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R. C. Fetecau

Publications and source records attributed to R. C. Fetecau.

2 recordsLinked to original sources

Equilibria of biological aggregations with nonlocal repulsive-attractive interactions

We consider the aggregation equation $ρ_{t}-\nabla\cdot(ρ\nabla K\astρ) =0$ in $\mathbb{R}^{n}$, where the interaction potential $K$ incorporates short-range Newtonian repulsion and long-range power-law attraction. We study the global well-posedness of solutions and investigate analytically and numerically the equilibrium solutions. We show that there exist unique equilibria supported on a ball of $\mathbb{R}^n$. By using the method of moving planes we prove that such equilibria are radially symmetric and monotone in the radial coordinate. We perform asymptotic studies for the limiting cases when the exponent of the power-law attraction approaches infinity and a Newtonian singularity, respectively. Numerical simulations suggest that equilibria studied here are global attractors for the dynamics of the aggregation model.

math.AP

Lagrangian Averaging for Compressible Fluids

This paper extends the derivation of the Lagrangian averaged Euler (LAE-$α$) equations to the case of barotropic compressible flows. The aim of Lagrangian averaging is to regularize the compressible Euler equations by adding dispersion instead of artificial viscosity. Along the way, the derivation of the isotropic and anisotropic LAE-$α$ equations is simplified and clarified. The derivation in this paper involves averaging over a tube of trajectories $η^ε$ centered around a given Lagrangian flow $η$. With this tube framework, the Lagrangian averaged Euler (LAE-$α$) equations are derived by following a simple procedure: start with a given action, Taylor expand in terms of small-scale fluid fluctuations $ξ$, truncate, average, and then model those terms that are nonlinear functions of $ξ$. Closure of the equations is provided through the use of \emph{flow rules}, which prescribe the evolution of the fluctuations along the mean flow.

physics.flu-dyn