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Hydrodynamic and kinetic study of a hybrid detoxification process with zero liquid discharge system in an industrial wastewater treatment

机译:零液体排放系统混合排毒过程在工业废水处理中的水动力和动力学研究

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摘要

This work focused on the degradation of toxic organic compounds such as methyl violet dye (MV) in water, using a combined photocatalysis/low pressure reverse osmosis (LPRO) system. The performance of the hybrid system was investigated in terms of the degradation efficiency of MV, COD and membrane separation of TiO2. The aim of the present study was to design a novel solar reactor and analyze its performance for removal of MV from water with titanium dioxide as the photocatalyst. Various operating parameters were studied to investigate the behavior of the designed reactor like initial dye concentration (C = 10-50 mg/L), loading of catalyst (CTiO2 = 200-800 mg/L), suspension flow rate (QL = 0.3-1.5 L/min), pH of suspension (5–10), and H2O2 concentration (CH2O2 = 200-1000 mg/L). The operating parameters were optimized to give higher efficiency to the reactor performance. Optimum parameters of the photocatalysis process were loading of catalyst (400 mg/L), suspension flow rate (0.5 L/min), H2O2 concentration (400 mg/L), and pH = 5. The designed reactor when operating at optimum conditions offered a degradation of MV up to 0.9527 within one hours of operation time, while a conversion of 0.9995 was obtained in three hours. The effluent from the photocatalytic reactor was fed to a LPRO separation system which produced permeate of turbidity value of 0.09 NTU which is closed to that of drinking water (i.e., 0.08 NTU). The product water was analyzed using UV-spectrophotometer and FTIR. The analysis results confirmed that the water from the Hybrid-System could be safely recycled and reuse. It was found that the kinetics of dye degradation was first order with respect to dye concentration and could be well described by Langmuir-Hinshelwood model. A power-law based empirical correlation was developed for the photocatalysis system, related the dye degradation (R) with studied operating conditions.
机译:这项工作集中在使用光催化/低压反渗透(LPRO)组合系统降解水中有毒有机化合物(如甲基紫染料(MV))的过程中。从MV,COD的降解效率和TiO2的膜分离方面研究了混合系统的性能。本研究的目的是设计一种新颖的太阳能反应器,并分析其以二氧化钛为光催化剂从水中去除MV的性能。研究了各种操作参数以研究设计的反应器的行为,如初始染料浓度(C = 10-50 mg / L),催化剂负载量(CTiO2 = 200-800 mg / L),悬浮液流速(QL = 0.3- 1.5 L / min),悬浮液的pH(5-10)和H2O2浓度(CH2O2 = 200-1000 mg / L)。优化操作参数以使反应器性能具有更高的效率。光催化过程的最佳参数是催化剂的负载量(400 mg / L),悬浮液流速(0.5L / min),H2O2浓度(400mg / L)和pH = 5.设计的反应器在最佳条件下运行在一小时的操作时间内,MV降解至0.9527,而三小时内的转化率为0.9995。将来自光催化反应器的流出物送入LPRO分离系统,该系统产生的浊度值为0.09NTU,与饮用水的浊度接近(即0.08NTU)。使用UV分光光度计和FTIR分析产物水。分析结果证实,混合系统中的水可以安全地回收和再利用。发现染料降解的动力学是关于染料浓度的第一级,并且可以由Langmuir-Hinshelwood模型很好地描述。针对光催化系统开发了基于幂律的经验相关性,将染料降解(R)与研究的操作条件相关联。

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