ca–Mg/biochar were in the order of Ca–Mg/B600 > Ca–Mg/B450 > Ca–Mg/B300. Results revealed that postsorption Ca–Mg/biochar can continually release P and is more suitable for an acid environment. 相似文献
69.
70.
During the acidogenic fermentation converting waste activated sludge (WAS) into short-chain fatty acids (SCFA), hydrolysis of complex organic polymers is a limiting step and the transformation of harmful substances (such as antibiotics) during acidogenic fermentation is unknown. In this study, potassium ferrate (K2FeO4) oxidation was used as a pretreatment strategy for WAS acidogenic fermentation to increase the hydrolysis of sludge and destruct the harmful antibiotics. Pretreatment with K2FeO4 can effectively increase the SCFA production during acidogenic fermentation and change the distribution of SCFA components. With the dosage of 0.2 g/g TS, the maximum SCFA yield was 4823 mg COD/L, which is 28.3 times that of the control group; acetic acid accounts for more than 90% of the total SCFA. The higher dosage (0.5 g/g TS) can further increase the proportion of acetic acid, but inhibit the overall performance of SCFA production. Apart from the promotion of hydrolysis and acidogenesis, K2FeO4 pretreatment can also simultaneously oxidizes and degrades part of the antibiotics in the sludge. When the dosage is 0.5 g/g TS, the degradation efficacy of antibiotics is the most significant, and the contents of ofloxacin, azithromycin, and tetracycline in the sludge are reduced by 69%, 42%, and 50%, respectively. In addition, K2FeO4 pretreatment can also promote the release of antibiotics from sludge flocs, which is conducive to the simultaneous degradation of antibiotics in the subsequent biological treatment process. 相似文献