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采用可扩展颗粒活性炭生物电化学反应器处理合成灰水。

Synthetic greywater treatment using a scalable granular activated carbon bioelectrochemical reactor.

机构信息

Departamento de Ingeniería Hidráulica y Ambiental, Pontificia Universidad Católica de Chile, Av. Vicuña Mackenna 4860, Santiago, Chile; Centro de Desarrollo Urbano Sustentable (CEDEUS), Chile; Consorcio Tecnológico del Agua (COTH(2)O), Chile.

Departamento de Ingeniería Hidráulica y Ambiental, Pontificia Universidad Católica de Chile, Av. Vicuña Mackenna 4860, Santiago, Chile; Centro de Desarrollo Urbano Sustentable (CEDEUS), Chile; Consorcio Tecnológico del Agua (COTH(2)O), Chile.

出版信息

Bioelectrochemistry. 2024 Oct;159:108741. doi: 10.1016/j.bioelechem.2024.108741. Epub 2024 May 17.

Abstract

Greywater reuse has emerged as a promising solution for addressing water shortages. However, greywater needs treatment before reuse to meet the required water quality standards. Conventional wastewater treatment technologies are unsuitable for recreating highly decentralized domestic greywater. This study evaluated bioelectrochemical reactors (BERs) with granular activated carbon (GAC) as a sustainable alternative for developing decentralized and low-cost biological treatment systems. BERs using GAC as the anode material and conventional GAC biofilters (BFs) for synthetic greywater treatment were operated in batch mode for 110 days in two stages: (i) with polarized anodes at -150 mV vs. Ag/AgCl and (ii) as a microbial fuel cell with an external resistance of 1 kΩ. Anode polarization produced an electrosorption effect, increasing the ion removal of the BERs. Power production during the operation and cyclic voltammetry tests of the extracted granules revealed electrochemically active biofilm development on the BERs. Although low power density (0.193 ± 0.052 µW m) was observed in BERs, they showed a similar performance in sCOD removal (BER = 91.6-89.6 %; BF = 96.2-93.2 %) and turbidity removal (BER = 81-82 %; BF = 30-62 %) to BFs that used 50 % aeration. Additionally, scanning electron microscopy of sampled granules showed higher biomass formation in BER granules than in BF granules, suggesting a higher contribution of sessile (vs. planktonic) cells to the treatment. Thus, the results highlight the synergistic removal effect of the GAC-based BER. The scalable design presented in this study represents a proof-of-concept for developing BERs to use in decentralized greywater treatment systems.

摘要

灰水再利用已成为解决水资源短缺的一种有前途的解决方案。然而,灰水在再利用之前需要进行处理,以达到所需的水质标准。传统的废水处理技术不适用于再创造高度分散的家庭灰水。本研究评估了生物电化学反应器(BER)与颗粒活性炭(GAC)作为开发分散式和低成本生物处理系统的可持续替代方案。使用 GAC 作为阳极材料的 BER 和用于处理合成灰水的传统 GAC 生物滤池(BF)在两个阶段以批处理模式运行了 110 天:(i)在 -150 mV 对 Ag/AgCl 极化阳极,(ii)作为具有 1 kΩ 外部电阻的微生物燃料电池。阳极极化产生电吸附效应,提高了 BER 的离子去除率。在运行期间的产电和提取颗粒的循环伏安测试中,发现 BER 上形成了电化学活性生物膜。尽管在 BER 中观察到低的功率密度(0.193±0.052 µW m),但它们在 sCOD 去除(BER = 91.6-89.6%; BF = 96.2-93.2%)和浊度去除(BER = 81-82%; BF = 30-62%)方面的性能与使用 50%曝气的 BF 相似。此外,对采样颗粒的扫描电子显微镜显示,BER 颗粒中的生物量形成高于 BF 颗粒,这表明固定(与浮游)细胞对处理的贡献更高。因此,结果突出了基于 GAC 的 BER 的协同去除效果。本研究提出的可扩展设计为开发用于分散式灰水处理系统的 BER 提供了概念验证。

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