[改性生物炭固定床对模拟湖泊和水库水体中Mn2+的吸附研究]。

Jie Zhao, Zhi-Long Ye, Jia-Ni Wang, Guan-Jing Cai
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引用次数: 1

摘要

湖泊和水库是人类赖以生存和可持续发展的重要水资源。湖泊、水库饮用水锰离子(Mn2+)季节性超标已成为威胁人类生命健康和社会生产安全的重要因素。首先,对naoh改性生物炭进行了批量研究。考察了热解温度(400、500、600℃)和改性条件(未改性、预碱改性和后碱改性)对生物炭吸附性能的影响。结果表明,碱预处理可以提高生物炭的吸附能力,在400℃下碱预处理得到的改性生物炭的最大吸附量为41.06 mg·g-1。此外,还研究了固定床对Mn2+的动态吸附特性。结果表明,间歇式实验中生物炭的吸附能力越强,其动态吸附过程的突破点(ct/c0=0.1)和饱和点(ct/c0=0.9)越长。此外,随着Mn2+初始浓度和进水流速的增加,固定床的突破点分别从360 min缩短到160 min和200 min,饱和点分别从865 min缩短到700 min和600 min。Thomas模型能较好地拟合固定床的吸附过程,说明生物炭对Mn2+的去除也以化学吸附为主。该结果可为实际操作提供理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Adsorption of Mn2+ by Modified Biochar Fixed Bed in Simulated Lakes and Reservoir Waters].

Lakes and reservoirs are important water resources for human survival and sustainable development. The seasonal excess of manganese ions (Mn2+) in drinking water in lakes and reservoirs has become an important factor threatening human life in health and social safety in production. Firstly, a batch study of NaOH-modified biochar was carried out. The effects of pyrolysis temperature (400, 500, and 600℃) and modification conditions (unmodified, pre-alkali modified, and post-alkali modified) on the adsorption performance of biochar were investigated. The results showed that the alkali pretreatment could improve the adsorption capacity of biochar, and the maximum adsorption capacity of the modified biochar obtained by alkali pretreatment at 400℃ was 41.06 mg·g-1. Additionally, the dynamic adsorption characteristics of Mn2+in the application on the fixed bed were investigated. The results showed that the stronger the adsorption capacity of biochar in the batch experiment, the longer its breakthrough point (ct/c0=0.1) and saturation point (ct/c0=0.9) in the dynamic adsorption process. In addition, when the initial concentration of Mn2+ and the influent flow rate were increased, the breakthrough point of the fixed bed was shortened from 360 min to 160 min and 200 min, respectively, and the saturation point was shortened from 865 min to 700 min and 600 min, respectively. The Thomas model could better fit the adsorption process of the fixed bed, indicating that the removal of Mn2+ by biochar was also dominated by chemical adsorption. This outcome can provide theoretical guidance for actual operations.

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