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Microwave-granular activated carbon (MW-GAC) system for carbofuran degradation: Analysis of characteristics and recyclability of the spent GAC

机译:用于呋喃呋喃降解的微波颗粒活性炭(MW-GAC)系统:废GAC的特性和可回收性分析

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Granular activated carbon (GAC) is frequently used to remove pollutants from wastewater. However, the mechanism of pollutant removal by GAC is by adsorption and hence spent GAC should be regenerated and used for several cycles for minimizing the cost of treatment. In the present study, the characteristics of GAC and carbofuran removal mechanism were explored in a microwave-GAC (MW-GAC) system. Carbofuran removal by adsorption was 52% at a GAC loading of 0.8g/L. However, complete carbofuran degradation from aqueous solution as well as from GAC surface was obtained within 30min in a MW-GAC system. In addition, A COD removal efficiency of 72% was observed in the MW-GAC system at pH 8 and 80 degrees C after 30min. The degradation occurred mainly through cleavage of carbamate group and oxidation of furan ring. Carbofuran removal by adsorption was enhanced with MW exposed GAC due to the improvement in the surface property on exposure to MW. On the other hand, recyclability of MW exposed GAC in the MW-GAC system indicated > 99% degradation of carbofuran in all the three cycles tested. As a whole, complete degradation of carbofuran and the effective recycling of the spent GAC could be achieved in the MW-GAC system.
机译:颗粒活性炭(GAC)通常用于去除废水中的污染物。但是,GAC去除污染物的机理是通过吸附,因此废GAC应该再生并用于多个循环,以最大程度地降低处理成本。在本研究中,在微波-GAC(MW-GAC)系统中探索了GAC的特性和呋喃丹的去除机理。 GAC负载为0.8g / L时,吸附去除呋喃丹的比例为52%。但是,在MW-GAC系统中,可以在30分钟内从水溶液以及GAC表面完全降解呋喃丹。此外,在30分钟后在pH 8和80摄氏度的MW-GAC系统中,COD去除效率达到72%。降解主要通过氨基甲酸酯基团的裂解和呋喃环的氧化而发生。暴露于MW的GAC可以提高吸附去除呋喃丹的能力,这是因为暴露于MW的表面性能得到了改善。另一方面,MW-GAC系统中MW暴露的GAC的可回收性表明,在所有测试的三个循环中,呋喃丹的降解率均> 99%。总体而言,可以在MW-GAC系统中实现呋喃呋喃的完全降解和废GAC的有效回收。

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