Noiseless Vlasov-Poisson simulations with linearly transformed particles
M. Campos Pinto, E. Sonnendr\"ucker, A. Friedman, D. Grote, S. Lund

TL;DR
The paper introduces the LTPIC method, a deterministic particle simulation technique that reduces noise in Vlasov-Poisson simulations by employing linearly transformed particles, leading to improved accuracy and efficiency.
Contribution
It presents a novel LTPIC approach that uses linear deformations of particles to lower numerical noise and remapping frequency in Vlasov-Poisson simulations.
Findings
LTPIC reduces noise compared to classical PIC methods.
The method achieves accuracy comparable or superior to high-resolution Vlasov schemes.
Numerical tests demonstrate advantages in beam halo formation and benchmark cases.
Abstract
We introduce a deterministic discrete-particle simulation approach, the Linearly-Transformed Particle-In-Cell (LTPIC) method, that employs linear deformations of the particles to reduce the noise traditionally associated with particle schemes. Formally, transforming the particles is justified by local first order expansions of the characteristic flow in phase space. In practice the method amounts to using deformation matrices within the particle shape functions; these matrices are updated via local evaluations of the forward numerical flow. Because it is necessary to periodically remap the particles on a regular grid to avoid excessively deforming their shapes, the method can be seen as a development of Denavit's Forward Semi-Lagrangian (FSL) scheme [J. Denavit, J. Comp. Physics 9, 75 (1972)]. However, it has recently been established [M. Campos Pinto, "Smooth particle methods without…
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Taxonomy
TopicsParticle Dynamics in Fluid Flows · Fluid Dynamics and Turbulent Flows · High-Energy Particle Collisions Research
