Geometry and Space-Time Extent of Pion Emission Region at FCC Energies

The energy dependence is investigated for a wide set of space-time characteristics derived from Bose–Einstein correlations of secondary pion pairs produced in proton-proton and nucleus-nucleus interactions. Analytic functions suggested for smooth approximations of the energy dependence of emission r...

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Main Author: V. A. Okorokov
Format: Article
Language:English
Published: Hindawi Limited 2016-01-01
Series:Advances in High Energy Physics
Online Access:http://dx.doi.org/10.1155/2016/5972709
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spelling doaj-d6cf51666ea04fa88efcf477b323e6402020-11-24T21:26:02ZengHindawi LimitedAdvances in High Energy Physics1687-73571687-73652016-01-01201610.1155/2016/59727095972709Geometry and Space-Time Extent of Pion Emission Region at FCC EnergiesV. A. Okorokov0National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), Kashirskoe Shosse 31, Moscow 115409, RussiaThe energy dependence is investigated for a wide set of space-time characteristics derived from Bose–Einstein correlations of secondary pion pairs produced in proton-proton and nucleus-nucleus interactions. Analytic functions suggested for smooth approximations of the energy dependence of emission region parameters demonstrate reasonable agreement with all available experimental results for proton-proton collisions while the approximations correspond to most of experimental data for nucleus-nucleus collisions at energies above 5 GeV. Estimations for a wide set of space-time quantities are obtained for energies for the Future Circular Collider (FCC) project based on the smooth approximations. The space particle densities at freeze-out are derived also from estimations for the volume of the emission region and for total multiplicity at FCC energies. Estimations for charged particle density and its critical value allow the possibility of lasing behavior for secondary pions in nucleus-nucleus collisions at FCC energy. The mathematical formalism is presented for study of the peak shape of correlation function for general case of central-symmetrical Lévy–Feldheim distribution.http://dx.doi.org/10.1155/2016/5972709
collection DOAJ
language English
format Article
sources DOAJ
author V. A. Okorokov
spellingShingle V. A. Okorokov
Geometry and Space-Time Extent of Pion Emission Region at FCC Energies
Advances in High Energy Physics
author_facet V. A. Okorokov
author_sort V. A. Okorokov
title Geometry and Space-Time Extent of Pion Emission Region at FCC Energies
title_short Geometry and Space-Time Extent of Pion Emission Region at FCC Energies
title_full Geometry and Space-Time Extent of Pion Emission Region at FCC Energies
title_fullStr Geometry and Space-Time Extent of Pion Emission Region at FCC Energies
title_full_unstemmed Geometry and Space-Time Extent of Pion Emission Region at FCC Energies
title_sort geometry and space-time extent of pion emission region at fcc energies
publisher Hindawi Limited
series Advances in High Energy Physics
issn 1687-7357
1687-7365
publishDate 2016-01-01
description The energy dependence is investigated for a wide set of space-time characteristics derived from Bose–Einstein correlations of secondary pion pairs produced in proton-proton and nucleus-nucleus interactions. Analytic functions suggested for smooth approximations of the energy dependence of emission region parameters demonstrate reasonable agreement with all available experimental results for proton-proton collisions while the approximations correspond to most of experimental data for nucleus-nucleus collisions at energies above 5 GeV. Estimations for a wide set of space-time quantities are obtained for energies for the Future Circular Collider (FCC) project based on the smooth approximations. The space particle densities at freeze-out are derived also from estimations for the volume of the emission region and for total multiplicity at FCC energies. Estimations for charged particle density and its critical value allow the possibility of lasing behavior for secondary pions in nucleus-nucleus collisions at FCC energy. The mathematical formalism is presented for study of the peak shape of correlation function for general case of central-symmetrical Lévy–Feldheim distribution.
url http://dx.doi.org/10.1155/2016/5972709
work_keys_str_mv AT vaokorokov geometryandspacetimeextentofpionemissionregionatfccenergies
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