Pregled bibliografske jedinice broj: 466345
A fluid-structure interaction study of biofilm detachment
A fluid-structure interaction study of biofilm detachment // 1st International Conference on Mathematical and Computational Biomedical Engineering (CMBE2009) : proceedings
Swansea, Ujedinjeno Kraljevstvo, 2009. (predavanje, međunarodna recenzija, cjeloviti rad (in extenso), znanstveni)
CROSBI ID: 466345 Za ispravke kontaktirajte CROSBI podršku putem web obrasca
Naslov
A fluid-structure interaction study of biofilm detachment
Autori
Safari, Ashkan ; Ivankovic, Alojz ; Tuković, Željko ; Walter, Maik ; Casey, Eoin
Vrsta, podvrsta i kategorija rada
Radovi u zbornicima skupova, cjeloviti rad (in extenso), znanstveni
Izvornik
1st International Conference on Mathematical and Computational Biomedical Engineering (CMBE2009) : proceedings
/ - , 2009
Skup
International Conference on Mathematical and Computational Biomedical Engineering (1 ; 2009)
Mjesto i datum
Swansea, Ujedinjeno Kraljevstvo, 29.06.2009. - 01.07.2009
Vrsta sudjelovanja
Predavanje
Vrsta recenzije
Međunarodna recenzija
Ključne riječi
biofilm; viscoelasticity; fluid-structure interaction; Finite Volume Method
Sažetak
During the biofilm development process, bacterial cells may detach from the biofilm into the surrounding fluid. The key question in relation to detachment from bacterial biofilm is the mechanical response to hydrodynamic forces. In this study, a Finite Volume Method (FVM) based Fluid-Structure Interaction (FSI) solver in OpenFOAM package has been developed to model the biofilm response to flow [1]. Dynamic interaction was simulated between an incompressible Newtonian fluid and a bacterial biofilm described as a linear viscoelastic solid. Viscoelastic response of the biofilm was represented by the hereditary integral form of constitutive relation [2] while tensile relaxation modulus was expressed by the Generalised Maxwell Model (GMM) in the form of Prony series (a discrete retardation spectrum). GMM was obtained from the rheometry creep experimental data using a three-step method proposed by Dooling et al. [3]. The creep curves were all viscoelastic in nature and approximated by a linear viscoelastic model represented by Generalised Voigt Model (GVM). Elastic shear modulus (G), obtained from the three-step method, ranged from 583Pa to 1368Pa which were similar to the previous rheometry studies. In this two-dimensional model, biofilm was considered as semi-hemispherical shape (thickness of 100μm and width of 346μm) attached to the center of the bottom boundary of the square cross-section flow cell. Fluid flow through the flow cell was in laminar regime. Simulation results predicted the potential site for biofilm detachment subjected to increasing fluid flow rate through the flow cell.
Izvorni jezik
Engleski
Znanstvena područja
Strojarstvo
POVEZANOST RADA
Projekti:
120-1201775-1777 - Optimiranje korištenja vjetropotencijala u vjetroelektrani (Tuković, Željko, MZOS ) ( CroRIS)
Ustanove:
Fakultet strojarstva i brodogradnje, Zagreb
Profili:
Željko Tuković
(autor)