SPH-MESHLESS CFD

Incompressible Single and Multi-phase SPH with Improved Boundary Treatment

 Coordinatore Sabanci University 

 Organization address address: Orhanli Tuzla
city: ISTANBUL
postcode: 34956

contact info
Titolo: Ms.
Nome: Zeynep
Cognome: Birsel
Email: send email
Telefono: -
Fax: +90 216 4839118

 Nazionalità Coordinatore Turkey [TR]
 Totale costo 100˙000 €
 EC contributo 100˙000 €
 Programma FP7-PEOPLE
Specific programme "People" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call FP7-PEOPLE-IRG-2008
 Funding Scheme MC-IRG
 Anno di inizio 2009
 Periodo (anno-mese-giorno) 2009-09-01   -   2013-08-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    Sabanci University

 Organization address address: Orhanli Tuzla
city: ISTANBUL
postcode: 34956

contact info
Titolo: Ms.
Nome: Zeynep
Cognome: Birsel
Email: send email
Telefono: -
Fax: +90 216 4839118

TR (ISTANBUL) coordinator 0.00

Mappa


 Word cloud

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airfoil    interface    boundaries    flow    modeling    previously    solid    incompressible    solved    cg    mesh    sph    pi    boundary    liquid    computational    benchmark    surface    imsph    code    treat    treatments    single    mbt    iterations    multiphase    simulations   

 Obiettivo del progetto (Objective)

'The objectives of the proposal are to 1) implement a new improved boundary treatment method (refer to as Multiple Boundary Tangent (MBT) developed by PI) to simulation of complex geometries such as flow over an airfoil, and 2) develop an incompressible multiphase SPH (IMSPH) algorithm, and 3) study feasibility of modeling single crystal growth (CG) processes with SPH. In literature, benchmark simulations using previously reported boundary treatments can suffer from particle penetration and may corrupt simulations near solid boundaries. Current SPH boundary treatments do not properly treat curved boundaries in complicated flows. These drawbacks are remedied in MBT. Previously solved benchmark problems using MBT were relatively simple. To understand full power and limitations of MBT, PI plans to solve complex flow problems such as flow over an airfoil and free surface flow. PI’s current incompressible SPH code will be further improved to develop an IMSPH code. In this direction, a novel multiphase projection formulation will be developed to treat sharp changes in transport properties and density. Several benchmark problems will be solved for validation. Resin filling process in polymer composite manufacturing by RTM will be simulated as a multiphase flow. SPH is convenient for simulations involving moving interfacial surfaces such as semiconductor CG. In CG, mesh-dependent methods are difficult to implement, as computational mesh is required to adapt to CG surface. In modeling of ternary alloy crystals, governing equations must be solved simultaneously in liquid and solid phases to resolve growth interface correctly. This requires iterations at liquid/solid interfaces, slowing down simulations notably. In SPH, there is no need for interface iterations; all domains are solved as a single domain. However, SPH is still slow compared with the finite volume method. It requires further research and developments for computational efficiency.'

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