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Mohamad I. Cheikh

Publications and source records attributed to Mohamad I. Cheikh.

2 recordsLinked to original sources

Boltzmann-Curtiss Description for Flows under Translational Nonequilibrium

Continuum-based theories, such as Navier-Stokes equations, have been considered inappropriate for flows under nonequilibrium conditions. In part, it is due to the lack of rotational degrees of freedom in the Maxwell-Boltzmann distribution. The Boltzmann-Curtiss formulation describes gases allowing both rotational and translational degrees of freedom and forms morphing continuum theory (MCT). The first order solution to Boltzmann-Curtiss equation yield a stress tensor that contains a coupling coefficient that is dependent on the particles number density, the temperature and the total relaxation time. A new bulk viscosity model derived from the Boltzmann-Curtiss distribution is employed for shock structure and temperature profile under translational and rotational nonequilibrium. Numerical simulations of argon and nitrogen shock profiles are performed in the Mach number range of 1.2 to 9. The current study, when comparing with experimental measurements and Direct Simulation Monte Carlo (DSMC) simulation, show a significant improvement in the density profile, normal stresses and shock thickness at nonequilibrium conditions than Navier-Stokes equations. The results indicate that equations derived from the Boltzmann-Curtiss distribution are valid for a wide range of nonequilibrium conditions than those from the Maxwell-Boltzmann distribution.

physics.flu-dyn↗

A Morphing Continuum Simulation of Transonic Flow over an Axisymmetric Hill

Finite volume simulations of turbulent boundary layer flow over an axisymmetric hill are performed for $Re_H$ = 6500 using Morphing Continuum Theory (MCT), and compared with DNS data from Castagna et. al. and experimental data obtained by Simpson. The inlet profile was specified by inputting values from the profile specified by Castagna et. al. Root- mean-square velocity fluctuations are inputted using the new variable of gyration from MCT. Additional terms introduced by MCT lead to a new formulation of the Q-criterion, which allows for the visualization of three-dimensional turbulent structures including a hairpin vortices. Streamline plots of the separation bubble show a more confined bubble than Castagna et. al., but agree well on the separation and reconnection points. The surface pressure coefficient matches Simpson much more closely than Castagna et. al. MCT data was obtained on a $6.72 \times 10^6$ cell mesh containing a smaller number of cells by an order of magnitude than that of the DNS mesh of $5.4 \times 10^7$ by Castagna et. al. The effects of the particle on the larger structures are inferred from the variation in the new variable of gyration.

physics.flu-dyn↗