Thermal Effects on Buneman Instability: A Vlasov-Poisson Study

Fuente: arXiv
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Main Authors: Amudon, Chingangbam, Pandey, Sanjeev Kumar, Ganesh, Rajaraman
Format: Preprint
Published: 2026
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author Amudon, Chingangbam
Pandey, Sanjeev Kumar
Ganesh, Rajaraman
author_facet Amudon, Chingangbam
Pandey, Sanjeev Kumar
Ganesh, Rajaraman
contents Buneman instability has been extensively studied, and related aspects, namely anomalous resistivity, have been explored in detail using analytical theory as well as numerical simulations based on Particle-in-Cell and Vlasov solvers. Most numerical studies have focused on understanding the nonlinear evolution of the instability. In the present study, the growth rate of the Buneman instability in the presence of thermal effects of the constituent species (i.e., ions and electrons) is investigated. It is observed that the growth rate differs significantly from that obtained using fluid models (both cold and warm) as well as from linearized kinetic models. While the well-known result of $(m/M)^{1/3}$ dependence of the maximum growth rate is recovered, it is shown that the maximum growth rate is essentially independent of the temperature ratio of the constituent species. It is further demonstrated numerically that the amplitude of ion density inhomogeneity self-consistently controls the transfer of electron beam energy into the bulk plasma temperature. In particular, as one moves from the cold to the warm plasma limit, the decrease in ion density inhomogeneity reduces the generation of sidebands and thus lowers the transfer efficiency.
format Preprint
id arxiv_https___arxiv_org_abs_2604_17113
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Thermal Effects on Buneman Instability: A Vlasov-Poisson Study
Amudon, Chingangbam
Pandey, Sanjeev Kumar
Ganesh, Rajaraman
Plasma Physics
Buneman instability has been extensively studied, and related aspects, namely anomalous resistivity, have been explored in detail using analytical theory as well as numerical simulations based on Particle-in-Cell and Vlasov solvers. Most numerical studies have focused on understanding the nonlinear evolution of the instability. In the present study, the growth rate of the Buneman instability in the presence of thermal effects of the constituent species (i.e., ions and electrons) is investigated. It is observed that the growth rate differs significantly from that obtained using fluid models (both cold and warm) as well as from linearized kinetic models. While the well-known result of $(m/M)^{1/3}$ dependence of the maximum growth rate is recovered, it is shown that the maximum growth rate is essentially independent of the temperature ratio of the constituent species. It is further demonstrated numerically that the amplitude of ion density inhomogeneity self-consistently controls the transfer of electron beam energy into the bulk plasma temperature. In particular, as one moves from the cold to the warm plasma limit, the decrease in ion density inhomogeneity reduces the generation of sidebands and thus lowers the transfer efficiency.
title Thermal Effects on Buneman Instability: A Vlasov-Poisson Study
topic Plasma Physics
url https://arxiv.org/abs/2604.17113