Ion acoustic traveling waves

Type: Article

Publication Date: 2014-01-15

Citations: 11

DOI: https://doi.org/10.1017/s0022377813001013

Abstract

Models for travelling waves in multi-fluid plasmas give essential insight into fully nonlinear wave structures in plasmas, not readily available from either numerical simulations or from weakly nonlinear wave theories. We illustrate these ideas using one of the simplest models of an electron-proton multi-fluid plasma for the case where there is no magnetic field or a constant normal magnetic field present. We show that the travelling waves can be reduced to a single first order differential equation governing the dynamics. We also show that the equations admit a multi-symplectic Hamiltonian formulation in which both the space and time variables can act as the evolution variable. An integral equation useful for calculating adiabatic, electrostatic solitary wave signatures for multi-fluid plasmas with arbitrary mass ratios is presented. The integral equation arises naturally from a fluid dynamics approach for a two fluid plasma, with a given mass ratio of the two species (e.g. the plasma could be an electron proton or an electron positron plasma). Besides its intrinsic interest, the integral equation solution provides a useful analytical test for numerical codes that include a proton-electron mass ratio as a fundamental constant, such as for particle in cell (PIC) codes. The integral equation is used to delineate the physical characteristics of ion acoustic travelling waves consisting of hot electron and cold proton fluids.

Locations

  • Journal of Plasma Physics - View
  • arXiv (Cornell University) - View - PDF
  • DataCite API - View

Similar Works

Action Title Year Authors
+ PDF Chat Ion-Acoustic Wave Dynamics in a Two-Fluid Plasma 2024 Emily Kelting
James Wright
+ PDF Chat Particle-in-cell simulations of the tearing instability for relativistic pair plasmas 2024 K. M. Schoeffler
Björn Eichmann
Fulvia Pucci
Maria Elena Innocenti
+ INVESTIGATION OF THE ELABORATE DYNAMICS OF WEAKLY NONLINEAR FRACTIONAL ION-ACOUSTIC WAVES IN MAGNETIZED ELECTRON–POSITRON PLASMA 2023 Mostafa M. A. Khater
Raghda A. M. Attia
+ PDF Chat Momentum-exchange current drive by electrostatic waves in an unmagnetized collisionless plasma 2020 I. E. Ochs
N. J. Fisch
+ Exploring Nonlinear Fractional (2+1)-Dimensional KP–Burgers Model: Derivation and Ion Acoustic Solitary Wave Solution 2024 Khalid A. Alsatami
+ Electron-acoustic solitary pulses and double layers in multi-component plasmas 2013 A. Mannan
A. A. Mamun
P. K. Shukla
+ PDF Chat Kinetic solitary electrostatic structures in collisionless plasma: Phase-space holes 2024 I. H. Hutchinson
+ PDF Chat Kinetic Solitary Electrostatic Structures in Collisionless Plasma: Phase-Space Holes 2024 I H Hutchinson
+ AN Alternative Two-Fluid Formulation Of a Partially Ionized Plasma 2021 V. Krishan
+ PDF Chat Theoretical plasma physics 2019 Allan N. Kaufman
B. I. Cohen
+ PDF Chat Development of grid-based and PINN solvers for electron kinetics in collisional non-thermal plasmas 2024 Vladimir Kolobov
Lucius Schoenbaum
+ A New Electrostatic mode in Two-Fluid (ENe-Ion) Formalism of a Partially Ionized Plasma 2021 V. Krishan
+ Modelling collisions in a relativistic plasma 2009 Adam Noble
David A. Burton
+ PDF Chat Collisional damping of wave modes in ion-electron plasmas 2024 Joeri De Vadder
Jordi De Jonghe
Rony Keppens
+ PDF Chat Solitary waves and double layers in complex plasma media 2021 A. A. Mamun
A. Mannan
+ PDF Chat Ion-Acoustic Wave Dynamics in a Two-Fluid Plasma 2024 Emily Kelting
+ PDF Chat Numerical simulations of two-fluid magnetoacoustic waves in the solar atmosphere 2022 J. Kraśkiewicz
K. Murawski
Z. E. Musielak
+ Solitary waves and double layers in complex plasma media 2021 A. A. Mamun
A. Mannan
+ PDF Chat Eulerian simulations of electrostatic waves in plasmas with a single sign of charge 2022 Stefano Cristofaro
Oreste Pezzi
T. M. O’Neil
P. Veltri
F. Valentini
+ PDF Chat Electron acceleration from the interaction of three crossed parallel Alfvén waves 2022 K. Daiffallah