Particles with Negative Energies in Nonrelativistic and Relativistic Cases

States of particles with negative energies are considered for the nonrelativistic and relativistic cases. In the nonrelativistic case it is shown that the decay close to the attracting center can lead to the situation similar to the Penrose effect for a rotating black hole when the energy of one of...

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Main Authors: Andrey A. Grib, Yuri V. Pavlov
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Symmetry
Subjects:
Online Access:https://www.mdpi.com/2073-8994/12/4/528
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author Andrey A. Grib
Yuri V. Pavlov
author_facet Andrey A. Grib
Yuri V. Pavlov
author_sort Andrey A. Grib
collection DOAJ
description States of particles with negative energies are considered for the nonrelativistic and relativistic cases. In the nonrelativistic case it is shown that the decay close to the attracting center can lead to the situation similar to the Penrose effect for a rotating black hole when the energy of one of the fragments is larger than the energy of the initial body. This is known as the Oberth effect in the theory of the rocket movement. The realizations of the Penrose effect in the non-relativistic case in collisions near the attracting body and in the evaporation of stars from star clusters are indicated. In the relativistic case similar to the well known Penrose process in the ergosphere of the rotating black hole it is shown that the same situation as in ergosphere of the black hole occurs in rotating coordinate system in Minkowski space-time out of the static limit due to existence of negative energies. In relativistic cases differently from the nonrelativistic ones, the mass of the fragment can be larger than the mass of the decaying body. Negative energies for particles are possible in the relativistic case in cosmology of the expanding space when the coordinate system is used with a nondiagonal term in metrical tensor of the space-time. Friedmann metrics for three cases: open, close and quasieuclidian, are analyzed. The De Sitter space-time is shortly discussed.
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spelling doaj.art-341246e0d09642d0b6adb2c0f3fb17e12023-11-19T20:34:53ZengMDPI AGSymmetry2073-89942020-04-0112452810.3390/sym12040528Particles with Negative Energies in Nonrelativistic and Relativistic CasesAndrey A. Grib0Yuri V. Pavlov1Theoretical Physics and Astronomy Department, The Herzen University, 48 Moika, St. Petersburg 191186, RussiaInstitute of Problems in Mechanical Engineering of Russian Academy of Sciences, 61 Bolshoy, V.O., St. Petersburg 199178, RussiaStates of particles with negative energies are considered for the nonrelativistic and relativistic cases. In the nonrelativistic case it is shown that the decay close to the attracting center can lead to the situation similar to the Penrose effect for a rotating black hole when the energy of one of the fragments is larger than the energy of the initial body. This is known as the Oberth effect in the theory of the rocket movement. The realizations of the Penrose effect in the non-relativistic case in collisions near the attracting body and in the evaporation of stars from star clusters are indicated. In the relativistic case similar to the well known Penrose process in the ergosphere of the rotating black hole it is shown that the same situation as in ergosphere of the black hole occurs in rotating coordinate system in Minkowski space-time out of the static limit due to existence of negative energies. In relativistic cases differently from the nonrelativistic ones, the mass of the fragment can be larger than the mass of the decaying body. Negative energies for particles are possible in the relativistic case in cosmology of the expanding space when the coordinate system is used with a nondiagonal term in metrical tensor of the space-time. Friedmann metrics for three cases: open, close and quasieuclidian, are analyzed. The De Sitter space-time is shortly discussed.https://www.mdpi.com/2073-8994/12/4/528Penrose effectblack holemetricexpanding Universe
spellingShingle Andrey A. Grib
Yuri V. Pavlov
Particles with Negative Energies in Nonrelativistic and Relativistic Cases
Symmetry
Penrose effect
black hole
metric
expanding Universe
title Particles with Negative Energies in Nonrelativistic and Relativistic Cases
title_full Particles with Negative Energies in Nonrelativistic and Relativistic Cases
title_fullStr Particles with Negative Energies in Nonrelativistic and Relativistic Cases
title_full_unstemmed Particles with Negative Energies in Nonrelativistic and Relativistic Cases
title_short Particles with Negative Energies in Nonrelativistic and Relativistic Cases
title_sort particles with negative energies in nonrelativistic and relativistic cases
topic Penrose effect
black hole
metric
expanding Universe
url https://www.mdpi.com/2073-8994/12/4/528
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