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Performance characterization of a model bioreactor for the biodegradation of trichloroethylene by Pseudomonas cepacia G4.

机译:假单胞菌G4对三氯乙烯生物降解的模型生物反应器的性能表征。

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摘要

Pseudomonas cepacia G4 grown in chemostats with phenol demonstrated constant specific degradation rates for both phenol and trichloroethylene (TCE) over a range of dilution rates. Washout of cells from chemostats was evident at a dilution rate of 0.2 h-1 at 28 degrees C. Increased phenol concentrations in the nutrient feed led to increased biomass production with constant specific degradation rates for both phenol and TCE. The addition of lactate to the phenol feed led to increased biomass production but lowered specific phenol and TCE degradation rates. The maximum potential for TCE degradation was about 1.1 g per day per g of cell protein. Cell growth and degradation kinetic parameters were used in the design of a recirculating bioreactor for TCE degradation. In this reactor, the total amount of TCE degraded increased as either reaction time or biomass was increased. TCE degradation was observed up to 300 microM TCE with no significant decreases in rates. On the average, this reactor was able to degrade 0.7 g of TCE per day per g of cell protein. These results demonstrate the feasibility of TCE bioremediation through the use of bioreactors.
机译:在具有苯酚的恒化器中生长的洋葱假单胞菌G4在一定的稀释率范围内显示出苯酚和三氯乙烯(TCE)的恒定比降解率。在28摄氏度下,以0.2 h-1的稀释率可以从化学恒温器中清除细胞。营养物质进料中苯酚浓度的增加导致生物量的产生增加,同时苯酚和TCE的比降解率保持恒定。将乳酸盐添加到苯酚进料中导致增加的生物量产生,但是降低了特定苯酚和TCE的降解速率。每克细胞蛋白每天降解三氯乙烯的最大潜力约为1.1克。细胞生长和降解动力学参数用于TCE降解的循环生物反应器的设计中。在该反应器中,降解的TCE总量随着反应时间或生物量的增加而增加。观察到高达300 microM TCE的TCE降解,速率没有明显降低。平均而言,该反应器每天每克细胞蛋白能够降解0.7 g TCE。这些结果证明了通过使用生物反应器进行TCE生物修复的可行性。

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