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    SPH simulation of interacting solid bodies suspended in a shear flow of an Oldroyd-B fluid

    , Article Journal of Non-Newtonian Fluid Mechanics ; Volume 166, Issue 21-22 , November , 2011 , Pages 1239-1252 ; 03770257 (ISSN) Hashemi, M. R ; Fatehi, R ; Manzari, M. T ; Sharif University of Technology
    2011
    Abstract
    An explicit weakly compressible SPH method is introduced to study movement of suspended solid bodies in Oldroyd-B fluid flows. The proposed formulation does not need further stabilizing treatments and can be efficiently employed to study particulate flows with Deborah to Reynolds number ratios up to around 10. A modified boundary treatment technique is also presented which helps to deal with the movement of solid particles in the flow. The technique is computationally efficient and gives an improved evaluation of fluid-solid interaction forces.A number of test cases are solved to show performance of the proposed method in simulating particulate viscoelastic flows containing circular and... 

    A modified SPH method for simulating motion of rigid bodies in Newtonian fluid flows

    , Article International Journal of Non-Linear Mechanics ; Volume 47, Issue 6 , 2012 , Pages 626-638 ; 00207462 (ISSN) Hashemi, M. R ; Fatehi, R ; Manzari, M. T ; Sharif University of Technology
    2012
    Abstract
    A weakly compressible smoothed particle hydrodynamics (WCSPH) method is used along with a new no-slip boundary condition to simulate movement of rigid bodies in incompressible Newtonian fluid flows. It is shown that the new boundary treatment method helps to efficiently calculate the hydrodynamic interaction forces acting on moving bodies. To compensate the effect of truncated compact support near solid boundaries, the method needs specific consistent renormalized schemes for the first and second-order spatial derivatives. In order to resolve the problem of spurious pressure oscillations in the WCSPH method, a modification to the continuity equation is used which improves the stability of... 

    A SPH solver for simulating paramagnetic solid fluid interaction in the presence of an external magnetic field

    , Article Applied Mathematical Modelling ; Volume 40, Issue 7-8 , 2016 , Pages 4341-4369 ; 0307904X (ISSN) Hashemi, M. R ; Manzari, M. T ; Fatehi, R ; Sharif University of Technology
    Elsevier Inc  2016
    Abstract
    The Smoothed Particle Hydrodynamics (SPH) method is extended to solve magnetostatic problems involving magnetically interacting solid bodies. In order to deal with the jump in the magnetic permeability at a fluid-solid interface, a consistent SPH scheme is utilized and a modified formulation is proposed to calculate the magnetic force density along the interface. The results of the magnetostatic solver are verified against those of the finite element method. The governing fluid flow equations are discretized using the same SPH scheme, developing an efficient method for simulating the motion of paramagnetic solid bodies in a fluid flow. The proposed algorithm is applied to a benchmark problem... 

    Simulation of Fluid-Solid Mixtures Using SPH Method

    , M.Sc. Thesis Sharif University of Technology Hashemi, Mohammad Reza (Author) ; Taghizadeh Manzari, Mehrdad (Supervisor)
    Abstract
    Taghizadeh Manzari, M. (In this work, a modified Smoothed Particle Hydrodynamics (SPH) method, with a new moving solid boundary treatment approach, is utilized to simulate the particulateflow problems. The renormalized first and second derivative schemes which lead tothe consistency of the method, are also used along with a modification to the continuityequation which prevents the spurious pressure oscillations. The proposed methodis validated by solving benchmark problems of solid body motion in channel flows.There is a good agreement between the obtained results and those reported in theliterature. The convergence of solutions for different domain discretizations is alsoassessed. In order... 

    Simulating fluid-solid interaction problems using an immersed boundary-SPH method

    , Article Particle-Based Methods II - Fundamentals and Applications, 26 October 2011 through 28 October 2011 ; Octobe , 2011 , Pages 954-965 ; 9788489925670 (ISBN) Hashemi, M. R ; Fatehi, R ; Manzari, M. T ; Sharif University of Technology
    Abstract
    In this work, the Immersed Boundary Method (IBM) is adapted and implemented in the context of Smoothed Particle Hydrodynamics (SPH) method to study moving solid bodies in an incompressible fluid flow. The proposed computational algorithm is verified by solving a number of benchmark particulate flow problems. The results are also compared with those obtained using the same SPH scheme along with a direct solid boundary imposition technique  

    Source Apportionment of Air Particulate Matter (PM2.5)in Tehran Using CMB Model

    , M.Sc. Thesis Sharif University of Technology Roufigar Haghighat, Navid (Author) ; Erhami, Mohammad (Supervisor)
    Abstract
    In recent years, one of the most important air pollution in Tehran in terms of creating unhealthy air quality is particulate matter and especially PM2.5. Particulate matter in Tehran is released from various sources. Identification of components and estimating the contribution of each emission sources, helps governers to find air pollution control strategies. To find out major components of PM2.5 in Tehran, a one year sampling to collect PM2.5 was conducted from February 2014 through February 2015 in AQM station at Sharif University of Technology located west of Tehran. 24-hour integrated samples collected on a 1-in-6 day schedule on both Teflon and quartz filters. TOT analysis was done for... 

    Geometry effects in Eulerian/Granular simulation of a turbulent FCC riser with a (kg-g)-KTGF model

    , Article International Journal of Chemical Reactor Engineering ; Volume 8 , 2010 ; 15426580 (ISSN) Nazif, H. R ; Basirat Tabrizi, H ; Farhadpour, F. A ; Sharif University of Technology
    Abstract
    Three-dimensional, transient turbulent particulate flow in an FCC riser is modeled using an Eulerian/Granular approach. The turbulence in the gas phase is described by a modified realizable (kg-g) closure model and the kinetic theory of granular flow (KTGF) is employed for the particulate phase. Separate simulations are conducted for a rectangular and a cylindrical riser with similar dimensions. The model predictions are validated against experimental data of Sommerfeld et al (2002) and also compared with the previously reported LES-KTGF simulations of Hansen et al (2003) for the rectangular riser. The (kg-g)-KTGF model does not perform as well as the LES-KTGF model for the riser with a...