Soliton and Nonlinear Structure Formation in Magnetized Plasma Induced by Space Debris
POSTER
Abstract
We present a two-dimensional, three-velocity-component (2D3V) particle-in-cell (PIC) simulation study of the interaction between a finite-sized charged debris object and a magnetized, quasi-neutral plasma, using the OSIRIS-4.0 code. The effects of external magnetic field strength and orientation on the formation of nonlinear plasma structures—such as precursor solitons, wakefields, and shocklets—are systematically investigated. When the magnetic field is aligned with the debris motion, magnetization suppresses transverse ion expansion and enhances precursor localization. In contrast, magnetic fields applied perpendicular (in-plane or out-of-plane) to the motion distort or suppress precursor structures and alter wake dynamics. Oblique field orientations lead to asymmetric and skewed soliton morphologies due to differential Lorentz forces. These results highlight the critical role of magnetic geometry in regulating nonlinear plasma responses and provide insights relevant to space environments and magnetized plasma experiments.
*This research is based upon work supported in part by the Office of the Direcor of National Intelligence (ODNI), Intelligence Advanced Research Projects Activity (IARPA), via 2023-23060200005. The views and conclusions contained herein are those of the authors and should not be interpreted as necessarily representing the official policies, either expressed or implied, of ODNI, IARPA, or the U.S. Government. The U.S. Government is authorized to reproduce and distribute reprints for governmental purposes not withstanding any copyright annotation therein
Publication: Vikram Dharodi, Atul Kumar, and Abhijit Sen, Phys. Rev. E 107, 025207 (2023)
Presenters
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Vikram Singh Dharodi
- West Virginia University