Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas

Theoretical studies of dusty plasmas have been performed by focusing attention principally on collective phenomena and on grain motion. This thesis consists of a collection of seven published papers that explore both the collective behavior of a complex plasma system as well as the dynamics of grain...

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Main Author: Sorasio, Gianfranco
Format: Doctoral Thesis
Language:English
Published: Umeå universitet, Fysik 2003
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-74
http://nbn-resolving.de/urn:isbn:91-7305-481-X
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spelling ndltd-UPSALLA1-oai-DiVA.org-umu-742013-01-08T13:03:49ZNonlinear Dust Particle Dynamics and Collective Effects in Complex PlasmasengSorasio, GianfrancoUmeå universitet, FysikUmeå : Fysik2003PhysicsComplex/Dusty PlasmasSelf excitedNonlinearForced OscillationsElectrostatic Instabilities in current-carrying magnetoplasmasCross-field instabilities in magnetized dusty plasmasDust Acoustic WavesElectrostatic Dust Cyclotron WavesFysikPhysicsFysikTheoretical studies of dusty plasmas have been performed by focusing attention principally on collective phenomena and on grain motion. This thesis consists of a collection of seven published papers that explore both the collective behavior of a complex plasma system as well as the dynamics of grains in plasmas. In paper 1, a mechanism that explains the energy gain which leads to the self excited grain oscillations is theoretically formulated. The newly developed mechanism explains the observed self excited oscillations through the coupling of plasma sheath fluctuations with the electrostatic force, which holds the dust grain. In paper 2, theoretical and simulation studies have been conducted to study the vertical oscillations of dust grains that are levitated in plasma sheaths, under low pressure conditions. The oscillations were driven either by an external force or by a plasma number density modulation. The proposed model gives a full picture of the dust grains dynamics and is capable of successfully explaining the experimental observations. Paper 3 explores both theoretically and numerically the origin of the nonlinearities that lead to the observed oscillation resonances. The feature of the confining potential well which traps the grain, the influence of an electrode voltage modulation on the trapping well, and hence on the grain dynamics, and the resulting nonlinear resonances are analyzed in detail. The numerical simulations presented successfully reproduce a broad range of dynamical phenomena, including the self excited oscillations, for a range of different parameters. Paper 4 is dedicated to the analysis of the propagation of Dust Acoustic Waves (DAW) in a medium with an equilibrium dust density distribution. It has been theoretically shown that only some harmonics of the dust density distribution will influence the propagation of the DAW, thus modifying its frequency. Paper 5 presents a theoretical and numerical analysis of the excitation of higher harmonics of electrostatic dust cyclotron waves. The instability is driven by the ion and electron currents flowing along the magnetic field. The dispersion relation and the wave instability conditions have been derived, and a detailed numerical analysis has been performed. In Paper 6, we explore theoretically some cross field instabilities of low frequency, long wavelength electrostatic modes in fully and weakly ionized plasmas. It is shown that in a magnetoplasma with a transverse equilibrium dc electric field, the energy associated with the cross field motion of the plasma particles can be coupled to low frequency electrostatic waves. Paper 7 explores the properties and instabilities of low frequency electrostatic waves propagating in a current carrying magnetoplasma with equilibrium density and field aligned ion flow with a transverse gradient. The paper contains previous results as limiting cases, together with additional instabilities related to the equilibrium plasma density distribution. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-74urn:isbn:91-7305-481-Xapplication/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Physics
Complex/Dusty Plasmas
Self excited
Nonlinear
Forced Oscillations
Electrostatic Instabilities in current-carrying magnetoplasmas
Cross-field instabilities in magnetized dusty plasmas
Dust Acoustic Waves
Electrostatic Dust Cyclotron Waves
Fysik
Physics
Fysik
spellingShingle Physics
Complex/Dusty Plasmas
Self excited
Nonlinear
Forced Oscillations
Electrostatic Instabilities in current-carrying magnetoplasmas
Cross-field instabilities in magnetized dusty plasmas
Dust Acoustic Waves
Electrostatic Dust Cyclotron Waves
Fysik
Physics
Fysik
Sorasio, Gianfranco
Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas
description Theoretical studies of dusty plasmas have been performed by focusing attention principally on collective phenomena and on grain motion. This thesis consists of a collection of seven published papers that explore both the collective behavior of a complex plasma system as well as the dynamics of grains in plasmas. In paper 1, a mechanism that explains the energy gain which leads to the self excited grain oscillations is theoretically formulated. The newly developed mechanism explains the observed self excited oscillations through the coupling of plasma sheath fluctuations with the electrostatic force, which holds the dust grain. In paper 2, theoretical and simulation studies have been conducted to study the vertical oscillations of dust grains that are levitated in plasma sheaths, under low pressure conditions. The oscillations were driven either by an external force or by a plasma number density modulation. The proposed model gives a full picture of the dust grains dynamics and is capable of successfully explaining the experimental observations. Paper 3 explores both theoretically and numerically the origin of the nonlinearities that lead to the observed oscillation resonances. The feature of the confining potential well which traps the grain, the influence of an electrode voltage modulation on the trapping well, and hence on the grain dynamics, and the resulting nonlinear resonances are analyzed in detail. The numerical simulations presented successfully reproduce a broad range of dynamical phenomena, including the self excited oscillations, for a range of different parameters. Paper 4 is dedicated to the analysis of the propagation of Dust Acoustic Waves (DAW) in a medium with an equilibrium dust density distribution. It has been theoretically shown that only some harmonics of the dust density distribution will influence the propagation of the DAW, thus modifying its frequency. Paper 5 presents a theoretical and numerical analysis of the excitation of higher harmonics of electrostatic dust cyclotron waves. The instability is driven by the ion and electron currents flowing along the magnetic field. The dispersion relation and the wave instability conditions have been derived, and a detailed numerical analysis has been performed. In Paper 6, we explore theoretically some cross field instabilities of low frequency, long wavelength electrostatic modes in fully and weakly ionized plasmas. It is shown that in a magnetoplasma with a transverse equilibrium dc electric field, the energy associated with the cross field motion of the plasma particles can be coupled to low frequency electrostatic waves. Paper 7 explores the properties and instabilities of low frequency electrostatic waves propagating in a current carrying magnetoplasma with equilibrium density and field aligned ion flow with a transverse gradient. The paper contains previous results as limiting cases, together with additional instabilities related to the equilibrium plasma density distribution.
author Sorasio, Gianfranco
author_facet Sorasio, Gianfranco
author_sort Sorasio, Gianfranco
title Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas
title_short Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas
title_full Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas
title_fullStr Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas
title_full_unstemmed Nonlinear Dust Particle Dynamics and Collective Effects in Complex Plasmas
title_sort nonlinear dust particle dynamics and collective effects in complex plasmas
publisher Umeå universitet, Fysik
publishDate 2003
url http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-74
http://nbn-resolving.de/urn:isbn:91-7305-481-X
work_keys_str_mv AT sorasiogianfranco nonlineardustparticledynamicsandcollectiveeffectsincomplexplasmas
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