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Computational and Experimental Investigation of Biofilm Disruption Dynamics Induced by High-Velocity Gas Jet Impingement

Lledó Prades, Stefania Fabbri, Antonio David Dorado Castaño, Xavier Gamisans, Paul Stoodley, Cristian Picioreanu

2020mBio16 citationsDOIOpen Access PDF

Abstract

Knowledge of mechanisms promoting disruption though mechanical forces is essential in optimizing biofilm control strategies which rely on fluid shear. Our results provide insight into how biofilm disruption dynamics is governed by applied forces and fluid properties, revealing a mechanism for ripple formation and fluid-biofilm mixing. These findings have important implications for the rational design of new biofilm cleaning strategies with fluid jets, such as determining optimal parameters (e.g., jet velocity and position) to remove the biofilm from a certain zone (e.g., in dental hygiene or debridement of surgical site infections) or using antimicrobial agents which could increase the interfacial area available for exchange, as well as causing internal mixing within the biofilm matrix, thus disrupting the localized microenvironment which is associated with antimicrobial tolerance. The developed model also has potential application in predicting drag and pressure drop caused by biofilms on bioreactor, pipeline, and ship hull surfaces.

Topics & Concepts

Jet (fluid)MechanicsDynamics (music)Computational fluid dynamicsGas dynamicsMaterials scienceChemistryAerospace engineeringPhysicsEngineeringAcousticsParticle Dynamics in Fluid FlowsErosion and Abrasive MachiningFluid Dynamics and Heat Transfer
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