Literature DB >> 24734468

Oxygen and carbon requirements for biological nitrogen removal processes accomplishing nitrification, nitritation, and anammox.

Glen T Daigger.   

Abstract

The oxygen and carbon savings associated with novel nitrogen removal processes for the treatment of high ammonia, low biodegradable organic matter waste streams such as the recycle streams from the dewatering of anaerobically digested sludges are well documented.This understanding may lead some to think that similar oxygen savings are possible if novel processes such as nitritation/ denitritation and partial nitritation-deammonification are incorporated into main liquid stream processes where influent biodegradable organic matter is used to denitrify residual oxidized nitrogen (nitrite and nitrate). It is demonstrated that the net oxygen required for nitrogen removal is 1.71 mg O2/mg ammonia-nitrogen converted to nitrogen gas as long as influent biodegradable organic matter is used to denitrify residual oxidized nitrogen. Less oxygen is required to produce oxidized nitrogen with these novel processes, but less biodegradable organic matter is also required for oxidized nitrogen reduction to nitrogen gas, resulting in reduced oxygen savings for the oxidation of biodegradable organic matter. The net oxygen requirement is the same since the net electron transfer for the conversion of ammonia-nitrogen to nitrogen gas is the same. The biodegradable organic matter required to reduce the oxidized nitrogen to nitrogen gas is estimated for these processes based on standard biological process calculations. It is estimated to be in the range of 3.5 to 4.0 mg biodegradable COD/mg ammonia-nitrogen reduced to nitrogen gas for nitrification-denitrification, 2.0 to 2.5 for nitritation-denitritation, and 0.5 for partial nitritation-deammonification. The resulting limiting influent wastewater carbon-to-nitrogen ratios are estimated and can be used to guide the appropriate selection of biological nitrogen removal process given knowledge of the biological process influent wastewater carbon-to-nitrogen ratio. Energy savings possible for mainstream processes incorporating these novel nitrogen removal processes include reduced process oxygen requirements from reduced biodegradable carbon loadings to the biological process and the potential that plant influent biodegradable carbon can be captured upstream of the biological nitrogen removal process and used to produce energy, for example, by conversion into biogas.

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Year:  2014        PMID: 24734468     DOI: 10.2175/106143013x13807328849459

Source DB:  PubMed          Journal:  Water Environ Res        ISSN: 1061-4303            Impact factor:   1.946


  4 in total

1.  On anammox activity at low temperature: effect of ladderane composition and process conditions.

Authors:  J Hajslova; McM van Loosdrecht; D G Weissbrodt; J Bartacek; V Kouba; K Hurkova; K Navratilova; D Vejmelkova; A Benakova; M Laureni; P Vodickova; T Podzimek; P Lipovova; L van Niftrik
Journal:  Chem Eng J       Date:  2022-05-02       Impact factor: 16.744

2.  Evaluation of disinfection by-products (DBPs) formation potential in ANAMMOX effluents.

Authors:  Sike Wang; Jing Fu; Hongwei Yang; Bowen Zhang; Xuchuan Shi; Jiane Zuo
Journal:  RSC Adv       Date:  2018-07-12       Impact factor: 4.036

3.  Effect of temperature on the compositions of ladderane lipids in globally surveyed anammox populations.

Authors:  Vojtěch Kouba; Kamila Hůrková; Klára Navrátilová; Dana Kok; Andrea Benáková; Michele Laureni; Patricie Vodičková; Tomáš Podzimek; Petra Lipovová; Laura van Niftrik; Jana Hajšlová; Mark C M van Loosdrecht; David Gregory Weissbrodt; Jan Bartáček
Journal:  Sci Total Environ       Date:  2022-03-22       Impact factor: 10.753

4.  Successful year-round mainstream partial nitritation anammox: Assessment of effluent quality, performance and N2O emissions.

Authors:  D Hausherr; R Niederdorfer; H Bürgmann; M F Lehmann; P Magyar; J Mohn; E Morgenroth; A Joss
Journal:  Water Res X       Date:  2022-06-16
  4 in total

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