AIP Conference Proceedings 2009
DOI: 10.1063/1.3115498
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Fluidic electrodynamics: Approach to electromagnetic propulsion

Abstract: We report on a new methodological approach to electrodynamics based on a fluidic viewpoint. We develop a systematic approach establishing analogies between physical magnitudes and isomorphism (structure-preserving mappings) between systems of equations. This methodological approach allows us to give a general expression for the hydromotive force, thus re-obtaining the Navier-Stokes equation departing from the appropriate electromotive force. From this ground we offer a fluidic approach to different kinds of is… Show more

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Cited by 6 publications
(7 citation statements)
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“…Here γ m ∼ 1/(ρ M c) is the parameter due to which the angular momentum is reduced to the vorticity, ω = Ω/(ρ M c). In some way this parameter is analogous to the gyromagnetic ratio, which is the ratio of its magnetic moment to the angular momentum [54,55,53]. While, the second term, [(∇·ρ M )×v ], can be easily recognized if we remember the rotation of a raw egg.…”
Section: Quaternion Representationmentioning
confidence: 99%
See 1 more Smart Citation
“…Here γ m ∼ 1/(ρ M c) is the parameter due to which the angular momentum is reduced to the vorticity, ω = Ω/(ρ M c). In some way this parameter is analogous to the gyromagnetic ratio, which is the ratio of its magnetic moment to the angular momentum [54,55,53]. While, the second term, [(∇·ρ M )×v ], can be easily recognized if we remember the rotation of a raw egg.…”
Section: Quaternion Representationmentioning
confidence: 99%
“…We note that the authors in their figure have also shown comparison with a fluid drag [19]. It should be noted, that many authors carry out deep analogies of turbulent, vortex flows of fluids with the electromagnetism by basing on a fluidic viewpoint [44,[52][53][54][55].…”
Section: Gravitomagnetic Equationsmentioning
confidence: 99%
“…Most probably this fact is the realization of a general law of nature, to which is associated we may call a local "twist" of the fluid, firstly investigated by Viktor Schauberger and Professor Von Karman with his experiments with the flow for some distance behind a plate showing a regular arrangement of vortex lines, the so called "vortex street", that remain behind the plate and advancing at a more slow pace than the plate itself. The observation of these facts make us to turn our attention to the problem of the electrodynamic acceleration of fluids by reaction against the physical vacuum [18][19][20][21][22][23], or plasma medium, or any other kind of fluid [17].…”
Section: Theory Of the Electromagneto-toroidal Structurementioning
confidence: 99%
“…As the electrical toroidal device is a kind of fluid accelerator, as shown in Ref. [18], acting on the material device with a density of force given by which is shown in Fig.7 with its resulting direction. By corresponding electromagnetic and gravitational symbols and a constant given by…”
Section: Figure6 Moving Vortex Ring In a Fluidmentioning
confidence: 99%
“…One can trace parallels between these equations and the Maxwell equations for electric and magnetic fields [72,73]. In this key, we may represent the kinetic momentum p = m * v and the kinetic energy by the following expressions…”
Section: B Irrotational and Solenoidal Vector Fieldsmentioning
confidence: 99%