Development of in-house lattice-Boltzmann simulator of bioreactors for wastewater treatment: basic concepts and initial results
Author(s) -
Valquíria Aparecida Fortunato,
Fernando de Lima Caneppele,
Rogers Ribeiro,
José Antonio Rabi
Publication year - 2017
Publication title -
water science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.406
H-Index - 137
eISSN - 1996-9732
pISSN - 0273-1223
DOI - 10.2166/wst.2017.597
Subject(s) - bioreactor , lattice boltzmann methods , wastewater , hydraulic retention time , aeration , environmental science , simulation , chemistry , environmental engineering , mechanics , computer science , engineering , waste management , physics , organic chemistry
While computational modelling has increasingly supported wastewater bioreactor engineering, novel numerical techniques have been developed such as the lattice-Boltzmann method (LBM). With vinasse treatment as case study, this work is a first step towards a comprehensive LBM simulator of a continuous-flow anaerobic packed-bed reactor. Extensions from typical models comprise one-dimensional (besides time) dependence, species transport via convection and diffusion, and imposition of either Dirichlet or Danckwerts condition at inlet. The LBM simulator proved to be operational when simulating the bioreactor at different hydraulic retention times (HRTs). Simulated profiles show that stepwise feeding concentrations are smoothed as they are transported towards the bioreactor exit while concentrations increase or decrease in response to generation or degradation kinetics. Good fitting was observed for concentrations of acetic acid (2.1 kg-COD/m 3 for HRT = 24 h) and butyric acid (1.3 kg-COD/m 3 for HRT = 16 h) at the exit whereas other concentrations were numerically simulated at proper order of magnitude.
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