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Kinetic Quantum Theory of Gravity

Starting from the action function we have derived a theoretical background that leads to quantization of gravity and the deduction of a correlation between the gravitational and inertial masses, which depends on the kinetic momentum of the particle. We show that there is a reaffirmation of the stron...

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Autor principal: DeAquino, F
Lenguaje:eng
Publicado: 2002
Materias:
Acceso en línea:http://cds.cern.ch/record/790612
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author DeAquino, F
author_facet DeAquino, F
author_sort DeAquino, F
collection CERN
description Starting from the action function we have derived a theoretical background that leads to quantization of gravity and the deduction of a correlation between the gravitational and inertial masses, which depends on the kinetic momentum of the particle. We show that there is a reaffirmation of the strong equivalence principle and consequently the Einstein's equations are preserved. In fact such equations are deduced here directly from this kinetic approach to Gravity. Moreover, we have obtained a generalized equation for inertial forces, which incorporates the Mach's principle into Gravitation. Also, we have deduced the equation of Entropy; the Hamiltonian for a particle in an electromagnetic field and the reciprocal fine structure constant. It is possible to deduce the expression of the Casimir force and also to explain the Inflation Period and the Missing Matter without assuming the existence of vacuum fluctuations. This new approach for Gravity will allow us to understand some crucial matters in Cosmology.
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spelling cern-7906122019-09-30T06:29:59Zhttp://cds.cern.ch/record/790612engDeAquino, FKinetic Quantum Theory of GravityGeneral Theoretical PhysicsStarting from the action function we have derived a theoretical background that leads to quantization of gravity and the deduction of a correlation between the gravitational and inertial masses, which depends on the kinetic momentum of the particle. We show that there is a reaffirmation of the strong equivalence principle and consequently the Einstein's equations are preserved. In fact such equations are deduced here directly from this kinetic approach to Gravity. Moreover, we have obtained a generalized equation for inertial forces, which incorporates the Mach's principle into Gravitation. Also, we have deduced the equation of Entropy; the Hamiltonian for a particle in an electromagnetic field and the reciprocal fine structure constant. It is possible to deduce the expression of the Casimir force and also to explain the Inflation Period and the Missing Matter without assuming the existence of vacuum fluctuations. This new approach for Gravity will allow us to understand some crucial matters in Cosmology.EXT-2004-104oai:cds.cern.ch:7906122002-12-06
spellingShingle General Theoretical Physics
DeAquino, F
Kinetic Quantum Theory of Gravity
title Kinetic Quantum Theory of Gravity
title_full Kinetic Quantum Theory of Gravity
title_fullStr Kinetic Quantum Theory of Gravity
title_full_unstemmed Kinetic Quantum Theory of Gravity
title_short Kinetic Quantum Theory of Gravity
title_sort kinetic quantum theory of gravity
topic General Theoretical Physics
url http://cds.cern.ch/record/790612
work_keys_str_mv AT deaquinof kineticquantumtheoryofgravity