4.7 Article

Integrating granular activated carbon (GAC) to gravity-driven membrane (GDM) to improve its flux stabilization: Respective roles of adsorption and biodegradation by GAC

期刊

SCIENCE OF THE TOTAL ENVIRONMENT
卷 768, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.scitotenv.2020.144758

关键词

Integrated GAC/GDM process; Flux stabilization; Biofouling layer; EPS; Physical structure

资金

  1. National Science Foundation for the Outstanding Youngster Fund [51522804]
  2. National Natural Science Foundation of China [51778170]
  3. Nanqi Ren Studio, Academy of Environment & Ecology, Harbin Institute of Technology [HSCJ201701]
  4. Fundamental Research Funds for the Central Universities

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The integrated GAC/GDM process shows promising potential for decentralized drinking water supply with improved flux stability, water quality, pollutant removal, reduced biofouling layer concentrations, and formation of highly heterogeneous structures.
Asa low-maintenance and cost-effective process, gravity-driven membrane (GDM) filtration is a promising alternative for decentralized drinking water supply, while the low flux impedes its extensive application. In order to address such issue, an integrated process consisting of granular activated carbon (GAC) layer and GDM was developed. The performance of virgin (fresh GAC) or preloaded GAC (saturated GAC) was compared. Flux stabilization was observed both in the fresh and saturated GAC/GDM process during long-term filtration and their stable fluxes were both improved by approximately 50% relative to the GDM control. Moreover, integrating GAC with GDM contributed to efficient removals for dissolved organic compounds (DOC), assimilable organic carbon (AOC) and low molecular weight substances both in fresh and saturated GAC/GDM filtration. Compared to GDM control, coupling GAC to GDM could significantly reduce the concentrations of extracellular polymeric substances (EPS) and total cell counts (TCC) within the biofouling layer, and engineer highly heterogeneous structures of biofouling layer on the membrane surface. In the fresh GAC/GDM process, the improved flux obtained was mainly related to less coverage of biofouling layer and lower EPS concentrations due to efficient removals of membrane foulants by GAC adsorption. The achieved higher stable flux can be maintained during long-term filtration (after GAC saturation) owing to the combined effects of EPS reduction and formation of highly heterogeneous structures of biofouling layer in the saturated GAC/GDM system. Overall, the integrated GAC/GDM process can hopefully facilitate improvements both in the stabilized flux and permeate quality, with practical relevance for GDM applications in decentralized drinking water supply. (C) 2020 Elsevier B.V. All rights reserved.

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