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Khalid Saqr

Publications and source records attributed to Khalid Saqr.

2 recordsLinked to original sources

Lagrangian Phase-Lag and Geometric Precedence in Turbulent Vortex Stretching

This study investigates the causal timeline of vortex stretching in high-Reynolds-number turbulence ($Re_λ\approx 433$) using Lagrangian tracking in $1024^3$ direct numerical simulations. While classical theories often assume an instantaneous alignment between strain and vorticity, the present analysis identifies a systematic Lagrangian phase lag governing the onset of intense dissipation. By conditionally averaging the dynamics of fluid parcels, a distinct phase-space hysteresis is revealed. Trajectories are captured by the saddle-point topology of the pressure field ($λ_{min}^p < 0$) prior to experiencing peak enstrophy amplification. This temporal ordering ($τ> 0$) demonstrates that the pressure topology acts as a deterministic geometric precursor, organizing the flow structure before the bursting event occurs. The robustness of this mechanism is verified in magnetohydrodynamic (MHD) turbulence, where the Lorentz force is found to suppress the hysteresis loop, forcing a transition from causal precedence to simultaneous locking.

physics.flu-dyn

Derivation of the Gromeka Acceleration Vector for Dimensionless Womersley Flow

This manuscript presents an analytical and theoretical investigation of the Gromeka acceleration field in a dimensionless Womersley flow, derived through the exact solution of the governing Navier-Stokes equations in phase space. By decomposing the convective acceleration into rotational and nonrotational components, the derivation highlights the dominant role of vorticity dynamics near the wall, where steep velocity gradients interact with the oscillatory axial velocity to produce localized radial accelerations. The solution reveals that the Gromeka acceleration mediates nonlinear interactions between harmonics, driving energy redistribution and boundary layer development under multi-harmonic boundary conditions. Complementary analysis of the kinetic energy gradient further delineates inertial effects, demonstrating their role in phase-dependent flow separation and reattachment. These findings provide a comprehensive framework for understanding momentum transport and instability generation in pulsatile wall-bounded flows.

physics.flu-dyn