6533b82bfe1ef96bd128e082

RESEARCH PRODUCT

Effect of a co-substrate supply in a MBR treating shipboard slop: Analysis of hydrocarbon removal, biomass activity and membrane fouling tendency

Michele TorregrossaSerena IndelicatoDaniela PiazzeseDavid BongiornoSanto Fabio CorsinoGaspare Viviani

subject

0301 basic medicinechemistry.chemical_classificationEnvironmental EngineeringSettore ICAR/03 - Ingegneria Sanitaria-AmbientaleChemistryMembrane foulingBiomedical EngineeringBioengineeringBiomass kinetics Co-substrate Diesel fuel hydrocarbons Gas chromatography/mass spectrometry MBR010501 environmental sciencesBiodegradationMembrane bioreactorPulp and paper industry01 natural sciences03 medical and health scienceschemistry.chemical_compound030104 developmental biologyActivated sludgeHydrocarbonPilot plantTotal petroleum hydrocarbonSodium acetate0105 earth and related environmental sciencesBiotechnology

description

The paper reports the main results of an experiment carried out on a membrane bioreactor (MBR) plant designed for the treatment of shipboard slops. With a view of a co-treatment process of the slop with other wastewaters, sodium acetate, as external co-substrate, was supplied (high dosage – Period 1, low dosage – Period 2) to evaluate its effects on hydrocarbons removal. The MBR pilot plant enabled approximately 99% of total petroleum hydrocarbon (TPH) removal during the entire experiment, confirming the robustness of the MBR technology for the treatment of slops. The chromatography/mass spectrometry analysis showed that the removal efficiency for each alkane was close to the value observed for total mixture removal (>99%) and the hydrocarbons removal was mostly due to the microorganism-mediated biodegradation. The biological contribution to TPH removal increased from approximately 85% to 98% when the co-substrate was decreased. Biomass kinetics revealed that a lower co-substrate dosage enhanced the growth of bacterial groups able to use hydrocarbons as primary substrate. A clear predominance of Microthrix Parvicella under low co-substrate dosage was observed. However, the lower co-substrate addition caused a significant worsening in the physical properties of the activated sludge, which resulted enriched in soluble exopolymers (>70%), more hydrophobic (>90%) and with small and dispersed flocs (<30 μm). Consequently, the membrane permeability reduced because of the irreversible fouling increase.

https://doi.org/10.1016/j.bej.2018.10.003