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Flocculation kinetics and mechanisms of microalgae- and clay-containing suspensions in different microalgal growth phases.
Ho, Que Nguyen; Fettweis, Michael; Hur, Jin; Desmit, Xavier; Kim, Jae In; Jung, Dae Won; Lee, Sang Deuk; Lee, Sungyun; Choi, Yun Young; Lee, Byung Joon.
Afiliação
  • Ho QN; Energy Environment Institute, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea; Faculty of Environment and Labour Safety, Ton Duc Thang University, Ho Chi Minh City, Viet Nam.
  • Fettweis M; Operational Directorate Natural Environment, Royal Belgian Institute of Natural Sciences, Rue Vautier 29, Bruxelles B-1000, Belgium.
  • Hur J; Department of Environment & Energy, Sejong University, Seoul 05006, South Korea.
  • Desmit X; Operational Directorate Natural Environment, Royal Belgian Institute of Natural Sciences, Rue Vautier 29, Bruxelles B-1000, Belgium.
  • Kim JI; Energy Environment Institute, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea.
  • Jung DW; Nakdonggang National Institute of Biological Resources (NNIBR), Sangju, Gyeongsangbuk-do 37242, South Korea.
  • Lee SD; Nakdonggang National Institute of Biological Resources (NNIBR), Sangju, Gyeongsangbuk-do 37242, South Korea.
  • Lee S; Energy Environment Institute, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea; Department of Advanced Science and Technology Convergence, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea.
  • Choi YY; Energy Environment Institute, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea.
  • Lee BJ; Energy Environment Institute, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea; Department of Advanced Science and Technology Convergence, Kyungpook National University, 2559 Gyeongsang-daero, Sangju, Gyeongbuk 37224, South Korea. Electronic address: bjlee@k
Water Res ; 226: 119300, 2022 Nov 01.
Article em En | MEDLINE | ID: mdl-36323221
ABSTRACT
Interplays between microalgae and clay minerals enhance biologically mediated flocculation, thereby affecting the sedimentation and transportation of suspended particulate matter (SPM) in water and benthic environments. This interaction forms larger flocs with a higher settling velocity and enhances SPM sinking. The aim of this study was to investigate the flocculation kinetics of microalgae and clay in suspension and to elucidate the mechanisms associated with such interactions. Standard jar test experiments were conducted using various mixtures of kaolinite and microalgal samples from batch cultures (Chlorella vulgaris) to estimate biologically mediated flocculation kinetics. The organic matter (OM) composition secreted by the microalgae was characterized using a liquid chromatography - organic carbon detection system, and quantitative analysis of transparent exopolymer particles was conducted separately. A two-class flocculation kinetic model, based on the interaction between flocculi and flocs, was also adopted to quantitatively analyze the experimental data from flocculation. Results from the flocculation kinetic tests and OM analyses, in association with other data analyses (i.e., floc size distribution and flocculation kinetic model), showed that flocculation increased with OM concentration during the growth phase (10-20 d). However, on day 23 during the early stationary phase, flocculation kinetics started decreasing and substantially declined on day 30, even though the amount of OM (mainly biopolymers) continued to increase. Our results indicate that an adequate quantity of biopolymers produced by the microalgal cells in the growth phase enhanced floc-to-floc attachment and hence flocculation kinetics. In contrast, an excessive quantity of biopolymers and humic substances in the stationary phase enhanced the formation of polymeric backbone structures and flocculation via scavenging particles but simultaneously increased steric stabilization with the production of a large number of fragmented particles.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Chlorella vulgaris / Microalgas Idioma: En Revista: Water Res Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Chlorella vulgaris / Microalgas Idioma: En Revista: Water Res Ano de publicação: 2022 Tipo de documento: Article