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首页> 外文期刊>ACS Omega >Simplified Batch and Fixed-Bed Design System for Efficient and Sustainable Fluoride Removal from Water Using Slow Pyrolyzed Okra Stem and Black Gram Straw Biochars
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Simplified Batch and Fixed-Bed Design System for Efficient and Sustainable Fluoride Removal from Water Using Slow Pyrolyzed Okra Stem and Black Gram Straw Biochars

机译:简化的批处理和固定床设计系统,可使用慢速热解的黄秋葵茎和黑革秸秆生物炭高效有效地去除水中的氟化物

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摘要

Okra stem biochar (OSBC) and black gram straw biochar (BGSBC) were prepared by slow pyrolysis at 500 and 600 °C, respectively. OSBC and BGSBC were characterized using SBET, Fourier transform infrared, X-ray diffraction, scanning electron microscopy (SEM), transmission electron microscopy, SEM–energy dispersive X-ray, and energy dispersive X-ray fluorescence. High carbon contents (dry basis) of 66.2 and 67.3% were recorded in OSBC and BGSBC, respectively. The OSBC surface area (23.52 m2/g) was higher than BGSBC (9.27 m2/g). The developed biochars successfully remediate fluoride contaminated water. Fluoride sorption experiments were accomplished at 25, 35, and 45 °C. Biochar-fluoride adsorption equilibrium data were fitted to Langmuir, Freundlich, Sips, Temkin, Koble–Corrigan, Radke and Prausnitz, Redlich–Peterson, and Toth isotherm models. The sorption dynamic data was better fitted to the pseudo-second order rate equation versus the pseudo-first order rate equation. The Langmuir sorption capacities of QOSBC0 = 20 mg/g and QBGSBC0 = 16 mg/g were obtained. Biochar fixed-bed dynamic studies were accomplished to ascertain the design parameters for developing an efficient and sustainable fluoride water treatment system. A column capacity of 6.0 mg/g for OSBC was achieved. OSBC and BGSBC satisfactorily remediated fluoride from contaminated ground water and may be considered as a sustainable solution for drinking water purification.
机译:通过分别在500和600°C下缓慢热解制备秋葵茎生物炭(OSBC)和黑克秸秆生物炭(BGSBC)。 OSBC和BGSBC的特征在于使用SBET,傅立叶变换红外,X射线衍射,扫描电子显微镜(SEM),透射电子显微镜,SEM –能量色散X射线和能量色散X射线荧光。 OSBC和BGSBC分别记录了66.2%和67.3%的高碳含量(干基)。 OSBC表面积(23.52 m2 / g)高于BGSBC(9.27 m2 / g)。已开发的生物炭成功地修复了氟化物污染的水。氟化物吸附实验是在25、35和45°C下完成的。氟化碳的生物吸附平衡数据适用于Langmuir,Freundlich,Sips,Temkin,Koble–Corrigan,Radke和Prausnitz,Redlich–Peterson和Toth等温线模型。吸附动力学数据更好地拟合拟二阶速率方程,而不是拟一阶速率方程。获得的朗缪尔吸附能力为QOSBC0 = 20 mg / g和QBGSBC0 = 16 mg / g。完成了生物炭固定床动态研究,以确定用于开发高效,可持续的氟化物水处理系统的设计参数。 OSBC的柱容量为6.0 mg / g。 OSBC和BGSBC从污染的地下水中令人满意地修复了氟化物,可以被认为是饮用水净化的可持续解决方案。

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