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SimultaneousNandSremoval

inwastewatertreatment

Contents1.Nitrogenand

sulfurpollution2.Traditionalmethodsofpollutioncontrol3.SimultaneousNandSremoval4.Potentialproblemordirection5.AcknowledgmentTheNitrogenCycleSchematicrepresentationoftheflowofnitrogenthroughtheenvironment.Theimportanceofbacteriainthecycleisimmediatelyrecognizedasbeingakeyelementinthecycle,providingdifferentformsofnitrogencompoundsassimilablebyhigherorganisms.

——FromWikiBiologicaldenitrificationAmmoniatedbacteriaNitrosobacteria,NitrifyingDenitrifying

bacteriaOrganicnitrogenNH4+NO2-,NO3-N2MajorSourcesandPollutionofNitridesSourcessewagetreatmentplantsanimalfeedlots,croplandvehicleexhaustindustrialsourcesPollutionexcessgrowthofalgaespeciescompositionshiftsfoodwebchangeshumanhealtheffectsTheSulfurCycleBiologicaldesulfurizationtechnology:SO42-

H2S

S8SRBSOBMajorSourcesandPollutionofsulfideSources:theproductionofsulfurdioxide(SO2)fromindustry

andtheinternalcombustionengine;

seawaterintrusion.Pollution:AcidRain,

lowerpHinwaterandsoil,

contaminatinggroundwaterresourcesandagriculturalproductionbysulfateandsalts.SimultaneousNandSremovalWhy:SimultaneousremovalofNandSinwastewatertreatmentprocesseswhileachievingminimalbiologicalsludgeproductionandgreenhousegasemissions.Theseadvantagesarenotpossibleusingconventionalcarboncycle-basedconventionaltreatmenttechnologies.How:DenitrifyingandsulfideremovalSulfatetype

anaerobic

ammoniaoxidationprocessorganicinorganic

DenitrifyingandsulfideremovalNR-SOBSchemeofthedenitrifyingcontinuousstirredreactor.Jesu′sReyes-Avila,WaterResearch38(2004)3313–3321Suggestedsulfideandacetateoxidationpathwayunderdenitrifyingconditions.Reaction:12H++2NO3-+5S2-→N2+5S+6H2O15S+6NO3-+2H2O→5SO42-+4H++3N22

Elementalsulfurisaveryusefulresource;therefore,toenableathoroughremovalofpollutantsandreclamationofelementalsulfur,itisbettertocontrolthereactionsduringthefirststep.Accordingtothestoichiometryofthereaction,themolarremovalratioofS/N(mol)~5/2Sulfide

concentration<300mg/LSulfatetype

anaerobic

ammoniaoxidationprocessSO42-+2NH4+

→S+N2+4H2O3SO42-+4NH4+

→3S2-+4NO2-+4H2O+8H+

3S2-+2NO2-+8H+→3S+N2+4H2O2NO2-

+2NH4+

→2N2+4H2OLowCOD、highconcentration

NH4+

-N、

pH~7.18Sulfatetype

anaerobic

ammoniaoxidationprocessWhenS/N=3/43S2-+2NO2-+4H2O→SO42-+2S+8OH-+2N2ReproduceSO42-?。。?/p>

Batchtestresultsforthemeasurementofammonium,sulfate,nitriteandnitrateconcentrationsinanaerobicserumbottleswith(NH4)2SO4

asthesolesubstrate11mmolL-1NH4+–N,5.5mmolL-1SO42-were

addedthepureanammoxbacteriaasinoculantSitongLiu,FenglinYang.BioresourceTechnology99(2008)6817–6825Timecoursesofammoniumremovalrate,sulfateremovalrate,nitriteproductionrate,andnitrateproductionratewith(NH4)2SO4

asthesolemainmediuminNRBCreactor.initial

10daysofincubationNitrategrowthofanammoxbacteriaconversion

waslimited:partialhighnitriteconcentration;largequantityofsolidsulfur.DGGEanalysisofPCR-amplified16SrDNAgenefragmentsofbiofilmsamplesinNRBCreactorbandA,E,FPlanctomycetebacteria,Seemstoberesponsibleforanammoxreaction,mainfunctionalbacteriacommunityinanammoxprocessbandC,HChloroflexibacterium

bandB,Gbacteriumclone36423,betaproteobacteriumcloneCLi61genePotentialproblemordirectionFutureworkwillfocusonisolationofthefunctionalbacteriaandtheirs

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