A random walk approach to anomalous particle and energy transport
H. Isliker

TL;DR
This paper introduces a coupled CTRW model in position and momentum space to simulate anomalous particle and energy transport in plasmas, validated through numerical solutions and Monte Carlo simulations, revealing non-classical transport behaviors.
Contribution
It presents a novel coupled CTRW framework incorporating momentum space, enabling detailed modeling of anomalous transport phenomena in plasmas, including profile evolution and confinement times.
Findings
Model captures anomalous transport in position and momentum space.
Results show incompatibility with classical Fick's and Fourier's laws.
Profiles exhibit stiffness and non-classical diffusion behaviors.
Abstract
The combined Continuous Time Random Walk (CTRW) in position and momentum space is introduced, in the form of two coupled integral equations that describe the evolution of the probability distribution for finding a particle at a certain position and with a certain momentum as a function of time. The integral equations are solved numerically with a pseudospectral method that is based on the expansion of the unknown functions in terms of Chebyshev polynomials. In parallel, Monte-Carlo simulation are performed. Through the inclusion of momentum space, the combined CTRW is able to yield results on density and temperature profile evolution, on particle and heat fluxes and diffusivities, and on kinetic energy distributions. Depending on the choice of the probability distributions of the particle displacements in position and momentum space, the combined CTRW is able to model phenomena of…
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Taxonomy
TopicsParticle Dynamics in Fluid Flows · Combustion and flame dynamics · Statistical Mechanics and Entropy
