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Mode-coupling of low-frequency electromagnetic waves in dusty Plasmas with temperature anisotropy, de Juli, M. C., Schneider R. S., Ziebell L. F., and Gaelzer R. , Physics of Plasmas, Volume 14, Number 2, p.022104, (2007) AbstractWebsite

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Effect of charged dust particles on the ion cyclotron and firehose instabilities, de Juli, M. C., Schneider R. S., Ziebell L. F., and Gaelzer R. , Journal of Geophysical Research, October, Volume 112, Number A10105, p.A10105, (2007) AbstractWebsite

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Effects due to the prEsence of charged dust particles on the growth rate of instabilities of low frequency electromagnetic waves propagating along the ambient magnetic field are investigated, using a kinetic theory which takes into account the collisional charging of the dust particles. For perpendicular ion temperature larger than the parallel ion temperature the dustless Plasma features the proton cyclotron anisotropy instability, which is gradually reduced by the prEsence of the dust population, until complete disappearance for sufficiently large dust density. For perpendicular ion temperature smaller than the parallel ion temperature the dustless Plasma features the proton fire-hose instability, which is also reduced by the prEsence of the dust population. The results obtained show that the fire-hose instability is more easily quenched by the prEsence of the dust than the proton cyclotron instability. For both instabilities, the prEsence of the dust affects the dispersion relation by the charge imbalance produced by the electron capture by the dust particles, and by the damping effect originated from the collisional charging of the dust particles.

Effects of dust charge variation on electrostatic waves in dusty plasmas with temperature anisotropy, de Juli, M. C., Schneider R. S., Ziebell L. F., and Gaelzer R. , Brazilian Journal of Physics, March, Volume 39, Number 1, p.111–132, (2009) AbstractWebsite

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We utilize a kinetic approach to the problem of wave propagation in dusty plasmas, taking into account the variation of the charge of the dust particles due to inelastic collisions with electrons and ions. The components of the dielectric tensor are written in terms of a finite and an infinite series, containing all effects of harmonics and Larmor radius. The formulation is quite general and valid for the whole range of frequencies above the plasma frequency of the dust particles, which are assumed motionless. The formulation is employed to the study of electrostatic waves propagating along the direction of the ambient magnetic field, in the case for which ions and electrons are described by bi-Maxwellian distributions. The results obtained in a numerical analysis corroborate previous analysis, about the important role played by the dust charge variation, particularly on the imaginary part of the dispersion relation, and about the very minor role played in the case of electrostatic waves by some additional terms appearing in the components of the dielectric tensor, which are entirely due to the occurrence of the dust charge variation.

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Two dimensional kinetic analysis of electrostatic harmonic plasma waves, Fonseca-Pongutá, Éber C., Ziebell Luiz F., Gaelzer Rudi, and Yoon Peter H. , Physics of Plasmas, Volume 23, Issue 062310, (2016) Abstract062310_1_am.pdfWebsite

Electrostatic harmonic Langmuir waves are virtual modes excited in weakly turbulent plasmas, first observed in early laboratory beam-plasma experiments as well as in rocket-borne active experiments in space. However, their unequivocal presence was confirmed through computer simulated experiments and subsequently theoretically explained. The peculiarity of harmonic Langmuir waves is that while their existence requires nonlinear response, their excitation mechanism and subsequent early time evolution are governed by essentially linear process. One of the unresolved theoretical issues regards the role of nonlinear wave-particle interaction process over longer evolution time period. Another outstanding issue is that existing theories for these modes are limited to one-dimensional space. The present paper carries out two dimensional theoretical analysis of fundamental and (first) harmonic Langmuir waves for the first time. The result shows that harmonic Langmuir wave is essentially governed by (quasi)linear process and that nonlinear wave-particle interaction plays no significant role in the time evolution of the wave spectrum. The numerical solutions of the two-dimensional wave spectra for fundamental and harmonic Langmuir waves are also found to be consistent with those obtained by direct particle-in-cell simulation method reported in the literature.

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Dielectric Tensor for Inhomogeneous Plasmas in Inhomogeneous Magnetic Field, Gaelzer, Rudi, Ziebell Luiz F., and Silveira Omar J. G. , Physics of Plasmas, December, Volume 6, Number 12, p.4533–4541, (1999) Abstract

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The derivation of explicit exprEssions for the effective dielectric tensor to be utilized in the dispersion relation for weakly inhomogeneous Plasmas is discussed. The general exprEssions obtained are useful for situations with simultaneous existence of weak inhomogeneities in density and magnetic field. The particular case of a Maxwellian distribution in velocity space for the electron population is discussed, and relatively compact exprEssions for the dielectric tensor are obtained which depend on the inhomogeneous Plasma dispersion function introduced by [Gaelzer et al., Phys. Rev. E55, 5859 (1997)] and ultimately on the well-known Fried-Conte function and its derivatives.

Obliquely propagating {A}lfvén waves in a Maxwellian dusty plasma, Gaelzer, R., de Juli M. C., Schneider R. S., and Ziebell L. F. , Plasma Physics and Controlled Fusion, January, Volume 51, Number 1, p.015011 (17pp), (2009) AbstractWebsite

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A kinetic formulation developed to analyze wave propagation in dusty plasmas, which takes into account the charge variation of the dust particles, is utilized to study the propagation and damping of Alfven waves propagating in oblique directions relative to the ambient magnetic field. A dusty plasma containing spherical and immobile dust grains in a homogeneous ambient magnetic field is considered. The charging process of the dust grains is assumed to be associated with the capture of electrons and ions by the dust particles during inelastic collisions between them and plasma particles. The dispersion relation and the damping rates of obliquely propagating Alfven waves are obtained assuming Maxwellian distributions for electrons and ions in equilibrium. For the numerical analysis of the dispersion relation we use the average values of the inelastic collision frequency as an approximation, instead of the momentum dependent expressions originally derived in the kinetic formulation, and study the modifications which the presence of the dust particles causes in both the propagation and the damping of the Alfven waves. In particular is discussed the competition between the different damping mechanisms, namely, the Landau damping and the damping associated with the dust charge variation, and it is shown that the inelastic collision frequency plays a pivotal role in the magnitude of the damping rates.

Ray Tracing Studies on Wave Propagation in the Auroral Cavities, Gaelzer, R., Ziebell L. F., and Schneider R. S. , 2łho{o} Encontro Brasileiro de Física dos Plasmas, October, Serra Negra - Brasil, p.317–321, (1993) Abstract

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The dispersion relations of dispersive Alfvén waves in superthermal plasmas, Gaelzer, Rudi, and Ziebell Luiz F. , Journal of Geophysical Research, December, Volume 119, Issue 10.1002/2014JA020667, (2014) AbstractPDFWebsite

Copyright (2014) American Geophysical Union. Further reproduction or electronic distribution is not permitted.

The effects of velocity distribution functions (VDF) that exhibit a power-law dependence on the high-energy tail have been the subject of intense research by the space plasma community. Such functions, known as superthermal or kappa distributions, have been found to provide a better fitting to the VDF measured by several spacecraft in the plasma environment of the solar wind. In the literature, the general treatment for waves excited by (bi-)Maxwellian plasmas is well-established. However, for kappa distributions, either isotropic or anisotropic, the wave characteristics have been studied mostly for the limiting cases of purely parallel or perpendicular propagation. Contributions for the general case of obliquely-propagating waves have been scarcely reported so far. In this work we introduce a mathematical formalism that provides expressions for the dielectric tensor components and subsequent dispersion relations for oblique propagating dispersive Alfvén waves (DAW) resulting from a kappa VDF. We employ an isotropic distribution, but the methods used here can be easily applied to more general anisotropic distributions, such as the bi-kappa or product-bi-kappa. The effect of the kappa index and thermal corrections on the dispersion relations of DAW is discussed.

The general dielectric tensor for bi-kappa magnetized plasmas, Gaelzer, Rudi, Ziebell Luiz F., and Menses Anelise R. , Physics of Plasmas, Volume 23, Issue 062108, (2016) Abstractgaelzer16a_am.pdfWebsite

In this paper, we derive the dielectric tensor for a plasma containing particles described by an
anisotropic superthermal (bi-kappa) velocity distribution function. The tensor components are
written in terms of the two-variables kappa plasma special functions, recently defined by Gaelzer
and Ziebell [Phys. Plasmas 23, 022110 (2016)]. We also obtain various new mathematical properties for these functions, which are useful for the analytical treatment, numerical implementation,
and evaluation of the functions and, consequently, of the dielectric tensor. The formalism developed
here and in the previous paper provides a mathematical framework for the study of electromagnetic
waves propagating at arbitrary angles and polarizations in a superthermal plasma.

Obliquely propagating electromagnetic waves in magnetized kappa plasmas, Gaelzer, Rudi, and Ziebell Luiz F. , Physics of Plasmas, Volume 23, Issue 022110, (2016) Abstractarxiv.pdfarXiv.org

DOI: http://dx.doi.org/10.1063/1.4941260

Velocity distribution functions (VDFs) that exhibit a power-law dependence on the high-energy tail have been the subject of intense research by the plasma physics community. Such functions, known as kappa or superthermal distributions, have been found to provide a better fitting to the VDFs measured by spacecraft in the solar wind. One of the problems that is being addressed on this new light is the temperature anisotropy of solar wind protons and electrons. In the literature, the general treatment for waves excited by (bi-)Maxwellian plasmas is well-established. However, for kappa distributions, the wave characteristics have been studied mostly for the limiting cases of purely parallel or perpendicular propagation, relative to the ambient magnetic field. Contributions to the general case of obliquely-propagating electromagnetic waves have been scarcely reported so far. The absence of a general treatment prevents a complete analysis of the wave-particle interaction in kappa plasmas, since some instabilities can operate simultaneously both in the parallel and oblique directions. In a recent work, Gaelzer and Ziebell [J. Geophys. Res. 119, 9334 (2014)] obtained expressions for the dielectric tensor and dispersion relations for the low-frequency, quasi-perpendicular dispersive Alfvén waves resulting from a kappa VDF. In the present work, the formalism introduced by Ref. 1 is generalized for the general case of electrostatic and/or electromagnetic waves propagating in a kappa plasma in any frequency range and for arbitrary angles. An isotropic distribution is considered, but the methods used here can be easily applied to more general anisotropic distributions, such as the bi-kappa or product-bi-kappa.

The Dispersion Relation and the Dielectric Tensor for Magnetized Plasmas with Inhomogeneous Magnetic Field, Gaelzer, R., Schneider R. S., and Ziebell L. F. , Physical Review E, Volume 51, Number 3, p.2407–2424, (1995) Abstract

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Dispersion Functions for Weakly Relativistic Magnetized Plasmas in Inhomogeneous Magnetic Field, Gaelzer, R., Schneider R. S., and Ziebell L. F. , 3łho{o} Encontro Brasileiro de Física dos Plasmas, December, Águas de Lindóia - SP, p.240–243, (1995) Abstract

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Asymmetric Solar Wind Electron Superthermal Distributions, Gaelzer, R., Ziebell L. F., Viñas A. F., Yoon P. H., and Ryu C. - M. , The Astrophysical Journal, April, Volume 677, Number 1, p.676–682, (2008) AbstractWebsite

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Electron distributions with various degrees of asymmetry associated with the energetic tail population are commonly detected in the solar wind near 1 AU. By numerically solving one-dimensional electrostatic weak turbulence equations the present paper demonstrates that a wide variety of asymmetric energetic tail distributions may result. It is found that a wide variety of asymmetric tail formation becomes possible if one posits that the solar wind electrons are initially composed of thermal core plus field-aligned counterstreaming beams, instead of the customary thermal population plus a single beam. It is shown that the resulting nonlinear wave-wave and wave-particle interactions lead to asymmetric nonthermal tails. It is found that the delicate difference in the average beam speeds associated with the forward versus backward components is responsible for the generation of asymmetry in the energetic tail.

Effect of superthermal electrons on Alfvén wave propagation in the dusty plasmas of solar and stellar winds, Gaelzer, R., de Juli M. C., and Ziebell L. F. , Journal of Geophysical Research, September, Volume 115, Number A9, p.A09109, (2010) AbstractWebsite

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The dispersive characteristics and absorption coefficient of Alfvén waves propagating parallel to the ambient magnetic field are discussed, taking into account the effects of both the charged dust particles present in the interplanetary medium and the superthermal character of the electron distribution function, using physical parameters relevant for solar and stellar winds. The solar wind electrons are described by an isotropic $ąppa$ distribution and the protons are described by a Maxwellian. The results are valid for a frequency regime well above the dust-plasma and dust-cyclotron frequencies. However, the theoretical formulation is fully kinetic and the dust charge variation is taken into account. The charging process of the dust is assumed to be associated with the capture of electrons and ions by the dust particles during inelastic collisions with the plasma particles. The dispersion relation for parallel-propagating Alfvén waves is numerically solved and the solutions are compared with particular situations where either the dust particles are absent or the electrons are described by a Maxwellian. It is shown that the presence of both the charged dust particles and the superthermal character of the electron distribution function sensibly modify the dispersion relation of low-frequency and long-wavelength Alfvén waves and significantly increase the absorption coefficient, strongly suggesting that both effects are equally important for a realistic description of the physical processes that occur in solar and stellar winds and that are influenced by the Alfvén waves, such as the energization of particles and the turbulent cascade of magnetic fluctuations.

Propagation and Amplification of Auroral Kilometric Radiation in Finite Width Auroral Cavities, Gaelzer, R., Ziebell L. F., and Schneider R. S. , Journal of Geophysical Research, December, Volume 97, Number A12, p.19299–19310, (1992) Abstract

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We investigate amplification of the auroral kilometric radiation over the geomagnetic poles. The physical parameters needed for the calculation are obtained from a particular model that approximately reproduces the conditions in the auroral zone, taking into account density gradients perpendicular to the geomagnetic field and also the parallel magnetic field gradient. The components of the dielectric tensor are calculated in the locally homogeneous plasma approximation, and the dispersion relation is exactly solved with all harmonics and powers of the Larmor radius needed for the convergency of the solution. We also make a ray tracing study in the geometrical optics approximation, using the method of Poeverlein. The ray tracing study shows that the spatial scale of inhomogeneity, perpendicular to the magnetic field, is a very important factor in the amplification and that the distance to obtain a given amplification can be substantially reduced when the density gradient is increased.

The Effective Longitudinal Dielectric Constant for Plasmas in Inhomogeneous Magnetic Fields, Gaelzer, R., Ziebell L. F., and Schneider R. S. , Brazilian Journal of Physics, September, Volume 34, Number 3B, p.1224–1240, (2004) Abstract

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We prEsent a detailed derivation of the effective dielectric constant to be used in the dispersion relation for electrostatic waves in the case of a Plasma immersed in a inhomogeneous magnetic ?eld, with inhomogeneity perpendicular to the direction of the magnetic ?eld.

On the dimensionally correct kinetic theory of turbulence for parallel propagation, Gaelzer, R., Yoon P. H., Kim Sunjung, and Ziebell L. F. , Physics of Plasmas, Volume 22, Issue 3, Number 3, (2015) AbstractPDFWebsite

Copyright (2015) American Institute of Physics. This article may be downloaded for personal use only. Any other use requires prior permission of the author and the American Institute of Physics.

Yoon and Fang [Phys. Plasmas 15, 122312 (2008)] formulated a second-order nonlinear kinetic theory that describes the turbulence propagating in directions parallel/anti-parallel to the ambient magnetic field. Their theory also includes discrete-particle effects, or the effects due to spontaneously emitted thermal fluctuations. However, terms associated with the spontaneous fluctuations in particle and wave kinetic equations in their theory contain proper dimensionality only for an artificial one-dimensional situation. The present paper extends the analysis and re-derives the dimensionally correct kinetic equations for three-dimensional case. The new formalism properly describes the effects of spontaneous fluctuations emitted in three-dimensional space, while the collectively emitted turbulence propagates predominantly in directions parallel/anti-parallel to the ambient magnetic field. As a first step, the present investigation focuses on linear wave-particle interaction terms only. A subsequent paper will include the dimensionally correct nonlinear wave-particle interaction terms.

Magnetic Field Inhomogeneity Effects in Weakly Relativistic Plasmas, Gaelzer, R., Schneider R. S., and Ziebell L. F. , 2łho{o} Encontro Brasileiro de Física dos Plasmas, October, Serra Negra - Brasil, p.226–229, (1993) Abstract

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A Time-Reversal Invariant Formulation of Wave Absorption in Weakly Inhomogeneous MagnetoPlasmas, Gaelzer, R., Schneider R. S., and Ziebell L. F. , 1994 International Conference on Plasma Physics, November, Volume 2, Foz do Igua\c cu - Brasil, p.33–36, (1994) Abstract

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Generation of Harmonic Langmuir Mode by Beam-Plasma Instability, Gaelzer, R., Ziebell L. F., and Yoon P. H. , Physics of Plasmas, January, Volume 9, Number 1, p.96–110, (2002) AbstractWebsite

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In this article, numerical solutions of the generalized weak turbulence equation [P. H. Yoon, Phys. Plasmas 7, 4858 (2000)] are carried out. In the generalized weak turbulence theory, the generation of the 2pe-harmonic Langmuir mode is treated as a fundamental process in turbulent beam-plasma interaction process, in addition to, and concomitant to, the well-known nonlinear processes such as Langmuir and ion-sound mode coupling and wave-particle interactions. The present numerical analysis shows that the harmonic mode, which is a solution to a nonlinear dispersion equation, hence a “nonlinear” eigenmode, grows primarily due to an induced emission process, which is a “linear” wave-particle interaction process. The harmonic Langmuir mode generation has been observed since the late 1960s in laboratory experiments, simulations, and in space. However, adequate and quantitative theoretical explanation has not been forthcoming. The present work represents a step toward an understanding of such a phenomenon.

The Effective Dielectric Tensor for Plasmas with Inhomogeneities in Density and Magnetic Field, Gaelzer, R., Schneider R. S., and Ziebell L. F. , V Encontro Brasileiro de Física dos Plasmas, November/Decembe, Águas de Lindóia - SP, p.165–168, (1998) Abstract

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Two-Dimensional Ray-Tracing Studies in the Source of Auroral Kilometric Radiation, Gaelzer, R., Ziebell L. F., and Schneider R. S. , 1łho{o} Congresso Brasileiro de Física dos Plasmas, December, Santos - Brasil, p.81–85, (1991) Abstract

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Ray Tracing Studies on Auroral Kilometric Radiation in Finite-Width Auroral Cavities, Gaelzer, R., Ziebell L. F., and Schneider R. S. , Journal of Geophysical Research, May, Volume 99, Number A5, p.8905–8916, (1994) Abstract

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We investigate propagation and amplification of the auroral kilometric radiation over the geomagnetic poles using a particular model for the physical parameters in the auroral zone, which takes into account density gradients perpendicular to the geomagnetic field. The propagation of the waves is investigated with the canonical set of equations of the geometrical optics, taking into account thermal effects and considering both the energetic and the background electron populations, with the components of the dielectric tensor calculated in the locally homogeneous plasma approximation. It is shown that the spatial scale of inhomogeneity perpendicular to the magnetic field is an important factor in the amplification, although less favorable than indicated by previous studies using the method of Poeverlein to obtain the trajectory of the radiation.