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Efficiency of ultrasound for degradation of an anionic surfactant from water: Surfactant determination using methylene blue active substances method

机译:超声降解水中阴离子表面活性剂的效率:使用亚甲基蓝活性物质方法测定表面活性剂

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The removal of a surfactant from wastewater is usually difficult due to its toxicity and low biodegradability. The aim of this study was to apply sonoreactor for degradation of an anionic surfactant from aqueous solution. An ultrasonic bath with frequency of 130?kHz was used to investigate the effects of different operational parameters such as sonication time, initial concentration and power. In this study, experiments of linear alkylbenzene sulfonates solution were performed using methylene blue active substances method. Experiments were performed at initial concentrations of 0.2?, 0.5?, 0.8? and 1?mg/L, frequency of 130?kHz, acoustic powers value of 400 and 500?W, temperature of 18–20?°C and pH value of 6.8–7. This study showed that linear alkylbenzene sulfonates degradation rate was found to increase with increasing sonication time and power. In addition, as the concentration increased, the linear alkylbenzene sulfonates degradation rate decreased in the ultrasonic reactor.?Surfactants are one of the largest groups of pollutants which exist in almost all urban and many industrial wastewaters.?Ultrasonic reactors alone may not be useful for reducing completely complex wastewaters of high surfactant load.?Application of ultrasonic reactors in combination with other treatment processes including Ozone, UV irradiation, chlorination, Fenton, nanoparticles and H2O2could be used as a pre-treatment unit in a sequential chemical and biological treatment process.
机译:由于其毒性和低生物降解性,通常难以从废水中去除表面活性剂。这项研究的目的是将声反应器用于从水溶液中降解阴离子表面活性剂。使用频率为130?kHz的超声波浴来研究不同操作参数(如超声处理时间,初始浓度和功率)的影响。在这项研究中,使用亚甲基蓝活性物质方法进行了线性烷基苯磺酸盐溶液的实验。实验的初始浓度为0.2?,0.5?,0.8?。 1 mg / L,频率130 kHz,声功率值400和500 W,温度18–20°C,pH值6.8-7。这项研究表明,线性烷基苯磺酸盐的降解速率随超声处理时间和功率的增加而增加。另外,随着浓度的增加,线性烷基苯磺酸盐在超声波反应器中的降解率降低。?表面活性剂是几乎所有城市和许多工业废水中存在的最大污染物组之一。?仅超声反应器可能无法用于减少使用高表面活性剂负荷的完全复杂的废水。将超声反应器与其他处理工艺(包括臭氧,紫外线辐射,氯化,芬顿,纳米颗粒和H2O2)结合使用,可以在后续的化学和生物处理工艺中用作预处理单元。

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