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Application of the response surface and desirability design to the Lambda-cyhalothrin degradation using photo-Fenton reaction

机译:响应面和适宜性设计在光芬顿反应降解λ-氯氟氰菊酯中的应用

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Lambda-cyhalothrin is a potent pyrethroid insecticide used widely in pest management. Detectable levels of the pyrethroid in agricultural watersheds are potentially toxic to aquatic organisms. There is little information in the scientific literature about degradation in aqueous media of the Lambda-cyhalothrin by Advanced Oxidative Process. A mathematical approach for the degradation of this compound has not yet been fully explored... The Central composite design (CCD) and response surface method (RSM) were applied to evaluate and optimize the interactive effects of two operating variables. The initial dosages of H_2O_2 and Fe~(2+) on photo-Fenton degradation of an aqueous solution of Lambda-cyhalothrin in a recirculation flow-through UV photoreactor were used. The remaining concentration of Lambda-cyhalothrin (y_1) and the percentage removal of total organic carbon (3/2) were the monitored factors since they are dependent parameters of y_1 and y_2. According to analysis of variances (ANOVA) results, two proposed models can be used to navigate the design space with regression coefficient R~2 - 0.834 and 0.843 for y_1 and y_2, respectively. A multi-response optimization procedure, based on the global desirability of the factors, was performed to establish the best concentrations of hydrogen peroxide and ferrous sulfate that would allow the most efficient degradation of Lambda-cyhalothrin concomitant with a maximal removal of total organic carbon. The global desirability surface revealed that 0.295 mmol L~(-1) of ferrous sulfate and 3.85 mmol L~(-1) of hydrogen peroxide were close to the optimum conditions to satisfy both factors simultaneously using minimal amounts of reagents. These photo-Fenton conditions promoted 100% of Lambda-cyhalothrin degradation and 79.83% TOC removal (mineralization) in 120 min of reaction time.
机译:Lambda-cyhalothrin是一种有效的拟除虫菊酯杀虫剂,广泛用于害虫管理。在农业流域中可检出的拟除虫菊酯水平对水生生物有潜在的毒性。在科学文献中,很少有关于通过高级氧化过程在Lambda-氯氟氰菊酯的水性介质中降解的信息。尚未对该化合物降解的数学方法进行全面研究。中央复合设计(CCD)和响应面方法(RSM)用于评估和优化两个操作变量的相互作用。使用了H_2O_2和Fe〜(2+)的初始剂量,该剂量是在循环流通的紫外光反应器中对氟氯氰菊酯水溶液进行光芬顿降解的。 λ-氟氰菊酯的剩余浓度(y_1)和总有机碳去除率(3/2)是监测因素,因为它们是y_1和y_2的相关参数。根据方差分析(ANOVA)结果,可以使用两个建议的模型在y_1和y_2的回归系数R〜2-0.834和0.843的情况下导航设计空间。基于全局因素的需要,执行了一个多响应优化过程,以建立最佳浓度的过氧化氢和硫酸亚铁,从而可以最有效地降解Lambda-cyhalothrin,同时最大程度地去除总有机碳。总体期望表面显示0.295 mmol L〜(-1)的硫酸亚铁和3.85 mmol L〜(-1)的过氧化氢接近最佳条件,可以同时使用最少的试剂同时满足这两个因素。这些光芬顿条件在120分钟的反应时间内促进了100%的氟氯氰菊酯降解和79.83%的TOC去除(矿化)。

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