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Helmholtz Theorems, Gauge Transformations, General Covariance and the Empirical Meaning of Gauge Conditions

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dc.contributor.other https://orcid.org/0000-0001-5324-1834 es_ES
dc.contributor.other https://orcid.org/0000-0002-1478-7946 es_ES
dc.coverage.spatial Global es_ES
dc.creator Chubykalo, Andrew
dc.creator Espinoza, Augusto
dc.creator Alvarado Flores, Rolando
dc.date.accessioned 2018-06-12T16:29:29Z
dc.date.available 2018-06-12T16:29:29Z
dc.date.issued 2016-05
dc.identifier info:eu-repo/semantics/publishedVersion es_ES
dc.identifier.issn 2153-1196 es_ES
dc.identifier.issn 2153-120X es_ES
dc.identifier.uri http://hdl.handle.net/20.500.11845/538
dc.identifier.uri https://doi.org/10.48779/mdqz-sk52
dc.description.abstract It is well known that the use of Helmholtz decomposition theorem for static vector fields C : R3 → R3 , when applied to the time dependent vector fields E : R4 → R3 , B : R4 → R3 which represent the electromagnetic field, allows us to obtain instantaneous-like solutions all along R3 . For this reason, some people thought (see e.g. [1] and references therein) that the Helmholtz theorem cannot be applied to time dependent vector fields and some modification is wanted in order to get the retarded solutions. However, the use of the Helmholtz theorem for static vector fields is correct even for time dependent vector fields (see, e.g. [2]), so a relation between the solutions was required, in such a way that a retarded solution can be transformed in an instantaneous one, and conversely. On this paper we want to suggest, following most of the time the mathematical formalism of Woodside in [3], that: 1) there are many Helmholtz decompositions, all equally consistent, 2) each one is naturally related to a space-time structure, 3) when we use the Helmholtz decomposition for the electromagnetic potentials it is equivalent to a gauge transformation, 4) there is a natural methodological criterion for choosing the gauge according to the structure postulated for a global spacetime, 5) the Helmholtz decomposition is the manifestation at the level of the fields that a gauge is involved. So, when we relate the retarded solution to the instantaneous one what we do is to change the gauge and the space-time. And, if the Helmholtz decompositions are related to a space-time structure, and are equivalent to gauge transformations, each gauge transformation is natural for a specific space-time. In this way, a Helmholtz decomposition for Euclidean space is equivalent to the Coulomb gauge and a Helmholtz decomposition for the Minkowski space is equivalent to the Lorenz gauge. This leads us to consider that the theories defined by different gauges may be mathematically equivalent, because they can be related by means of a gauge transformation, but they are not empirically equivalent, because they have quite different observational consequences due to the different space-time structure involved. es_ES
dc.language.iso eng es_ES
dc.publisher Scientific Research Publishing es_ES
dc.relation https://www.scirp.org/journal/jmp/ es_ES
dc.relation.uri generalPublic es_ES
dc.rights Atribución-NoComercial-CompartirIgual 3.0 Estados Unidos de América *
dc.rights.uri http://creativecommons.org/licenses/by-nc-sa/3.0/us/ *
dc.source Journal of Modern Physics, Núm. 7, Mayo 2016. es_ES
dc.subject.classification CIENCIAS FISICO MATEMATICAS Y CIENCIAS DE LA TIERRA [1] es_ES
dc.subject.other Helmholtz Theorem es_ES
dc.subject.other Gauge Transformations es_ES
dc.subject.other Space-Time Transformations es_ES
dc.subject.other Symmetries of Differential Equations es_ES
dc.subject.other Underdetermination of Systems of Differential Equations es_ES
dc.subject.other Natural Covariance es_ES
dc.title Helmholtz Theorems, Gauge Transformations, General Covariance and the Empirical Meaning of Gauge Conditions es_ES
dc.type info:eu-repo/semantics/article es_ES


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