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CFD simulation of sedimentation of small particles



dc.contributor.advisorPetera Karel
dc.contributor.authorÖzgür Tarik Kaplan
dc.date.accessioned2021-08-28T22:52:18Z
dc.date.available2021-08-28T22:52:18Z
dc.date.issued2021-08-28
dc.identifierKOS-1070940826305
dc.identifier.urihttp://hdl.handle.net/10467/96969
dc.description.abstractThe present work focused to find optimal time steps and model setup for the CFD simulation of sedimentation of small particles and performed analysis on real lamella geometry to observe effectiveness for different factors, like inclination angles and velocity magnitudes. The work of this thesis has been conducted by CFD analysis in ANSYS Fluent software. The preliminary analyses ran with the Euler-Granular and DDPM-KTGF models. The obtained data have been compared for various time steps and their error rates % to reduce the analysis time by calculating the grid convergence index. The similarity analysis has been done and compared with real-sized particle experiment data so that bigger-sized particles could be used to decrease computational requirements. The effect of different inclination angles and velocity magnitudes for laminar and turbulent regimes on the lamella geometry was observed for bigger-sized particles. The sedimentation effectiveness of the lamella geometry according to the ratio of particles leaving the outlet was evaluated. The critical velocities have been calculated for specific effectiveness, 99 %. The study can be improved by widening the number of analyses to find the optimum inclination angle and velocity for the desired design of a lamella clarifier. The lamella clarifier process can be faster by using a two-step lamella clarifier. The first clarifier tank can have a higher velocity magnitude to reduce the number of particles faster during the first step and the second clarifier tank can have the optimal velocity to obtain higher effectiveness for the device.cze
dc.description.abstractThe present work focused to find optimal time steps and model setup for the CFD simulation of sedimentation of small particles and performed analysis on real lamella geometry to observe effectiveness for different factors, like inclination angles and velocity magnitudes. The work of this thesis has been conducted by CFD analysis in ANSYS Fluent software. The preliminary analyses ran with the Euler-Granular and DDPM-KTGF models. The obtained data have been compared for various time steps and their error rates % to reduce the analysis time by calculating the grid convergence index. The similarity analysis has been done and compared with real-sized particle experiment data so that bigger-sized particles could be used to decrease computational requirements. The effect of different inclination angles and velocity magnitudes for laminar and turbulent regimes on the lamella geometry was observed for bigger-sized particles. The sedimentation effectiveness of the lamella geometry according to the ratio of particles leaving the outlet was evaluated. The critical velocities have been calculated for specific effectiveness, 99 %. The study can be improved by widening the number of analyses to find the optimum inclination angle and velocity for the desired design of a lamella clarifier. The lamella clarifier process can be faster by using a two-step lamella clarifier. The first clarifier tank can have a higher velocity magnitude to reduce the number of particles faster during the first step and the second clarifier tank can have the optimal velocity to obtain higher effectiveness for the device.eng
dc.publisherČeské vysoké učení technické v Praze. Vypočetní a informační centrum.cze
dc.publisherCzech Technical University in Prague. Computing and Information Centre.eng
dc.rightsA university thesis is a work protected by the Copyright Act. Extracts, copies and transcripts of the thesis are allowed for personal use only and at one?s own expense. The use of thesis should be in compliance with the Copyright Act http://www.mkcr.cz/assets/autorske-pravo/01-3982006.pdf and the citation ethics http://knihovny.cvut.cz/vychova/vskp.htmleng
dc.rightsVysokoškolská závěrečná práce je dílo chráněné autorským zákonem. Je možné pořizovat z něj na své náklady a pro svoji osobní potřebu výpisy, opisy a rozmnoženiny. Jeho využití musí být v souladu s autorským zákonem http://www.mkcr.cz/assets/autorske-pravo/01-3982006.pdf a citační etikou http://knihovny.cvut.cz/vychova/vskp.htmlcze
dc.subjectCFDcze
dc.subjectSedimentationcze
dc.subjectGrid Convergency Indexcze
dc.subjectLamella Clarifiercze
dc.subjectInclination anglecze
dc.subjectVelocity magnitudecze
dc.subjectEffectivenesscze
dc.subjectCFDeng
dc.subjectSedimentationeng
dc.subjectGrid Convergency Indexeng
dc.subjectLamella Clarifiereng
dc.subjectInclination angleeng
dc.subjectVelocity magnitudeeng
dc.subjectEffectivenesseng
dc.titleCFD simulace usazování malých částiccze
dc.titleCFD simulation of sedimentation of small particleseng
dc.typediplomová prácecze
dc.typemaster thesiseng
dc.contributor.refereeMoravec Jiří
theses.degree.disciplineProcesní technikacze
theses.degree.grantorústav procesní a zpracovatelské technikycze
theses.degree.programmeStrojní inženýrstvícze


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