On numerical errors to the fields surrounding a relativistically moving particle in PIC codes
Xinlu Xu, Fei Li, Frank S. Tsung, Thamine N. Dalichaouch, Weiming An,, Han Wen, Viktor K. Decyk, Ricardo A. Fonseca, Mark J. Hogan, Warren B., Mori

TL;DR
This paper analyzes numerical errors in PIC simulations involving relativistic particles, identifying sources of unphysical fields and proposing a modified solver to eliminate these errors, improving simulation accuracy.
Contribution
It provides a detailed analysis of numerical errors in PIC codes for relativistic particles and introduces a modified k operator solution implemented in OSIRIS.
Findings
Unphysical antisymmetric fields caused by numerator errors.
Cerenkov-like radiation due to denominator errors.
Modified k operator effectively eliminates unphysical fields.
Abstract
The particle-in-cell (PIC) method is widely used to model the self-consistent interaction between discrete particles and electromagnetic fields. It has been successfully applied to problems across plasma physics including plasma based acceleration, inertial confinement fusion, magnetically confined fusion, space physics, astrophysics, high energy density plasmas. In many cases the physics involves how relativistic particles are generated and interact with plasmas. However, when relativistic particles stream across the grid both in vacuum and in plasma there are many numerical issues that may arise which can lead to incorrect physics. We present a detailed analysis of how discretized Maxwell solvers used in PIC codes can lead to numerical errors to the fields that surround particles that move at relativistic speeds across the grid. Expressions for the axial electric field as integrals in…
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