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contributor authorZebo Long
contributor authorAli K. Oskouie
contributor authorThomas E. Kunetz
contributor authorJeff Peeters
contributor authorNick Adams
contributor authorDwight Houweling
date accessioned2022-01-30T19:28:45Z
date available2022-01-30T19:28:45Z
date issued2020
identifier other%28ASCE%29EE.1943-7870.0001705.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4265375
description abstractResearchers have observed that the biofilm nitrification rate (NR) in membrane-aerated biofilm reactor (MABR) systems did not deteriorate at low winter temperatures. Using the pilot data, the temperature impacts were studied in two different approaches. A close-to-unity temperature coefficient (θ=1.007) and a constant half-velocity constant (KN,BF=5.7  mgN/L) were obtained from the semiempirical kinetic-based approach, indicating that the bulk NH4+-N concentration, rather than temperature, was determining the biofilm NR. The pilot performance was also simulated in GPS-X 7.0 using all typical kinetic values from scientific literatures except the hydrolysis rate constant. A lower hydrolysis rate constant (0.15  day−1) was used to match the data during calibration and it should be considered as a lumped effect of the pilot conditions. While the temperature effects on biological kinetics are well established, they were masked by the dynamic changes in the MABR biofilm. The apparently weak impact of temperature on the biofilm NR distinguishes the MABR technology as a novel solution for nitrification intensification. The two simulation approaches are proved effective as tools for the process design.
publisherASCE
titleSimulation of Long-Term Performance of an Innovative Membrane-Aerated Biofilm Reactor
typeJournal Paper
journal volume146
journal issue6
journal titleJournal of Environmental Engineering
identifier doi10.1061/(ASCE)EE.1943-7870.0001705
page04020041
treeJournal of Environmental Engineering:;2020:;Volume ( 146 ):;issue: 006
contenttypeFulltext


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