Academic literature on the topic 'Alfvén wave'

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Journal articles on the topic "Alfvén wave"

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Goossens, M. "Alfv�n wave heating." Space Science Reviews 68, no. 1-4 (May 1994): 51–62. http://dx.doi.org/10.1007/bf00749116.

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Kolmakov, I. A., and V. N. Korolev. "Alfv�n-wave flowmeters." Measurement Techniques 33, no. 5 (May 1990): 482–85. http://dx.doi.org/10.1007/bf00864439.

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Torkelsson, Ulf, and G. Christopher Boynton. "Non-linear spherical Alfvén waves." Monthly Notices of the Royal Astronomical Society 295, no. 1 (March 1998): 55–65. http://dx.doi.org/10.1046/j.1365-8711.1998.t01-1-29511160.x.

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Tsurutani, Bruce T., Edward J. Smith, Christian M. Ho, Marcia Neugebauer, Bruce E. Goldstein, John S. Mok, Andre Balogh, David Southwood, and William C. Feldman. "Interplanetary discontinuities and Alfv�n waves." Space Science Reviews 72, no. 1-2 (April 1995): 205–10. http://dx.doi.org/10.1007/bf00768781.

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Shukla, P. K., and L. Stenflo. "Filamentation instability of Alfv�n waves." Astrophysics and Space Science 155, no. 1 (1989): 145–47. http://dx.doi.org/10.1007/bf00645216.

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Barkhudarov, M. R. "Alfv�n waves in stellar winds." Solar Physics 135, no. 1 (September 1991): 131–61. http://dx.doi.org/10.1007/bf00146703.

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Laveder, D., T. Passot, and P. L. Sulem. "Alfv?n Wave Filamentation Beyond the Envelope Formalism." Physica Scripta T84, no. 1 (2000): 38. http://dx.doi.org/10.1238/physica.topical.084a00038.

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Satya Narayanan, A., and K. Somasundaram. "Alfv�n Surface Waves along coronal streamers." Astrophysics and Space Science 109, no. 2 (1985): 357–64. http://dx.doi.org/10.1007/bf00651281.

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Chmyrev, V. M., and V. G. Mordovskaya. "Nonlinear Alfv�n waves in the magnetosphere." Radiophysics and Quantum Electronics 29, no. 7 (July 1986): 575–79. http://dx.doi.org/10.1007/bf01034144.

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Shukla, P. K., and G. Feix. "Nonlinear Alfv�n wave modulation in the solar atmosphere." Solar Physics 123, no. 1 (1989): 117–25. http://dx.doi.org/10.1007/bf00150015.

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Dissertations / Theses on the topic "Alfvén wave"

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Chang, Lei. "The impact of magnetic geometry on wave modes in cylindrical plasmas." Phd thesis, 2013. http://hdl.handle.net/1885/11578.

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Both space and laboratory plasmas can be associated with static magnetic field, and the field geometry varies from uniform to non-uniform. This thesis investigates the impact of magnetic geometry on wave modes in cylindrical plasmas. The cylindrical configuration is chosen so as to explore this impact in a tractable but experimentally realisable configuration. Three magnetic geometries are considered: uniform, focused and rippled. For a uniform magnetic field, wave oscillations in a plasma cylinder with axial flow and azimuthal rotation are modelled through a two-fluid flowing plasma model. The model provides a qualitatively consistent description of the plasma configuration on a Radio Frequency (RF) generated linear magnetised plasma (WOMBAT, Waves On Magnetised Beams And Turbulence [Boswell and Porteous, Appl. Phys. Lett. 50, 1130 (1987)]), and yields agreement between measured and predicted dependences of the wave oscillation frequency with axial field strength. The radial profile of the density perturbation predicted by this model is consistent with the data. Parameter scans show that the dispersion curve is sensitive to the axial field strength and the electron temperature, and the dependence of the oscillation frequency with electron temperature matches the experiment. These results consolidate earlier claims that the density and floating potential oscillations are a resistive drift mode, driven! by the density gradient. This, to our knowledge, is the first detailed physics modelling of plasma flows in the diffusion region away from the RF source. For a focused magnetic field, wave propagations in a pinched plasma (MAGPIE, MAGnetised Plasma Interaction Experiment [Blackwell et al., Plasma Sources Sci. Technol. 21, 055033 (2012)]) are modelled through an ElectroMagnetic Solver (EMS) based on Maxwell's equations and a cold plasma dielectric tensor. [Chen et. al., Phys. Plasmas 13, 123507 (2006)] The solver produces axial and radial profiles of wave magnitude and phase that are consistent with measurements, for an enhancement factor of 9.5 to the electron-ion Coulomb collision frequency and a 12% reduction in the antenna radius. It is found that helicon waves have weaker attenuation away from the antenna in a focused field compared to a uniform field. This may be consistent with observations of increased ionisation efficiency and plasma production in a non-uniform field. The relationship between plasma density, static magnetic field strength and axial wavelength agrees well with a simple theory developed previously. More! over, the wave amplitude is lowered and the power deposited into the core plasma decreases as the enhancement factor to the electron-ion Coulomb collision frequency increases, possibly due to the stronger edge heating for higher collision frequencies. For a rippled magnetic field, the spectra of radially localised helicon (RLH) waves [Breizman and Arefiev, Phys. Rev. Lett. 84, 3863 (2000)] and shear Alfvén waves (SAW) in a cold plasma cylinder are investigated. A gap-mode analysis of the RLH waves is first derived and then generalised to ion cyclotron range of frequencies for SAW. The EMS is employed to model the spectral gap and gap eigenmode. For both the RLH waves and SAW, it is demonstrated that the computed gap frequency and gap width agree well with the theoretical analysis, and a discrete eigenmode is formed inside the gap by introducing a defect to the system's periodicity. The axial wavelength of the gap eigenmode is close to twice the system's periodicity, which is consistent with Bragg's law, and the decay length agrees well with the analytical estimate. Experimental realisation of a gap eigenmode on a linear plasma device such as the LArge Plasma Device (LAPD) [Gekelman et al., Rev. Sci. Instrum. 62, 2875 (1991)] may be possible by introducing a symmetry-breaking defect to the system's periodicity. Such basic science studies could provide the possibility to accelerate the science of gap mode formation and mode drive in toroidal fusion plasmas, where gap modes are introduced by symmetry-breaking due to toroidicity, plasma ellipticity and higher order shaping effects. These studies suggest suppressing drift waves in a uniformly magnetised plasma by increasing the field strength, enhancing the efficiency of helicon wave production of plasma by using a focused magnetic field, and forming a gap eigenmode on a linear plasma device by introducing a local defect to the system's periodicity, which is useful for understanding the gap-mode formation and interaction with energetic particles in fusion plasmas.
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Books on the topic "Alfvén wave"

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Cramer, Neil F. Physics of Alfv�n Waves. Wiley & Sons, Limited, John, 2005.

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Cramer, Neil F. Physics of Alfvén Waves. Wiley & Sons, Incorporated, John, 2011.

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3

United States. National Aeronautics and Space Administration., ed. Alfve n wave transport effects in the time evolution of a parallel cosmic-ray modified shocks. [Washington, DC: National Aeronautics and Space Administration, 1993.

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Conference papers on the topic "Alfvén wave"

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Houshmandyar, Saeid, and Earl E. Scime. "Waves in wave-produced plasmas: Ducted kinetic Alfvén waves in helicon sources." In 2014 United States National Committee of URSI National Radio Science Meeting (USNC-URSI NRSM). IEEE, 2014. http://dx.doi.org/10.1109/usnc-ursi-nrsm.2014.6928094.

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Wang, Tieyan, Jinbin Cao, Huishan Fu, and Wenlong Liu. "Multi-spacecraft detection of kinetic Alfvén waves in the turbulent cusp region." In 2014 XXXIth URSI General Assembly and Scientific Symposium (URSI GASS). IEEE, 2014. http://dx.doi.org/10.1109/ursigass.2014.6929907.

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Carter, Troy, and Seth Dorfman. "Studies of the nonlinear physics of Alfvén waves in the large plasma device." In 2014 XXXIth URSI General Assembly and Scientific Symposium (URSI GASS). IEEE, 2014. http://dx.doi.org/10.1109/ursigass.2014.6929897.

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Voitenko, Yuriy, Valentin Melnik, and Viviane Pierrard. "Bursts of kinetic Alfvén waves and coronal radio emission at 2–3 solar radii." In 2015 1st URSI Atlantic Radio Science Conference (URSI AT-RASC). IEEE, 2015. http://dx.doi.org/10.1109/ursi-at-rasc.2015.7303157.

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Reports on the topic "Alfvén wave"

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watts, Christopher. Coupling of the Photosphere to the Solar Corona: A laboratory and observational study of Alfv?n wave interaction with a neutral gas. Office of Scientific and Technical Information (OSTI), January 2010. http://dx.doi.org/10.2172/972630.

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