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Treatment efficiency and greenhouse gas emissions of non-floating and floating bed activated sludge system with acclimatized sludge treating landfill leachate

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dc.contributor.author Boonnorat J.
dc.contributor.author Honda R.
dc.contributor.author Panichnumsin P.
dc.contributor.author Boonapatcharoen N.
dc.contributor.author Yenjam N.
dc.contributor.author Krasaesueb C.
dc.contributor.author Wachirawat M.
dc.contributor.author Seemuang-on S.
dc.contributor.author Jutakanoke R.
dc.contributor.author Teeka J.
dc.contributor.author Angthong S.
dc.contributor.author Prachanurak P.
dc.date.accessioned 2022-03-10T13:16:42Z
dc.date.available 2022-03-10T13:16:42Z
dc.date.issued 2021
dc.identifier.issn 9608524
dc.identifier.other 2-s2.0-85102651742
dc.identifier.uri https://ir.swu.ac.th/jspui/handle/123456789/17273
dc.identifier.uri https://www.scopus.com/inward/record.uri?eid=2-s2.0-85102651742&doi=10.1016%2fj.biortech.2021.124952&partnerID=40&md5=61277f39cb9b674f653bd52b4c2fc55f
dc.description.abstract This research investigates the treatment efficiency and greenhouse gas (GHG) emissions of non-floating and floating bed AS systems with acclimatized sludge treating landfill leachate. The GHGs under study included carbon dioxide (CO2), methane (CH4), and nitrous oxide (N2O). The non-floating and floating bed AS systems were operated in parallel with identical landfill leachate influent under different hydraulic retention time (HRT) conditions (24, 18, and 12 h). The experimental results showed that the treatment efficiency of organic compounds under 24 h HRT of both systems (90 – 98%) were insignificantly different, while the nutrient removal efficiency of both systems were between 54 and 98 %. The treatment efficiency of the floating bed AS system, despite shorter HRT, remained relatively unchanged due to an abundance of effective bacteria residing in the floating media. The CO2 emissions were insignificantly different between both AS systems under all HRT conditions (22 – 26.3 μmol/cm2.min). The CO2 emissions were positively correlated with organic loading but inversely correlated with HRT. The CH4 emissions were positively correlated with HRT (26.3 μmol/cm2.min under 24 h HRT of the floating bed AS system). The N2O emissions were positively correlated with nitrogen loading, and the N2O emissions from the floating bed AS system were lower due to an abundance of N2O-reducing bacteria. The floating media enhanced the biological treatment efficiency while maintaining the bacterial community in the system. However, the floating media promoted CH4 production under anoxic conditions. The originality of this research lies in the use of floating media in the biological treatment system to mitigate GHG emissions, unlike existing research which focused primarily on enhancement of the treatment efficiency. © 2021 Elsevier Ltd
dc.language en
dc.subject Bacteria
dc.subject Biochemical engineering
dc.subject Biogas
dc.subject Carbon dioxide
dc.subject Efficiency
dc.subject Gas emissions
dc.subject Leachate treatment
dc.subject Nitrogen oxides
dc.subject Floating medias
dc.subject Floating-bed
dc.subject Greenhouses gas
dc.subject Hydraulic retention
dc.subject Landfill leachates
dc.subject MBBR
dc.subject N$-2$/O
dc.subject Retention time
dc.subject Sponge media
dc.subject Treatment efficiency
dc.subject Greenhouse gases
dc.subject bacterial DNA
dc.subject biogas
dc.subject carbon dioxide
dc.subject dissolved oxygen
dc.subject methane
dc.subject nitrogen
dc.subject nitrous oxide
dc.subject organic compound
dc.subject phosphorus
dc.subject carbon dioxide
dc.subject methane
dc.subject nitrous oxide
dc.subject activated sludge
dc.subject bioreactor
dc.subject carbon dioxide
dc.subject carbon emission
dc.subject greenhouse gas
dc.subject landfill
dc.subject leachate
dc.subject methane
dc.subject nitrous oxide
dc.subject water relations
dc.subject activated sludge
dc.subject anaerobic ammonium oxidation
dc.subject Article
dc.subject carbon footprint
dc.subject correlation analysis
dc.subject exhaust gas
dc.subject floating bed activated sludge system
dc.subject hydraulic retention time
dc.subject landfill leachate
dc.subject methanogen
dc.subject microbial community
dc.subject microbial respiration
dc.subject Nitrobacter
dc.subject nitrogen concentration
dc.subject Nitrospira
dc.subject non floating bed activated sludge system
dc.subject nonhuman
dc.subject nutrient
dc.subject priority journal
dc.subject sludge treatment
dc.subject water quality
dc.subject greenhouse effect
dc.subject greenhouse gas
dc.subject sewage
dc.subject water pollutant
dc.subject Bacteria (microorganisms)
dc.subject Porifera
dc.subject Carbon Dioxide
dc.subject Greenhouse Effect
dc.subject Greenhouse Gases
dc.subject Methane
dc.subject Nitrous Oxide
dc.subject Sewage
dc.subject Water Pollutants, Chemical
dc.title Treatment efficiency and greenhouse gas emissions of non-floating and floating bed activated sludge system with acclimatized sludge treating landfill leachate
dc.type Article
dc.rights.holder Scopus
dc.identifier.bibliograpycitation Bioresource Technology. Vol 330, No. (2021)
dc.identifier.doi 10.1016/j.biortech.2021.124952


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