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Title A transient biological fouling model for constant flux microfiltration
ID_Doc 19699
Authors Luongo, V; Mattei, MR; Frunzo, L; D'Acunto, B; Gupta, K; Chellam, S; Cogan, N
Title A transient biological fouling model for constant flux microfiltration
Year 2023
Published Mathematical Biosciences And Engineering, 20.0, 1
DOI 10.3934/mbe.2023058
Abstract Microfiltration is a widely used engineering technology for fresh water production and water treatment. The major concern in many applications is the formation of a biological fouling layer leading to increased hydraulic resistance and flux decline during membrane operations. The growth of bacteria constituting such a biological layer implicates the formation of a multispecies biofilm and the consequent increase of operational costs for reactor management and cleaning procedures. To pre-dict the biofouling evolution, a mono-dimensional continuous free boundary model describing biofilm dynamics and EPS production in different operational phases of microfiltration systems has been well studied. The biofouling growth is governed by a system of hyperbolic PDEs. Substrate dynamics are modeled through parabolic equations accounting for diffusive and advective fluxes generated during the filtration process. The free boundary evolution depends on both microbial growth and detachment processes. What is not addressed is the interplay between biofilm dynamics, filtration, and water recov-ery. In this study, filtration and biofilm growth modeling principles have been coupled for the definition of an original mathematical model able to reproduce biofouling evolution in membrane systems. The model has been solved numerically to simulate biologically relevant conditions, and to investigate the hydraulic behavior of the membrane. It has been calibrated and validated using lab-scale data. Numer-ical results accurately predicted the pressure drop occurring in the microfiltration system. A calibrated model can give information for optimization protocols as well as fouling prevention strategies.
Author Keywords microfiltration; biofouling; biofilms; free boundary value problem; numerical simulations
Index Keywords Index Keywords
Document Type Other
Open Access Open Access
Source Science Citation Index Expanded (SCI-EXPANDED)
EID WOS:000904720600008
WoS Category Mathematical & Computational Biology
Research Area Mathematical & Computational Biology
PDF https://doi.org/10.3934/mbe.2023058
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