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Optimization of treating phenol from wastewater through the TiO_2-catalyzed advanced oxidation process and response surface methodology

机译:通过TiO_2催化的先进氧化过程和响应表面方法优化废水处理苯酚

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The use of dispersed catalysts in aqueous medium inside reactors in advanced oxidative processes is common among researchers. However, due to the difficult separation of these species after treatment, in many cases, the treatment process is unfeasible. In this context, the main target of the work was the evaluation of degradation of the phenolic solution by ozonation titanium dioxide (TiO2/P25), supported on zeolite spheres. The process was investigated through the response surface methodology (RSM) and optimized by the generalized reduced gradient (GRG) algorithm. The effects of various operating parameters including pH, power ozone (O-3) generation, flow rate, and treatment time were investigated, using as a response to removal of chemical oxygen demand (COD). It was made in optimum conditions the ratio of biochemical oxygen demand (BOD)/chemical oxygen demand to check the increasing biodegradability, aiming ozonation as preliminary treatment, with the possibility of subsequent biological treatments. There was an increase in this ratio from 0.17 to 0.50 in 48min, which would facilitate the use of the subsequent biological process. The proposed model showed good fit to the experimental data with R-2 andR(adj)(2) correlation coefficients of 0.9964 and 0.9932, respectively.
机译:在先进的氧化过程中,在高氧化过程中,在高氧化过程中的水性介质中使用分散的催化剂在研究人员中是常见的。然而,由于在治疗后这些物种的困难分离,在许多情况下,治疗过程是不可行的。在这种情况下,该工作的主要目标是通过臭氧化二氧化钛(TiO 2 / P25)的酚醛溶液降解的评估,所述渗透石球体负载。通过响应面方法(RSM)研究该过程,并通过广义减少梯度(GRG)算法进行了优化。研究了包括pH,功率臭氧(O-3)产生,流速和处理时间的各种操作参数的影响,用作除去化学需氧量(COD)的反应。它是在最佳条件下制造的生物化学需氧量(BOD)/化学氧气需求检查生物降解性的增加,旨在作为初步处理的令人望作的措施,具有随后的生物处理。在48min中,该比例的增加率从0.17到0.50增加,这将有助于使用随后的生物过程。所提出的模型显示出良好的拟合与R-2和R(2)相关系数分别为0.9964和0.9932的实验数据。

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