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芬顿氧化预处理优化——从废水污泥中生产增值产品的苏云金芽孢杆菌法。

Optimization of Fenton oxidation pre-treatment for B. thuringiensis - based production of value added products from wastewater sludge.

机构信息

INRS-ETE, Université du Québec, 490, Rue de Couronne, Québec G1K 9A9, Canada.

出版信息

J Environ Manage. 2010 Aug;91(8):1657-64. doi: 10.1016/j.jenvman.2010.03.007. Epub 2010 Apr 8.

Abstract

Fenton oxidation pretreatment was investigated for enhancement of biodegradability of wastewater sludge (WWS) which was subsequently used as substrate for the production of value- added products. The Response surface method with fractional factorial and central composite designs was applied to determine the effects of Fenton parameters on solubilization and biodegradability of sludge and the optimization of the Fenton process. Maximum solubilization and biodegradability were obtained as 70% and 74%, respectively at the optimal conditions: 0.01 ml H(2)O(2)/g SS, 150 H(2)O(2)/Fe(2+), 25 g/L TS, at 25 degrees C and 60 min duration. Further, these optimal conditions were tested for the production of a value added product, Bacillus thuringiensis (Bt) which is being used as a biopesticide in the agriculture and forestry sector. It was observed that Bt growth using Fenton oxidized sludge as a substrate was improved with a maximum total cell count of 1.63 x 10(9)CFU ml(-1) and 96% sporulation after 48 h of fermentation. The results were also tested against ultrasonication treatment and the total cell count was found to be 4.08 x 10(8)CFU ml(-1) with a sporulation of 90%. Hence, classic Fenton oxidation was demonstrated to be a rather more promising chemical pre-treatment for Bt - based biopesticide production using WWS when compared to ultrasonication as a physical pre-treatment.

摘要

芬顿氧化预处理被研究用于增强废水污泥(WWS)的生物降解性,随后将其用作生产增值产品的底物。响应面法与分数阶因子和中心复合设计相结合,用于确定芬顿参数对污泥的溶解和生物降解性的影响,并优化芬顿工艺。在最佳条件下,分别获得了 70%和 74%的最大溶解率和生物降解率:0.01 ml H₂O₂/g SS、150 [H₂O₂](0)/[Fe²⁺](0)、25 g/L TS、25℃和 60 min 持续时间。此外,这些最佳条件还用于生产增值产品苏云金芽孢杆菌(Bt),Bt 作为一种生物农药在农业和林业部门中得到了应用。结果表明,使用芬顿氧化污泥作为底物可以提高 Bt 的生长,最大总细胞计数为 1.63 x 10(9)CFU ml(-1),发酵 48 h 后孢子形成率达到 96%。结果还与超声处理进行了比较,总细胞计数为 4.08 x 10(8)CFU ml(-1),孢子形成率为 90%。因此,与超声处理作为物理预处理相比,经典芬顿氧化被证明是一种更有前途的用于 WWS 生产基于 Bt 的生物农药的化学预处理方法。

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