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用于将负载氧化铁纳米颗粒的壳聚糖复合材料应用于从天然水中去除磷酸盐的实验室和中试规模现场实验。

Laboratory and pilot-scale field experiments for application of iron oxide nanoparticle-loaded chitosan composites to phosphate removal from natural water.

作者信息

Kim Jae-Hyun, Kim Song-Bae, Lee Sang-Hyup, Choi Jae-Woo

机构信息

a Center for Water Resource Cycle Research , Korea Institute of Science and Technology , Seoul , Republic of Korea.

b Environmental Functional Materials and Water Treatment Laboratory , Seoul National University , Seoul , Republic of Korea.

出版信息

Environ Technol. 2018 Mar;39(6):770-779. doi: 10.1080/09593330.2017.1310937. Epub 2017 Apr 9.

DOI:10.1080/09593330.2017.1310937
PMID:28332409
Abstract

The aim of this study was to apply iron oxide nanoparticle-chitosan (ION-chitosan) composites to phosphate removal from natural water collected from the Seoho Stream in Suwon, Republic of Korea. Laboratory batch experiments showed that phosphate removal by the ION-chitosan composites was not sensitive to pH changes between pH values of 5.0 and 9.0. During six cycles of adsorption-desorption, the composites could be successfully regenerated with 5 mM NaOH solution and reused for phosphate removal. Laboratory fixed-bed column experiments (column height = 10 and 20 cm, inner diameter = 2.5 cm, flow rate = 8.18 and 16.36 mL/min) demonstrated that the composites could be successfully applied for phosphate removal under dynamic flow conditions. A pilot-scale field experiment was performed in a pilot plant, which was mainly composed of chemical reactor/dissolved air flotation and an adsorption tower, built nearby the Seoho Stream. The natural water was pumped from the Seoho Stream into the pilot plant, passed through the chemical reactor/dissolved air flotation process, and then introduced into the adsorption tower (height = 100 cm, inner diameter = 45 cm, flow rate = 7.05 ± 0.18 L/min) for phosphate removal via the composites (composite volume = 80 L, composite weight = 85.74 kg). During monitoring of the adsorption tower (33 days), the influent total phosphorus (T-P) concentration was in the range of 0.020-0.046 mgP/L, whereas the effluent T-P concentration was in the range of 0.010-0.028 mgP/L. The percent removal of T-P in the adsorption tower was 52.3% with a phosphate removal capacity of 0.059 mgP/g.

摘要

本研究的目的是将氧化铁纳米颗粒-壳聚糖(ION-壳聚糖)复合材料应用于从韩国水原市西濠溪采集的天然水中去除磷酸盐。实验室批次实验表明,ION-壳聚糖复合材料对磷酸盐的去除在pH值5.0至9.0之间对pH变化不敏感。在六个吸附-解吸循环中,该复合材料可用5 mM NaOH溶液成功再生,并可重复用于去除磷酸盐。实验室固定床柱实验(柱高 = 10和20 cm,内径 = 2.5 cm,流速 = 8.18和16.36 mL/min)表明,该复合材料可在动态流动条件下成功应用于去除磷酸盐。在西濠溪附近建造的一个中试工厂中进行了中试规模的现场实验,该中试工厂主要由化学反应器/溶解气浮和一个吸附塔组成。天然水从西濠溪泵入中试工厂,经过化学反应器/溶解气浮过程,然后引入吸附塔(高度 = 100 cm,内径 = 45 cm,流速 = 7.05 ± 0.18 L/min),通过复合材料(复合材料体积 = 80 L,复合材料重量 = 85.74 kg)去除磷酸盐。在对吸附塔进行监测的33天内,进水总磷(T-P)浓度在0.020 - 0.046 mgP/L范围内,而出水T-P浓度在0.010 - 0.028 mgP/L范围内。吸附塔中T-P的去除率为52.3%,磷酸盐去除容量为0.059 mgP/g。

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